Merge branch 'main' of cau-git.rz.uni-kiel.de:nt/mitarbeiter/silas/imdd_simulation
# Conflicts: # projects/WDM/WDM_auswertung.m # projects/WDM/WDM_model_old.m
This commit is contained in:
@@ -108,9 +108,6 @@ classdef Electricalsignal < Signal
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obj.signal = obj.signal*scling;
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obj.signal = obj.signal*scling;
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end
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end
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end
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end
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end
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end
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@@ -70,8 +70,7 @@ classdef Opticalsignal < Signal
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s = mean( abs(obj.signal-mean(obj.signal)).^2 );
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s = mean( abs(obj.signal-mean(obj.signal)).^2 );
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cspr = 10*log10(c / s);
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cspr = 10*log10(c / s);
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end
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end
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@@ -98,7 +98,6 @@ classdef Signal
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end
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end
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%% CONVERT TO Opticalsignal
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%% CONVERT TO Opticalsignal
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function o_sig = Opticalsignal(obj, options)
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function o_sig = Opticalsignal(obj, options)
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@@ -143,7 +142,7 @@ classdef Signal
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arguments
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arguments
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obj
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obj
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options.fignum = randi(1000)
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options.fignum = randi(1000)
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options.displayname = [];
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options.displayname = '';
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options.timeframe = 0;
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options.timeframe = 0;
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options.clear = 0;
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options.clear = 0;
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options.color = [];
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options.color = [];
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@@ -273,7 +272,6 @@ classdef Signal
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SignalCopy = [];
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SignalCopy = [];
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ModifierName = class(CallingModifier);
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ModifierName = class(CallingModifier);
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cell = {SignalType , TimeStamp , Length , SignalPower(1) , Nase, SignalCopy, ModifierName, ModifierCopy, Description};
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cell = {SignalType , TimeStamp , Length , SignalPower(1) , Nase, SignalCopy, ModifierName, ModifierCopy, Description};
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obj.logbook = [obj.logbook; cell];
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obj.logbook = [obj.logbook; cell];
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@@ -363,8 +361,7 @@ classdef Signal
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options.fft_length = 2^(nextpow2(length(obj.signal))-9);
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options.fft_length = 2^(nextpow2(length(obj.signal))-9);
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end
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end
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if options.normalizeToNyquist == 0
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if options.normalizeToNyquist == 0
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[p_lin,f_Hz] = pwelch(obj.signal, hanning(options.fft_length), ...
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[p_lin,f_Hz] = pwelch(obj.signal, hanning(options.fft_length), ...
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options.fft_length/2, options.fft_length, ...
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options.fft_length/2, options.fft_length, ...
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@@ -488,7 +485,6 @@ classdef Signal
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end
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end
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function move_it_spectrum(obj,options)
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function move_it_spectrum(obj,options)
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arguments
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arguments
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obj
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obj
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@@ -630,7 +626,6 @@ classdef Signal
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case power_notation.W
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case power_notation.W
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%pow = pow % Watt
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%pow = pow % Watt
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end
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end
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end
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end
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@@ -668,7 +663,7 @@ classdef Signal
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%% PAPR of signal
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%% PAPR of signal
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function papr_db = papr_db(obj)
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function papr_db = papr_db(obj)
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%PAPR The peak-to-average power ratio (PAPR) is the peak amplitude squared (giving the peak power)
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% PAPR The peak-to-average power ratio (PAPR) is the peak amplitude squared (giving the peak power)
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% divided by the RMS value squared (giving the average power).[1] It is the square of the crest factor.
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% divided by the RMS value squared (giving the average power).[1] It is the square of the crest factor.
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% papr = max(abs(timesignal))^2 / rms(timesignal)^2; ODER papr = peak2rms(sig)^2;
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% papr = max(abs(timesignal))^2 / rms(timesignal)^2; ODER papr = peak2rms(sig)^2;
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@@ -722,7 +717,7 @@ classdef Signal
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end
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end
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%%
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%%
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function [obj,S,inverted,sequenceFound,sequenceStarts] = tsynch(obj,options)
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function [obj,S,inverted,sequenceFound,sequenceStarts] = tsynch(obj,options)
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% time sync and cut
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% time sync and cut
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arguments
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arguments
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@@ -732,14 +727,11 @@ classdef Signal
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options.debug_plots = 0;
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options.debug_plots = 0;
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end
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end
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S = {};
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S = {};
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inverted = -1;
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inverted = -1;
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sequenceFound = 0;
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sequenceFound = 0;
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sequenceStarts = [];
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sequenceStarts = [];
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%normalize the signal
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%normalize the signal
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a = obj.normalize("mode","oneone").signal;
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a = obj.normalize("mode","oneone").signal;
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@@ -765,11 +757,11 @@ classdef Signal
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pkpos = sort(pkpos);
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pkpos = sort(pkpos);
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if mean(w) > 10 || mean(p) > 10
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% if mean(w) > 15 || mean(p) > 15
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return
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% return
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else
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% else
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sequenceFound = 1;
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% sequenceFound = 1;
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end
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% end
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if options.debug_plots
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if options.debug_plots
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figure(121212);clf
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figure(121212);clf
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@@ -777,8 +769,6 @@ classdef Signal
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findpeaks(abs(co./max(co)),'MinPeakDistance',length(b)/2,'MinPeakHeight',0.2,'NPeaks',maxpeaknum,'SortStr','descend')
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findpeaks(abs(co./max(co)),'MinPeakDistance',length(b)/2,'MinPeakHeight',0.2,'NPeaks',maxpeaknum,'SortStr','descend')
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end
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end
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shifts = lags(pkpos);
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shifts = lags(pkpos);
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sequenceStarts = shifts;
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sequenceStarts = shifts;
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shifts = shifts(shifts>=0);
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shifts = shifts(shifts>=0);
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@@ -831,7 +821,6 @@ classdef Signal
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end
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end
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%%
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%%
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function obj = filter(obj,a,b)
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function obj = filter(obj,a,b)
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@@ -921,6 +910,7 @@ classdef Signal
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end
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end
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%%
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%%
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function eye(obj,fsym,M,options)
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function eye(obj,fsym,M,options)
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@@ -981,8 +971,8 @@ classdef Signal
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maxA = max(sig(100:end-100))*1.3;
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maxA = max(sig(100:end-100))*1.3;
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minA = min(sig(100:end-100))*1.3;
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minA = min(sig(100:end-100))*1.3;
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maxA = 0.12;
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% maxA = 0.12;
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minA = -0.08;
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% minA = -0.08;
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difference= maxA-minA;
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difference= maxA-minA;
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@@ -43,7 +43,7 @@ classdef Pulseformer
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function signalclass_out = process(obj,signalclass_in)
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function signalclass_out = process(obj,signalclass_in)
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% actual processing of the signal (steps 1. - 3.)
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% actual processing of the signal (steps 1. - 3.)
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signalclass_in.signal = obj.process_(signalclass_in.signal);
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signalclass_in.signal = obj.process_(signalclass_in);
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% append to logbook
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% append to logbook
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lbdesc = 'Applied Pulseshaping';
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lbdesc = 'Applied Pulseshaping';
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@@ -65,109 +65,171 @@ classdef Pulseformer
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% Cant be seen from outside! So put all your functions here that can/
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% Cant be seen from outside! So put all your functions here that can/
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% shall not be called from outside
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% shall not be called from outside
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function data_out = process_(obj,data_in)
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function data_out = process_(obj, data_in_signal)
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%METHOD1 Summary of this method goes here
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% Extract the incoming sampling rate
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% Detailed explanation goes here
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% Safety check: If fs is missing (e.g. raw symbols), assume it is fsym
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arguments(Input)
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if isprop(data_in_signal, 'fs') && ~isempty(data_in_signal.fs)
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obj
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f_in = data_in_signal.fs;
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data_in
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else
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end
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f_in = obj.fsym;
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end
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arguments(Output)
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data_out
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end
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if ~rem(obj.fdac,obj.fsym)
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%ist ein Vielfaches
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sps = obj.fdac / obj.fsym;
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p = sps;
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q = 1;
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else
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%ist kein Vielfaches
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p = obj.fsym / gcd(obj.fdac, obj.fsym); %upsampling p->->->
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q = obj.fdac/ gcd(obj.fdac, obj.fsym); %downsampling <-q
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sps= q; %sps während dem pulse shaping
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end
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if obj.pulse == pulseform.rc
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filtertype = 'normal';
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elseif pulseform.rrc
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filtertype = 'sqrt';
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end
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%Bau das Filter (hier rc)
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racos_len = obj.pulselength*2;
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h = rcosdesign(obj.alpha,racos_len,sps,filtertype);
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% h = h./ max(h);
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if obj.matched
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h = conj(fliplr(h));
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end
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manual_cyclic_convolution = 0;
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upfirdn_convolution = 1;
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if manual_cyclic_convolution
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% Apply filter the long way (from move_it)
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data_in = data_in';
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blen = length(data_in)*sps;
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% oversample symbol sequence
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symbolov=zeros(size(data_in,1),blen);
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symbolov(:,1:sps:blen-sps+1)=data_in;
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H=fft(h,blen);
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% Convolution of Bit sequence with impulse response
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data_out=ifft( fft(symbolov.') .* repmat( H,size(data_in,1),1 ).' ).';
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data_out = circshift(data_out,[0 -(obj.pulselength*sps)]);
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if rem(obj.fdac,obj.fsym)
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f_out = obj.fdac;
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data_out = data_out(1:q:end);
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end
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end
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% 1. Calculate Resampling Factors (P and Q)
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% We need rational approximation: f_out/f_in = p/q
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[p, q] = rat(f_out / f_in);
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if upfirdn_convolution
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% 2. Calculate SPS for the Filter Design
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% The filter operates at the INTERMEDIATE rate (f_in * p).
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% We need to know how many samples represent one symbol AT THAT RATE.
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fs_intermediate = f_in * p;
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sps_filter = fs_intermediate / obj.fsym;
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%Apply Filter using Matlab build in fctn.
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% 3. Filter Design
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if obj.pulse == pulseform.rc
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filtertype = 'normal';
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elseif obj.pulse == pulseform.rrc % assuming enum logic holds
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filtertype = 'sqrt';
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end
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data_out_ = upfirdn(data_in,h,p,q);
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% Standard RRC Design
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% Note: rcosdesign sps must be integer? Usually yes, but for polyphase it can handle it.
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% If sps_filter is not integer, rcosdesign might complain.
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% For your setup (powers of 2), it will likely be integer.
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racos_len = obj.pulselength; % span in symbols
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h = rcosdesign(obj.alpha, racos_len, sps_filter, filtertype);
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%cut signal, which is longer due to fir filter
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% Matched Filter Flip (Complex Conjugate Time Reversal)
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st = round(p/q*racos_len/2); %we need to cut y_out
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if obj.matched
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en = round(st + (length(data_in)*p/q));
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h = conj(fliplr(h));
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data_out = data_out_(st:en);
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end
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end
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% 4. Processing
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% Apply upfirdn using the calculated P and Q
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data_out_ = upfirdn(data_in_signal.signal, h, p, q);
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if upfirdn_convolution && manual_cyclic_convolution
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% 5. Trim Tail (Group Delay Correction)
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figure()
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% The delay of linear phase filter is (N-1)/2 samples @ intermediate rate
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subplot(2,1,1)
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delay_samples_intermediate = (length(h) - 1) / 2;
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title("Convolution vs. Upfirdn and Cut")
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hold on
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% Convert delay to output samples
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% plot(data_out_(1:200),'DisplayName','Matlab upfirdn');
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delay_samples_out = delay_samples_intermediate / q;
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plot(data_out(1:200),'DisplayName','By Hand cyclic convolution')
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subplot(2,1,2)
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% We usually want to trim the "start" transient
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hold on
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st = floor(delay_samples_out) + 1;
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plot(data_out(1:2000),'DisplayName','OUT');
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plot(data_in(1:2000),'DisplayName','IN');
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% Calculate expected output length
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end
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len_out = ceil(length(data_in_signal.signal) * p / q);
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% Cut
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data_out = data_out_(st : st + len_out - 1);
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end
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%scaling?! see pulsef module line 696
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%
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% scale = max(max([abs(real(data_out)) abs(imag(data_out))])); %find max value from real and imag part
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% function data_out = process_(obj,data_in)
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% data_out = data_out./scale;
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% %METHOD1 Summary of this method goes here
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% % Detailed explanation goes here
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% data_out = data_out';
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% arguments(Input)
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% obj
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%Check output integrity
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% data_in
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if abs(round(p/q * length(data_in)) - length(data_out)) > 4
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% end
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warning('Check signal length after pulse shaping');
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%
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%disp('Check signal length after pulse shaping');
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% arguments(Output)
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end
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% data_out
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% end
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%
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end
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% if ~rem(obj.fdac,obj.fsym)
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% %ist ein Vielfaches
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% sps = obj.fdac / obj.fsym;
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% p = sps;
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% q = 1;
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% else
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% %ist kein Vielfaches
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% p = obj.fsym / gcd(obj.fdac, obj.fsym); %upsampling p->->->
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% q = obj.fdac/ gcd(obj.fdac, obj.fsym); %downsampling <-q
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% sps= q; %sps während dem pulse shaping
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% end
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%
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% if obj.pulse == pulseform.rc
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% filtertype = 'normal';
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% elseif pulseform.rrc
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% filtertype = 'sqrt';
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% end
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%
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% %Bau das Filter (hier rc)
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% racos_len = obj.pulselength*2;
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% h = rcosdesign(obj.alpha,racos_len,sps,filtertype);
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% % h = h./ max(h);
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%
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% if obj.matched
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% h = conj(fliplr(h));
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% end
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||||||
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%
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% manual_cyclic_convolution = 0;
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% upfirdn_convolution = 1;
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%
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% if manual_cyclic_convolution
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%
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% % Apply filter the long way (from move_it)
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% data_in = data_in';
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% blen = length(data_in)*sps;
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%
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% % oversample symbol sequence
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% symbolov=zeros(size(data_in,1),blen);
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% symbolov(:,1:sps:blen-sps+1)=data_in;
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% H=fft(h,blen);
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%
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||||||
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% % Convolution of Bit sequence with impulse response
|
||||||
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% data_out=ifft( fft(symbolov.') .* repmat( H,size(data_in,1),1 ).' ).';
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% data_out = circshift(data_out,[0 -(obj.pulselength*sps)]);
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%
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% if rem(obj.fdac,obj.fsym)
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||||||
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% data_out = data_out(1:q:end);
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||||||
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% end
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||||||
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%
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||||||
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% end
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||||||
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%
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||||||
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% if upfirdn_convolution
|
||||||
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%
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||||||
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% %Apply Filter using Matlab build in fctn.
|
||||||
|
%
|
||||||
|
% data_out_ = upfirdn(data_in,h,p,q);
|
||||||
|
%
|
||||||
|
% %cut signal, which is longer due to fir filter
|
||||||
|
% st = round(p/q*racos_len/2); %we need to cut y_out
|
||||||
|
% en = round(st + (length(data_in)*p/q));
|
||||||
|
% data_out = data_out_(st:en);
|
||||||
|
%
|
||||||
|
% end
|
||||||
|
%
|
||||||
|
% if upfirdn_convolution && manual_cyclic_convolution
|
||||||
|
% figure()
|
||||||
|
% subplot(2,1,1)
|
||||||
|
% title("Convolution vs. Upfirdn and Cut")
|
||||||
|
% hold on
|
||||||
|
% % plot(data_out_(1:200),'DisplayName','Matlab upfirdn');
|
||||||
|
% plot(data_out(1:200),'DisplayName','By Hand cyclic convolution')
|
||||||
|
% subplot(2,1,2)
|
||||||
|
% hold on
|
||||||
|
% plot(data_out(1:2000),'DisplayName','OUT');
|
||||||
|
% plot(data_in(1:2000),'DisplayName','IN');
|
||||||
|
% end
|
||||||
|
%
|
||||||
|
% %scaling?! see pulsef module line 696
|
||||||
|
% % scale = max(max([abs(real(data_out)) abs(imag(data_out))])); %find max value from real and imag part
|
||||||
|
% % data_out = data_out./scale;
|
||||||
|
%
|
||||||
|
% % data_out = data_out';
|
||||||
|
%
|
||||||
|
% %Check output integrity
|
||||||
|
% if abs(round(p/q * length(data_in)) - length(data_out)) > 4
|
||||||
|
% warning('Check signal length after pulse shaping');
|
||||||
|
% %disp('Check signal length after pulse shaping');
|
||||||
|
% end
|
||||||
|
%
|
||||||
|
%
|
||||||
|
% end
|
||||||
|
|
||||||
|
|
||||||
end
|
end
|
||||||
|
|||||||
@@ -15,6 +15,7 @@ classdef EML
|
|||||||
u_pi
|
u_pi
|
||||||
randomkey
|
randomkey
|
||||||
randomstream
|
randomstream
|
||||||
|
alpha
|
||||||
|
|
||||||
%on instance creation
|
%on instance creation
|
||||||
field
|
field
|
||||||
@@ -38,6 +39,7 @@ classdef EML
|
|||||||
options.lambda;
|
options.lambda;
|
||||||
options.power;
|
options.power;
|
||||||
options.linewidth = 0;
|
options.linewidth = 0;
|
||||||
|
options.alpha = 0;
|
||||||
options.ampl_imbal = 0;
|
options.ampl_imbal = 0;
|
||||||
options.pha_imbal = 0;
|
options.pha_imbal = 0;
|
||||||
options.bias;
|
options.bias;
|
||||||
@@ -101,9 +103,21 @@ classdef EML
|
|||||||
end
|
end
|
||||||
|
|
||||||
%modulate the laserfield with the electrical signal
|
%modulate the laserfield with the electrical signal
|
||||||
opt_out = obj.externalmodulation(laserfield,elec_in);
|
laserfield = obj.externalmodulation(laserfield,elec_in);
|
||||||
|
|
||||||
|
% add chirp
|
||||||
|
opt_out = obj.chirp(laserfield);
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
function chirped_field = chirp(obj,laserfield)
|
||||||
|
|
||||||
|
% Chirp
|
||||||
|
p = abs(laserfield.^2);
|
||||||
|
derv_p = [0; diff(p)];
|
||||||
|
delta_phi = derv_p./(4*pi*p).*obj.alpha;
|
||||||
|
delta_phi = cumsum(delta_phi);
|
||||||
|
chirped_field = laserfield.*exp(1i*2*pi*delta_phi);
|
||||||
|
|
||||||
end
|
end
|
||||||
|
|
||||||
|
|||||||
47
Classes/04_DSP/Timing_Recovery.m
Normal file
47
Classes/04_DSP/Timing_Recovery.m
Normal file
@@ -0,0 +1,47 @@
|
|||||||
|
classdef Timing_Recovery < handle
|
||||||
|
|
||||||
|
properties(Access=public)
|
||||||
|
timing_error_detector
|
||||||
|
sps
|
||||||
|
damping_factor
|
||||||
|
normalized_loop_bandwidth
|
||||||
|
detector_gain
|
||||||
|
end
|
||||||
|
|
||||||
|
methods(Access=public)
|
||||||
|
function obj = FFE(options)
|
||||||
|
arguments(Input)
|
||||||
|
|
||||||
|
options.timing_error_detector = 'Gardner';
|
||||||
|
options.sps = 2;
|
||||||
|
options.damping_factor = 1.0;
|
||||||
|
options.normalized_loop_bandwidth = 0.005;
|
||||||
|
options.detector_gain = 1;
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
fn = fieldnames(options);
|
||||||
|
for n = 1:numel(fn)
|
||||||
|
obj.(fn{n}) = options.(fn{n});
|
||||||
|
end
|
||||||
|
|
||||||
|
obj.e = zeros(obj.order,1);
|
||||||
|
obj.error = 0;
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
function data_out = process(obj, data_in)
|
||||||
|
|
||||||
|
timing_synchronization = comm.SymbolSynchronizer( ...
|
||||||
|
"TimingErrorDetector", obj.timing_error_detector, ...
|
||||||
|
"SamplesPerSymbol", obj.sps, ...
|
||||||
|
"DampingFactor", obj.damping_factor, ...
|
||||||
|
"NormalizedLoopBandwidth", obj.normalized_loop_bandwidth, ...
|
||||||
|
"DetectorGain", obj.detector_gain);
|
||||||
|
|
||||||
|
data_out.signal = timing_synchronization(data_in.signal);
|
||||||
|
|
||||||
|
end
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
@@ -8,9 +8,9 @@ classdef Metricstruct
|
|||||||
date_of_processing (1,1) datetime = datetime('now')
|
date_of_processing (1,1) datetime = datetime('now')
|
||||||
|
|
||||||
numBits (1,1) double {mustBeInteger, mustBeNonnegative} = 0
|
numBits (1,1) double {mustBeInteger, mustBeNonnegative} = 0
|
||||||
BER (1,1) double {mustBeNumeric, mustBeNonnegative, mustBeLessThanOrEqual(BER,1)} = 0
|
BER (1,1) double {mustBeNumeric, mustBeNonnegative} = 0
|
||||||
numBitErr (1,1) double {mustBeInteger, mustBeNonnegative} = 0
|
numBitErr (1,1) double {mustBeInteger, mustBeNonnegative} = 0
|
||||||
BER_precoded (1,1) double {mustBeNumeric, mustBeNonnegative, mustBeLessThanOrEqual(BER_precoded,1)} = 0
|
BER_precoded (1,1) double {mustBeNumeric, mustBeNonnegative} = 0
|
||||||
numBitErr_precoded (1,1) double {mustBeInteger, mustBeNonnegative} = 0
|
numBitErr_precoded (1,1) double {mustBeInteger, mustBeNonnegative} = 0
|
||||||
|
|
||||||
SNR (1,1) double {mustBeNumeric} = NaN
|
SNR (1,1) double {mustBeNumeric} = NaN
|
||||||
|
|||||||
@@ -27,7 +27,7 @@ classdef Moveit_wrapper < handle
|
|||||||
|
|
||||||
% Ensure the function exists
|
% Ensure the function exists
|
||||||
if ~exist(obj.moveit_function_name, 'file')
|
if ~exist(obj.moveit_function_name, 'file')
|
||||||
error('Function "%s" does not exist.', obj.moveit_function_name);
|
error('Function "%s" does not exist. The move-it module must be on path for Matlab, otherwise the wrapper can not call it...', obj.moveit_function_name);
|
||||||
end
|
end
|
||||||
|
|
||||||
% Step 1: Get default parameters by calling moveit module
|
% Step 1: Get default parameters by calling moveit module
|
||||||
|
|||||||
@@ -131,11 +131,11 @@ switch precode_mode
|
|||||||
tx_bits_precoded = mapper.demap(tx_symbols_precoded);
|
tx_bits_precoded = mapper.demap(tx_symbols_precoded);
|
||||||
|
|
||||||
rx_bits = mapper.demap(eq_signal_hd_precoded);
|
rx_bits = mapper.demap(eq_signal_hd_precoded);
|
||||||
[~, errors_precoded, ber_precoded, ~] = calc_ber(rx_bits.signal, tx_bits_precoded.signal, "skip_front", 30000, "skip_end", 150, "returnErrorLocation", 1);
|
[~, errors_precoded, ber_precoded, ~] = calc_ber(rx_bits.signal, tx_bits_precoded.signal, "skip_front", 10, "skip_end", 10, "returnErrorLocation", 1);
|
||||||
|
|
||||||
% B) Just determine BER
|
% B) Just determine BER
|
||||||
rx_bits = mapper.demap(eq_signal_hd);
|
rx_bits = mapper.demap(eq_signal_hd);
|
||||||
[bits, errors, ber, error_pos] = calc_ber(rx_bits.signal, tx_bits.signal, "skip_front", 30000, "skip_end", 150, "returnErrorLocation", 1);
|
[bits, errors, ber, error_pos] = calc_ber(rx_bits.signal, tx_bits.signal, "skip_front", 10, "skip_end", 10, "returnErrorLocation", 1);
|
||||||
|
|
||||||
case db_mode.db_precoded
|
case db_mode.db_precoded
|
||||||
% Data is precoded on TX side
|
% Data is precoded on TX side
|
||||||
@@ -143,12 +143,12 @@ switch precode_mode
|
|||||||
eq_signal_hd_decoded = Duobinary().encode(eq_signal_hd, "M", M);
|
eq_signal_hd_decoded = Duobinary().encode(eq_signal_hd, "M", M);
|
||||||
eq_signal_hd_decoded = Duobinary().decode(eq_signal_hd_decoded, "M", M);
|
eq_signal_hd_decoded = Duobinary().decode(eq_signal_hd_decoded, "M", M);
|
||||||
rx_bits_decoded = mapper.demap(eq_signal_hd_decoded);
|
rx_bits_decoded = mapper.demap(eq_signal_hd_decoded);
|
||||||
[~, errors_precoded, ber_precoded, ~] = calc_ber(rx_bits_decoded.signal, tx_bits.signal, "skip_front", 30000, "skip_end", 150, "returnErrorLocation", 1);
|
[~, errors_precoded, ber_precoded, ~] = calc_ber(rx_bits_decoded.signal, tx_bits.signal, "skip_front", 10, "skip_end", 10, "returnErrorLocation", 1);
|
||||||
|
|
||||||
% B) Omit the Coding by comparing with demapped TX symbol sequence
|
% B) Omit the Coding by comparing with demapped TX symbol sequence
|
||||||
tx_bits_demapped = mapper.demap(tx_symbols);
|
tx_bits_demapped = mapper.demap(tx_symbols);
|
||||||
rx_bits = mapper.demap(eq_signal_hd);
|
rx_bits = mapper.demap(eq_signal_hd);
|
||||||
[bits, errors, ber, error_pos] = calc_ber(rx_bits.signal, tx_bits_demapped.signal, "skip_front", 30000, "skip_end", 150, "returnErrorLocation", 1);
|
[bits, errors, ber, error_pos] = calc_ber(rx_bits.signal, tx_bits_demapped.signal, "skip_front", 10, "skip_end", 10, "returnErrorLocation", 1);
|
||||||
end
|
end
|
||||||
end
|
end
|
||||||
|
|
||||||
|
|||||||
@@ -11,7 +11,6 @@ if nargin == 4
|
|||||||
M_training = [];
|
M_training = [];
|
||||||
end
|
end
|
||||||
|
|
||||||
|
|
||||||
% if input is complex, separate into real and imaginary parts
|
% if input is complex, separate into real and imaginary parts
|
||||||
if any(imag(x(:))~=0) || any(imag(r(:))~=0)
|
if any(imag(x(:))~=0) || any(imag(r(:))~=0)
|
||||||
x = [real(x); imag(x)];
|
x = [real(x); imag(x)];
|
||||||
|
|||||||
171
projects/FSO_transmission/first_analysis.m
Normal file
171
projects/FSO_transmission/first_analysis.m
Normal file
@@ -0,0 +1,171 @@
|
|||||||
|
|
||||||
|
base = "C:\Users\Silas\Nextcloud\Dokumente\02_Ablage_Office\FSO_FP_QCL_60umUTC";
|
||||||
|
mode = 0; %0 oder 1
|
||||||
|
M = 2;
|
||||||
|
|
||||||
|
all_files = dir(fullfile(base, "**/*.mat"));
|
||||||
|
|
||||||
|
if M == 2
|
||||||
|
tx_data = load("C:\Users\Silas\Nextcloud\Dokumente\02_Ablage_Office\FSO_FP_QCL_60umUTC\14G_PAM2\tx_info\tx_info_PAM2_14Gbd0.75RRC.mat");
|
||||||
|
filename = fullfile(base, "14G_PAM2\M=2_Rs=1.4e10_Fs=8e10_I=265mA_RoP=46.3mW_L=31m_PS=RRC_rolloff=0.75_Mode=Rise.mat");
|
||||||
|
elseif M == 4
|
||||||
|
tx_data = load("C:\Users\Silas\Nextcloud\Dokumente\02_Ablage_Office\FSO_FP_QCL_60umUTC\6G_PAM4\tx_info\tx_info_PAM4_6Gbd0.6RRC.mat");
|
||||||
|
filename = fullfile(base, "6G_PAM4\M=4_Rs=6e9_Fs=8e10_I=255mA_RoP=42.3mW_L=31m_PS=RRC_rolloff=0.6_Mode=Rise.mat");
|
||||||
|
end
|
||||||
|
|
||||||
|
if mode == 1
|
||||||
|
[f, p] = uigetfile(fullfile(base, "**/*.mat"));
|
||||||
|
if f~=0
|
||||||
|
filename = fullfile(p,f);
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
datas = load(filename);
|
||||||
|
|
||||||
|
%%
|
||||||
|
str = filename;
|
||||||
|
M_ = str2double(regexp(str, 'M=([^_]+)', 'tokens', 'once'));
|
||||||
|
assert(M==M_);
|
||||||
|
fsym = str2double(regexp(str, 'Rs=([^_]+)', 'tokens', 'once'));
|
||||||
|
fs = str2double(regexp(str, 'Fs=([^_]+)', 'tokens', 'once'));
|
||||||
|
I = sscanf(char(regexp(str, 'I=([^_]+)', 'tokens', 'once')), '%f');
|
||||||
|
rop = sscanf(char(regexp(str, 'RoP=([^_]+)', 'tokens', 'once')), '%f');
|
||||||
|
L = sscanf(char(regexp(str, 'L=([^_]+)', 'tokens', 'once')), '%f');
|
||||||
|
pulseshape = string( regexp(str, 'PS=([^_]+)', 'tokens', 'once'));
|
||||||
|
rolloff = str2double(regexp(str, 'rolloff=([^_]+)', 'tokens', 'once'));
|
||||||
|
mode = string( regexp(str, 'Mode=([^\.]+)', 'tokens', 'once'));
|
||||||
|
|
||||||
|
%%
|
||||||
|
% Tx data
|
||||||
|
|
||||||
|
Bits = Informationsignal(tx_data.tx_data,"fs",fsym);
|
||||||
|
Symbols = Informationsignal(real(tx_data.tx_PAM_sym),"fs",fsym);
|
||||||
|
|
||||||
|
mapping_style = M==4; % Pam2 is like move-it; PAM-4 is different, same mapping like ETH peopled used in Zurich... hence the "eth_style" argument here and there
|
||||||
|
PM = PAMmapper(M,0,"eth_style",mapping_style); % one should rename "eth style" as this is simply a different mapping scheme
|
||||||
|
|
||||||
|
Symbols_ = PM.map(Bits) .* PM.scaling;
|
||||||
|
assert(isequal(Symbols.signal,Symbols_.signal));
|
||||||
|
|
||||||
|
Bits_ = PM.demap(Symbols);
|
||||||
|
[bits,errors,ber,errorIndice] = calc_ber(Bits_.signal,Bits.signal);
|
||||||
|
assert(ber == 0);
|
||||||
|
|
||||||
|
%% For comparison, apply pulsef on Tx Symbols
|
||||||
|
Pform = Pulseformer("fsym",fsym,"fdac",fs,"pulse","rc","pulselength",16,"alpha",rolloff);
|
||||||
|
Digi_sig_compare = Pform.process(Symbols);
|
||||||
|
MF = Pulseformer("fsym",fsym,"fdac",2*fsym,"pulse","rrc","pulselength",16,"alpha",rolloff);
|
||||||
|
Rx_sig_compare = MF.process(Digi_sig_compare);
|
||||||
|
|
||||||
|
%%
|
||||||
|
|
||||||
|
% Rx Data
|
||||||
|
traceData = datas.tr.lastData(2).trace.ch3;
|
||||||
|
|
||||||
|
%FYI: Voltage=(RawData−YReference)×YIncrement+YOrigin
|
||||||
|
scoperead_volts = (traceData.RawData - traceData.YReference) * traceData.YIncrement + traceData.YOrigin;
|
||||||
|
demystified = isequal(traceData.YData,scoperead_volts);
|
||||||
|
assert(demystified);
|
||||||
|
|
||||||
|
Scope_sig = Electricalsignal(traceData.YData,"fs",fs);
|
||||||
|
|
||||||
|
Scope_sig.plot("displayname",'raw','fignum',100);
|
||||||
|
Scope_sig.spectrum("displayname",'raw','fignum',101)
|
||||||
|
|
||||||
|
% 1) matched filter
|
||||||
|
% pulse is symmetric, hence we can use pulsef firectly as matched filter.
|
||||||
|
% It feels off (bit I think correct) that the fsym is now the output freq.!!
|
||||||
|
% -> output 2 sps to omit timing recovery!?
|
||||||
|
Pform = Pulseformer("fsym",fsym,"fdac",2*fsym,"pulse","rrc","pulselength",16,"alpha",rolloff,"matched",1);
|
||||||
|
Rx_matched = Pform.process(Scope_sig);
|
||||||
|
Rx_matched.spectrum("displayname",'Signal after matched filter','fignum',1);
|
||||||
|
|
||||||
|
|
||||||
|
%%
|
||||||
|
|
||||||
|
sys = comm.SymbolSynchronizer('TimingErrorDetector', 'Gardner (non-data-aided)', ...
|
||||||
|
'SamplesPerSymbol', 2, ...
|
||||||
|
'DampingFactor', 0.7, ...
|
||||||
|
'NormalizedLoopBandwidth', 0.01);
|
||||||
|
Rx_symbolsync = Rx_matched;
|
||||||
|
[Rx_symbolsync.signal, timing_error] = sys(Rx_matched.signal);
|
||||||
|
|
||||||
|
plot(timing_error); % If this is a ramp, you have drift!
|
||||||
|
|
||||||
|
%% timing sync -> at this point we still have no symbol timing recovery, we
|
||||||
|
% % try to do this with 2sps EQ!
|
||||||
|
|
||||||
|
[~,Rx_synced_cell,inverted,sequenceFound,sequenceStarts] = Rx_symbolsync.tsynch("reference", Symbols, "fs_ref", fsym, "debug_plots", 1);
|
||||||
|
|
||||||
|
|
||||||
|
%% not working..
|
||||||
|
Rx_synced = Rx_synced_cell{1};
|
||||||
|
len_tr = 4096*2;
|
||||||
|
mu_ffe1 = 0.0001;
|
||||||
|
mu_ffe2 = 0.0008;
|
||||||
|
mu_ffe3 = 0.001;
|
||||||
|
mu_dc = 0.005;
|
||||||
|
mu_ffe = [mu_ffe1 mu_ffe3 mu_ffe3];
|
||||||
|
mu_dfe = 0.0004;
|
||||||
|
duob_mode = db_mode.no_db;
|
||||||
|
|
||||||
|
Rx_synced.plot("displayname",'RX: Matched+Sync+2sps','fignum',2);
|
||||||
|
|
||||||
|
Digi_sig_compare.normalize("mode","rms").spectrum("displayname",'Tx: RC-shaped','fignum',1,'normalizeTo0dB',0);
|
||||||
|
Rx_sig_compare.normalize("mode","rms").spectrum("displayname",'Tx: RC-shaped + matched filtered ','fignum',1,'normalizeTo0dB',0);
|
||||||
|
Rx_synced.normalize("mode","rms").spectrum("displayname",'RX: matched filtered + synced','fignum',1,'normalizeTo0dB',0);
|
||||||
|
|
||||||
|
if M == 2
|
||||||
|
ber_in_paper = 10^(-2.6); %fig 3a) 4 Gb/s MWIR FSO Transmission using Directly Modulated QCL and an Uncooled UTC-PD at Room-Temperature
|
||||||
|
elseif M == 4
|
||||||
|
ber_in_paper = 10^(-2.5);
|
||||||
|
end
|
||||||
|
|
||||||
|
%% -------------------- FFE --------------------
|
||||||
|
% requires some more digging what is going on :-)
|
||||||
|
eq_ffe = EQ("Ne",[50, 5, 5],"Nb",[2,0,0], ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
|
||||||
|
ffe_results = ffe(eq_ffe,M,Rx_synced,Symbols,Bits, ...
|
||||||
|
"precode_mode",duob_mode,'showAnalysis',0,"postFFE",[], ...
|
||||||
|
"eth_style_symbol_mapping",mapping_style);
|
||||||
|
|
||||||
|
% ffe_results.metrics.print
|
||||||
|
fprintf('My EQ: %.1e \n',ffe_results.metrics.BER);
|
||||||
|
fprintf('Paper: %.1e \n \n',ber_in_paper);
|
||||||
|
|
||||||
|
%% -------------------- VNLE + MLSE --------------------
|
||||||
|
|
||||||
|
pf_ncoeffs = 1;
|
||||||
|
eq_v = EQ("Ne",[100, 5, 5],"Nb",[0, 0, 0], ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
pf_ = Postfilter("ncoeff",pf_ncoeffs,"useBurg",1);
|
||||||
|
mlse_ = MLSE("duobinary_output",0,'M',M,'trellis_states',PAMmapper(M,0,"eth_style",mapping_style).levels);
|
||||||
|
|
||||||
|
[vnle_results, mlse_results] = vnle_postfilter_mlse(eq_v, pf_, mlse_, M, Rx_synced, Symbols, Bits, ...
|
||||||
|
"precode_mode", duob_mode, 'showAnalysis', 1, "postFFE", [], "eth_style_symbol_mapping", mapping_style);
|
||||||
|
|
||||||
|
mlse_results.metrics.print("description",'MLSE')
|
||||||
|
fprintf('My EQ: %.1e \n',mlse_results.metrics.BER);
|
||||||
|
fprintf('Paper: %.1e \n \n',ber_in_paper);
|
||||||
|
|
||||||
|
%% -------------------- DB target --------------------
|
||||||
|
mlse_db_ = MLSE("DIR",[1,1],"duobinary_output",0,"M",M,'trellis_states',PAMmapper(M,0).levels);
|
||||||
|
|
||||||
|
eq_ = EQ("Ne",[50, 5, 5],"Nb",[0,0,0],"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
|
||||||
|
dbt_results = duobinary_target(eq_,mlse_db_, M, Rx_synced, Symbols, Bits, ...
|
||||||
|
"precode_mode", duob_mode, 'showAnalysis', 0, "postFFE", [],"eth_style_symbol_mapping",mapping_style);
|
||||||
|
|
||||||
|
dbt_results.metrics.print("description",'Duobinary');
|
||||||
|
mlse_results.metrics.print
|
||||||
|
fprintf('My EQ: %.1e \n',dbt_results.metrics.BER);
|
||||||
|
fprintf('Paper: %.1e \n \n',ber_in_paper);
|
||||||
|
|
||||||
|
|
||||||
@@ -1,117 +1,136 @@
|
|||||||
|
|
||||||
% basePath = 'C:\Users\Silas\Documents\MATLAB\Datensätze\sioe_labor\';
|
|
||||||
% db = DBHandler("pathToDB",[basePath,'silas_labor.db']);
|
|
||||||
if 1
|
if 1
|
||||||
|
|
||||||
uloops = struct;
|
uloops = struct;
|
||||||
uloops.precomp = [1];
|
uloops.precomp = [1];
|
||||||
uloops.db_precode = [0];
|
uloops.bitrate = [300].*1e9; %[300,330,360,390,420,450,480] [224,336,360,390,420,448] for MPI
|
||||||
uloops.bitrate = [224].*1e9; %[300,330,360,390,420,450,480] [224,336,360,390,420,448] for MPI
|
|
||||||
% uloops.laser_wavelength = [1293,1297.5,1302,1306.5,1310,1313.4,1318,1322.7,1327.4];
|
% uloops.laser_wavelength = [1293,1297.5,1302,1306.5,1310,1313.4,1318,1322.7,1327.4];
|
||||||
uloops.laser_wavelength = [1310];
|
uloops.laser_wavelength = [1293];
|
||||||
uloops.M = [4];
|
uloops.M = [4];
|
||||||
uloops.link_length = [1]; % 1,2,3,5,6,8,10
|
uloops.link_length = [0:2:10]; % 1,2,3,5,6,8,10
|
||||||
uloops.interference_attenuation = [0,3,6,9,12,15,18,21,24,27,30,45];
|
uloops.alpha = [0];
|
||||||
|
|
||||||
wh = DataStorage(uloops);
|
wh = DataStorage(uloops);
|
||||||
wh.addStorage("ber");
|
wh.addStorage("ber");
|
||||||
|
|
||||||
% wh = submit_simulations(wh,"parallel",0,"simulation_mode",0);
|
|
||||||
wh = submit_handle(@imdd_model,wh,"parallel",0);
|
wh = submit_handle(@imdd_model,wh,"parallel",0);
|
||||||
|
|
||||||
end
|
end
|
||||||
|
|
||||||
wh_ana = wh_master;
|
%%
|
||||||
|
figure
|
||||||
cols = cbrewer2('Paired',8);
|
hold on
|
||||||
|
for alpha = uloops.alpha
|
||||||
figure()
|
a=wh.getStoValue('ber',1, [300].*1e9 , 1293, 4, uloops.link_length,alpha);
|
||||||
|
ffe = cellfun(@(x) x.ffe_results.metrics.BER, a);
|
||||||
for precomp = [0,1]
|
plot(uloops.link_length,ffe,'DisplayName',sprintf('Alpha: %d',alpha),'LineStyle','-','HandleVisibility','on');
|
||||||
wavelength=uloops.laser_wavelength;
|
|
||||||
for m = [6]
|
|
||||||
|
|
||||||
baudrate = wh_ana.parameter.bitrate.values;
|
|
||||||
|
|
||||||
|
|
||||||
%VNLE
|
|
||||||
precode = 1;
|
|
||||||
a = wh_ana.getStoValue('ber',precomp, precode, baudrate , wavelength, m, uloops.link_length);
|
|
||||||
ber_vnle_pc = cellfun(@(x) x.vnle_pf_package{1,1}.ber_vnle, a);
|
|
||||||
%MLSE
|
|
||||||
ber_mlse_pc = cellfun(@(x) x.vnle_pf_package{1,1}.ber_mlse, a);
|
|
||||||
%DB
|
|
||||||
ber_dbtgt_pc = cellfun(@(x) x.dbtgt_package{1,1}.ber, a);
|
|
||||||
|
|
||||||
precode = 0;
|
|
||||||
a = wh_ana.getStoValue('ber',precomp, precode, baudrate , wavelength, m, uloops.link_length);
|
|
||||||
ber_vnle = cellfun(@(x) x.vnle_pf_package{1,1}.ber_vnle, a);
|
|
||||||
%MLSE
|
|
||||||
ber_mlse = cellfun(@(x) x.vnle_pf_package{1,1}.ber_mlse, a);
|
|
||||||
%DB
|
|
||||||
ber_dbtgt = cellfun(@(x) x.dbtgt_package{1,1}.ber, a);
|
|
||||||
|
|
||||||
if precomp
|
|
||||||
legndname1 = ['Pre-Emphasis'];
|
|
||||||
else
|
|
||||||
legndname1 = ['No Pre-Emphasis'];
|
|
||||||
end
|
|
||||||
|
|
||||||
|
|
||||||
baudrate = floor( uloops.bitrate.*1e-9 ./log2(m) ) .* 2.5 .* 1e9;
|
|
||||||
|
|
||||||
subplot(1,3,1)
|
|
||||||
hold on
|
|
||||||
title(sprintf('%d km | %d nm | PAM %d',uloops.link_length,wavelength,m));
|
|
||||||
title(sprintf('PAM %d',m));
|
|
||||||
plot(baudrate.*1e-9,ber_vnle,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 0'],'Color',cols(1+precomp,:),'LineStyle','-','HandleVisibility','on');
|
|
||||||
plot(baudrate.*1e-9,ber_vnle_pc,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 1'],'Color',cols(1+precomp,:),'LineStyle','-.','HandleVisibility','on');
|
|
||||||
xticks(baudrate.*1e-9);
|
|
||||||
set(gca, 'YScale', 'log');
|
|
||||||
ylim([5e-5 0.4]);
|
|
||||||
xlim([min(baudrate(2).*1e-9), max(baudrate.*1e-9) ]);
|
|
||||||
yline([3.8e-3, 2e-2],'HandleVisibility','off');
|
|
||||||
legend
|
|
||||||
beautifyBERplot()
|
|
||||||
xlabel('Bit Rate in Gbps');
|
|
||||||
ylabel('BER');
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
subplot(1,3,2)
|
|
||||||
hold on
|
|
||||||
% title(sprintf('%d km | %d nm | PAM %d',uloops.link_length,wavelength,m));
|
|
||||||
title(sprintf('PAM %d',m));
|
|
||||||
plot(baudrate.*1e-9,ber_dbtgt,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 0'],'Color',cols(5+precomp,:),'LineStyle','-','HandleVisibility','on');
|
|
||||||
plot(baudrate.*1e-9,ber_dbtgt_pc,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 1'],'Color',cols(5+precomp,:),'LineStyle','-.','HandleVisibility','on');
|
|
||||||
xticks(baudrate.*1e-9);
|
|
||||||
set(gca, 'YScale', 'log');
|
|
||||||
ylim([5e-5 0.4]);
|
|
||||||
xlim([min(baudrate(2).*1e-9), max(baudrate.*1e-9) ]);
|
|
||||||
yline([3.8e-3, 2e-2],'HandleVisibility','off');
|
|
||||||
legend
|
|
||||||
beautifyBERplot()
|
|
||||||
xlabel('Bit Rate in Gbps');
|
|
||||||
ylabel('BER');
|
|
||||||
|
|
||||||
|
|
||||||
subplot(1,3,3)
|
|
||||||
hold on
|
|
||||||
% title(sprintf('%d km | %d nm | PAM %d',uloops.link_length,wavelength,m));
|
|
||||||
title(sprintf('PAM %d',m));
|
|
||||||
plot(baudrate.*1e-9,ber_mlse,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 0'],'Color',cols(3+precomp,:),'LineStyle','-','HandleVisibility','on');
|
|
||||||
plot(baudrate.*1e-9,ber_mlse_pc,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 1'],'Color',cols(3+precomp,:),'LineStyle','-.','HandleVisibility','on');
|
|
||||||
xticks(baudrate.*1e-9);
|
|
||||||
set(gca, 'YScale', 'log');
|
|
||||||
ylim([5e-5 0.4]);
|
|
||||||
xlim([min(baudrate(2).*1e-9), max(baudrate.*1e-9) ]);
|
|
||||||
yline([3.8e-3, 2e-2],'HandleVisibility','off');
|
|
||||||
legend
|
|
||||||
beautifyBERplot()
|
|
||||||
xlabel('Bit Rate in Gbps');
|
|
||||||
ylabel('BER');
|
|
||||||
end
|
|
||||||
end
|
end
|
||||||
%
|
|
||||||
%
|
set(gca, 'YScale', 'log');
|
||||||
|
ylim([5e-5 0.4]);
|
||||||
|
yline([3.8e-3, 2e-2],'HandleVisibility','off');
|
||||||
|
legend
|
||||||
|
beautifyBERplot()
|
||||||
|
ylabel('BER');
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
%
|
||||||
|
% wh_ana = wh_master;
|
||||||
|
%
|
||||||
|
% cols = cbrewer2('Paired',8);
|
||||||
|
%
|
||||||
|
% figure()
|
||||||
|
%
|
||||||
|
% for precomp = [0,1]
|
||||||
|
% wavelength=uloops.laser_wavelength;
|
||||||
|
% for m = [6]
|
||||||
|
%
|
||||||
|
% baudrate = wh_ana.parameter.bitrate.values;
|
||||||
|
%
|
||||||
|
%
|
||||||
|
% %VNLE
|
||||||
|
% precode = 1;
|
||||||
|
% a = wh_ana.getStoValue('ber',precomp, precode, baudrate , wavelength, m, uloops.link_length);
|
||||||
|
% ber_vnle_pc = cellfun(@(x) x.vnle_pf_package{1,1}.ber_vnle, a);
|
||||||
|
% %MLSE
|
||||||
|
% ber_mlse_pc = cellfun(@(x) x.vnle_pf_package{1,1}.ber_mlse, a);
|
||||||
|
% %DB
|
||||||
|
% ber_dbtgt_pc = cellfun(@(x) x.dbtgt_package{1,1}.ber, a);
|
||||||
|
%
|
||||||
|
% precode = 0;
|
||||||
|
% a = wh_ana.getStoValue('ber',precomp, precode, baudrate , wavelength, m, uloops.link_length);
|
||||||
|
% ber_vnle = cellfun(@(x) x.vnle_pf_package{1,1}.ber_vnle, a);
|
||||||
|
% %MLSE
|
||||||
|
% ber_mlse = cellfun(@(x) x.vnle_pf_package{1,1}.ber_mlse, a);
|
||||||
|
% %DB
|
||||||
|
% ber_dbtgt = cellfun(@(x) x.dbtgt_package{1,1}.ber, a);
|
||||||
|
%
|
||||||
|
% if precomp
|
||||||
|
% legndname1 = ['Pre-Emphasis'];
|
||||||
|
% else
|
||||||
|
% legndname1 = ['No Pre-Emphasis'];
|
||||||
|
% end
|
||||||
|
%
|
||||||
|
%
|
||||||
|
% baudrate = floor( uloops.bitrate.*1e-9 ./log2(m) ) .* 2.5 .* 1e9;
|
||||||
|
%
|
||||||
|
% subplot(1,3,1)
|
||||||
|
% hold on
|
||||||
|
% title(sprintf('%d km | %d nm | PAM %d',uloops.link_length,wavelength,m));
|
||||||
|
% title(sprintf('PAM %d',m));
|
||||||
|
% plot(baudrate.*1e-9,ber_vnle,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 0'],'Color',cols(1+precomp,:),'LineStyle','-','HandleVisibility','on');
|
||||||
|
% plot(baudrate.*1e-9,ber_vnle_pc,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 1'],'Color',cols(1+precomp,:),'LineStyle','-.','HandleVisibility','on');
|
||||||
|
% xticks(baudrate.*1e-9);
|
||||||
|
% set(gca, 'YScale', 'log');
|
||||||
|
% ylim([5e-5 0.4]);
|
||||||
|
% xlim([min(baudrate(2).*1e-9), max(baudrate.*1e-9) ]);
|
||||||
|
% yline([3.8e-3, 2e-2],'HandleVisibility','off');
|
||||||
|
% legend
|
||||||
|
% beautifyBERplot()
|
||||||
|
% xlabel('Bit Rate in Gbps');
|
||||||
|
% ylabel('BER');
|
||||||
|
%
|
||||||
|
%
|
||||||
|
%
|
||||||
|
% subplot(1,3,2)
|
||||||
|
% hold on
|
||||||
|
% % title(sprintf('%d km | %d nm | PAM %d',uloops.link_length,wavelength,m));
|
||||||
|
% title(sprintf('PAM %d',m));
|
||||||
|
% plot(baudrate.*1e-9,ber_dbtgt,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 0'],'Color',cols(5+precomp,:),'LineStyle','-','HandleVisibility','on');
|
||||||
|
% plot(baudrate.*1e-9,ber_dbtgt_pc,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 1'],'Color',cols(5+precomp,:),'LineStyle','-.','HandleVisibility','on');
|
||||||
|
% xticks(baudrate.*1e-9);
|
||||||
|
% set(gca, 'YScale', 'log');
|
||||||
|
% ylim([5e-5 0.4]);
|
||||||
|
% xlim([min(baudrate(2).*1e-9), max(baudrate.*1e-9) ]);
|
||||||
|
% yline([3.8e-3, 2e-2],'HandleVisibility','off');
|
||||||
|
% legend
|
||||||
|
% beautifyBERplot()
|
||||||
|
% xlabel('Bit Rate in Gbps');
|
||||||
|
% ylabel('BER');
|
||||||
|
%
|
||||||
|
%
|
||||||
|
% subplot(1,3,3)
|
||||||
|
% hold on
|
||||||
|
% % title(sprintf('%d km | %d nm | PAM %d',uloops.link_length,wavelength,m));
|
||||||
|
% title(sprintf('PAM %d',m));
|
||||||
|
% plot(baudrate.*1e-9,ber_mlse,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 0'],'Color',cols(3+precomp,:),'LineStyle','-','HandleVisibility','on');
|
||||||
|
% plot(baudrate.*1e-9,ber_mlse_pc,'DisplayName',['Pre-Emphasis: ', num2str(precomp), '| Diff.-Code: 1'],'Color',cols(3+precomp,:),'LineStyle','-.','HandleVisibility','on');
|
||||||
|
% xticks(baudrate.*1e-9);
|
||||||
|
% set(gca, 'YScale', 'log');
|
||||||
|
% ylim([5e-5 0.4]);
|
||||||
|
% xlim([min(baudrate(2).*1e-9), max(baudrate.*1e-9) ]);
|
||||||
|
% yline([3.8e-3, 2e-2],'HandleVisibility','off');
|
||||||
|
% legend
|
||||||
|
% beautifyBERplot()
|
||||||
|
% xlabel('Bit Rate in Gbps');
|
||||||
|
% ylabel('BER');
|
||||||
|
% end
|
||||||
|
% end
|
||||||
|
% %
|
||||||
|
% %
|
||||||
% cols = linspecer(7);%cbrewer2('Set2',10);
|
% cols = linspecer(7);%cbrewer2('Set2',10);
|
||||||
%
|
%
|
||||||
%
|
%
|
||||||
@@ -163,163 +182,163 @@ end
|
|||||||
% end
|
% end
|
||||||
|
|
||||||
|
|
||||||
|
%
|
||||||
m = 6;
|
% m = 6;
|
||||||
ir = [2,2.5,3];
|
% ir = [2,2.5,3];
|
||||||
cols = linspecer(6);
|
% cols = linspecer(6);
|
||||||
baudrate_gather = [];
|
% baudrate_gather = [];
|
||||||
for i = 1:3
|
% for i = 1:3
|
||||||
m = uloops.M(i);
|
% m = uloops.M(i);
|
||||||
|
%
|
||||||
%%% GET VNLE VALS
|
% %%% GET VNLE VALS
|
||||||
precode = 0;
|
% precode = 0;
|
||||||
precomp = 1;
|
% precomp = 1;
|
||||||
a = wh_master.getStoValue('ber',precomp, precode, uloops.bitrate , uloops.laser_wavelength, m, uloops.link_length);
|
% a = wh_master.getStoValue('ber',precomp, precode, uloops.bitrate , uloops.laser_wavelength, m, uloops.link_length);
|
||||||
ber_vnle(i,:) = cellfun(@(x) x.vnle_pf_package{1,1}.ber_vnle, a);
|
% ber_vnle(i,:) = cellfun(@(x) x.vnle_pf_package{1,1}.ber_vnle, a);
|
||||||
|
%
|
||||||
%%% GET DB VALS
|
% %%% GET DB VALS
|
||||||
precode = 1;
|
% precode = 1;
|
||||||
precomp = 0;
|
% precomp = 0;
|
||||||
a = wh_master.getStoValue('ber',precomp, precode, uloops.bitrate , uloops.laser_wavelength, m, uloops.link_length);
|
% a = wh_master.getStoValue('ber',precomp, precode, uloops.bitrate , uloops.laser_wavelength, m, uloops.link_length);
|
||||||
ber_db(i,:) = cellfun(@(x) x.dbtgt_package{1,1}.ber, a);
|
% ber_db(i,:) = cellfun(@(x) x.dbtgt_package{1,1}.ber, a);
|
||||||
|
%
|
||||||
%%% GET MLSE VALS
|
% %%% GET MLSE VALS
|
||||||
precode = 0;
|
% precode = 0;
|
||||||
precomp = 0;
|
% precomp = 0;
|
||||||
a = wh_master.getStoValue('ber',precomp, precode, uloops.bitrate , uloops.laser_wavelength, m, uloops.link_length);
|
% a = wh_master.getStoValue('ber',precomp, precode, uloops.bitrate , uloops.laser_wavelength, m, uloops.link_length);
|
||||||
ber_mlse(i,:) = cellfun(@(x) x.vnle_pf_package{1,1}.ber_mlse, a);
|
% ber_mlse(i,:) = cellfun(@(x) x.vnle_pf_package{1,1}.ber_mlse, a);
|
||||||
|
%
|
||||||
inf_rate_pam(i,:) = cellfun(@(x) x.vnle_pf_package{1,1}.air, a);
|
% inf_rate_pam(i,:) = cellfun(@(x) x.vnle_pf_package{1,1}.air, a);
|
||||||
inf_rate_pam(i,:) = inf_rate_pam(i,:)./log2(m);
|
% inf_rate_pam(i,:) = inf_rate_pam(i,:)./log2(m);
|
||||||
|
%
|
||||||
bitrate = floor( uloops.bitrate.*1e-9 ./log2(m) ) .* ir(i) .* 1e9;
|
% bitrate = floor( uloops.bitrate.*1e-9 ./log2(m) ) .* ir(i) .* 1e9;
|
||||||
baudrate = floor( uloops.bitrate.*1e-9 ./log2(m) ) .* 1e9;
|
% baudrate = floor( uloops.bitrate.*1e-9 ./log2(m) ) .* 1e9;
|
||||||
baudrate_gather = union(baudrate_gather,baudrate);
|
% baudrate_gather = union(baudrate_gather,baudrate);
|
||||||
baudrate_ticks = 100:20:240;
|
% baudrate_ticks = 100:20:240;
|
||||||
bitrate_ticks = 300:30:480;
|
% bitrate_ticks = 300:30:480;
|
||||||
|
%
|
||||||
tp = TransmissionPerformance;
|
% tp = TransmissionPerformance;
|
||||||
netRatesVNLE = tp.calculateNetRate(bitrate, 'NGMI', inf_rate_pam(i,:), 'BER', ber_vnle(i,:));
|
% netRatesVNLE = tp.calculateNetRate(bitrate, 'NGMI', inf_rate_pam(i,:), 'BER', ber_vnle(i,:));
|
||||||
|
%
|
||||||
%%% NGMI
|
% %%% NGMI
|
||||||
figure(12)
|
% figure(12)
|
||||||
hold on
|
% hold on
|
||||||
title(sprintf('Performance at 1310 nm'));
|
% title(sprintf('Performance at 1310 nm'));
|
||||||
plot(baudrate.*1e-9,inf_rate_pam(i,:),'DisplayName',sprintf('NGMI; PAM %d',m),'Color',cols(i,:),'LineStyle','-');
|
% plot(baudrate.*1e-9,inf_rate_pam(i,:),'DisplayName',sprintf('NGMI; PAM %d',m),'Color',cols(i,:),'LineStyle','-');
|
||||||
xlabel('Baud rate in GBd');
|
% xlabel('Baud rate in GBd');
|
||||||
ylabel('NGMI')
|
% ylabel('NGMI')
|
||||||
beautifyBERplot()
|
% beautifyBERplot()
|
||||||
xticks(baudrate_ticks);
|
% xticks(baudrate_ticks);
|
||||||
xlim([min(baudrate_ticks) max(baudrate_ticks)]);
|
% xlim([min(baudrate_ticks) max(baudrate_ticks)]);
|
||||||
|
%
|
||||||
|
%
|
||||||
%%% AIR
|
% %%% AIR
|
||||||
figure(14)
|
% figure(14)
|
||||||
hold on
|
% hold on
|
||||||
title(sprintf('Performance at 1310 nm'));
|
% title(sprintf('Performance at 1310 nm'));
|
||||||
plot(baudrate.*1e-9,inf_rate_pam(i,:).*bitrate.*1e-9,'DisplayName',sprintf('AIR; PAM %d',m),'Color',cols(i,:),'LineStyle','-');
|
% plot(baudrate.*1e-9,inf_rate_pam(i,:).*bitrate.*1e-9,'DisplayName',sprintf('AIR; PAM %d',m),'Color',cols(i,:),'LineStyle','-');
|
||||||
xlabel('Baud rate in GBd');
|
% xlabel('Baud rate in GBd');
|
||||||
ylabel('AIR');
|
% ylabel('AIR');
|
||||||
beautifyBERplot()
|
% beautifyBERplot()
|
||||||
xticks(baudrate_ticks);
|
% xticks(baudrate_ticks);
|
||||||
xlim([min(baudrate_ticks) max(baudrate_ticks)]);
|
% xlim([min(baudrate_ticks) max(baudrate_ticks)]);
|
||||||
|
%
|
||||||
%%% RATES
|
% %%% RATES
|
||||||
figure(16)
|
% figure(16)
|
||||||
hold on
|
% hold on
|
||||||
title(sprintf('Performance at 1310 nm'));
|
% title(sprintf('Performance at 1310 nm'));
|
||||||
if i == 1
|
% if i == 1
|
||||||
hv = 'on';
|
% hv = 'on';
|
||||||
else
|
% else
|
||||||
hv = 'off';
|
% hv = 'off';
|
||||||
end
|
% end
|
||||||
plot(baudrate*1e-9,netRatesVNLE.SDHD.NetRate.*1e-9,'DisplayName',sprintf('SD+HD FEC',m),'Color',cols(i,:),'LineStyle','-','HandleVisibility',hv,'Marker','o');
|
% plot(baudrate*1e-9,netRatesVNLE.SDHD.NetRate.*1e-9,'DisplayName',sprintf('SD+HD FEC',m),'Color',cols(i,:),'LineStyle','-','HandleVisibility',hv,'Marker','o');
|
||||||
plot(baudrate.*1e-9,netRatesVNLE.HD.NetRate.*1e-9,'DisplayName',sprintf('HD FEC',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility',hv,'Marker','diamond');
|
% plot(baudrate.*1e-9,netRatesVNLE.HD.NetRate.*1e-9,'DisplayName',sprintf('HD FEC',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility',hv,'Marker','diamond');
|
||||||
plot(baudrate.*1e-9,netRatesVNLE.KP4_hamming.NetRate*1e-9,'DisplayName',sprintf('KP4+Hamming',m),'Color',cols(i,:),'LineStyle','-.','HandleVisibility',hv,'Marker','square');
|
% plot(baudrate.*1e-9,netRatesVNLE.KP4_hamming.NetRate*1e-9,'DisplayName',sprintf('KP4+Hamming',m),'Color',cols(i,:),'LineStyle','-.','HandleVisibility',hv,'Marker','square');
|
||||||
xticks(baudrate_ticks);
|
% xticks(baudrate_ticks);
|
||||||
xlim([min(baudrate_ticks) max(baudrate_ticks)]);
|
% xlim([min(baudrate_ticks) max(baudrate_ticks)]);
|
||||||
xlabel('Baud rate in GBd');
|
% xlabel('Baud rate in GBd');
|
||||||
ylabel('Net Bitrate in Gbps')
|
% ylabel('Net Bitrate in Gbps')
|
||||||
beautifyBERplot()
|
% beautifyBERplot()
|
||||||
ylim([250 410])
|
% ylim([250 410])
|
||||||
|
%
|
||||||
%%% CODE OVERHEAD IN %
|
% %%% CODE OVERHEAD IN %
|
||||||
figure(18)
|
% figure(18)
|
||||||
hold on
|
% hold on
|
||||||
title(sprintf('Performance at 1310 nm'));
|
% title(sprintf('Performance at 1310 nm'));
|
||||||
plot(baudrate*1e-9,100.*(1-netRatesVNLE.SDHD.CodeRate)./netRatesVNLE.SDHD.CodeRate,'DisplayName',sprintf('SD+HD FEC',m),'Color',cols(i,:),'LineStyle','-','HandleVisibility',hv,'Marker','o');
|
% plot(baudrate*1e-9,100.*(1-netRatesVNLE.SDHD.CodeRate)./netRatesVNLE.SDHD.CodeRate,'DisplayName',sprintf('SD+HD FEC',m),'Color',cols(i,:),'LineStyle','-','HandleVisibility',hv,'Marker','o');
|
||||||
plot(baudrate.*1e-9,100.*(1-netRatesVNLE.HD.CodeRate)./netRatesVNLE.HD.CodeRate,'DisplayName',sprintf('HD FEC',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility',hv,'Marker','diamond');
|
% plot(baudrate.*1e-9,100.*(1-netRatesVNLE.HD.CodeRate)./netRatesVNLE.HD.CodeRate,'DisplayName',sprintf('HD FEC',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility',hv,'Marker','diamond');
|
||||||
plot(baudrate.*1e-9,100.*(1-netRatesVNLE.KP4_hamming.CodeRate)./netRatesVNLE.KP4_hamming.CodeRate,'DisplayName',sprintf('KP4+Hamming',m),'Color',cols(i,:),'LineStyle','-.','HandleVisibility',hv,'Marker','square');
|
% plot(baudrate.*1e-9,100.*(1-netRatesVNLE.KP4_hamming.CodeRate)./netRatesVNLE.KP4_hamming.CodeRate,'DisplayName',sprintf('KP4+Hamming',m),'Color',cols(i,:),'LineStyle','-.','HandleVisibility',hv,'Marker','square');
|
||||||
xticks(baudrate_ticks);
|
% xticks(baudrate_ticks);
|
||||||
xlim([min(baudrate_ticks) max(baudrate_ticks)]);
|
% xlim([min(baudrate_ticks) max(baudrate_ticks)]);
|
||||||
xlabel('Baud rate in GBd');
|
% xlabel('Baud rate in GBd');
|
||||||
ylabel('FEC Overhead in %')
|
% ylabel('FEC Overhead in %')
|
||||||
beautifyBERplot()
|
% beautifyBERplot()
|
||||||
|
%
|
||||||
%%% CLASSIC BER
|
% %%% CLASSIC BER
|
||||||
figure(22)
|
% figure(22)
|
||||||
subplot(1,4,i)
|
% subplot(1,4,i)
|
||||||
hold on
|
% hold on
|
||||||
plot(baudrate*1e-9,ber_vnle(i,:),'DisplayName',sprintf('Tx precomp + VNLE',m),'Color',cols(i,:),'LineStyle','-','HandleVisibility','on','Marker','o');
|
% plot(baudrate*1e-9,ber_vnle(i,:),'DisplayName',sprintf('Tx precomp + VNLE',m),'Color',cols(i,:),'LineStyle','-','HandleVisibility','on','Marker','o');
|
||||||
plot(baudrate*1e-9,ber_mlse(i,:),'DisplayName',sprintf('VNLE + PF + MLSE',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility','on','Marker','square');
|
% plot(baudrate*1e-9,ber_mlse(i,:),'DisplayName',sprintf('VNLE + PF + MLSE',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility','on','Marker','square');
|
||||||
plot(baudrate*1e-9,ber_db(i,:),'DisplayName',sprintf('Diff. Code + DB tgt.',m),'Color',cols(i,:),'LineStyle','--','HandleVisibility','on','Marker','diamond');
|
% plot(baudrate*1e-9,ber_db(i,:),'DisplayName',sprintf('Diff. Code + DB tgt.',m),'Color',cols(i,:),'LineStyle','--','HandleVisibility','on','Marker','diamond');
|
||||||
yline(4.85e-3,'HandleVisibility','off');
|
% yline(4.85e-3,'HandleVisibility','off');
|
||||||
yline(2e-2,'HandleVisibility','off');
|
% yline(2e-2,'HandleVisibility','off');
|
||||||
xticks(baudrate*1e-9);
|
% xticks(baudrate*1e-9);
|
||||||
xlim([min(baudrate*1e-9) max(baudrate*1e-9)]);
|
% xlim([min(baudrate*1e-9) max(baudrate*1e-9)]);
|
||||||
ylim([1e-4 0.3]);
|
% ylim([1e-4 0.3]);
|
||||||
xlabel('Baudrate in GBd');
|
% xlabel('Baudrate in GBd');
|
||||||
if i == 1
|
% if i == 1
|
||||||
ylabel('BER')
|
% ylabel('BER')
|
||||||
end
|
% end
|
||||||
beautifyBERplot()
|
% beautifyBERplot()
|
||||||
set(gca, 'YScale', 'log');
|
% set(gca, 'YScale', 'log');
|
||||||
legend
|
% legend
|
||||||
subplot(1,4,4)
|
% subplot(1,4,4)
|
||||||
hold on
|
% hold on
|
||||||
if m == 4
|
% if m == 4
|
||||||
|
%
|
||||||
plot(bitrate*1e-9,ber_db(i,:),'DisplayName',sprintf('Diff. Code + DB tgt.'),'Color',cols(i,:),'LineStyle','--','HandleVisibility','on','Marker','diamond');
|
% plot(bitrate*1e-9,ber_db(i,:),'DisplayName',sprintf('Diff. Code + DB tgt.'),'Color',cols(i,:),'LineStyle','--','HandleVisibility','on','Marker','diamond');
|
||||||
|
%
|
||||||
elseif m == 6
|
% elseif m == 6
|
||||||
|
%
|
||||||
plot(bitrate*1e-9,ber_vnle(i,:),'DisplayName',sprintf('VNLE + PF + MLSE'),'Color',cols(i,:),'LineStyle','-','HandleVisibility','on','Marker','o');
|
% plot(bitrate*1e-9,ber_vnle(i,:),'DisplayName',sprintf('VNLE + PF + MLSE'),'Color',cols(i,:),'LineStyle','-','HandleVisibility','on','Marker','o');
|
||||||
% plot(bitrate*1e-9,ber_mlse(i,:),'DisplayName',sprintf('MLSE',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility',hv,'Marker','square');
|
% % plot(bitrate*1e-9,ber_mlse(i,:),'DisplayName',sprintf('MLSE',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility',hv,'Marker','square');
|
||||||
|
%
|
||||||
elseif m ==8
|
% elseif m ==8
|
||||||
|
%
|
||||||
plot(bitrate*1e-9,ber_vnle(i,:),'DisplayName',sprintf('Tx precomp + VNLE'),'Color',cols(i,:),'LineStyle','-','HandleVisibility','on','Marker','o');
|
% plot(bitrate*1e-9,ber_vnle(i,:),'DisplayName',sprintf('Tx precomp + VNLE'),'Color',cols(i,:),'LineStyle','-','HandleVisibility','on','Marker','o');
|
||||||
% plot(bitrate*1e-9,ber_mlse(i,:),'DisplayName',sprintf('MLSE',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility',hv,'Marker','square');
|
% % plot(bitrate*1e-9,ber_mlse(i,:),'DisplayName',sprintf('MLSE',m),'Color',cols(i,:),'LineStyle',':','HandleVisibility',hv,'Marker','square');
|
||||||
|
%
|
||||||
end
|
% end
|
||||||
yline(4.85e-3,'HandleVisibility','off');
|
% yline(4.85e-3,'HandleVisibility','off');
|
||||||
yline(2e-2,'HandleVisibility','off');
|
% yline(2e-2,'HandleVisibility','off');
|
||||||
xticks(bitrate_ticks);
|
% xticks(bitrate_ticks);
|
||||||
xlim([min(bitrate_ticks) max(bitrate_ticks)]);
|
% xlim([min(bitrate_ticks) max(bitrate_ticks)]);
|
||||||
ylim([1e-4 0.3]);
|
% ylim([1e-4 0.3]);
|
||||||
xlabel('Gross Bitrate in Gbps');
|
% xlabel('Gross Bitrate in Gbps');
|
||||||
% ylabel('BER')
|
% % ylabel('BER')
|
||||||
beautifyBERplot()
|
% beautifyBERplot()
|
||||||
set(gca, 'YScale', 'log');
|
% set(gca, 'YScale', 'log');
|
||||||
|
%
|
||||||
|
%
|
||||||
end
|
% end
|
||||||
|
%
|
||||||
|
%
|
||||||
|
%
|
||||||
figure()
|
% figure()
|
||||||
title(sprintf('%d km | 1310 nm | PAM %d | VNLE',uloops.link_length,uloops.M));
|
% title(sprintf('%d km | 1310 nm | PAM %d | VNLE',uloops.link_length,uloops.M));
|
||||||
hold on
|
% hold on
|
||||||
line([min(uloops.bitrate.*1e-9) max(uloops.bitrate.*1e-9)],[min(uloops.bitrate.*1e-9) max(uloops.bitrate.*1e-9)],'Color',[.7,.7,.7],'Marker','none','Handlevisibility','off');
|
% line([min(uloops.bitrate.*1e-9) max(uloops.bitrate.*1e-9)],[min(uloops.bitrate.*1e-9) max(uloops.bitrate.*1e-9)],'Color',[.7,.7,.7],'Marker','none','Handlevisibility','off');
|
||||||
plot(uloops.bitrate.*1e-9,cellfun(@min, inf_rate_vnle).*uloops.bitrate./log2(uloops.M).*1e-9,'DisplayName',sprintf('AIR'),'Color',cols(1,:),'LineStyle',':');
|
% plot(uloops.bitrate.*1e-9,cellfun(@min, inf_rate_vnle).*uloops.bitrate./log2(uloops.M).*1e-9,'DisplayName',sprintf('AIR'),'Color',cols(1,:),'LineStyle',':');
|
||||||
plot(uloops.bitrate.*1e-9,netRatesVNLE.SDHD.NetRate.*1e-9,'DisplayName',sprintf('SD+HD'),'Color',cols(2,:),'LineStyle',':');
|
% plot(uloops.bitrate.*1e-9,netRatesVNLE.SDHD.NetRate.*1e-9,'DisplayName',sprintf('SD+HD'),'Color',cols(2,:),'LineStyle',':');
|
||||||
plot(uloops.bitrate.*1e-9,netRatesVNLE.HD.NetRate.*1e-9,'DisplayName',sprintf('HD'),'Color',cols(3,:),'LineStyle',':');
|
% plot(uloops.bitrate.*1e-9,netRatesVNLE.HD.NetRate.*1e-9,'DisplayName',sprintf('HD'),'Color',cols(3,:),'LineStyle',':');
|
||||||
plot(uloops.bitrate.*1e-9,netRatesVNLE.KP4_hamming.NetRate.*1e-9,'DisplayName',sprintf('KP4+Hamming'),'Color',cols(4,:),'LineStyle',':');
|
% plot(uloops.bitrate.*1e-9,netRatesVNLE.KP4_hamming.NetRate.*1e-9,'DisplayName',sprintf('KP4+Hamming'),'Color',cols(4,:),'LineStyle',':');
|
||||||
beautifyBERplot()
|
% beautifyBERplot()
|
||||||
xlim([min(uloops.bitrate.*1e-9) max(uloops.bitrate.*1e-9)])
|
% xlim([min(uloops.bitrate.*1e-9) max(uloops.bitrate.*1e-9)])
|
||||||
xlabel('Gross Bitrate in Gbps');
|
% xlabel('Gross Bitrate in Gbps');
|
||||||
ylabel('Net Bitrate in Gbps');
|
% ylabel('Net Bitrate in Gbps');
|
||||||
legend
|
% legend
|
||||||
|
|
||||||
|
|
||||||
% plot(uloops.bitrate.*1e-9,ber_vnle,'DisplayName',sprintf('NGMI MLSE; %d km',len),'Color',cols(1,:),'LineStyle','-');
|
% plot(uloops.bitrate.*1e-9,ber_vnle,'DisplayName',sprintf('NGMI MLSE; %d km',len),'Color',cols(1,:),'LineStyle','-');
|
||||||
|
|||||||
@@ -19,19 +19,13 @@ fdac = 256e9;
|
|||||||
fadc = 256e9;
|
fadc = 256e9;
|
||||||
random_key = 1;
|
random_key = 1;
|
||||||
|
|
||||||
interference_attenuation = 0;
|
|
||||||
is_mpi = 1;
|
|
||||||
|
|
||||||
precomp = 0;
|
|
||||||
db_precode = 0;
|
|
||||||
|
|
||||||
db_encode = 0;
|
|
||||||
|
|
||||||
rcalpha = 0.05;
|
rcalpha = 0.05;
|
||||||
kover = 16;
|
kover = 16;
|
||||||
|
|
||||||
vbias_rel = 0.5;
|
vbias_rel = 0.5;
|
||||||
u_pi = 2.9;
|
u_pi = 3;
|
||||||
vbias = -vbias_rel*u_pi;
|
vbias = -vbias_rel*u_pi;
|
||||||
|
|
||||||
laser_wavelength = 1293;
|
laser_wavelength = 1293;
|
||||||
laser_linewidth = 0;
|
laser_linewidth = 0;
|
||||||
tx_bw_nyquist = 0.8;
|
tx_bw_nyquist = 0.8;
|
||||||
@@ -40,7 +34,7 @@ tx_bw_nyquist = 0.8;
|
|||||||
link_length = 1;
|
link_length = 1;
|
||||||
|
|
||||||
% RX
|
% RX
|
||||||
rop = -5;
|
rop = -8;
|
||||||
rx_bw_nyquist = 0.8;
|
rx_bw_nyquist = 0.8;
|
||||||
|
|
||||||
vnle_order1 = 50;
|
vnle_order1 = 50;
|
||||||
@@ -68,7 +62,7 @@ mu_dfe = 0.0004;
|
|||||||
|
|
||||||
dfe_ = sum(dfe_order)>0;
|
dfe_ = sum(dfe_order)>0;
|
||||||
|
|
||||||
doub_mode = db_mode.no_db;
|
duob_mode = db_mode.no_db;
|
||||||
|
|
||||||
%%% change specific parameter if given in varargin
|
%%% change specific parameter if given in varargin
|
||||||
% Parse optional input arguments
|
% Parse optional input arguments
|
||||||
@@ -90,43 +84,6 @@ if ~isempty(varargin)
|
|||||||
end
|
end
|
||||||
end
|
end
|
||||||
|
|
||||||
if doub_mode ~= db_mode.db_encoded
|
|
||||||
if precomp == 0 && db_precode == 1
|
|
||||||
doub_mode = db_mode.db_precoded;
|
|
||||||
|
|
||||||
db_precode = 1; % preceded data (in my measurement set, this corresponds to low precomp too!)
|
|
||||||
discard_precode = 0; %
|
|
||||||
emulate_precode = 0;
|
|
||||||
legendentry = 'low precomp; precoded';
|
|
||||||
disp('low precomp; precoded')
|
|
||||||
elseif precomp == 1 && db_precode == 1
|
|
||||||
doub_mode = db_mode.db_emulate;
|
|
||||||
|
|
||||||
db_precode = 0; % preceded data (in my measurement set, this corresponds to low precomp too!)
|
|
||||||
discard_precode = 0; %
|
|
||||||
emulate_precode = 1;
|
|
||||||
legendentry = 'high precomp; precoded';
|
|
||||||
disp('high precomp; precoded')
|
|
||||||
elseif precomp == 0 && db_precode == 0
|
|
||||||
doub_mode = db_mode.db_discard;
|
|
||||||
|
|
||||||
db_precode = 1; % preceded data (in my measurement set, this corresponds to low precomp too!)
|
|
||||||
discard_precode = 1; %
|
|
||||||
emulate_precode = 0;
|
|
||||||
legendentry = 'no precomp; not precoded';
|
|
||||||
disp('no precomp; not precoded')
|
|
||||||
elseif precomp == 1 && db_precode == 0
|
|
||||||
doub_mode = db_mode.no_db;
|
|
||||||
|
|
||||||
db_precode = 0; % preceded data (in my measurement set, this corresponds to low precomp too!)
|
|
||||||
discard_precode = 0; %
|
|
||||||
emulate_precode = 0;
|
|
||||||
legendentry = 'high precomp; not precoded';
|
|
||||||
disp('high precomp; not precoded')
|
|
||||||
end
|
|
||||||
else
|
|
||||||
|
|
||||||
end
|
|
||||||
|
|
||||||
fsym_ = floor( bitrate*1e-9./log2(M) ).*1e9;
|
fsym_ = floor( bitrate*1e-9./log2(M) ).*1e9;
|
||||||
|
|
||||||
@@ -135,239 +92,141 @@ if fsym_ ~= fsym
|
|||||||
% fprintf('Adapted symbolrate to %d GBd, to match provided bitrate of %d GBit/s using PAM %d \n',fsym.*1e-9,bitrate.*1e-9, M);
|
% fprintf('Adapted symbolrate to %d GBd, to match provided bitrate of %d GBit/s using PAM %d \n',fsym.*1e-9,bitrate.*1e-9, M);
|
||||||
end
|
end
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
f_nyquist = fsym/2;
|
f_nyquist = fsym/2;
|
||||||
|
|
||||||
%%% run the simulation or measurement or ...
|
Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rc","pulselength",16,"alpha",rcalpha);
|
||||||
if simulation_mode
|
|
||||||
|
|
||||||
Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rc","pulselength",16,"alpha",rcalpha);
|
[Digi_sig,Symbols,Tx_bits] = PAMsource(...
|
||||||
rcalpha = 1;
|
"fsym",fsym,"M",M,"order",18,"useprbs",0,...
|
||||||
Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rrc","pulselength",16,"alpha",rcalpha);
|
"fs_out",fdac,...
|
||||||
|
"applyclipping",0,"clipfactor",1.5,...
|
||||||
|
"applypulseform",apply_pulsef,"pulseformer",Pform,...
|
||||||
|
"randkey",random_key,...
|
||||||
|
'duobinary_mode',duob_mode,...
|
||||||
|
"mrds_code",0,"mrds_blocklength",512).process();
|
||||||
|
|
||||||
db_precode = 0;
|
Digi_sig.spectrum("displayname",'Digi Spectrum','fignum',10,'normalizeTo0dB',1);
|
||||||
db_encode = 0;
|
|
||||||
apply_pulsef = 1;
|
|
||||||
[Digi_sig,Symbols,Tx_bits] = PAMsource(...
|
|
||||||
"fsym",fsym,"M",M,"order",18,"useprbs",0,...
|
|
||||||
"fs_out",fdac,...
|
|
||||||
"applyclipping",0,"clipfactor",1.5,...
|
|
||||||
"applypulseform",apply_pulsef,"pulseformer",Pform,...
|
|
||||||
"randkey",random_key,...
|
|
||||||
"db_precode",db_precode,"db_encode",db_encode,...
|
|
||||||
"mrds_code",0,"mrds_blocklength",512).process();
|
|
||||||
|
|
||||||
Digi_sig.spectrum("displayname",'Digi Spectrum','fignum',10,'normalizeTo0dB',1);
|
%%%%% AWG
|
||||||
|
% El_sig = M8199A("kover",kover).process(Digi_sig);
|
||||||
|
El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",0,"kover",kover,"bit_resolution",12,"upsampling_method","samplehold","precomp_sinc_rolloff",1).process(Digi_sig);
|
||||||
|
% El_sig.spectrum("displayname",'Digi Spectrum','fignum',100,'normalizeTo0dB',0);
|
||||||
|
% El_sig = El_sig.setPower(0,"dBm");
|
||||||
|
|
||||||
|
%%%%% Low-pass el. components %%%%%%
|
||||||
|
tx_bwl = tx_bw_nyquist.*f_nyquist;
|
||||||
|
% tx_bwl = 80e9;
|
||||||
|
El_sig = Filter('filtdegree',4,"f_cutoff",tx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(El_sig);
|
||||||
|
% El_sig.spectrum("displayname",'Digi Spectrum','fignum',100,'normalizeTo0dB',1);
|
||||||
|
|
||||||
|
%%%%% Electrical Driver Amplifier %%%%%%
|
||||||
|
% El_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","gain","amplification_db",3).process(El_sig);
|
||||||
|
El_sig = El_sig.normalize("mode","oneone");
|
||||||
|
scaling = 0.6*(u_pi/2-abs(vbias-u_pi/2));
|
||||||
|
El_sig = El_sig .* scaling;
|
||||||
|
|
||||||
%%%%% AWG
|
%%%%% MODULATE E/O CONVERSION %%%%%%
|
||||||
% El_sig = M8199A("kover",kover).process(Digi_sig);
|
[Opt_sig] = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig.fs,"lambda",laser_wavelength,"bias",vbias,"u_pi",u_pi,"linewidth",laser_linewidth,"randomkey",random_key+1,"alpha",alpha).process(El_sig);
|
||||||
El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",0,"kover",kover,"bit_resolution",12,"upsampling_method","samplehold","precomp_sinc_rolloff",1).process(Digi_sig);
|
|
||||||
% El_sig.spectrum("displayname",'Digi Spectrum','fignum',100,'normalizeTo0dB',0);
|
|
||||||
% El_sig = El_sig.setPower(0,"dBm");
|
|
||||||
|
|
||||||
%%%%% Low-pass el. components %%%%%%
|
Opt_sig.spectrum("displayname",'Opt Spectrum','fignum',10,'normalizeTo0dB',1);
|
||||||
tx_bwl = tx_bw_nyquist.*f_nyquist;
|
|
||||||
% tx_bwl = 80e9;
|
|
||||||
El_sig = Filter('filtdegree',4,"f_cutoff",tx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(El_sig);
|
|
||||||
% El_sig.spectrum("displayname",'Digi Spectrum','fignum',100,'normalizeTo0dB',1);
|
|
||||||
|
|
||||||
%%%%% Electrical Driver Amplifier %%%%%%
|
Opt_sig = Fiber("fsimu",Opt_sig.fs,"fiber_length",link_length,"alpha",0.3,"D",0,"lambda0",1310,"gamma",0,"Dslope",0.07).process(Opt_sig);
|
||||||
El_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","gain","amplification_db",3).process(El_sig);
|
|
||||||
El_sig = El_sig.normalize("mode","oneone");
|
|
||||||
|
|
||||||
%%%%% MODULATE E/O CONVERSION %%%%%%
|
%%%%%% ROP %%%%%%
|
||||||
[Opt_sig] = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig.fs,"lambda",laser_wavelength,"bias",vbias,"u_pi",u_pi,"linewidth",laser_linewidth,"randomkey",random_key+1).process(El_sig);
|
Rx_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",rop).process(Opt_sig);
|
||||||
|
|
||||||
Opt_sig = Fiber("fsimu",Opt_sig.fs,"fiber_length",link_length/1000,"alpha",0.3,"D",0,"lambda0",1310,"gamma",0,"Dslope",0.07).process(Opt_sig);
|
%%%%%% PD Square Law %%%%%%
|
||||||
|
Rx_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20,"nep",1.8e-11).process(Rx_sig);
|
||||||
|
|
||||||
%%%%%% ROP %%%%%%
|
%%%%%% Low-pass RX (PD, El. Connectors and Scope %%%%%%
|
||||||
Rx_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",rop).process(Opt_sig);
|
rx_bwl = rx_bw_nyquist.*f_nyquist;
|
||||||
|
% rx_bwl = 80e9;
|
||||||
|
Rx_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(Rx_sig);
|
||||||
|
|
||||||
%%%%%% PD Square Law %%%%%%
|
% %%%%%% Low-pass Scope %%%%%%
|
||||||
Rx_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20,"nep",1.8e-11).process(Rx_sig);
|
Lp_scpe = Filter('filtdegree',4,"f_cutoff",110e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
|
||||||
|
|
||||||
%%%%%% Low-pass RX (PD, El. Connectors and Scope %%%%%%
|
% Rx_sig.spectrum("displayname",'Analog Rx Spectrum','fignum',100,'normalizeTo0dB',1);
|
||||||
rx_bwl = rx_bw_nyquist.*f_nyquist;
|
|
||||||
% rx_bwl = 80e9;
|
|
||||||
Rx_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(Rx_sig);
|
|
||||||
|
|
||||||
% %%%%%% Low-pass Scope %%%%%%
|
%%%%%% Scope %%%%%%
|
||||||
Lp_scpe = Filter('filtdegree',4,"f_cutoff",110e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
|
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
||||||
|
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth,...
|
||||||
% Rx_sig.spectrum("displayname",'Analog Rx Spectrum','fignum',100,'normalizeTo0dB',1);
|
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
||||||
|
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',1,'H_lpf',Lp_scpe).process(Rx_sig);
|
||||||
%%%%%% Scope %%%%%%
|
|
||||||
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
|
||||||
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth,...
|
|
||||||
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
|
||||||
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',1,'H_lpf',Lp_scpe).process(Rx_sig);
|
|
||||||
|
|
||||||
Scpe_cell{1} = Scpe_sig;
|
|
||||||
|
|
||||||
else
|
|
||||||
profile on
|
|
||||||
basePath = 'C:\Users\Silas\Documents\MATLAB\Datensätze\sioe_labor\';
|
|
||||||
database = DBHandler("pathToDB",[basePath,'silas_labor.db']);
|
|
||||||
profile off
|
|
||||||
basePath = 'C:\Users\Silas\Documents\MATLAB\Datensätze\sioe_labor\';
|
|
||||||
useGui = 0;
|
|
||||||
% db = DBHandler("pathToDB",[basePath,'silas_labor.db']);
|
|
||||||
filterParams = database.tables;
|
|
||||||
% filterParams.Runs.run_id = 2958; % no db
|
|
||||||
% filterParams.Runs.run_id = 2937; % no db
|
|
||||||
filterParams.Configurations = struct( ...
|
|
||||||
'bitrate', bitrate, ...
|
|
||||||
'db_mode', db_precode+db_encode, ...
|
|
||||||
'fiber_length', link_length, ...
|
|
||||||
'interference_attenuation', [], ...
|
|
||||||
'interference_path_length', [], ...
|
|
||||||
'is_mpi', is_mpi, ...
|
|
||||||
'pam_level', M, ...
|
|
||||||
'precomp_amp', [], ...
|
|
||||||
'rop_attenuation', 0, ...
|
|
||||||
'symbolrate', [], ...
|
|
||||||
'v_awg', [], ...
|
|
||||||
'v_bias', [], ...
|
|
||||||
'wavelength', laser_wavelength ...
|
|
||||||
);
|
|
||||||
|
|
||||||
selectedFields = {'Runs.run_id','Runs.tx_bits_path', 'Runs.tx_symbols_path', 'Runs.rx_sync_path','Runs.rx_raw_path',...
|
|
||||||
'Configurations.db_mode','Configurations.pam_level','Configurations.bitrate','Configurations.symbolrate','Configurations.fiber_length','Configurations.wavelength','Configurations.precomp_amp','Measurements.power_rop','Configurations.v_bias',...
|
|
||||||
'Configurations.interference_attenuation'};
|
|
||||||
|
|
||||||
[dataTable,sql_query] = database.queryDB(filterParams, selectedFields);
|
|
||||||
[~, uniqueIdx] = unique(dataTable.run_id); % Get unique run_id indices
|
|
||||||
dataTable = dataTable(uniqueIdx,:); % Extract unique configurations for each run_id
|
|
||||||
fprintf('Found %d entries for requested Configuration. IDs are: %s \n \n',size(dataTable,1),jsonencode(dataTable.run_id(1:min(size(dataTable,1),100))));
|
|
||||||
|
|
||||||
Tx_bits = load([basePath, char(dataTable.tx_bits_path(end))]);
|
|
||||||
Tx_bits = Tx_bits.Bits;
|
|
||||||
|
|
||||||
Symbols = load([basePath, char(dataTable.tx_symbols_path(end))]);
|
|
||||||
Symbols = Symbols.Symbols;
|
|
||||||
|
|
||||||
Scpe_load = load([basePath, char(dataTable.rx_sync_path(end))]);
|
|
||||||
Scpe_cell = Scpe_load.S;
|
|
||||||
|
|
||||||
|
|
||||||
% Raw_signal = load([basePath, char(dataTable.rx_raw_path(1))]);
|
|
||||||
% Raw_signal.Scpe_sig_raw.plot("displayname",'0db atten','fignum',10101)
|
|
||||||
% Raw_signal = Raw_signal.Scpe_sig_raw;
|
|
||||||
%
|
|
||||||
% Raw_signal = Filter('filtdegree',4,"f_cutoff",Symbols.fs.*0.55,"fs",Raw_signal.fs,"filterType",filtertypes.gaussian,"active",true).process(Raw_signal);
|
|
||||||
%
|
|
||||||
% Scpe_cell{1}.eye(fsym,M,"displayname",'eye','fignum',227);
|
|
||||||
%
|
|
||||||
% Raw_signal.spectrum("normalizeTo0dB",0,"fignum",11,"fft_length",2^12);
|
|
||||||
% Raw_signal.move_it_spectrum("fignum",334);
|
|
||||||
% Raw_signal.move_it_spectrum("fignum",334);
|
|
||||||
|
|
||||||
fsym = Symbols.fs;
|
|
||||||
|
|
||||||
end
|
|
||||||
|
|
||||||
if db_precode
|
|
||||||
Symbols_precoded = Symbols;
|
|
||||||
end
|
|
||||||
|
|
||||||
output = struct();
|
output = struct();
|
||||||
vnle_pf_package = {};
|
|
||||||
vnle_dfe_package = {};
|
%%%%%% Sample to 2x fsym %%%%%%
|
||||||
dbtgt_package = {};
|
Scpe_sig = Scpe_sig.resample("fs_out",2*fsym);
|
||||||
|
Scpe_sig.signal = Scpe_sig.signal(1:2*length(Symbols));
|
||||||
|
|
||||||
|
%%%%%% Sync Rx signal with reference %%%%%%
|
||||||
|
[Scpe_sig,~] = Scpe_sig.tsynch("reference",Symbols,"fs_ref",fsym,"debug_plots",1);
|
||||||
|
|
||||||
|
Scpe_sig = Filter('filtdegree',4,"f_cutoff",Symbols.fs.*0.5,"fs",Scpe_sig.fs,"filterType",filtertypes.gaussian,"active",true).process(Scpe_sig);
|
||||||
|
|
||||||
|
Scpe_sig = Scpe_sig - mean(Scpe_sig.signal);
|
||||||
|
|
||||||
|
%%% EQUALIZING
|
||||||
|
|
||||||
|
|
||||||
proc_occ = min(1,length(Scpe_cell));
|
% -------------------- FFE --------------------
|
||||||
for occ = 1%:proc_occ
|
ffe_order = [50, 0, 0];
|
||||||
|
eq_ffe = EQ("Ne",ffe_order,"Nb",[0,0,0], ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",0);
|
||||||
|
|
||||||
Scpe_sig = Scpe_cell{occ};
|
output.ffe_results = ffe(eq_ffe,M,Scpe_sig,Symbols,Tx_bits, ...
|
||||||
|
"precode_mode",duob_mode,'showAnalysis',0,"postFFE",[], ...
|
||||||
|
"eth_style_symbol_mapping",0);
|
||||||
|
|
||||||
%%%%%% Sample to 2x fsym %%%%%%
|
output.ffe_results.metrics.print
|
||||||
Scpe_sig = Scpe_sig.resample("fs_out",2*fsym);
|
|
||||||
|
|
||||||
%%%%%% Sync Rx signal with reference %%%%%%
|
% -------------------- DFE --------------------
|
||||||
[Scpe_sig,~] = Scpe_sig.tsynch("reference",Symbols,"fs_ref",fsym);
|
eq_dfe = EQ("Ne",ffe_order,"Nb",[2,0,0], ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",0);
|
||||||
|
|
||||||
Scpe_sig = Filter('filtdegree',4,"f_cutoff",Symbols.fs.*0.5,"fs",Scpe_sig.fs,"filterType",filtertypes.gaussian,"active",true).process(Scpe_sig);
|
output.dfe_results = ffe(eq_dfe,M,Scpe_sig,Symbols,Tx_bits, ...
|
||||||
|
"precode_mode",duob_mode,'showAnalysis',0,"postFFE",[], ...
|
||||||
|
"eth_style_symbol_mapping",0);
|
||||||
|
|
||||||
Scpe_sig = Scpe_sig - mean(Scpe_sig.signal);
|
output.dfe_results.metrics.print("description",'DFE');
|
||||||
%
|
|
||||||
% Pform = Pulseformer("fsym",Scpe_sig.fs,"fdac",2*fsym,"pulse","rrc","pulselength",16,"alpha",rcalpha,"matched",0);
|
|
||||||
%
|
|
||||||
% Scpe_sig_matched = Pform.process(Scpe_sig);
|
|
||||||
%
|
|
||||||
% Scpe_sig.spectrum("normalizeTo0dB",0,"fignum",336,"displayname","scope ");
|
|
||||||
% Scpe_sig_matched.spectrum("normalizeTo0dB",0,"fignum",336,"displayname","matched");
|
|
||||||
|
|
||||||
%%% EQUALIZING
|
|
||||||
|
|
||||||
|
|
||||||
% eq_mlse = FFE_DCremoval("epochs_tr",5,"epochs_dd",5,"len_tr",len_tr,"mu_dd",mu_ffe(1),"mu_tr",0,"order",ffe_order(1),"sps",2,"decide",0,"dc_buffer_len",1,"mu_dc",0.05);
|
|
||||||
% eq_mlse = FFE("epochs_tr",5,"epochs_dd",5,"len_tr",len_tr,"mu_dd",mu_ffe(1),"mu_tr",0,"order",ffe_order(1),"sps",2,"decide",0);
|
|
||||||
% eq_mlse = FFE_DCremoval("epochs_tr",5,"epochs_dd",5,"len_tr",len_tr,"mu_dd",mu_ffe(1),"mu_tr",0,"order",ffe_order(1),"sps",2,"decide",0,"dc_buffer_len",512,"mu_dc",0.05);
|
|
||||||
|
|
||||||
mu_ffe = [mu_ffe1 mu_ffe2 mu_ffe3];
|
|
||||||
vnle_order=[vnle_order1,vnle_order2,vnle_order3];
|
|
||||||
|
|
||||||
% %%%%% VNLE + DFE %%%%
|
|
||||||
if 0
|
|
||||||
|
|
||||||
eq_vnle_dfe = EQ("Ne",vnle_order,"Nb",[0,0,0],"training_length",len_tr,"training_loops",5,"dd_loops",5,"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",0);
|
|
||||||
eq_2 = FFE("epochs_tr",5,"epochs_dd",5,"len_tr",4096*2,"mu_dd",1e-4,"mu_tr",0,"order",2001,"sps",1,"decide",0);
|
|
||||||
|
|
||||||
[result] = vnle(eq_vnle_dfe,M,Scpe_sig,Symbols,Tx_bits,"precode_mode",doub_mode,"showAnalysis",1,"postFFE",[]);
|
|
||||||
vnle_dfe_package{occ} = result;
|
|
||||||
|
|
||||||
end
|
|
||||||
%%%%% VNLE + PF + MLSE %%%%
|
|
||||||
if 1
|
|
||||||
|
|
||||||
% len_tr = length(Symbols)-1000;
|
|
||||||
eq_vnle_ = EQ("Ne",vnle_order,"Nb",dfe_order,"training_length",len_tr,"training_loops",5,"dd_loops",5,"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
|
||||||
% eq_vnle_ = VNLE("epochs_tr",5,"epochs_dd",5,"len_tr",4096*2,"mu_dd",[0.0004 0.0005 0.0006],"mu_tr",0,"order",vnle_order,"sps",2,"decide",0);
|
|
||||||
pf_ = Postfilter("ncoeff",pf_ncoeffs,"useBurg",1);
|
|
||||||
mlse_ = MLSE_viterbi("duobinary_output",0,'M',M,'trellis_states',PAMmapper(M,0).levels);
|
|
||||||
|
|
||||||
[result] = vnle_postfilter_mlse(eq_vnle_,pf_,mlse_,M,Scpe_sig,Symbols,Tx_bits,"precode_mode",doub_mode,'showAnalysis',1);
|
|
||||||
vnle_pf_package{occ} = result;
|
|
||||||
|
|
||||||
end
|
|
||||||
|
|
||||||
|
|
||||||
%%%%% Duobinary Targeting %%%%
|
% -------------------- VNLE + MLSE --------------------
|
||||||
if 1
|
pf_ncoeffs = 1;
|
||||||
|
ffe_order3 = [50, 5, 5];
|
||||||
|
eq_v = EQ("Ne",ffe_order3,"Nb",dfe_order, ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
pf_ = Postfilter("ncoeff",pf_ncoeffs,"useBurg",1);
|
||||||
|
|
||||||
mlse_db = MLSE_viterbi("DIR",[1,1],"duobinary_output",0,"M",M,"trellis_states",PAMmapper(M,0).levels);
|
mlse_ = MLSE("duobinary_output",0,'M',M,'trellis_states',PAMmapper(M,0).levels);
|
||||||
eq_db = EQ("Ne",vnle_order,"Nb",dfe_order,"training_length",len_tr,"training_loops",5,"dd_loops",5,"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
|
||||||
|
|
||||||
[result] = duobinary_target(eq_db, mlse_db, M, Scpe_sig, Symbols, Tx_bits, "precode_mode", doub_mode,'showAnalysis',0);
|
[output.vnle_results, output.mlse_results] = vnle_postfilter_mlse(eq_v, pf_, mlse_, M, Scpe_sig, Symbols, Tx_bits, ...
|
||||||
dbtgt_package{occ} = result;
|
"precode_mode", duob_mode, 'showAnalysis', 0, "postFFE", [], "eth_style_symbol_mapping", 0);
|
||||||
|
|
||||||
|
|
||||||
end
|
|
||||||
|
|
||||||
%%%%%% %db signaling => db encoded %%%%%
|
|
||||||
if 0
|
|
||||||
mlse_db_enc = MLSE_viterbi("DIR",[1,1],"duobinary_output",0,"M",M,"trellis_states",PAMmapper(M,0).levels);
|
|
||||||
eq_db_enc = EQ("Ne",vnle_order,"Nb",dfe_order,"training_length",len_tr,"training_loops",5,"dd_loops",5,"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
|
||||||
[result] = duobinary_signaling(eq_db_enc, mlse_db_enc,M, Scpe_sig ,Symbols, Tx_bits);
|
|
||||||
dbenc_package{occ} = result;
|
|
||||||
end
|
|
||||||
|
|
||||||
|
|
||||||
% autoArrangeFigures;
|
% -------------------- DB target --------------------
|
||||||
disp('- - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - ')
|
mlse_db_ = MLSE("DIR",[1,1],"duobinary_output",0,"M",M,'trellis_states',PAMmapper(M,0).levels);
|
||||||
fprintf('\n')
|
ffe_order = [50, 5, 5];
|
||||||
|
eq_ = EQ("Ne",ffe_order,"Nb",dfe_order,"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
output.dbt_results = duobinary_target(eq_,mlse_db_, M, Scpe_sig, Symbols, Tx_bits, ...
|
||||||
|
"precode_mode", duob_mode, 'showAnalysis', 0, "postFFE", []);
|
||||||
|
|
||||||
end
|
output.dbt_results.metrics.print("description",'Duobinary');
|
||||||
|
|
||||||
output.vnle_dfe_package = vnle_dfe_package;
|
|
||||||
output.vnle_pf_package = vnle_pf_package;
|
|
||||||
output.dbtgt_package = dbtgt_package;
|
|
||||||
|
|
||||||
if ~isempty(curFolder)
|
disp('- - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - ')
|
||||||
cd(curFolder);
|
fprintf('\n')
|
||||||
end
|
|
||||||
|
|
||||||
end
|
end
|
||||||
156
projects/IMDD_base_system/minimal_example.m
Normal file
156
projects/IMDD_base_system/minimal_example.m
Normal file
@@ -0,0 +1,156 @@
|
|||||||
|
% minimal example IM/DD
|
||||||
|
|
||||||
|
M = 4;
|
||||||
|
fsym = 180e9;
|
||||||
|
|
||||||
|
apply_pulsef = 1;
|
||||||
|
fdac = 256e9;
|
||||||
|
fadc = 256e9;
|
||||||
|
random_key = 1;
|
||||||
|
|
||||||
|
rcalpha = 0.05;
|
||||||
|
kover = 16;
|
||||||
|
|
||||||
|
duob_mode = db_mode.no_db;
|
||||||
|
|
||||||
|
vbias_rel = 0.5;
|
||||||
|
u_pi = 3;
|
||||||
|
vbias = -vbias_rel*u_pi;
|
||||||
|
|
||||||
|
laser_wavelength = 1293;
|
||||||
|
laser_linewidth = 0;
|
||||||
|
tx_bw_nyquist = 0.8;
|
||||||
|
|
||||||
|
% Channel
|
||||||
|
link_length = 1;
|
||||||
|
|
||||||
|
% RX
|
||||||
|
rop = -8;
|
||||||
|
rx_bw_nyquist = 0.8;
|
||||||
|
|
||||||
|
vnle_order1 = 50;
|
||||||
|
vnle_order2 = 7;
|
||||||
|
vnle_order3 = 7;
|
||||||
|
|
||||||
|
vnle_order=[vnle_order1,vnle_order2,vnle_order3];
|
||||||
|
dfe_order = [0 0 0];
|
||||||
|
|
||||||
|
pf_ncoeffs = 1;
|
||||||
|
|
||||||
|
alpha = 0;
|
||||||
|
|
||||||
|
len_tr = 4096*2;
|
||||||
|
|
||||||
|
mu_ffe1 = 0.0001;
|
||||||
|
mu_ffe2 = 0.0008;
|
||||||
|
mu_ffe3 = 0.001;
|
||||||
|
mu_dc = 0.005;
|
||||||
|
% mu_dc = 0;
|
||||||
|
|
||||||
|
mu_ffe = [mu_ffe1 mu_ffe3 mu_ffe3];
|
||||||
|
mu_dfe = 0.0004;
|
||||||
|
|
||||||
|
|
||||||
|
Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rc","pulselength",16,"alpha",rcalpha);
|
||||||
|
|
||||||
|
[Digi_sig,Symbols,Tx_bits] = PAMsource(...
|
||||||
|
"fsym",fsym,"M",M,"order",18,"useprbs",0,...
|
||||||
|
"fs_out",fdac,...
|
||||||
|
"applyclipping",0,"clipfactor",1.5,...
|
||||||
|
"applypulseform",apply_pulsef,"pulseformer",Pform,...
|
||||||
|
"randkey",random_key,...
|
||||||
|
'duobinary_mode',duob_mode,...
|
||||||
|
"mrds_code",0,"mrds_blocklength",512).process();
|
||||||
|
|
||||||
|
%%%%% AWG
|
||||||
|
El_sig = M8199A("kover",kover).process(Digi_sig);
|
||||||
|
% El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",0,"kover",kover,"bit_resolution",12,"upsampling_method","samplehold","precomp_sinc_rolloff",1).process(Digi_sig);
|
||||||
|
El_sig.spectrum("displayname",'Digi Spectrum','fignum',100,'normalizeTo0dB',0);
|
||||||
|
% El_sig = El_sig.setPower(0,"dBm");
|
||||||
|
|
||||||
|
%%%%% Electrical Driver Amplifier %%%%%%
|
||||||
|
% El_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","gain","amplification_db",3).process(El_sig);
|
||||||
|
El_sig = El_sig.normalize("mode","oneone");
|
||||||
|
scaling = 0.6*(u_pi/2-abs(vbias-u_pi/2));
|
||||||
|
El_sig = El_sig .* scaling;
|
||||||
|
|
||||||
|
%%%%% MODULATE E/O CONVERSION %%%%%%
|
||||||
|
[Opt_sig] = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig.fs,"lambda",laser_wavelength,"bias",vbias,"u_pi",u_pi,"linewidth",laser_linewidth,"randomkey",random_key+1,"alpha",alpha).process(El_sig);
|
||||||
|
|
||||||
|
Opt_sig.spectrum("displayname",'Opt Spectrum','fignum',10,'normalizeTo0dB',1);
|
||||||
|
|
||||||
|
% Opt_sig.eye(fsym,M,"displayname",'eye adter modulator','fignum',2026);
|
||||||
|
|
||||||
|
Opt_sig = Fiber("fsimu",Opt_sig.fs,"fiber_length",link_length,"alpha",0.3,"D",0,"lambda0",1310,"gamma",0,"Dslope",0.07).process(Opt_sig);
|
||||||
|
|
||||||
|
%%%%%% ROP %%%%%%
|
||||||
|
Rx_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",rop).process(Opt_sig);
|
||||||
|
|
||||||
|
%%%%%% PD Square Law %%%%%%
|
||||||
|
Rx_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20,"nep",1.8e-11).process(Rx_sig);
|
||||||
|
|
||||||
|
%%%%%% Low-pass RX (PD, El. Connectors and Scope %%%%%%
|
||||||
|
rx_bwl = 80e9;
|
||||||
|
Rx_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(Rx_sig);
|
||||||
|
|
||||||
|
% %%%%%% Low-pass Scope %%%%%%
|
||||||
|
Lp_scpe = Filter('filtdegree',4,"f_cutoff",110e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
|
||||||
|
|
||||||
|
%%%%%% Scope %%%%%%
|
||||||
|
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
||||||
|
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth,...
|
||||||
|
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
||||||
|
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',1,'H_lpf',Lp_scpe).process(Rx_sig);
|
||||||
|
|
||||||
|
%%%%%% Sample to 2x fsym %%%%%%
|
||||||
|
Scpe_sig = Scpe_sig.resample("fs_out",2*fsym);
|
||||||
|
Scpe_sig.signal = Scpe_sig.signal(1:2*length(Symbols));
|
||||||
|
|
||||||
|
%%%%%% Sync Rx signal with reference %%%%%%
|
||||||
|
[Scpe_sig,~] = Scpe_sig.tsynch("reference",Symbols,"fs_ref",fsym,"debug_plots",0);
|
||||||
|
Scpe_sig.spectrum("displayname",'Opt Spectrum','fignum',11,'normalizeTo0dB',1);
|
||||||
|
|
||||||
|
Scpe_sig = Filter('filtdegree',4,"f_cutoff",Symbols.fs.*0.5,"fs",Scpe_sig.fs,"filterType",filtertypes.gaussian,"active",true).process(Scpe_sig);
|
||||||
|
|
||||||
|
Scpe_sig = Scpe_sig - mean(Scpe_sig.signal);
|
||||||
|
|
||||||
|
% -------------------- FFE --------------------
|
||||||
|
ffe_order = [50, 0, 0];
|
||||||
|
eq_ffe = EQ("Ne",ffe_order,"Nb",[0,0,0], ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",0);
|
||||||
|
|
||||||
|
output.ffe_results = ffe(eq_ffe,M,Scpe_sig,Symbols,Tx_bits, ...
|
||||||
|
"precode_mode",duob_mode,'showAnalysis',0,"postFFE",[], ...
|
||||||
|
"eth_style_symbol_mapping",0);
|
||||||
|
|
||||||
|
output.ffe_results.metrics.print
|
||||||
|
|
||||||
|
% -------------------- VNLE + MLSE --------------------
|
||||||
|
pf_ncoeffs = 1;
|
||||||
|
ffe_order3 = [50, 5, 5];
|
||||||
|
eq_v = EQ("Ne",ffe_order3,"Nb",dfe_order, ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
pf_ = Postfilter("ncoeff",pf_ncoeffs,"useBurg",1);
|
||||||
|
|
||||||
|
mlse_ = MLSE("duobinary_output",0,'M',M,'trellis_states',PAMmapper(M,0).levels);
|
||||||
|
|
||||||
|
[output.vnle_results, output.mlse_results] = vnle_postfilter_mlse(eq_v, pf_, mlse_, M, Scpe_sig, Symbols, Tx_bits, ...
|
||||||
|
"precode_mode", duob_mode, 'showAnalysis', 0, "postFFE", [], "eth_style_symbol_mapping", 0);
|
||||||
|
|
||||||
|
|
||||||
|
% -------------------- DB target --------------------
|
||||||
|
mlse_db_ = MLSE("DIR",[1,1],"duobinary_output",0,"M",M,'trellis_states',PAMmapper(M,0).levels);
|
||||||
|
ffe_order = [50, 5, 5];
|
||||||
|
eq_ = EQ("Ne",ffe_order,"Nb",dfe_order,"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
output.dbt_results = duobinary_target(eq_,mlse_db_, M, Scpe_sig, Symbols, Tx_bits, ...
|
||||||
|
"precode_mode", duob_mode, 'showAnalysis', 0, "postFFE", []);
|
||||||
|
|
||||||
|
output.dbt_results.metrics.print("description",'Duobinary');
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
@@ -59,7 +59,7 @@ Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rc","pulselength",1
|
|||||||
|
|
||||||
db_precode = 0;
|
db_precode = 0;
|
||||||
db_encode = 0;
|
db_encode = 0;
|
||||||
duob_mode = db_mode.db_precoded;
|
duob_mode = db_mode.no_db;
|
||||||
apply_pulsef = 1;
|
apply_pulsef = 1;
|
||||||
[Digi_sig,Symbols,Tx_bits] = PAMsource(...
|
[Digi_sig,Symbols,Tx_bits] = PAMsource(...
|
||||||
"fsym",fsym,"M",M,"order",18,"useprbs",0,...
|
"fsym",fsym,"M",M,"order",18,"useprbs",0,...
|
||||||
@@ -72,13 +72,12 @@ apply_pulsef = 1;
|
|||||||
Digi_sig.spectrum("displayname",'Digi Spectrum','fignum',10,'normalizeTo0dB',1);
|
Digi_sig.spectrum("displayname",'Digi Spectrum','fignum',10,'normalizeTo0dB',1);
|
||||||
|
|
||||||
|
|
||||||
%% proof of concept
|
% %% proof of concept memoryless inverse mapping (direct db targeting and decoding)
|
||||||
Symbols_db = Duobinary().encode(Symbols);
|
% Symbols_db = Duobinary().encode(Symbols);
|
||||||
mim_decoded = Duobinary().decode(Symbols_db,"M",M);
|
% mim_decoded = Duobinary().decode(Symbols_db,"M",M);
|
||||||
rx_bits_mim_decoded = PAMmapper(M,0,"eth_style",0).demap(mim_decoded);
|
% rx_bits_mim_decoded = PAMmapper(M,0,"eth_style",0).demap(mim_decoded);
|
||||||
rx_bits_mim_decoded_.signal = circshift(rx_bits_mim_decoded.signal,0);
|
% [~,~,ber_mim_decode,~] = calc_ber(rx_bits_mim_decoded_.signal,Tx_bits.signal,"skip_front",100,"skip_end",150,"returnErrorLocation",1);
|
||||||
[~,~,ber_mim_decode,~] = calc_ber(rx_bits_mim_decoded_.signal,Tx_bits.signal,"skip_front",100,"skip_end",150,"returnErrorLocation",1);
|
% fprintf('BER mim: %.2e \n',ber_mim_decode);
|
||||||
fprintf('BER mim: %.2e \n',ber_mim_decode);
|
|
||||||
|
|
||||||
%%
|
%%
|
||||||
|
|
||||||
|
|||||||
@@ -1,248 +1,63 @@
|
|||||||
|
|
||||||
|
base = "C:\Users\Silas\Nextcloud\Cluster";
|
||||||
|
all_files = dir(fullfile(base, "**/*.mat"));
|
||||||
|
|
||||||
|
schemes = ["co","pair","alt","seg"];
|
||||||
|
|
||||||
|
% Preallocate as table (minimal + convenient)
|
||||||
|
T = table('Size',[0 10], ...
|
||||||
|
'VariableTypes', ["string","string","string","datetime","double","double","double","double","double","double"], ...
|
||||||
|
'VariableNames', ["folder","file","scheme","date","node","jobid","L_km","Nch","df_GHz","alpha"]);
|
||||||
|
|
||||||
|
% filename parser
|
||||||
|
rx = "^WDM_(?<date>\d{8})_(?<time>\d{6})_n(?<node>\d+)_(?<jobid>\d+)_" + ...
|
||||||
|
"(?<L>\d+)km_(?<Nch>\d+)ch_(?<df>\d+)ghz_(?<scheme>[a-z]+)_alpha(?<alpha>\d+(?:_\d+)?)\.mat$";
|
||||||
|
|
||||||
|
for k = 1:numel(all_files)
|
||||||
|
f = all_files(k);
|
||||||
|
folder = string(f.folder);
|
||||||
|
file = string(f.name);
|
||||||
|
|
||||||
|
tok = regexp(file, rx, 'names');
|
||||||
|
if isempty(tok)
|
||||||
|
continue
|
||||||
|
end
|
||||||
|
|
||||||
|
% scheme from filename is the most reliable
|
||||||
|
scheme = string(tok.scheme);
|
||||||
|
|
||||||
|
% optional: ignore unexpected schemes
|
||||||
|
if ~any(strcmpi(scheme, schemes)), continue; end
|
||||||
|
|
||||||
|
node = str2double(tok.node);
|
||||||
|
jobid = str2double(tok.jobid);
|
||||||
|
L_km = str2double(tok.L);
|
||||||
|
Nch = str2double(tok.Nch);
|
||||||
|
df_GHz = str2double(tok.df);
|
||||||
|
date = datetime(strcat(tok.date, tok.time), 'InputFormat','yyyyMMddHHmmss');
|
||||||
|
|
||||||
|
|
||||||
try
|
% alpha uses "_" as decimal separator in your filenames
|
||||||
rop = res.settings.rop; % 12 points
|
alpha = str2double(strrep(tok.alpha, "_", "."));
|
||||||
wavelengthplan = res.settings.wavelengthplan;
|
|
||||||
catch
|
T(end+1,:) = {folder, file, scheme,date, node, jobid, L_km, Nch, df_GHz, alpha};
|
||||||
wavelengthplan = [1295,1305,1315,1325];
|
|
||||||
wavelengthplan = calcWavelengthPlan(16,400e9,1310);
|
|
||||||
rop = -8.25:0.75:0;
|
|
||||||
end
|
end
|
||||||
|
|
||||||
N = length(wavelengthplan);
|
|
||||||
figure(); hold on;
|
|
||||||
cols = cbrewer2('set2',N); % one color per wavelength (Ch)
|
|
||||||
|
|
||||||
fec = 2.2e-4;
|
|
||||||
fec = 3.8e-3;
|
|
||||||
Sffe = cell(1,N);
|
|
||||||
Svnle = cell(1,N);
|
|
||||||
Smlse = cell(1,N);
|
|
||||||
Sdbt = cell(1,N);
|
|
||||||
|
|
||||||
% Choose your quantile band. For your old style, use 0.04/0.99:
|
|
||||||
qLow = 0.0; % lower quantile (e.g.,s 0.04 for old script)
|
|
||||||
qHigh = 1; % upper quantile (e.g., 0.99 for old script)
|
|
||||||
cols = linspecer(N); % one color per wavelength (Ch)
|
|
||||||
cols = cbrewer2('set1',N);
|
|
||||||
|
|
||||||
for l = 1:N
|
|
||||||
% Slice 12x50 cell arrays
|
|
||||||
ffe_cells = reshape(squeeze(res.ffe(l,:,:)),length(rop),[]);
|
|
||||||
vnle_cells = reshape(squeeze(res.vnle(l,:,:)),length(rop),[]);
|
|
||||||
mlse_cells = reshape(squeeze(res.mlse(l,:,:)),length(rop),[]);
|
|
||||||
dbt_cells = reshape(squeeze(res.dbt(l,:,:)),length(rop),[]);
|
|
||||||
|
|
||||||
[Sffe{l}, noX_ffe] = fecCrossings(rop, ffe_cells, fec);
|
|
||||||
|
|
||||||
[Svnle{l}, noX_ffe] = fecCrossings(rop, vnle_cells, fec);
|
|
||||||
|
|
||||||
[Smlse{l}, noX_ffe] = fecCrossings(rop, mlse_cells, fec);
|
|
||||||
|
|
||||||
[Sdbt{l}, noX_ffe] = fecCrossings(rop, dbt_cells, fec);
|
|
||||||
|
|
||||||
% Extract BER matrices using only complete realizations (12/12 ROP filled)
|
|
||||||
ffe_mat = extractCompleteBER(ffe_cells); % 12 x K_ffe
|
|
||||||
vnle_mat = extractCompleteBER(vnle_cells); % 12 x K_vnle
|
|
||||||
mlse_mat = extractCompleteBER(mlse_cells); % 12 x K_mlse
|
|
||||||
mlse_alpha_mat = extractCompleteAlphas(mlse_cells); % 12 x K_mlse
|
|
||||||
dbt_mat = extractCompleteBER(dbt_cells); % 12 x K_dbt
|
|
||||||
|
|
||||||
showLegend = 1; % one legend entry per technique
|
|
||||||
|
|
||||||
% Plot shaded band + mean line with boundedline
|
|
||||||
plotBandMeanBL(rop, ffe_mat, cols(l,:), sprintf('FFE @ %.1d nm',round(wavelengthplan(l))), qLow, qHigh, '--s', showLegend);
|
|
||||||
% scatter(Sffe,fec.*ones(size(Sffe)),20,'v','MarkerFaceColor','black');
|
|
||||||
|
|
||||||
% plotBandMeanBL(rop, vnle_mat, cols(l,:), sprintf('VNLE @ %.1d nm',round(wavelengthplan(l))), qLow, qHigh, '--x', showLegend);
|
|
||||||
|
|
||||||
% plotBandMeanBL(rop, mlse_mat, cols(l,:), sprintf('VNLE+PF+MLSE @ %.1d nm',round(wavelengthplan(l))), qLow, qHigh, '-o', showLegend);
|
|
||||||
|
|
||||||
% plotBandMeanBL(rop, dbt_mat, cols(l,:), sprintf('DBt.+MLSE @ %.1d nm',round(wavelengthplan(l))), qLow, qHigh, '--v', showLegend);
|
|
||||||
|
|
||||||
set(gca,'XScale','linear','YScale','log','TickLabelInterpreter','latex','FontSize',11);
|
|
||||||
yline([3.8e-3, 2.2e-4], 'HandleVisibility','off','LineWidth',1.5);
|
|
||||||
|
|
||||||
end
|
|
||||||
|
|
||||||
ylabel('BER');
|
|
||||||
xlabel('ROP');
|
|
||||||
title('BER vs. ROP');
|
|
||||||
xlim([min(rop) max(rop)]);
|
|
||||||
ylim([1e-5 0.3]);
|
|
||||||
grid on;
|
|
||||||
legend show;
|
|
||||||
|
|
||||||
%%
|
%%
|
||||||
S_cell = Sdbt;
|
idx = strcmp(T.scheme,"co") & ...
|
||||||
S_cell =Smlse;
|
T.alpha == 0.4 & ...
|
||||||
S_cell = {Svnle,Smlse,Sdbt};
|
T.date >= datetime(2026,1,9) & ...
|
||||||
S_cell = {Svnle};
|
T.date <= datetime(2026,1,10,23,59,59);
|
||||||
figure(5); hold on;
|
|
||||||
for i = 1:length(S_cell)
|
|
||||||
% Pad to rectangular matrix: rows = realizations, cols = wavelengths
|
|
||||||
Kmax = max(cellfun(@numel, S_cell{i}));
|
|
||||||
S_mat = NaN(Kmax, N);
|
|
||||||
for l = 1:N
|
|
||||||
k = numel(S_cell{i}{l});
|
|
||||||
if k > 0
|
|
||||||
S_mat(1:k, l) = S_cell{i}{l};
|
|
||||||
end
|
|
||||||
end
|
|
||||||
|
|
||||||
% --- Violin plot over wavelengths (columns) ---
|
|
||||||
|
|
||||||
cols=linspecer(3);
|
|
||||||
catLabels = arrayfun(@(nm) sprintf('%d nm', nm), wavelengthplan, 'UniformOutput', false);
|
|
||||||
vs = violinplot(S_mat, catLabels, ...
|
|
||||||
'ViolinColor', cols(i,:), ...
|
|
||||||
'ViolinAlpha', 0.10, ...
|
|
||||||
'MarkerSize', 20, ...
|
|
||||||
'ShowMedian', true, ...
|
|
||||||
'EdgeColor', cols(i,:), ...
|
|
||||||
'ShowWhiskers', false, ...
|
|
||||||
'ShowData', true, ...
|
|
||||||
'ShowBox', false, ...
|
|
||||||
'Bandwidth', 0.05);
|
|
||||||
|
|
||||||
ylim([floor(min(S_mat,[],'all')), ceil(max(S_mat,[],'all'))])
|
|
||||||
% ylim([-8 0]);
|
|
||||||
ylabel('ROP at FEC crossing');
|
|
||||||
title(sprintf('RROP to cross BER %.2e', fec));
|
|
||||||
grid on; box on;
|
|
||||||
|
|
||||||
end
|
T_sel = T(idx,:);
|
||||||
|
|
||||||
|
i = 2;
|
||||||
|
res = load(fullfile(T_sel.folder(i),T_sel.file(i)),'res');
|
||||||
|
res = res.res;
|
||||||
|
|
||||||
|
%%
|
||||||
|
% Routine A: plot BER curves and compute crossings
|
||||||
|
S = plot_BER_vs_ROP(res, 'fec', 3.8e-3);
|
||||||
|
|
||||||
|
%% Routine B: violin plot (independent)
|
||||||
|
plot_FEC_violin(res, 'tech','VNLE', 'fec',3.8e-3, 'ylim',[-10 0]);
|
||||||
|
|
||||||
%% ================= helper =================
|
|
||||||
function plotBandMeanBL(x, Y, color, techLabel, qLow, qHigh, lineSpec, showLegend)
|
|
||||||
% Y: (nPoints x nRealizations)
|
|
||||||
% Remove realizations that are entirely zero (like removeZeros behavior)
|
|
||||||
badCols = all(Y == 0, 1);
|
|
||||||
Y(:, badCols) = [];
|
|
||||||
|
|
||||||
Y(Y==0) = 1e-8;
|
|
||||||
% Stats across realizations
|
|
||||||
mu = mean(Y, 2, 'omitnan'); % mean line
|
|
||||||
lo = quantile(Y, qLow, 2); % lower bound
|
|
||||||
hi = quantile(Y, qHigh, 2); % upper bound
|
|
||||||
|
|
||||||
% Convert to asymmetric distances required by boundedline:
|
|
||||||
% b(:,1) = distance to lower side; b(:,2) = distance to upper side
|
|
||||||
b = [mu - lo, hi - mu];
|
|
||||||
|
|
||||||
% Call boundedline with alpha shading
|
|
||||||
[hl, hp] = boundedline(x(:), mu(:), b, lineSpec, 'alpha', ...
|
|
||||||
'transparency', 0.18);
|
|
||||||
% Color styling
|
|
||||||
set(hl, 'Color', color, 'LineWidth', 1.4, 'MarkerSize', 4);
|
|
||||||
set(hp, 'FaceColor', color, 'HandleVisibility','off'); % patch hidden in legend
|
|
||||||
|
|
||||||
% Single legend entry per technique (use first wavelength only)
|
|
||||||
if showLegend
|
|
||||||
set(hl, 'DisplayName', techLabel);
|
|
||||||
else
|
|
||||||
set(hl, 'HandleVisibility','off');
|
|
||||||
end
|
|
||||||
|
|
||||||
% Optional: outline the bounds if outlinebounds is available
|
|
||||||
if exist('outlinebounds','file') == 2
|
|
||||||
ho = outlinebounds(hl, hp);
|
|
||||||
set(ho, 'linestyle', ':', 'color', color, 'linewidth', 1, ...
|
|
||||||
'HandleVisibility','off');
|
|
||||||
end
|
|
||||||
end
|
|
||||||
|
|
||||||
function [S, noCrossingMask, Y_keep] = fecCrossings(rop, cells12xR, fec)
|
|
||||||
% cells12xR: 12xR cell array (one wavelength + scheme slice)
|
|
||||||
% each cell must be a struct with .metrics.BER
|
|
||||||
% rop: 12x1 numeric vector of ROP points
|
|
||||||
% fec: scalar FEC threshold (e.g., 3.8e-3)
|
|
||||||
%
|
|
||||||
% Outputs:
|
|
||||||
% S 1xK vector of crossing ROP per kept realization (NaN if none)
|
|
||||||
% noCrossingMask 1xK logical mask: true if no crossing for that realization
|
|
||||||
% Y_keep 12xK numeric BER matrix used for the crossing detection
|
|
||||||
|
|
||||||
% 1) keep only complete realization columns
|
|
||||||
Y = extractCompleteBER(cells12xR); % -> 12 x K
|
|
||||||
if isempty(Y)
|
|
||||||
S = [];
|
|
||||||
noCrossingMask = [];
|
|
||||||
Y_keep = Y;
|
|
||||||
return;
|
|
||||||
end
|
|
||||||
|
|
||||||
% 2) optionally drop realizations with mean BER > 0.1
|
|
||||||
ok = mean(Y,1,'omitnan') <= 0.1;
|
|
||||||
Y = Y(:, ok);
|
|
||||||
if isempty(Y)
|
|
||||||
S = [];
|
|
||||||
noCrossingMask = [];
|
|
||||||
Y_keep = Y;
|
|
||||||
return;
|
|
||||||
end
|
|
||||||
|
|
||||||
% 3) find crossings per realization
|
|
||||||
nR = size(Y,2);
|
|
||||||
S = nan(1,nR);
|
|
||||||
noCrossingMask = true(1,nR);
|
|
||||||
|
|
||||||
rop = rop(:); % ensure column
|
|
||||||
for j = 1:nR
|
|
||||||
y = Y(:,j);
|
|
||||||
|
|
||||||
% sign change from >fec to <=fec (first time it drops below FEC)
|
|
||||||
above = (y > fec);
|
|
||||||
idx = find(above(1:end-1) & ~above(2:end), 1, 'first');
|
|
||||||
|
|
||||||
if ~isempty(idx)
|
|
||||||
% linear interpolation between (x1,y1) and (x2,y2)
|
|
||||||
x1 = rop(idx); y1 = y(idx);
|
|
||||||
x2 = rop(idx+1); y2 = y(idx+1);
|
|
||||||
|
|
||||||
if isfinite(y1) && isfinite(y2) && y2 ~= y1
|
|
||||||
t = (fec - y1) / (y2 - y1);
|
|
||||||
S(j) = x1 + t*(x2 - x1);
|
|
||||||
noCrossingMask(j) = false;
|
|
||||||
end
|
|
||||||
end
|
|
||||||
end
|
|
||||||
|
|
||||||
Y_keep = Y;
|
|
||||||
end
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
function Y = extractCompleteBER(cellSlice)
|
|
||||||
% cellSlice: 12xR cell array; each cell should be a struct with .metrics.BER
|
|
||||||
% Keep only those realization columns where ALL 12 ROP entries are valid.
|
|
||||||
if isempty(cellSlice), Y = []; return; end
|
|
||||||
nR = size(cellSlice,2);
|
|
||||||
keep = false(1,nR);
|
|
||||||
for r = 1:nR
|
|
||||||
col = cellSlice(:,r);
|
|
||||||
keep(r) = all(cellfun(@(c) ~isempty(c) , col));
|
|
||||||
end
|
|
||||||
if ~any(keep), Y = []; return; end
|
|
||||||
Y = cellfun(@(c) c.metrics.BER, cellSlice(:,keep), 'UniformOutput', true);
|
|
||||||
end
|
|
||||||
|
|
||||||
function Y = extractCompleteAlphas(cellSlice)
|
|
||||||
% cellSlice: 12xR cell array; each cell should be a struct with .metrics.BER
|
|
||||||
% Keep only those realization columns where ALL 12 ROP entries are valid.
|
|
||||||
if isempty(cellSlice), Y = []; return; end
|
|
||||||
nR = size(cellSlice,2);
|
|
||||||
keep = false(1,nR);
|
|
||||||
for r = 1:nR
|
|
||||||
col = cellSlice(:,r);
|
|
||||||
keep(r) = all(cellfun(@(c) ~isempty(c) , col));
|
|
||||||
end
|
|
||||||
if ~any(keep), Y = []; return; end
|
|
||||||
Y = cellfun(@(c) c.metrics.Alpha, cellSlice(:,keep), 'UniformOutput', true);
|
|
||||||
end
|
|
||||||
|
|
||||||
|
|||||||
@@ -1,25 +1,96 @@
|
|||||||
%%% Run parameters
|
%%% Run parameters
|
||||||
% TX
|
% TX
|
||||||
% --- FIRST LINE: evaluate settings located beside this script ---
|
|
||||||
run(fullfile(fileparts(mfilename('fullpath')),'WDM_settings.m'));
|
|
||||||
|
|
||||||
num_realiz = 50;
|
function WDM_model(options)
|
||||||
s.wavelengthplan = calcWavelengthPlan(16,400e9,1310);
|
|
||||||
|
arguments
|
||||||
|
options.num_channels = 16;
|
||||||
|
options.channel_spacing = 400e9;
|
||||||
|
options.fiber_length_km = 0;
|
||||||
|
options.rand_key = 1;
|
||||||
|
options.num_realiz = 1;
|
||||||
|
options.fwm_mitigation_technique = "co";
|
||||||
|
end
|
||||||
|
|
||||||
|
%%
|
||||||
|
|
||||||
|
% Add the imdd_simulation framework to the path
|
||||||
|
if ispc
|
||||||
|
addpath(genpath('C:\Users\Silas\Documents\MATLAB\imdd_simulation'));
|
||||||
|
else
|
||||||
|
% Linux path on the cluster
|
||||||
|
addpath(genpath('/work_beegfs/sutef391/imdd_simulation'));
|
||||||
|
end
|
||||||
|
|
||||||
|
% Quiet the ambiguous CET warning (best is to set TZ in sbatch; see below)
|
||||||
|
warning('off','MATLAB:datetime:AmbiguousTimeZone');
|
||||||
|
|
||||||
|
% How many workers?
|
||||||
|
cpus = str2double(getenv('SLURM_CPUS_PER_TASK'));
|
||||||
|
if ~isfinite(cpus) || cpus < 1, cpus = max(1, feature('numcores')); end
|
||||||
|
|
||||||
|
% Use a per-job, node-local JobStorageLocation to avoid stale locks on $HOME
|
||||||
|
% Prefer $TMPDIR if your cluster provides it, else tempdir().
|
||||||
|
tmpbase = getenv('TMPDIR');
|
||||||
|
if isempty(tmpbase), tmpbase = tempdir; end
|
||||||
|
jsl = fullfile(tmpbase, sprintf('matlab_jobstorage_%s_%s', ...
|
||||||
|
getenv('USER'), getenv('SLURM_JOB_ID')));
|
||||||
|
if ~exist(jsl,'dir'); mkdir(jsl); end
|
||||||
|
|
||||||
|
% Configure the local cluster explicitly and start the pool
|
||||||
|
c = parcluster('local');
|
||||||
|
c.NumWorkers = cpus;
|
||||||
|
c.JobStorageLocation = jsl;
|
||||||
|
|
||||||
|
p = gcp('nocreate');
|
||||||
|
if isempty(p) || p.NumWorkers ~= cpus
|
||||||
|
if ~isempty(p), delete(p); end
|
||||||
|
p = parpool(c, cpus); % avoids the “queued” state
|
||||||
|
end
|
||||||
|
fprintf('parpool up with %d workers; JobStorage=%s\n', p.NumWorkers, c.JobStorageLocation);
|
||||||
|
|
||||||
|
% result filename (timestamp + optional job id)
|
||||||
|
t = datetime('now','TimeZone','local','Format','yyyyMMdd_HHmmss');
|
||||||
|
jobid = getenv('SLURM_JOB_ID'); if isempty(jobid), jobid = 'nojid'; end
|
||||||
|
host = getenv('HOSTNAME'); if isempty(host), host = 'localhost'; end
|
||||||
|
|
||||||
|
% Output directory depends on platform
|
||||||
|
% create/ use folders foroptions.fiber_length_km, options.num_channels, options.channel_spacing.*1e-9, options.fwm_mitigation_technique
|
||||||
|
foldname = sprintf('%dkm_%dch_%dghz_%s', options.fiber_length_km(end), options.num_channels, options.channel_spacing.*1e-9, options.fwm_mitigation_technique);
|
||||||
|
if ispc
|
||||||
|
output_root = fullfile('C:\Users\Silas\Documents\MATLAB\Datensätze\FWM_2025\',foldname,'\');
|
||||||
|
else
|
||||||
|
output_root = fullfile('/work_beegfs/sutef391/results_WDM',foldname,'\');
|
||||||
|
end
|
||||||
|
if ~exist(output_root,'dir'), mkdir(output_root); end
|
||||||
|
|
||||||
|
% Build filename
|
||||||
|
t = datetime('now','TimeZone','local','Format','yyyyMMdd_HHmmss');
|
||||||
|
jobid = getenv('SLURM_JOB_ID'); if isempty(jobid), jobid = 'nojid'; end
|
||||||
|
host = getenv('HOSTNAME'); if isempty(host), host = 'localhost'; end
|
||||||
|
|
||||||
|
fname = sprintf('WDM_%s_%s_%s_%dkm_%dch_%dghz_%s.mat', char(t), host, jobid, options.fiber_length_km(end), options.num_channels, options.channel_spacing.*1e-9, options.fwm_mitigation_technique);
|
||||||
|
|
||||||
|
|
||||||
|
%%
|
||||||
|
s.num_realiz = options.num_realiz;
|
||||||
|
% s.wavelengthplan = calcWavelengthPlan(16,400e9,1310);
|
||||||
|
s.wavelengthplan = calcWavelengthPlan(options.num_channels,options.channel_spacing,1310);
|
||||||
% wavelengthplan = [1295,1305,1315,1325];
|
% wavelengthplan = [1295,1305,1315,1325];
|
||||||
link_length = 10;
|
link_length = options.fiber_length_km;
|
||||||
pmd = 0.1;
|
s.pmd = 0.1;
|
||||||
gamma = 0.0023;
|
s.gamma = 0.0023;
|
||||||
|
|
||||||
M = 4;
|
s.M = 4;
|
||||||
m = floor(log2(M)*10)/10;
|
m = floor(log2(s.M)*10)/10;
|
||||||
fsym = 112e9;
|
fsym = 112e9;
|
||||||
fdac = 2*fsym;
|
fdac = 2*fsym;
|
||||||
fadc = 2*fsym;
|
fadc = 120000000000;
|
||||||
s.random_key = 100;
|
s.random_key = options.rand_key;
|
||||||
|
|
||||||
% Laser / s.Modulator
|
% Laser / s.Modulator
|
||||||
vbias_rel = 0.5;
|
vbias_rel = 0.5;
|
||||||
u_pi = 3.2;
|
u_pi = 4.6;
|
||||||
vbias = -vbias_rel*u_pi;
|
vbias = -vbias_rel*u_pi;
|
||||||
laser_linewidth = 0e6;
|
laser_linewidth = 0e6;
|
||||||
|
|
||||||
@@ -38,7 +109,7 @@ mu_dc = 0.005;
|
|||||||
mu_ffe = [mu_ffe1 mu_ffe3 mu_ffe3];
|
mu_ffe = [mu_ffe1 mu_ffe3 mu_ffe3];
|
||||||
mu_dfe = 0.0004;
|
mu_dfe = 0.0004;
|
||||||
|
|
||||||
%DB Stuff
|
%DB Stuff
|
||||||
db_precode = 0;
|
db_precode = 0;
|
||||||
db_encode = 0;
|
db_encode = 0;
|
||||||
duob_mode = db_mode.no_db;
|
duob_mode = db_mode.no_db;
|
||||||
@@ -49,10 +120,10 @@ Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rc","pulselength",1
|
|||||||
|
|
||||||
N = numel(s.wavelengthplan);
|
N = numel(s.wavelengthplan);
|
||||||
f_plan = physconst('lightspeed')./(s.wavelengthplan.*1e-9);
|
f_plan = physconst('lightspeed')./(s.wavelengthplan.*1e-9);
|
||||||
margin = 25e12; % some THz left and right
|
margin = 5e12; % some THz left and right
|
||||||
f_span = (max(f_plan)+margin)-(min(f_plan)-margin);
|
f_span = (max(f_plan)+margin)-(min(f_plan)-margin);
|
||||||
f_nyq = f_span/2;
|
f_nyq = f_span/2;
|
||||||
kover = 8;
|
kover = 4;
|
||||||
upsample_required = f_nyq./(fdac*kover/2);
|
upsample_required = f_nyq./(fdac*kover/2);
|
||||||
upsample_pow = 2^nextpow2(upsample_required);
|
upsample_pow = 2^nextpow2(upsample_required);
|
||||||
upsample_ceil = ceil(upsample_required);
|
upsample_ceil = ceil(upsample_required);
|
||||||
@@ -64,18 +135,35 @@ signal_cell = {};
|
|||||||
Symbols = {};
|
Symbols = {};
|
||||||
Tx_bits = {};
|
Tx_bits = {};
|
||||||
|
|
||||||
s.rop = -6:0.75:-0.75;
|
s.rop = -12:0.75:-0.75;
|
||||||
|
|
||||||
output_ffe = cell(length(s.wavelengthplan),length(s.rop),s.num_realiz);
|
output_ffe = cell(length(s.wavelengthplan),length(s.rop),s.num_realiz);
|
||||||
output_vnle = cell(length(s.wavelengthplan),length(s.rop),s.num_realiz);
|
output_vnle = cell(length(s.wavelengthplan),length(s.rop),s.num_realiz);
|
||||||
output_mlse = cell(length(s.wavelengthplan),length(s.rop),s.num_realiz);
|
output_mlse = cell(length(s.wavelengthplan),length(s.rop),s.num_realiz);
|
||||||
output_dbt = cell(length(s.wavelengthplan),length(s.rop),s.num_realiz);
|
output_dbt = cell(length(s.wavelengthplan),length(s.rop),s.num_realiz);
|
||||||
|
|
||||||
|
s.p_launch = 3;
|
||||||
|
s.p = options.fwm_mitigation_technique;
|
||||||
|
switch s.p
|
||||||
|
case "co"
|
||||||
|
pol_rot = 100.*ones(1,length(s.wavelengthplan));
|
||||||
|
d_local = 0;
|
||||||
|
case "pair"
|
||||||
|
pol_rot = repmat([100,100,0,0],1,length(s.wavelengthplan)/4);
|
||||||
|
d_local = 0;
|
||||||
|
case "alt"
|
||||||
|
pol_rot = repmat([100,0,100,0],1,length(s.wavelengthplan)/4);
|
||||||
|
d_local = 0;
|
||||||
|
case "seg"
|
||||||
|
pol_rot = 100.*ones(1,length(s.wavelengthplan));
|
||||||
|
d_local = 3;
|
||||||
|
end
|
||||||
|
|
||||||
for realiz = 1:s.num_realiz
|
for realiz = 1:s.num_realiz
|
||||||
|
|
||||||
|
|
||||||
parfor l = 1:N
|
parfor l = 1:N
|
||||||
|
|
||||||
[Digi_sig,Symbols{l},Tx_bits{l}] = PAMsource(...
|
[Digi_sig,Symbols{l},Tx_bits{l}] = PAMsource(...
|
||||||
"fsym",fsym,"M",s.M,"order",18,"useprbs",0,...
|
"fsym",fsym,"M",s.M,"order",18,"useprbs",0,...
|
||||||
"fs_out",fdac,...
|
"fs_out",fdac,...
|
||||||
@@ -84,93 +172,97 @@ for realiz = 1:s.num_realiz
|
|||||||
"randkey",s.random_key+l+realiz,...
|
"randkey",s.random_key+l+realiz,...
|
||||||
"db_precode",db_precode,"db_encode",db_encode,...
|
"db_precode",db_precode,"db_encode",db_encode,...
|
||||||
"mrds_code",0,"mrds_blocklength",512,"duobinary_mode",duob_mode).process();
|
"mrds_code",0,"mrds_blocklength",512,"duobinary_mode",duob_mode).process();
|
||||||
|
|
||||||
% Digi_sig.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
% Digi_sig.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
||||||
Lp_awg = Filter('filtdegree',3,"f_cutoff",100e9,"fs",fdac*kover,"filterType",filtertypes.gaussian,"active",true);
|
Lp_awg = Filter('filtdegree',3,"f_cutoff",56e9,"fs",fdac*kover,"filterType",filtertypes.gaussian,"active",true);
|
||||||
El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",1,"kover",kover,"bit_resolution",12,"upsampling_method","samplehold","precomp_sinc_rolloff",0,"H_lpf",Lp_awg,"dac_max",0.6,"dac_min",-0.6).process(Digi_sig);
|
El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",1,"kover",kover,"bit_resolution",6,"upsampling_method","samplehold","precomp_sinc_rolloff",0,"H_lpf",Lp_awg,"dac_max",0.6,"dac_min",-0.6).process(Digi_sig);
|
||||||
% El_sig = s.M8199B("kover",kover).process(Digi_sig);
|
% El_sig = s.M8199B("kover",kover).process(Digi_sig);
|
||||||
% El_sig.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
% El_sig.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
||||||
|
|
||||||
%%%%% Electrical Driver Amplifier %%%%%%
|
%%%%% Electrical Driver Amplifier %%%%%%
|
||||||
El_sig = El_sig.normalize("mode","oneone");
|
El_sig = El_sig.normalize("mode","oneone");
|
||||||
|
scaling = 0.6*(u_pi/2-abs(vbias-u_pi/2)); % scale to 60% of available modulator curve
|
||||||
|
El_sig = El_sig .* scaling;
|
||||||
|
|
||||||
% El_sig = El_sig.setPower(1,"dBm");
|
% El_sig = El_sig.setPower(1,"dBm");
|
||||||
% figure;histogram(El_sig.signal);
|
% figure;histogram(El_sig.signal);
|
||||||
|
|
||||||
%%%%% s.MODULATE E/O CONVERSION %%%%%
|
%%%%% s.MODULATE E/O CONVERSION %%%%%
|
||||||
Eml_out = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig.fs,"lambda",s.wavelengthplan(l),"bias",vbias,"u_pi",u_pi,"linewidth",laser_linewidth,"randomkey",s.random_key+l+realiz).process(El_sig);
|
Eml_out = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig.fs,"lambda",s.wavelengthplan(l),"bias",vbias,"u_pi",u_pi,"linewidth",laser_linewidth,"randomkey",s.random_key+l+realiz).process(El_sig);
|
||||||
|
|
||||||
signal_cell{l} = Polarization_Controller("mode","rot_power","desired_power",100).process(Eml_out);
|
signal_cell{l} = Polarization_Controller("mode","rot_power","desired_power",pol_rot(l)).process(Eml_out);
|
||||||
end
|
end
|
||||||
|
|
||||||
Opt_sig_wdm = Optical_Multiplex("fs_in",fdac*kover,"fs_out",upsample_pow*fdac*kover,...
|
Opt_sig_wdm = Optical_Multiplex("fs_in",fdac*kover,"fs_out",upsample_pow*fdac*kover,...
|
||||||
"lambda_center",1310,"random_key",0,"filtype",1,"B",200e9).process(signal_cell);
|
"lambda_center",1310,"random_key",0,"filtype",1,"B",120e9).process(signal_cell);
|
||||||
|
|
||||||
Opt_sig_wdm = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",3+10*log10(N)).process(Opt_sig_wdm);
|
|
||||||
|
|
||||||
|
Opt_sig_wdm = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",s.p_launch+10*log10(N)).process(Opt_sig_wdm);
|
||||||
|
|
||||||
% Opt_sig_wdm.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
% Opt_sig_wdm.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
||||||
|
|
||||||
% Opt_sig_wdm.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',1,'max_num_lines',2);
|
% Opt_sig_wdm.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',1,'max_num_lines',2);
|
||||||
|
|
||||||
%%%%%% Fiber %%%%%%
|
%%%%%% Fiber %%%%%%
|
||||||
Opt_sig_wdm_fib=Opt_sig_wdm;
|
Opt_sig_wdm_fib=Opt_sig_wdm;
|
||||||
|
|
||||||
segment_length = 1; % km
|
segment_length = 1; % km
|
||||||
nSegments = link_length/segment_length;
|
nSegments = link_length/segment_length;
|
||||||
zdw = 1310;
|
zdw = 1310;
|
||||||
D_local = 0; %if ~=0, simulation uses "segmented fiber with d+,d-)
|
d_local = d_local; %if ~=0, simulation uses "segmented fiber with d+,d-)
|
||||||
randomize_D = true;
|
randomize_D = true;
|
||||||
Dvec = getDispersionVector(nSegments, D_local, zdw, randomize_D, s.random_key+realiz);
|
Dvec = getDispersionVector(nSegments, d_local, zdw, randomize_D, s.random_key+realiz);
|
||||||
|
propdist = 0;
|
||||||
for seg = 1:nSegments
|
for seg = 1:nSegments
|
||||||
|
|
||||||
Opt_sig_wdm_fib = DP_Fiber("L",segment_length,"D",Dvec(s),"Dpmd",pmd,"Ds",0.07,...
|
Opt_sig_wdm_fib = DP_Fiber("L",segment_length,"D",Dvec(seg),"Dpmd",s.pmd,"Ds",0.07,...
|
||||||
"beat_len",10,"corr_len",100,"dz",1,"manakov",0,...
|
"beat_len",10,"corr_len",100,"dz",1,"manakov",0,...
|
||||||
"gamma",s.gamma,"lambda",zdw,"n_waveplates",10,"SS_dphimax",0.01,...
|
"gamma",s.gamma,"lambda",zdw,"n_waveplates",10,"SS_dphimax",0.01,...
|
||||||
"SS_dzmax",50,"SS_dzmin",10,"X_alpha",0.3,"X_beta",0,"rng",1).process(Opt_sig_wdm_fib);
|
"SS_dzmax",50,"SS_dzmin",10,"X_alpha",0.3,"X_beta",0,"rng",1).process(Opt_sig_wdm_fib);
|
||||||
|
|
||||||
|
|
||||||
|
propdist = segment_length;
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
end
|
end
|
||||||
|
|
||||||
Opt_sig_wdm_fib.spectrum("fignum",realiz,"displayname",'bla','lambda0_nm',1310,'useWavelengthAxis',0);
|
%%%%%% Demux after 2 km %%%%%%
|
||||||
|
Opt_sig_wdm_demux = Optical_Demultiplex("attenuation",0,"B",200e9,"filtype",1,"fs_out",fdac*kover,"fs_in",fdac*kover*upsample_pow,"lambda_center",1310).process(Opt_sig_wdm_fib);
|
||||||
% Opt_sig_wdm_fib.move_it_spectrum("fignum",100212,"displayname",'bla');
|
|
||||||
|
|
||||||
% Opt_sig = Fiber("fsimu",Opt_sig.fs,"fiber_length",s.link_length/1000,"alpha",0.3,"D",0,"lambda0",1310,"s.gamma",0,"Dslope",0.07).process(Opt_sig)
|
|
||||||
|
|
||||||
for ri = 1:length(s.rop)
|
for ri = 1:length(s.rop)
|
||||||
|
|
||||||
%%%%%% ROP %%%%%%
|
parfor l = 1:N
|
||||||
Opt_sig_wdm_rx = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",s.rop(ri)+10*log10(N)).process(Opt_sig_wdm_fib);
|
|
||||||
|
%%%%%% ROP %%%%%%
|
||||||
Opt_sig_wdm_demux = Optical_Demultiplex("attenuation",0,"B",200e9,"filtype",1,"fs_out",Opt_sig_wdm_rx.fs/upsample_pow,"fs_in",Opt_sig_wdm_rx.fs,"lambda_center",1310).process(Opt_sig_wdm_rx);
|
Opt_sig_wdm_rx = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",s.rop(ri)).process(Opt_sig_wdm_demux{l}); % rop+10*log10(N)
|
||||||
|
|
||||||
PD_cell = {};
|
|
||||||
for l = 1:N
|
|
||||||
|
|
||||||
%%%%%% PD Square Law %%%%%%
|
%%%%%% PD Square Law %%%%%%
|
||||||
assert(fdac*kover==Opt_sig_wdm_demux{l}.fs,'Sampling Frequencies do not match! Check previous steps');
|
assert(fdac*kover==Opt_sig_wdm_rx.fs,'Sampling Frequencies do not match! Check previous steps');
|
||||||
PD_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20,"nep",1.8e-11,"randomkey",s.random_key+l+realiz).process(Opt_sig_wdm_demux{l});
|
PD_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20,"nep",1.8e-11,"randomkey",s.random_key+l+realiz).process(Opt_sig_wdm_rx);
|
||||||
|
|
||||||
% PD_sig.spectrum("fignum",222,"displayname",'bla','normalizeTo0dB',1);
|
% PD_sig.spectrum("fignum",222,"displayname",'bla','normalizeTo0dB',1);
|
||||||
|
|
||||||
%%%%%% Low-pass RX (PD, El. Connectors and Scope %%%%%%
|
%%%%%% Low-pass RX (PD, El. Connectors and Scope %%%%%%
|
||||||
rx_bwl = 100e9;
|
rx_bwl = 100e9;
|
||||||
PD_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(PD_sig);
|
PD_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(PD_sig);
|
||||||
|
|
||||||
% %%%%%% Low-pass Scope %%%%%%
|
% %%%%%% Low-pass Scope %%%%%%
|
||||||
Lp_scpe = Filter('filtdegree',4,"f_cutoff",110e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
|
Lp_scpe = Filter('filtdegree',4,"f_cutoff",80e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
|
||||||
|
|
||||||
%%%%%% Scope %%%%%%
|
%%%%%% Scope %%%%%%
|
||||||
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
||||||
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth,...
|
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth,...
|
||||||
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
||||||
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',1,'H_lpf',Lp_scpe).process(PD_sig);
|
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',0,'H_lpf',Lp_scpe).process(PD_sig);
|
||||||
|
|
||||||
Scpe_sig_2sps = Scpe_sig.resample("fs_out",2*fsym);
|
Scpe_sig_2sps = Scpe_sig.resample("fs_out",2*fsym);
|
||||||
% Scpe_sig.spectrum("fignum",222,"displayname",'bla','normalizeTo0dB',1);
|
% Scpe_sig.spectrum("fignum",222,"displayname",'bla','normalizeTo0dB',1);
|
||||||
|
|
||||||
[~, Scpe_cell, ~, found_sync] = Scpe_sig_2sps.tsynch("reference", Symbols{l}, "fs_ref", fsym, "debug_plots", 1);
|
[~, Scpe_cell, ~, found_sync] = Scpe_sig_2sps.tsynch("reference", Symbols{l}, "fs_ref", fsym, "debug_plots", 1);
|
||||||
Rx_sig = Scpe_cell{1};
|
Rx_sig = Scpe_cell{1};
|
||||||
Rx_sig = Rx_sig.normalize("mode","rms");
|
Rx_sig = Rx_sig.normalize("mode","rms");
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
% FFE
|
% FFE
|
||||||
@@ -227,7 +319,7 @@ for realiz = 1:s.num_realiz
|
|||||||
output_dbt{l,ri,realiz} = dbt_results;
|
output_dbt{l,ri,realiz} = dbt_results;
|
||||||
|
|
||||||
end
|
end
|
||||||
|
|
||||||
end
|
end
|
||||||
|
|
||||||
res = struct();
|
res = struct();
|
||||||
@@ -237,6 +329,10 @@ for realiz = 1:s.num_realiz
|
|||||||
res.mlse = output_mlse;
|
res.mlse = output_mlse;
|
||||||
res.dbt = output_dbt;
|
res.dbt = output_dbt;
|
||||||
|
|
||||||
|
%%%%%% Demux after final (10) km %%%%%%
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
% Save results
|
% Save results
|
||||||
save(fullfile(output_root, fname), 'res', '-v7.3');
|
save(fullfile(output_root, fname), 'res', '-v7.3');
|
||||||
fprintf('Saved results to: %s\n', fullfile(output_root, fname));
|
fprintf('Saved results to: %s\n', fullfile(output_root, fname));
|
||||||
@@ -244,36 +340,7 @@ for realiz = 1:s.num_realiz
|
|||||||
|
|
||||||
|
|
||||||
end
|
end
|
||||||
|
|
||||||
function dispersion_vector = getDispersionVector(N, D, ref_zdw, randomize_ZDW, randomkey)
|
|
||||||
% s.MATLAB version of the Python generator shown above.
|
|
||||||
% Returns an N×1 vector (ps/(nm·km)).
|
|
||||||
%
|
|
||||||
% D is the nominal dispersion magnitude. For D>0 the link is segmented with
|
|
||||||
% alternating sign (+D, -D, +D, …). For D==0 it is flat (0) except for
|
|
||||||
% ZDW randomization. The ZDW detuning is ~N(0, 2 nm) around 1310 nm and is
|
|
||||||
% converted to dispersion via 0.09 ps/(nm·km) per nm.
|
|
||||||
|
|
||||||
% constants (matching the Python code)
|
|
||||||
meanLambda_nm = 1310; % center wavelength
|
|
||||||
sigma_nm = 2; % ZDW sigma
|
|
||||||
Dslope = 0.07; % ps/(nm·km) per nm detuning
|
|
||||||
|
|
||||||
% random ZDW-induced dispersion offset
|
|
||||||
if randomize_ZDW
|
|
||||||
rng(randomkey, 'twister');
|
|
||||||
rand_zdws_nm = meanLambda_nm + sigma_nm .* randn(N,1);
|
|
||||||
rand_D = (rand_zdws_nm - ref_zdw) .* Dslope; % ps/(nm·km)
|
|
||||||
else
|
|
||||||
rand_D = zeros(N,1);
|
|
||||||
end
|
|
||||||
|
|
||||||
% nominal segmented pattern (match Python intent; keep length N)
|
|
||||||
if D > 0
|
|
||||||
base = (-1) .^ ((0:N-1).'); % +1,-1,+1,-1,...
|
|
||||||
else % D == 0 (or anything else)
|
|
||||||
base = ones(N,1);
|
|
||||||
end
|
|
||||||
|
|
||||||
dispersion_vector = base .* D + rand_D; % ps/(nm·km)
|
|
||||||
end
|
end
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|||||||
379
projects/WDM/WDM_model_10km.m
Normal file
379
projects/WDM/WDM_model_10km.m
Normal file
@@ -0,0 +1,379 @@
|
|||||||
|
function WDM_model_10km(options)
|
||||||
|
%%% Run parameters
|
||||||
|
% TX
|
||||||
|
|
||||||
|
arguments
|
||||||
|
options.num_channels = 16;
|
||||||
|
options.channel_spacing = 400e9;
|
||||||
|
options.fiber_length_km = 0;
|
||||||
|
options.rand_key = 1;
|
||||||
|
options.num_realiz = 1;
|
||||||
|
options.fwm_mitigation_technique = "co";
|
||||||
|
end
|
||||||
|
|
||||||
|
%% Add the imdd_simulation framework to the path
|
||||||
|
if ispc
|
||||||
|
addpath(genpath('C:\Users\Silas\Documents\MATLAB\imdd_simulation'));
|
||||||
|
else
|
||||||
|
% Linux path on the cluster
|
||||||
|
addpath(genpath('/work_beegfs/sutef391/imdd_simulation'));
|
||||||
|
end
|
||||||
|
|
||||||
|
% Quiet the ambiguous CET warning (best is to set TZ in sbatch)
|
||||||
|
warning('off','MATLAB:datetime:AmbiguousTimeZone');
|
||||||
|
|
||||||
|
%% How many workers?
|
||||||
|
cpus = str2double(getenv('SLURM_CPUS_PER_TASK'));
|
||||||
|
if ~isfinite(cpus) || cpus < 1, cpus = max(1, feature('numcores')); end
|
||||||
|
|
||||||
|
% Use a per-job, node-local JobStorageLocation to avoid stale locks on $HOME
|
||||||
|
tmpbase = getenv('TMPDIR');
|
||||||
|
if isempty(tmpbase), tmpbase = tempdir; end
|
||||||
|
jsl = fullfile(tmpbase, sprintf('matlab_jobstorage_%s_%s', ...
|
||||||
|
getenv('USER'), getenv('SLURM_JOB_ID')));
|
||||||
|
if ~exist(jsl,'dir'); mkdir(jsl); end
|
||||||
|
|
||||||
|
if 0
|
||||||
|
% Configure the local cluster explicitly and start the pool
|
||||||
|
c = parcluster('local');
|
||||||
|
c.NumWorkers = cpus;
|
||||||
|
c.JobStorageLocation = jsl;
|
||||||
|
|
||||||
|
p = gcp('nocreate');
|
||||||
|
if isempty(p) || p.NumWorkers ~= cpus
|
||||||
|
if ~isempty(p), delete(p); end
|
||||||
|
p = parpool(c, cpus);
|
||||||
|
end
|
||||||
|
fprintf('parpool up with %d workers; JobStorage=%s\n', p.NumWorkers, c.JobStorageLocation);
|
||||||
|
end
|
||||||
|
|
||||||
|
%% result filename (timestamp + optional job id)
|
||||||
|
t = datetime('now','TimeZone','local','Format','yyyyMMdd_HHmmss');
|
||||||
|
jobid = getenv('SLURM_JOB_ID'); if isempty(jobid), jobid = 'nojid'; end
|
||||||
|
host = getenv('HOSTNAME'); if isempty(host), host = 'localhost'; end
|
||||||
|
|
||||||
|
% Output directory depends on platform
|
||||||
|
foldname = sprintf('%dkm_%dch_%dghz_%s', options.fiber_length_km(end), options.num_channels, options.channel_spacing.*1e-9, options.fwm_mitigation_technique);
|
||||||
|
if ispc
|
||||||
|
output_root = fullfile('C:\Users\Silas\Documents\MATLAB\Datensätze\FWM_2025\',foldname,'\');
|
||||||
|
else
|
||||||
|
output_root = fullfile('/work_beegfs/sutef391/results_WDM',foldname,'\');
|
||||||
|
end
|
||||||
|
if ~exist(output_root,'dir'), mkdir(output_root); end
|
||||||
|
|
||||||
|
fname = sprintf('WDM_%s_%s_%s_%dkm_%dch_%dghz_%s.mat', char(t), host, jobid, options.fiber_length_km(end), options.num_channels, options.channel_spacing.*1e-9, options.fwm_mitigation_technique);
|
||||||
|
|
||||||
|
%% Settings
|
||||||
|
s.num_realiz = options.num_realiz;
|
||||||
|
s.wavelengthplan = calcWavelengthPlan(options.num_channels, options.channel_spacing, 1310);
|
||||||
|
link_length = options.fiber_length_km;
|
||||||
|
s.pmd = 0;%0.1;
|
||||||
|
s.gamma = 0;%0.0023;
|
||||||
|
|
||||||
|
s.M = 4;
|
||||||
|
fsym = 112e9;
|
||||||
|
fdac = 2*fsym;
|
||||||
|
fadc = 120000000000;
|
||||||
|
s.random_key = options.rand_key;
|
||||||
|
|
||||||
|
% Laser / s.Modulator
|
||||||
|
vbias_rel = 0.5;
|
||||||
|
u_pi = 4.6;
|
||||||
|
vbias = -vbias_rel*u_pi;
|
||||||
|
laser_linewidth = 0e6;
|
||||||
|
|
||||||
|
% EQ SETTINGS
|
||||||
|
vnle_order1 = 50;
|
||||||
|
vnle_order2 = 3;
|
||||||
|
vnle_order3 = 3;
|
||||||
|
vnle_order = [vnle_order1,vnle_order2,vnle_order3];
|
||||||
|
|
||||||
|
dfe_order = [0 0 0];
|
||||||
|
len_tr = 4096*2;
|
||||||
|
mu_ffe1 = 0.0001;
|
||||||
|
mu_ffe2 = 0.0008;
|
||||||
|
mu_ffe3 = 0.001;
|
||||||
|
mu_dc = 0.005;
|
||||||
|
mu_ffe = [mu_ffe1 mu_ffe3 mu_ffe3];
|
||||||
|
mu_dfe = 0.0004;
|
||||||
|
|
||||||
|
% DB Stuff
|
||||||
|
db_precode = 0;
|
||||||
|
db_encode = 0;
|
||||||
|
duob_mode = db_mode.no_db;
|
||||||
|
apply_pulsef = 0;
|
||||||
|
|
||||||
|
rcalpha = 0.05;
|
||||||
|
Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rc","pulselength",16,"alpha",rcalpha);
|
||||||
|
|
||||||
|
N = numel(s.wavelengthplan);
|
||||||
|
f_plan = physconst('lightspeed')./(s.wavelengthplan.*1e-9);
|
||||||
|
margin = 2e12; % some THz left and right
|
||||||
|
f_span = (max(f_plan)+margin)-(min(f_plan)-margin);
|
||||||
|
f_nyq = f_span/2;
|
||||||
|
|
||||||
|
kover = 4;
|
||||||
|
upsample_required = f_nyq./(fdac*kover/2);
|
||||||
|
upsample_pow = 2^nextpow2(upsample_required);
|
||||||
|
upsample_ceil = ceil(upsample_required); %#ok<NASGU>
|
||||||
|
|
||||||
|
s.f_opt = fdac*kover*upsample_pow;
|
||||||
|
s.f_opt_nyq = s.f_opt/2;
|
||||||
|
|
||||||
|
signal_cell = {};
|
||||||
|
Symbols = {};
|
||||||
|
Tx_bits = {};
|
||||||
|
|
||||||
|
s.rop = -12;%:0.75:-0;
|
||||||
|
|
||||||
|
%% ---------- Intermediate evaluation points (distance dimension) ----------
|
||||||
|
% Evaluate BER at these intermediate distances (km), plus always include the final link_length if > 0.
|
||||||
|
segment_length = 1; % km (must match fiber loop below)
|
||||||
|
|
||||||
|
eval_dist_km = [10];
|
||||||
|
eval_dist_km = eval_dist_km(eval_dist_km <= link_length);
|
||||||
|
|
||||||
|
% Always include final distance (if > 0) and avoid duplicates
|
||||||
|
if link_length > 0
|
||||||
|
if isempty(eval_dist_km) || eval_dist_km(end) ~= link_length
|
||||||
|
eval_dist_km = unique([eval_dist_km link_length], 'stable');
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
% Convert to segment indices; require integer multiples of segment_length
|
||||||
|
eval_seg = eval_dist_km ./ segment_length;
|
||||||
|
if any(abs(eval_seg - round(eval_seg)) > 1e-12)
|
||||||
|
error('eval_dist_km must be integer multiples of segment_length=%g km.', segment_length);
|
||||||
|
end
|
||||||
|
eval_seg = round(eval_seg);
|
||||||
|
nEval = numel(eval_seg);
|
||||||
|
% -------------------------------------------------------------------------
|
||||||
|
|
||||||
|
%% Preallocate outputs (add eval distance as 4th dimension)
|
||||||
|
output_ffe = cell(length(s.wavelengthplan), length(s.rop), s.num_realiz, nEval);
|
||||||
|
output_dfe = cell(length(s.wavelengthplan), length(s.rop), s.num_realiz, nEval);
|
||||||
|
output_vnle = cell(length(s.wavelengthplan), length(s.rop), s.num_realiz, nEval);
|
||||||
|
output_mlse = cell(length(s.wavelengthplan), length(s.rop), s.num_realiz, nEval);
|
||||||
|
output_dbt = cell(length(s.wavelengthplan), length(s.rop), s.num_realiz, nEval);
|
||||||
|
|
||||||
|
s.p_launch = 3;
|
||||||
|
s.p = options.fwm_mitigation_technique;
|
||||||
|
|
||||||
|
switch s.p
|
||||||
|
case "co"
|
||||||
|
pol_rot = 100.*ones(1,length(s.wavelengthplan));
|
||||||
|
d_local = 0;
|
||||||
|
case "pair"
|
||||||
|
pol_rot = repmat([100,100,0,0],1,length(s.wavelengthplan)/4);
|
||||||
|
d_local = 0;
|
||||||
|
case "alt"
|
||||||
|
pol_rot = repmat([100,0,100,0],1,length(s.wavelengthplan)/4);
|
||||||
|
d_local = 0;
|
||||||
|
case "seg"
|
||||||
|
pol_rot = 100.*ones(1,length(s.wavelengthplan));
|
||||||
|
d_local = 3;
|
||||||
|
otherwise
|
||||||
|
error('Unknown fwm_mitigation_technique: %s', string(s.p));
|
||||||
|
end
|
||||||
|
|
||||||
|
for realiz = 1:s.num_realiz
|
||||||
|
|
||||||
|
% Reset per-realization storage (so each realiz writes only its slice)
|
||||||
|
signal_cell = cell(1,N);
|
||||||
|
Symbols = cell(1,N);
|
||||||
|
Tx_bits = cell(1,N);
|
||||||
|
|
||||||
|
%% ---------- TX per channel ----------
|
||||||
|
for l = 1:N
|
||||||
|
|
||||||
|
[Digi_sig,Symbols{l},Tx_bits{l}] = PAMsource( ...
|
||||||
|
"fsym",fsym,"M",s.M,"order",18,"useprbs",0, ...
|
||||||
|
"fs_out",fdac, ...
|
||||||
|
"applyclipping",0,"clipfactor",1.5, ...
|
||||||
|
"applypulseform",apply_pulsef,"pulseformer",Pform, ...
|
||||||
|
"randkey",s.random_key+l+realiz, ...
|
||||||
|
"db_precode",db_precode,"db_encode",db_encode, ...
|
||||||
|
"mrds_code",0,"mrds_blocklength",512,"duobinary_mode",duob_mode ...
|
||||||
|
).process();
|
||||||
|
|
||||||
|
Lp_awg = Filter('filtdegree',3,"f_cutoff",56e9,"fs",fdac*kover,"filterType",filtertypes.gaussian,"active",true);
|
||||||
|
El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",1,"kover",kover, ...
|
||||||
|
"bit_resolution",6,"upsampling_method","samplehold","precomp_sinc_rolloff",0, ...
|
||||||
|
"H_lpf",Lp_awg,"dac_max",0.6,"dac_min",-0.6).process(Digi_sig);
|
||||||
|
|
||||||
|
% Electrical Driver Amplifier
|
||||||
|
El_sig = El_sig.normalize("mode","oneone");
|
||||||
|
scaling = 0.6*(u_pi/2-abs(vbias-u_pi/2));
|
||||||
|
El_sig = El_sig .* scaling;
|
||||||
|
|
||||||
|
% E/O Conversion
|
||||||
|
Eml_out = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig.fs, ...
|
||||||
|
"lambda",s.wavelengthplan(l),"bias",vbias,"u_pi",u_pi, ...
|
||||||
|
"linewidth",laser_linewidth,"randomkey",s.random_key+l+realiz,"alpha",0.8).process(El_sig);
|
||||||
|
|
||||||
|
signal_cell{l} = Polarization_Controller("mode","rot_power","desired_power",pol_rot(l)).process(Eml_out);
|
||||||
|
end
|
||||||
|
|
||||||
|
%% ---------- WDM mux + launch ----------
|
||||||
|
Opt_sig_wdm = Optical_Multiplex("fs_in",fdac*kover,"fs_out",upsample_pow*fdac*kover, ...
|
||||||
|
"lambda_center",1310,"random_key",0,"filtype",1,"B",120e9).process(signal_cell);
|
||||||
|
|
||||||
|
Opt_sig_wdm = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power", ...
|
||||||
|
"amplification_db",s.p_launch+10*log10(N)).process(Opt_sig_wdm);
|
||||||
|
|
||||||
|
%% ---------- Fiber propagation ----------
|
||||||
|
Opt_sig_wdm_fib = Opt_sig_wdm;
|
||||||
|
|
||||||
|
nSegments = link_length/segment_length;
|
||||||
|
if abs(nSegments - round(nSegments)) > 1e-12
|
||||||
|
error('fiber_length_km=%g must be an integer multiple of segment_length=%g km.', link_length, segment_length);
|
||||||
|
end
|
||||||
|
nSegments = round(nSegments);
|
||||||
|
|
||||||
|
zdw = 1310;
|
||||||
|
randomize_D = true;
|
||||||
|
Dvec = getDispersionVector(nSegments, d_local, zdw, randomize_D, s.random_key+realiz);
|
||||||
|
|
||||||
|
eval_ptr = 1; % points into eval_seg
|
||||||
|
|
||||||
|
for seg = 1:nSegments
|
||||||
|
|
||||||
|
fprintf('Realiz %d/%d: Segment %d/%d \n', realiz, s.num_realiz, seg, nSegments);
|
||||||
|
|
||||||
|
Opt_sig_wdm_fib = DP_Fiber("L",segment_length,"D",Dvec(seg),"Dpmd",s.pmd,"Ds",0.07, ...
|
||||||
|
"beat_len",10,"corr_len",100,"dz",1,"manakov",0, ...
|
||||||
|
"gamma",s.gamma,"lambda",zdw,"n_waveplates",10,"SS_dphimax",0.01, ...
|
||||||
|
"SS_dzmax",50,"SS_dzmin",10,"X_alpha",0.3,"X_beta",0,"rng",1).process(Opt_sig_wdm_fib);
|
||||||
|
|
||||||
|
% -------- Evaluate at intermediate distance (if scheduled) --------
|
||||||
|
if eval_ptr <= nEval && seg == eval_seg(eval_ptr)
|
||||||
|
|
||||||
|
%%%%%% Demux at this distance %%%%%%
|
||||||
|
Opt_sig_wdm_demux = Optical_Demultiplex("attenuation",0,"B",200e9,"filtype",1, ...
|
||||||
|
"fs_out",fdac*kover,"fs_in",fdac*kover*upsample_pow,"lambda_center",1310).process(Opt_sig_wdm_fib);
|
||||||
|
|
||||||
|
|
||||||
|
for ri = 1:length(s.rop)
|
||||||
|
for l = 1:N
|
||||||
|
|
||||||
|
%%%%%% ROP %%%%%%
|
||||||
|
Opt_sig_wdm_rx = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power", ...
|
||||||
|
"amplification_db",s.rop(ri)).process(Opt_sig_wdm_demux{l});
|
||||||
|
|
||||||
|
%%%%%% PD Square Law %%%%%%
|
||||||
|
assert(fdac*kover==Opt_sig_wdm_rx.fs,'Sampling Frequencies do not match! Check previous steps');
|
||||||
|
PD_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20, ...
|
||||||
|
"nep",1.8e-11,"randomkey",s.random_key+l+realiz).process(Opt_sig_wdm_rx);
|
||||||
|
|
||||||
|
%%%%%% Low-pass RX (PD, El. Connectors and Scope) %%%%%%
|
||||||
|
rx_bwl = 100e9;
|
||||||
|
PD_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(PD_sig);
|
||||||
|
|
||||||
|
%%%%%% Low-pass Scope %%%%%%
|
||||||
|
Lp_scpe = Filter('filtdegree',4,"f_cutoff",80e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
|
||||||
|
|
||||||
|
%%%%%% Scope %%%%%%
|
||||||
|
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc, ...
|
||||||
|
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth, ...
|
||||||
|
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0, ...
|
||||||
|
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',0,'H_lpf',Lp_scpe).process(PD_sig);
|
||||||
|
|
||||||
|
Scpe_sig_2sps = Scpe_sig.resample("fs_out",2*fsym);
|
||||||
|
|
||||||
|
[~, Scpe_cell, ~, found_sync] = Scpe_sig_2sps.tsynch("reference", Symbols{l}, "fs_ref", fsym, "debug_plots", 1); %#ok<ASGLU>
|
||||||
|
Rx_sig = Scpe_cell{1};
|
||||||
|
Rx_sig = Rx_sig.normalize("mode","rms");
|
||||||
|
|
||||||
|
% -------------------- FFE --------------------
|
||||||
|
ffe_order = [50, 0, 0];
|
||||||
|
eq_ffe = EQ("Ne",ffe_order,"Nb",[0,0,0],"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",0);
|
||||||
|
|
||||||
|
ffe_results = ffe(eq_ffe,s.M,Rx_sig,Symbols{l},Tx_bits{l}, ...
|
||||||
|
"precode_mode",duob_mode, ...
|
||||||
|
'showAnalysis',0, ...
|
||||||
|
"postFFE",[], ...
|
||||||
|
"eth_style_symbol_mapping",0);
|
||||||
|
|
||||||
|
output_ffe{l,ri,realiz,eval_ptr} = ffe_results;
|
||||||
|
|
||||||
|
% -------------------- DFE --------------------
|
||||||
|
dfe_order = [50, 0, 0];
|
||||||
|
eq_dfe = EQ("Ne",dfe_order,"Nb",[2,0,0],"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",0);
|
||||||
|
|
||||||
|
dfe_results = ffe(eq_dfe,s.M,Rx_sig,Symbols{l},Tx_bits{l}, ...
|
||||||
|
"precode_mode",duob_mode, ...
|
||||||
|
'showAnalysis',0, ...
|
||||||
|
"postFFE",[], ...
|
||||||
|
"eth_style_symbol_mapping",0);
|
||||||
|
|
||||||
|
output_dfe{l,ri,realiz,eval_ptr} = dfe_results;
|
||||||
|
|
||||||
|
% -------------------- VNLE + MLSE --------------------
|
||||||
|
pf_ncoeffs = 1;
|
||||||
|
ffe_order = [50, 5, 5];
|
||||||
|
eq_ = EQ("Ne",ffe_order,"Nb",dfe_order,"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
pf_ = Postfilter("ncoeff",pf_ncoeffs,"useBurg",1);
|
||||||
|
|
||||||
|
useviterbi = 0;
|
||||||
|
if useviterbi
|
||||||
|
mlse_ = MLSE_viterbi("duobinary_output",0,'M',s.M,'trellis_states',PAMmapper(s.M,0).levels);
|
||||||
|
else
|
||||||
|
mlse_ = MLSE("duobinary_output",0,'M',s.M,'trellis_states',PAMmapper(s.M,0).levels);
|
||||||
|
end
|
||||||
|
|
||||||
|
[vnle_results, mlse_results] = vnle_postfilter_mlse(eq_, pf_, mlse_, s.M, Rx_sig, Symbols{l},Tx_bits{l}, ...
|
||||||
|
"precode_mode", duob_mode, ...
|
||||||
|
'showAnalysis', 0, ...
|
||||||
|
"postFFE", [], ...
|
||||||
|
"eth_style_symbol_mapping", 0);
|
||||||
|
|
||||||
|
output_vnle{l,ri,realiz,eval_ptr} = vnle_results;
|
||||||
|
output_mlse{l,ri,realiz,eval_ptr} = mlse_results;
|
||||||
|
|
||||||
|
% -------------------- DB target --------------------
|
||||||
|
useviterbi = 0;
|
||||||
|
if useviterbi
|
||||||
|
mlse_db_ = MLSE_viterbi("duobinary_output",0,'M',s.M,'trellis_states',PAMmapper(s.M,0).levels);
|
||||||
|
else
|
||||||
|
mlse_db_ = MLSE("DIR",[1,1],"duobinary_output",0,"M",s.M,'trellis_states',PAMmapper(s.M,0).levels);
|
||||||
|
end
|
||||||
|
|
||||||
|
ffe_order = [50, 5, 5];
|
||||||
|
eq_ = EQ("Ne",ffe_order,"Nb",dfe_order,"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
|
||||||
|
dbt_results = duobinary_target(eq_, mlse_db_, s.M, Rx_sig, Symbols{l},Tx_bits{l}, ...
|
||||||
|
"precode_mode", duob_mode, ...
|
||||||
|
'showAnalysis', 0, ...
|
||||||
|
"postFFE", []);
|
||||||
|
|
||||||
|
output_dbt{l,ri,realiz,eval_ptr} = dbt_results;
|
||||||
|
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
eval_ptr = eval_ptr + 1;
|
||||||
|
end
|
||||||
|
% ----------------------------------------------------------------
|
||||||
|
end
|
||||||
|
|
||||||
|
%% Save results (per realization)
|
||||||
|
res = struct();
|
||||||
|
res.settings = s;
|
||||||
|
res.eval_dist_km = eval_dist_km;
|
||||||
|
res.ffe = output_ffe;
|
||||||
|
res.dfe = output_dfe;
|
||||||
|
res.vnle = output_vnle;
|
||||||
|
res.mlse = output_mlse;
|
||||||
|
res.dbt = output_dbt;
|
||||||
|
|
||||||
|
save(fullfile(output_root, fname), 'res', '-v7.3');
|
||||||
|
fprintf('Saved results to: %s\n', fullfile(output_root, fname));
|
||||||
|
disp(datetime('now','TimeZone','local','Format','yyyyMs.Mdd_HHmmss'));
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
end
|
||||||
900
projects/WDM/WDM_model_10km_queue.m
Normal file
900
projects/WDM/WDM_model_10km_queue.m
Normal file
@@ -0,0 +1,900 @@
|
|||||||
|
function WDM_model_10km_queue(options)
|
||||||
|
%WDM_model_10km_queue_memopt
|
||||||
|
% Queue/pipeline version with:
|
||||||
|
% (a) reduced variable lifetime / fewer unnecessary copies (clear large temporaries early)
|
||||||
|
% (b) worker-side memory monitoring (RSS logging to per-worker files)
|
||||||
|
|
||||||
|
%%% Run parameters
|
||||||
|
arguments
|
||||||
|
options.num_channels = 8;
|
||||||
|
options.channel_spacing = 400e9;
|
||||||
|
options.fiber_length_km = 10;
|
||||||
|
options.rand_key = 1;
|
||||||
|
options.num_realiz = 1;
|
||||||
|
options.fwm_mitigation_technique = "co";
|
||||||
|
options.chirpalpha = 0;
|
||||||
|
end
|
||||||
|
|
||||||
|
%% Add the imdd_simulation framework to the path
|
||||||
|
if ispc
|
||||||
|
addpath(genpath('C:\Users\Silas\Documents\MATLAB\imdd_simulation'));
|
||||||
|
else
|
||||||
|
addpath(genpath('/work_beegfs/sutef391/imdd_simulation'));
|
||||||
|
end
|
||||||
|
|
||||||
|
warning('off','MATLAB:datetime:AmbiguousTimeZone');
|
||||||
|
|
||||||
|
%% How many workers?
|
||||||
|
cpus = str2double(getenv('SLURM_CPUS_PER_TASK'));
|
||||||
|
if ~isfinite(cpus) || cpus < 1, cpus = max(1, feature('numcores'))-1; end
|
||||||
|
|
||||||
|
% Use a per-job, node-local JobStorageLocation to avoid stale locks on $HOME
|
||||||
|
tmpbase = getenv('TMPDIR');
|
||||||
|
if isempty(tmpbase), tmpbase = tempdir; end
|
||||||
|
jsl = fullfile(tmpbase, sprintf('matlab_jobstorage_%s_%s', ...
|
||||||
|
getenv('USER'), getenv('SLURM_JOB_ID')));
|
||||||
|
if ~exist(jsl,'dir'); mkdir(jsl); end
|
||||||
|
|
||||||
|
% Start pool once
|
||||||
|
c = parcluster('local');
|
||||||
|
c.NumWorkers = cpus;
|
||||||
|
c.JobStorageLocation = jsl;
|
||||||
|
|
||||||
|
p = gcp('nocreate');
|
||||||
|
if isempty(p) || p.NumWorkers ~= cpus
|
||||||
|
if ~isempty(p), delete(p); end
|
||||||
|
p = parpool(c, cpus,"IdleTimeout",300);
|
||||||
|
end
|
||||||
|
fprintf('parpool up with %d workers; JobStorage=%s\n', p.NumWorkers, c.JobStorageLocation);
|
||||||
|
|
||||||
|
%% result filename (timestamp + optional job id)
|
||||||
|
t = datetime('now','TimeZone','local','Format','yyyyMMdd_HHmmss');
|
||||||
|
jobid = getenv('SLURM_JOB_ID'); if isempty(jobid), jobid = 'nojid'; end
|
||||||
|
host = getenv('HOSTNAME'); if isempty(host), host = 'localhost'; end
|
||||||
|
|
||||||
|
foldname = sprintf('%dkm_%dch_%dghz_%s', options.fiber_length_km(end), options.num_channels, options.channel_spacing.*1e-9, options.fwm_mitigation_technique);
|
||||||
|
if ispc
|
||||||
|
output_root = fullfile('C:\Users\Silas\Documents\MATLAB\Datensätze\FWM_2025\',foldname,'\');
|
||||||
|
else
|
||||||
|
output_root = fullfile('/work_beegfs/sutef391/results_WDM',foldname,'\');
|
||||||
|
end
|
||||||
|
if ~exist(output_root,'dir'), mkdir(output_root); end
|
||||||
|
|
||||||
|
fname = sprintf('WDM_%s_%s_%s_%dkm_%dch_%dghz_%s_alpha%0.1f', char(t), host, jobid, options.fiber_length_km(end), options.num_channels, options.channel_spacing.*1e-9, options.fwm_mitigation_technique, options.chirpalpha);
|
||||||
|
fname = strrep(fname,'.','_');
|
||||||
|
fname = [fname,'.mat'];
|
||||||
|
|
||||||
|
% Worker memory logs directory
|
||||||
|
memlog_dir = fullfile(output_root, 'memlogs');
|
||||||
|
if ~exist(memlog_dir,'dir'), mkdir(memlog_dir); end
|
||||||
|
|
||||||
|
%% Settings
|
||||||
|
s.num_realiz = options.num_realiz;
|
||||||
|
s.wavelengthplan = calcWavelengthPlan(options.num_channels, options.channel_spacing, 1310);
|
||||||
|
link_length = options.fiber_length_km;
|
||||||
|
s.pmd = 0;%0.1;
|
||||||
|
s.gamma = 0;%0.0023;
|
||||||
|
|
||||||
|
s.M = 4;
|
||||||
|
fsym = 112e9;
|
||||||
|
fdac = 2*fsym;
|
||||||
|
fadc = 120000000000;
|
||||||
|
s.random_key = options.rand_key;
|
||||||
|
|
||||||
|
% Laser / s.Modulator
|
||||||
|
vbias_rel = 0.5;
|
||||||
|
u_pi = 4.6;
|
||||||
|
vbias = -vbias_rel*u_pi;
|
||||||
|
laser_linewidth = 0e6;
|
||||||
|
|
||||||
|
% EQ SETTINGS
|
||||||
|
dfe_order = [0 0 0];
|
||||||
|
len_tr = 4096*2;
|
||||||
|
mu_ffe1 = 0.0001;
|
||||||
|
mu_ffe2 = 0.0008;
|
||||||
|
mu_ffe3 = 0.001;
|
||||||
|
mu_dc = 0.005;
|
||||||
|
mu_ffe = [mu_ffe1 mu_ffe3 mu_ffe3];
|
||||||
|
mu_dfe = 0.0004;
|
||||||
|
|
||||||
|
% DB Stuff
|
||||||
|
db_precode = 0;
|
||||||
|
db_encode = 0;
|
||||||
|
duob_mode = db_mode.no_db;
|
||||||
|
apply_pulsef = 0;
|
||||||
|
|
||||||
|
rcalpha = 0.05;
|
||||||
|
Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rc","pulselength",16,"alpha",rcalpha);
|
||||||
|
|
||||||
|
N = numel(s.wavelengthplan);
|
||||||
|
f_plan = physconst('lightspeed')./(s.wavelengthplan.*1e-9);
|
||||||
|
margin = 2e12; % some THz left and right
|
||||||
|
f_span = (max(f_plan)+margin)-(min(f_plan)-margin);
|
||||||
|
f_nyq = f_span/2;
|
||||||
|
|
||||||
|
kover = 4;
|
||||||
|
upsample_required = f_nyq./(fdac*kover/2);
|
||||||
|
upsample_pow = 2^nextpow2(upsample_required);
|
||||||
|
|
||||||
|
s.f_opt = fdac*kover*upsample_pow;
|
||||||
|
s.f_opt_nyq = s.f_opt/2;
|
||||||
|
|
||||||
|
s.rop = -10:1:0;
|
||||||
|
|
||||||
|
%% ---------- Intermediate evaluation points (distance dimension) ----------
|
||||||
|
segment_length = 1; % km (must match fiber loop below)
|
||||||
|
|
||||||
|
eval_dist_km = [2,4,6,8,10];
|
||||||
|
eval_dist_km = eval_dist_km(eval_dist_km <= link_length);
|
||||||
|
|
||||||
|
if link_length > 0
|
||||||
|
if isempty(eval_dist_km) || eval_dist_km(end) ~= link_length
|
||||||
|
eval_dist_km = unique([eval_dist_km link_length], 'stable');
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
eval_seg = eval_dist_km ./ segment_length;
|
||||||
|
if any(abs(eval_seg - round(eval_seg)) > 1e-12)
|
||||||
|
error('eval_dist_km must be integer multiples of segment_length=%g km.', segment_length);
|
||||||
|
end
|
||||||
|
eval_seg = round(eval_seg);
|
||||||
|
nEval = numel(eval_seg);
|
||||||
|
% -------------------------------------------------------------------------
|
||||||
|
|
||||||
|
%% Preallocate outputs (eval distance as 4th dimension)
|
||||||
|
output_ffe = cell(N, length(s.rop), s.num_realiz, nEval);
|
||||||
|
output_dfe = cell(N, length(s.rop), s.num_realiz, nEval);
|
||||||
|
output_vnle = cell(N, length(s.rop), s.num_realiz, nEval);
|
||||||
|
output_mlse = cell(N, length(s.rop), s.num_realiz, nEval);
|
||||||
|
output_dbt = cell(N, length(s.rop), s.num_realiz, nEval);
|
||||||
|
|
||||||
|
s.p_launch = 3;
|
||||||
|
s.p = options.fwm_mitigation_technique;
|
||||||
|
|
||||||
|
switch s.p
|
||||||
|
case "co"
|
||||||
|
pol_rot = 100.*ones(1,N);
|
||||||
|
d_local = 0;
|
||||||
|
case "pair"
|
||||||
|
pol_rot = repmat([100,100,0,0],1,N/4);
|
||||||
|
d_local = 0;
|
||||||
|
case "alt"
|
||||||
|
pol_rot = repmat([100,0,100,0],1,N/4);
|
||||||
|
d_local = 0;
|
||||||
|
case "seg"
|
||||||
|
pol_rot = 100.*ones(1,N);
|
||||||
|
d_local = 3;
|
||||||
|
otherwise
|
||||||
|
error('Unknown fwm_mitigation_technique: %s', string(s.p));
|
||||||
|
end
|
||||||
|
|
||||||
|
for realiz = 1:s.num_realiz
|
||||||
|
|
||||||
|
% Per-realization TX storage (needed later for DSP: Symbols/Tx_bits)
|
||||||
|
signal_cell = cell(1,N);
|
||||||
|
Symbols = cell(1,N);
|
||||||
|
Tx_bits = cell(1,N);
|
||||||
|
|
||||||
|
% -------- Job queue containers --------
|
||||||
|
F = parallel.FevalFuture.empty(0,1);
|
||||||
|
meta = struct('l',{},'ri',{},'realiz',{},'eval_ptr',{});
|
||||||
|
% -------------------------------------
|
||||||
|
|
||||||
|
%% ---------- TX per channel ----------
|
||||||
|
for l = 1:N
|
||||||
|
|
||||||
|
[Digi_sig,Symbols{l},Tx_bits{l}] = PAMsource( ...
|
||||||
|
"fsym",fsym,"M",s.M,"order",15,"useprbs",0, ...
|
||||||
|
"fs_out",fdac, ...
|
||||||
|
"applyclipping",0,"clipfactor",1.5, ...
|
||||||
|
"applypulseform",apply_pulsef,"pulseformer",Pform, ...
|
||||||
|
"randkey",s.random_key+l+realiz, ...
|
||||||
|
"db_precode",db_precode,"db_encode",db_encode, ...
|
||||||
|
"mrds_code",0,"mrds_blocklength",512,"duobinary_mode",duob_mode ...
|
||||||
|
).process();
|
||||||
|
|
||||||
|
Lp_awg = Filter('filtdegree',3,"f_cutoff",56e9,"fs",fdac*kover, ...
|
||||||
|
"filterType",filtertypes.gaussian,"active",true);
|
||||||
|
|
||||||
|
El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",1,"kover",kover, ...
|
||||||
|
"bit_resolution",6,"upsampling_method","samplehold","precomp_sinc_rolloff",0, ...
|
||||||
|
"H_lpf",Lp_awg,"dac_max",0.6,"dac_min",-0.6).process(Digi_sig);
|
||||||
|
|
||||||
|
% Digi_sig not needed after AWG
|
||||||
|
clear Digi_sig
|
||||||
|
|
||||||
|
% Electrical Driver Amplifier
|
||||||
|
El_sig = El_sig.normalize("mode","oneone");
|
||||||
|
scaling = 0.6*(u_pi/2-abs(vbias-u_pi/2));
|
||||||
|
El_sig = El_sig .* scaling;
|
||||||
|
|
||||||
|
% E/O Conversion
|
||||||
|
Eml_out = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig.fs, ...
|
||||||
|
"lambda",s.wavelengthplan(l),"bias",vbias,"u_pi",u_pi, ...
|
||||||
|
"linewidth",laser_linewidth,"randomkey",s.random_key+l+realiz,"alpha",options.chirpalpha).process(El_sig);
|
||||||
|
|
||||||
|
s.alpha = options.chirpalpha;
|
||||||
|
|
||||||
|
% El_sig not needed after EML
|
||||||
|
clear El_sig
|
||||||
|
|
||||||
|
signal_cell{l} = Polarization_Controller("mode","rot_power","desired_power",pol_rot(l)).process(Eml_out);
|
||||||
|
|
||||||
|
% Eml_out not needed after pol controller
|
||||||
|
clear Eml_out Lp_awg
|
||||||
|
end
|
||||||
|
|
||||||
|
disp('Signal generated for all channels.');
|
||||||
|
|
||||||
|
%% ---------- WDM mux + launch ----------
|
||||||
|
Opt_sig_wdm = Optical_Multiplex("fs_in",fdac*kover,"fs_out",upsample_pow*fdac*kover, ...
|
||||||
|
"lambda_center",1310,"random_key",0,"filtype",1,"B",120e9).process(signal_cell);
|
||||||
|
|
||||||
|
% IMPORTANT: signal_cell is not needed anymore after multiplex (Symbols/Tx_bits remain)
|
||||||
|
clear signal_cell
|
||||||
|
|
||||||
|
Opt_sig_wdm = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power", ...
|
||||||
|
"amplification_db",s.p_launch+10*log10(N)).process(Opt_sig_wdm);
|
||||||
|
|
||||||
|
%% ---------- Fiber propagation ----------
|
||||||
|
Opt_sig_wdm_fib = Opt_sig_wdm;
|
||||||
|
|
||||||
|
% Opt_sig_wdm no longer needed as separate handle/object
|
||||||
|
clear Opt_sig_wdm
|
||||||
|
|
||||||
|
nSegments = link_length/segment_length;
|
||||||
|
if abs(nSegments - round(nSegments)) > 1e-12
|
||||||
|
error('fiber_length_km=%g must be an integer multiple of segment_length=%g km.', link_length, segment_length);
|
||||||
|
end
|
||||||
|
nSegments = round(nSegments);
|
||||||
|
|
||||||
|
zdw = 1310;
|
||||||
|
randomize_D = false;
|
||||||
|
|
||||||
|
% Guard for 0 km: avoid calling getDispersionVector(0,...) if it doesn't support it
|
||||||
|
if nSegments > 0
|
||||||
|
Dvec = getDispersionVector(nSegments, d_local, zdw, randomize_D, s.random_key+realiz);
|
||||||
|
else
|
||||||
|
Dvec = [];
|
||||||
|
end
|
||||||
|
|
||||||
|
eval_ptr = 1;
|
||||||
|
% =================== Queue throttle (prevents OOM) ===================
|
||||||
|
% Limit how many futures can be outstanding (running + queued + finished-not-yet-fetched).
|
||||||
|
maxInFlight = max(2, p.NumWorkers);
|
||||||
|
% =====================================================================
|
||||||
|
|
||||||
|
% -------- Evaluate at 0 km (BTB) if requested --------
|
||||||
|
if eval_ptr <= nEval && eval_seg(eval_ptr) == 0
|
||||||
|
disp('0 km before demux.');
|
||||||
|
Opt_sig_wdm_demux = Optical_Demultiplex("attenuation",0,"B",200e9,"filtype",1, ...
|
||||||
|
"fs_out",fdac*kover,"fs_in",fdac*kover*upsample_pow,"lambda_center",1310).process(Opt_sig_wdm_fib);
|
||||||
|
|
||||||
|
cnt = 0;
|
||||||
|
total = length(s.rop)*N;
|
||||||
|
fprintf('total of %d jobs to enqueue at 0 km\n', total);
|
||||||
|
|
||||||
|
for ri = 1:length(s.rop)
|
||||||
|
for l = 1:N
|
||||||
|
cnt = cnt + 1;
|
||||||
|
|
||||||
|
% ---- Throttle before enqueueing more futures ----
|
||||||
|
[F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt] = ...
|
||||||
|
throttle_inflight(F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt, maxInFlight);
|
||||||
|
|
||||||
|
m = struct('l',l,'ri',ri,'realiz',realiz,'eval_ptr',eval_ptr);
|
||||||
|
|
||||||
|
[F, meta] = enqueue_atomic(F, meta, p, @rx_job, 5, ...
|
||||||
|
Opt_sig_wdm_demux{l}, ...
|
||||||
|
s.rop(ri), ...
|
||||||
|
Symbols{l}, Tx_bits{l}, ...
|
||||||
|
s, l, ri, realiz, eval_ptr, ...
|
||||||
|
fdac, kover, fadc, fsym, ...
|
||||||
|
len_tr, mu_dc, mu_ffe, mu_dfe, dfe_order, duob_mode, ...
|
||||||
|
memlog_dir, ...
|
||||||
|
'META', m);
|
||||||
|
|
||||||
|
fprintf('Enqueued job %d/%d for realiz %d/%d, l=%d/%d, ri=%d/%d at 0 km (inflight=%d/%d)\n', ...
|
||||||
|
cnt, total, realiz, s.num_realiz, l, N, ri, length(s.rop), numel(F), maxInFlight);
|
||||||
|
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
clear Opt_sig_wdm_demux
|
||||||
|
eval_ptr = eval_ptr + 1;
|
||||||
|
end
|
||||||
|
% -----------------------------------------------------
|
||||||
|
|
||||||
|
for seg = 1:nSegments
|
||||||
|
|
||||||
|
fprintf('Realiz %d/%d: Segment %d/%d \n', realiz, s.num_realiz, seg, nSegments);
|
||||||
|
|
||||||
|
Opt_sig_wdm_fib = DP_Fiber("L",segment_length,"D",Dvec(seg),"Dpmd",s.pmd,"Ds",0.07, ...
|
||||||
|
"beat_len",10,"corr_len",100,"dz",1,"manakov",0, ...
|
||||||
|
"gamma",s.gamma,"lambda",zdw,"n_waveplates",10,"SS_dphimax",0.01, ...
|
||||||
|
"SS_dzmax",50,"SS_dzmin",10,"X_alpha",0.3,"X_beta",0,"rng",1).process(Opt_sig_wdm_fib);
|
||||||
|
|
||||||
|
% -------- Evaluate at intermediate distance (enqueue jobs) --------
|
||||||
|
if eval_ptr <= nEval && seg == eval_seg(eval_ptr)
|
||||||
|
|
||||||
|
Opt_sig_wdm_demux = Optical_Demultiplex("attenuation",0,"B",200e9,"filtype",1, ...
|
||||||
|
"fs_out",fdac*kover,"fs_in",fdac*kover*upsample_pow,"lambda_center",1310).process(Opt_sig_wdm_fib);
|
||||||
|
|
||||||
|
cnt = 0;
|
||||||
|
total = length(s.rop)*N;
|
||||||
|
|
||||||
|
for ri = 1:length(s.rop)
|
||||||
|
for l = 1:N
|
||||||
|
|
||||||
|
cnt = cnt + 1;
|
||||||
|
|
||||||
|
% ---- Throttle before enqueueing more futures ----
|
||||||
|
[F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt] = ...
|
||||||
|
throttle_inflight(F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt, maxInFlight);
|
||||||
|
|
||||||
|
m = struct('l',l,'ri',ri,'realiz',realiz,'eval_ptr',eval_ptr);
|
||||||
|
|
||||||
|
[F, meta] = enqueue_atomic(F, meta, p, @rx_job, 5, ...
|
||||||
|
Opt_sig_wdm_demux{l}, ...
|
||||||
|
s.rop(ri), ...
|
||||||
|
Symbols{l}, Tx_bits{l}, ...
|
||||||
|
s, l, ri, realiz, eval_ptr, ...
|
||||||
|
fdac, kover, fadc, fsym, ...
|
||||||
|
len_tr, mu_dc, mu_ffe, mu_dfe, dfe_order, duob_mode, ...
|
||||||
|
memlog_dir, ...
|
||||||
|
'META', m);
|
||||||
|
|
||||||
|
fprintf('Seg: %d - Enqueued job %d/%d for realiz %d/%d, l=%d/%d, ri=%d/%d (inflight=%d/%d)\n', ...
|
||||||
|
seg, cnt, total, realiz, s.num_realiz, l, N, ri, length(s.rop), numel(F), maxInFlight);
|
||||||
|
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
clear Opt_sig_wdm_demux
|
||||||
|
eval_ptr = eval_ptr + 1;
|
||||||
|
end
|
||||||
|
% ----------------------------------------------------------------
|
||||||
|
|
||||||
|
% Non-blocking harvest (your existing line)
|
||||||
|
[F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt] = ...
|
||||||
|
collect_done(F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt, false);
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
drainIterMax = 10; % 10 * 60s = 10 minutes
|
||||||
|
for drainIter = 1:drainIterMax
|
||||||
|
|
||||||
|
if isempty(F)
|
||||||
|
break;
|
||||||
|
end
|
||||||
|
|
||||||
|
% Status line: how many futures are in which states?
|
||||||
|
st = {F.State};
|
||||||
|
nUnavail = sum(strcmp(st,'unavailable'));
|
||||||
|
nFinished = sum(strcmp(st,'finished'));
|
||||||
|
nRunning = sum(strcmp(st,'running'));
|
||||||
|
nQueued = sum(strcmp(st,'queued'));
|
||||||
|
nFailed = sum(strcmp(st,'failed'));
|
||||||
|
fprintf('[drain %d/%d] F=%d | finished=%d running=%d queued=%d failed=%d unavailable=%d\n', ...
|
||||||
|
drainIter, drainIterMax, numel(F), nFinished, nRunning, nQueued, nFailed, nUnavail);
|
||||||
|
|
||||||
|
% Try to fetch at least one result (blocking)
|
||||||
|
[F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt] = ...
|
||||||
|
collect_done(F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt, true);
|
||||||
|
|
||||||
|
% If still not empty, wait a bit before the next drain attempt
|
||||||
|
if ~isempty(F)
|
||||||
|
pause(60);
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
save_results_per_realization( ...
|
||||||
|
s, eval_dist_km, ...
|
||||||
|
output_ffe, output_dfe, output_vnle, output_mlse, output_dbt, ...
|
||||||
|
output_root, fname);
|
||||||
|
|
||||||
|
% Per-realization large arrays that are no longer needed
|
||||||
|
clear Opt_sig_wdm_fib Symbols Tx_bits Dvec
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
end % end main
|
||||||
|
|
||||||
|
|
||||||
|
%% ========================= Local functions =========================
|
||||||
|
|
||||||
|
function [ffe_results, dfe_results, vnle_results, mlse_results, dbt_results] = rx_job( ...
|
||||||
|
Opt_sig_chan, rop_db, Symbols_l, Tx_bits_l, s, l, ri, realiz, eval_ptr, ...
|
||||||
|
fdac, kover, fadc, fsym, len_tr, mu_dc, mu_ffe, mu_dfe, dfe_order, duob_mode, memlog_dir)
|
||||||
|
|
||||||
|
% NOTE: keep plotting OFF in workers
|
||||||
|
debug_plots = 0;
|
||||||
|
|
||||||
|
% Create per-worker logfile (avoid contention)
|
||||||
|
logfile = make_worker_logfile(memlog_dir);
|
||||||
|
|
||||||
|
log_mem(logfile, 'job_start', l, ri, realiz, eval_ptr, rop_db, Opt_sig_chan);
|
||||||
|
|
||||||
|
%%%%%% ROP %%%%%%
|
||||||
|
Opt_sig_wdm_rx = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power", ...
|
||||||
|
"amplification_db", rop_db).process(Opt_sig_chan);
|
||||||
|
|
||||||
|
% Opt_sig_chan no longer needed after amp
|
||||||
|
clear Opt_sig_chan
|
||||||
|
log_mem(logfile, 'after_amp', l, ri, realiz, eval_ptr, rop_db, Opt_sig_wdm_rx);
|
||||||
|
|
||||||
|
%%%%%% PD Square Law %%%%%%
|
||||||
|
assert(fdac*kover==Opt_sig_wdm_rx.fs,'Sampling Frequencies do not match! Check previous steps');
|
||||||
|
PD_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20, ...
|
||||||
|
"nep",1.8e-11,"randomkey",s.random_key + l + realiz).process(Opt_sig_wdm_rx);
|
||||||
|
|
||||||
|
% Opt_sig_wdm_rx not needed after PD
|
||||||
|
clear Opt_sig_wdm_rx
|
||||||
|
log_mem(logfile, 'after_pd', l, ri, realiz, eval_ptr, rop_db, PD_sig);
|
||||||
|
|
||||||
|
%%%%%% Low-pass RX (PD, El. Connectors and Scope) %%%%%%
|
||||||
|
rx_bwl = 100e9;
|
||||||
|
PD_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover, ...
|
||||||
|
"filterType",filtertypes.butterworth,"active",true).process(PD_sig);
|
||||||
|
log_mem(logfile, 'after_rx_lpf', l, ri, realiz, eval_ptr, rop_db, PD_sig);
|
||||||
|
|
||||||
|
%%%%%% Low-pass Scope %%%%%%
|
||||||
|
Lp_scpe = Filter('filtdegree',4,"f_cutoff",80e9,"fs",fadc, ...
|
||||||
|
"filterType",filtertypes.butterworth,"active",true);
|
||||||
|
|
||||||
|
%%%%%% Scope %%%%%%
|
||||||
|
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc, ...
|
||||||
|
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth, ...
|
||||||
|
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0, ...
|
||||||
|
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',0,'H_lpf',Lp_scpe).process(PD_sig);
|
||||||
|
|
||||||
|
% PD_sig no longer needed after scope
|
||||||
|
clear PD_sig Lp_scpe
|
||||||
|
log_mem(logfile, 'after_scope', l, ri, realiz, eval_ptr, rop_db, Scpe_sig);
|
||||||
|
|
||||||
|
Scpe_sig_2sps = Scpe_sig.resample("fs_out",2*fsym);
|
||||||
|
|
||||||
|
% Scpe_sig no longer needed after resample
|
||||||
|
clear Scpe_sig
|
||||||
|
log_mem(logfile, 'after_resample', l, ri, realiz, eval_ptr, rop_db, Scpe_sig_2sps);
|
||||||
|
|
||||||
|
[~, Scpe_cell, ~, ~] = Scpe_sig_2sps.tsynch("reference", Symbols_l, "fs_ref", fsym, "debug_plots", debug_plots);
|
||||||
|
|
||||||
|
% Scpe_sig_2sps no longer needed after sync
|
||||||
|
clear Scpe_sig_2sps
|
||||||
|
log_mem(logfile, 'after_sync', l, ri, realiz, eval_ptr, rop_db);
|
||||||
|
|
||||||
|
Rx_sig = Scpe_cell{1}.normalize("mode","rms");
|
||||||
|
|
||||||
|
% Scpe_cell no longer needed
|
||||||
|
clear Scpe_cell
|
||||||
|
log_mem(logfile, 'after_rxsig', l, ri, realiz, eval_ptr, rop_db, Rx_sig);
|
||||||
|
|
||||||
|
% -------------------- FFE --------------------
|
||||||
|
ffe_order = [50, 0, 0];
|
||||||
|
eq_ffe = EQ("Ne",ffe_order,"Nb",[0,0,0], ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",0);
|
||||||
|
|
||||||
|
ffe_results = ffe(eq_ffe,s.M,Rx_sig,Symbols_l,Tx_bits_l, ...
|
||||||
|
"precode_mode",duob_mode,'showAnalysis',0,"postFFE",[], ...
|
||||||
|
"eth_style_symbol_mapping",0);
|
||||||
|
clear eq_ffe
|
||||||
|
log_mem(logfile, 'after_ffe', l, ri, realiz, eval_ptr, rop_db);
|
||||||
|
|
||||||
|
% -------------------- DFE --------------------
|
||||||
|
eq_dfe = EQ("Ne",ffe_order,"Nb",[2,0,0], ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",0);
|
||||||
|
|
||||||
|
dfe_results = ffe(eq_dfe,s.M,Rx_sig,Symbols_l,Tx_bits_l, ...
|
||||||
|
"precode_mode",duob_mode,'showAnalysis',0,"postFFE",[], ...
|
||||||
|
"eth_style_symbol_mapping",0);
|
||||||
|
clear eq_dfe
|
||||||
|
log_mem(logfile, 'after_dfe', l, ri, realiz, eval_ptr, rop_db);
|
||||||
|
|
||||||
|
% -------------------- VNLE + MLSE --------------------
|
||||||
|
pf_ncoeffs = 1;
|
||||||
|
ffe_order3 = [50, 5, 5];
|
||||||
|
eq_v = EQ("Ne",ffe_order3,"Nb",dfe_order, ...
|
||||||
|
"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005, ...
|
||||||
|
"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
pf_ = Postfilter("ncoeff",pf_ncoeffs,"useBurg",1);
|
||||||
|
|
||||||
|
mlse_ = MLSE("duobinary_output",0,'M',s.M,'trellis_states',PAMmapper(s.M,0).levels);
|
||||||
|
|
||||||
|
[vnle_results, mlse_results] = vnle_postfilter_mlse(eq_v, pf_, mlse_, s.M, Rx_sig, Symbols_l, Tx_bits_l, ...
|
||||||
|
"precode_mode", duob_mode, 'showAnalysis', 0, "postFFE", [], "eth_style_symbol_mapping", 0);
|
||||||
|
|
||||||
|
clear eq_v pf_ mlse_
|
||||||
|
log_mem(logfile, 'after_vnle_mlse', l, ri, realiz, eval_ptr, rop_db);
|
||||||
|
|
||||||
|
% -------------------- DB target --------------------
|
||||||
|
mlse_db_ = MLSE("DIR",[1,1],"duobinary_output",0,"M",s.M,'trellis_states',PAMmapper(s.M,0).levels);
|
||||||
|
ffe_order = [50, 5, 5];
|
||||||
|
eq_ = EQ("Ne",ffe_order,"Nb",dfe_order,"training_length",len_tr,"training_loops",5,"dd_loops",5, ...
|
||||||
|
"K",2,"DCmu",mu_dc,"DDmu",[mu_ffe mu_dfe],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
|
||||||
|
dbt_results = duobinary_target(eq_,mlse_db_, s.M, Rx_sig, Symbols_l, Tx_bits_l, ...
|
||||||
|
"precode_mode", duob_mode, 'showAnalysis', 0, "postFFE", []);
|
||||||
|
|
||||||
|
clear mlse_db_
|
||||||
|
log_mem(logfile, 'job_end', l, ri, realiz, eval_ptr, rop_db);
|
||||||
|
|
||||||
|
% Rx_sig no longer needed
|
||||||
|
clear Rx_sig Symbols_l Tx_bits_l
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
function [F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt] = ...
|
||||||
|
collect_done(F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt, block)
|
||||||
|
|
||||||
|
if nargin < 9, block = false; end
|
||||||
|
if isempty(F), return; end
|
||||||
|
|
||||||
|
if block
|
||||||
|
timeout_first = Inf;
|
||||||
|
else
|
||||||
|
timeout_first = 0;
|
||||||
|
end
|
||||||
|
|
||||||
|
first = true;
|
||||||
|
while ~isempty(F)
|
||||||
|
|
||||||
|
assert(numel(F)==numel(meta))
|
||||||
|
idxUn = strcmp({F.State}, 'unavailable');
|
||||||
|
if any(idxUn)
|
||||||
|
for ii = find(idxUn)
|
||||||
|
m = meta(ii);
|
||||||
|
fprintf('[UNAVAILABLE] realiz=%d eval=%d l=%d ri=%d\n', ...
|
||||||
|
m.realiz, m.eval_ptr, m.l, m.ri);
|
||||||
|
end
|
||||||
|
warning('collect_done: dropping %d unavailable futures.', sum(idxUn));
|
||||||
|
F(idxUn) = [];
|
||||||
|
meta(idxUn) = [];
|
||||||
|
|
||||||
|
if isempty(F), break; end
|
||||||
|
end
|
||||||
|
|
||||||
|
if first
|
||||||
|
timeout = timeout_first;
|
||||||
|
first = false;
|
||||||
|
else
|
||||||
|
timeout = 0;
|
||||||
|
end
|
||||||
|
|
||||||
|
try
|
||||||
|
[k, ffe_r, dfe_r, vnle_r, mlse_r, dbt_r] = fetchNext(F, timeout);
|
||||||
|
catch
|
||||||
|
break;
|
||||||
|
end
|
||||||
|
|
||||||
|
if isempty(k)
|
||||||
|
break;
|
||||||
|
end
|
||||||
|
|
||||||
|
m = meta(k);
|
||||||
|
|
||||||
|
output_ffe{m.l, m.ri, m.realiz, m.eval_ptr} = ffe_r;
|
||||||
|
output_dfe{m.l, m.ri, m.realiz, m.eval_ptr} = dfe_r;
|
||||||
|
output_vnle{m.l, m.ri, m.realiz, m.eval_ptr} = vnle_r;
|
||||||
|
output_mlse{m.l, m.ri, m.realiz, m.eval_ptr} = mlse_r;
|
||||||
|
output_dbt{m.l, m.ri, m.realiz, m.eval_ptr} = dbt_r;
|
||||||
|
|
||||||
|
F(k) = [];
|
||||||
|
meta(k) = [];
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
function save_results_per_realization( ...
|
||||||
|
s, eval_dist_km, ...
|
||||||
|
output_ffe, output_dfe, output_vnle, output_mlse, output_dbt, ...
|
||||||
|
output_root, fname)
|
||||||
|
|
||||||
|
% Assemble result struct
|
||||||
|
res = struct();
|
||||||
|
res.settings = s;
|
||||||
|
res.eval_dist_km = eval_dist_km;
|
||||||
|
res.ffe = output_ffe;
|
||||||
|
res.dfe = output_dfe;
|
||||||
|
res.vnle = output_vnle;
|
||||||
|
res.mlse = output_mlse;
|
||||||
|
res.dbt = output_dbt;
|
||||||
|
|
||||||
|
% Save (HDF5-based for large data)
|
||||||
|
save(fullfile(output_root, fname), 'res', '-v7.3');
|
||||||
|
|
||||||
|
fprintf('Saved results to: %s\n', fullfile(output_root, fname));
|
||||||
|
disp(datetime('now','TimeZone','local','Format','yyyyMs.Mdd_HHmmss'));
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
%% ========================= Memory logging helpers =========================
|
||||||
|
|
||||||
|
function logfile = make_worker_logfile(memlog_dir)
|
||||||
|
% One file per worker process to avoid write contention.
|
||||||
|
pid = get_pid_safe();
|
||||||
|
t = getCurrentTask();
|
||||||
|
if isempty(t)
|
||||||
|
tid = -1;
|
||||||
|
else
|
||||||
|
tid = t.ID;
|
||||||
|
end
|
||||||
|
logfile = fullfile(memlog_dir, sprintf('memlog_pid%d_task%d.txt', pid, tid));
|
||||||
|
end
|
||||||
|
|
||||||
|
function log_mem(logfile, tag, l, ri, realiz, eval_ptr, rop_db, varargin)
|
||||||
|
% Append one line with RSS/VmSize plus optional "largest variable" info.
|
||||||
|
% Uses /proc on Linux where available.
|
||||||
|
ts = datetime('now','TimeZone','local','Format','yyyy-MM-dd HH:mm:ss.SSS');
|
||||||
|
|
||||||
|
[rssMB, vmsMB] = proc_mem_mb();
|
||||||
|
|
||||||
|
% Optional: include size of a specific variable/object if provided
|
||||||
|
extra = "";
|
||||||
|
if ~isempty(varargin)
|
||||||
|
try
|
||||||
|
x = varargin{1}; %#ok<NASGU>
|
||||||
|
w = whos('x');
|
||||||
|
extra = sprintf(' | x_bytes=%d', w.bytes);
|
||||||
|
catch
|
||||||
|
extra = " | x_bytes=NA";
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
line = sprintf('%s | %s | l=%d ri=%d realiz=%d eval=%d rop=%.3f | RSS=%.1fMB Vm=%.1fMB%s\n', ...
|
||||||
|
char(ts), tag, l, ri, realiz, eval_ptr, rop_db, rssMB, vmsMB, extra);
|
||||||
|
|
||||||
|
fid = fopen(logfile, 'a');
|
||||||
|
if fid ~= -1
|
||||||
|
fwrite(fid, line);
|
||||||
|
fclose(fid);
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
function [rssMB, vmsMB] = proc_mem_mb()
|
||||||
|
% RSS/VmSize from /proc (Linux). Falls back to NaN if unavailable.
|
||||||
|
rssMB = NaN; vmsMB = NaN;
|
||||||
|
|
||||||
|
if isunix
|
||||||
|
try
|
||||||
|
txt = fileread('/proc/self/status');
|
||||||
|
rssMB = parse_kb_field(txt, 'VmRSS:') / 1024;
|
||||||
|
vmsMB = parse_kb_field(txt, 'VmSize:') / 1024;
|
||||||
|
return;
|
||||||
|
catch
|
||||||
|
% fall through
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
% Fallback (Windows): memory() sometimes works
|
||||||
|
if ispc
|
||||||
|
try
|
||||||
|
m = memory;
|
||||||
|
% MemUsedMATLAB is bytes
|
||||||
|
rssMB = double(m.MemUsedMATLAB) / 1024^2;
|
||||||
|
vmsMB = NaN;
|
||||||
|
catch
|
||||||
|
end
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
function kb = parse_kb_field(txt, key)
|
||||||
|
kb = NaN;
|
||||||
|
idx = strfind(txt, key);
|
||||||
|
if isempty(idx), return; end
|
||||||
|
i = idx(1) + length(key);
|
||||||
|
% read until end of line
|
||||||
|
j = find(txt(i:end)==newline, 1, 'first') + i - 2;
|
||||||
|
val = strtrim(txt(i:j));
|
||||||
|
% format: "123456 kB"
|
||||||
|
parts = split(val);
|
||||||
|
kb = str2double(parts{1});
|
||||||
|
end
|
||||||
|
|
||||||
|
function pid = get_pid_safe()
|
||||||
|
pid = -1;
|
||||||
|
try
|
||||||
|
pid = feature('getpid');
|
||||||
|
catch
|
||||||
|
% no-op
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
function [F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt] = ...
|
||||||
|
throttle_inflight(F, meta, output_ffe, output_dfe, output_vnle, output_mlse, output_dbt, maxInFlight)
|
||||||
|
%THROTTLE_INFLIGHT
|
||||||
|
% Hard cap on outstanding futures. Robust against:
|
||||||
|
% - 'unavailable' futures (ID=-1 or State unavailable)
|
||||||
|
% - finished-with-error futures (State may be 'finished' with non-empty Error)
|
||||||
|
% - rare F/meta desync
|
||||||
|
% - race-y property access on FevalFuture arrays (use snapshot Fs)
|
||||||
|
|
||||||
|
while numel(F) >= maxInFlight
|
||||||
|
|
||||||
|
% Wait for at least one to finish (or time out quickly)
|
||||||
|
try
|
||||||
|
wait(F, 'finished', 1);
|
||||||
|
catch
|
||||||
|
pause(0.1);
|
||||||
|
end
|
||||||
|
|
||||||
|
% ---- Ensure F/meta alignment (best-effort repair) ----
|
||||||
|
if numel(F) ~= numel(meta)
|
||||||
|
warning('throttle_inflight: F/meta desync (F=%d meta=%d). Attempting repair.', numel(F), numel(meta));
|
||||||
|
|
||||||
|
% Prefer dropping unusable futures first (likely the unmatched ones)
|
||||||
|
Fs = F; % snapshot
|
||||||
|
n = numel(Fs);
|
||||||
|
|
||||||
|
st = cell(1,n);
|
||||||
|
idbad = false(1,n);
|
||||||
|
for k = 1:n
|
||||||
|
try, st{k} = Fs(k).State; catch, st{k} = ''; end
|
||||||
|
try, idbad(k) = (Fs(k).ID < 0); catch, idbad(k) = false; end
|
||||||
|
end
|
||||||
|
idxBad = find(strcmp(st,'unavailable') | idbad);
|
||||||
|
|
||||||
|
if numel(F) > numel(meta) && ~isempty(idxBad)
|
||||||
|
need = numel(F) - numel(meta);
|
||||||
|
idxBad = idxBad(1:min(numel(idxBad), need));
|
||||||
|
idxBad = idxBad(idxBad >= 1 & idxBad <= numel(F));
|
||||||
|
if ~isempty(idxBad)
|
||||||
|
warning('throttle_inflight: dropping %d bad futures to restore alignment.', numel(idxBad));
|
||||||
|
F(idxBad) = [];
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
% Final fallback: truncate both to min length
|
||||||
|
m = min(numel(F), numel(meta));
|
||||||
|
F = F(1:m);
|
||||||
|
meta = meta(1:m);
|
||||||
|
end
|
||||||
|
|
||||||
|
if isempty(F)
|
||||||
|
break;
|
||||||
|
end
|
||||||
|
|
||||||
|
% ===================== IMPORTANT: snapshot =====================
|
||||||
|
Fs = F; % stable snapshot for property access
|
||||||
|
n = numel(Fs);
|
||||||
|
% ===============================================================
|
||||||
|
|
||||||
|
% ---- Compute unavailable indices from snapshot ONLY ----
|
||||||
|
st = cell(1,n);
|
||||||
|
idbad = false(1,n);
|
||||||
|
for k = 1:n
|
||||||
|
try, st{k} = Fs(k).State; catch, st{k} = ''; end
|
||||||
|
try, idbad(k) = (Fs(k).ID < 0); catch, idbad(k) = false; end
|
||||||
|
end
|
||||||
|
|
||||||
|
idxUn = find(strcmp(st,'unavailable') | idbad);
|
||||||
|
|
||||||
|
% Sanitize indices (prevents out-of-range deletions even if something weird happens)
|
||||||
|
idxUn = idxUn(idxUn >= 1 & idxUn <= numel(F));
|
||||||
|
|
||||||
|
if ~isempty(idxUn)
|
||||||
|
for ii = idxUn(:).'
|
||||||
|
if ii <= numel(meta)
|
||||||
|
mm = meta(ii);
|
||||||
|
fprintf('[UNAVAILABLE@throttle] realiz=%d eval=%d l=%d ri=%d\n', ...
|
||||||
|
mm.realiz, mm.eval_ptr, mm.l, mm.ri);
|
||||||
|
else
|
||||||
|
fprintf('[UNAVAILABLE@throttle] meta_missing for ii=%d\n', ii);
|
||||||
|
end
|
||||||
|
end
|
||||||
|
warning('throttle_inflight: dropping %d unavailable/bad futures.', numel(idxUn));
|
||||||
|
|
||||||
|
% Delete in descending order is safest for structs (not strictly necessary, but robust)
|
||||||
|
idxUn = sort(idxUn, 'descend');
|
||||||
|
F(idxUn) = [];
|
||||||
|
meta(idxUn) = [];
|
||||||
|
continue; % re-check cap after shrinking
|
||||||
|
end
|
||||||
|
|
||||||
|
% ---- Determine "done" (finished or finished-with-error) ----
|
||||||
|
isFinished = strcmp(st, 'finished');
|
||||||
|
|
||||||
|
hasErr = false(1,n);
|
||||||
|
for k = 1:n
|
||||||
|
try
|
||||||
|
hasErr(k) = ~isempty(Fs(k).Error); % use snapshot object
|
||||||
|
catch
|
||||||
|
hasErr(k) = false;
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
done = isFinished | hasErr;
|
||||||
|
idxDone = find(done);
|
||||||
|
idxDone = idxDone(idxDone >= 1 & idxDone <= numel(F)); % sanitize
|
||||||
|
|
||||||
|
if isempty(idxDone)
|
||||||
|
pause(0.05);
|
||||||
|
continue;
|
||||||
|
end
|
||||||
|
|
||||||
|
% ---- Harvest done futures ----
|
||||||
|
for jj = 1:numel(idxDone)
|
||||||
|
ii = idxDone(jj);
|
||||||
|
m = meta(ii);
|
||||||
|
|
||||||
|
if isFinished(ii) && ~hasErr(ii)
|
||||||
|
try
|
||||||
|
[ffe_r, dfe_r, vnle_r, mlse_r, dbt_r] = fetchOutputs(F(ii));
|
||||||
|
catch ME
|
||||||
|
warning('throttle_inflight: fetchOutputs failed: realiz=%d eval=%d l=%d ri=%d | %s', ...
|
||||||
|
m.realiz, m.eval_ptr, m.l, m.ri, ME.message);
|
||||||
|
ffe_r = []; dfe_r = []; vnle_r = []; mlse_r = []; dbt_r = [];
|
||||||
|
end
|
||||||
|
else
|
||||||
|
% finished-with-error
|
||||||
|
try
|
||||||
|
err = F(ii).Error;
|
||||||
|
if ~isempty(err)
|
||||||
|
warning('rx_job error: realiz=%d eval=%d l=%d ri=%d | %s', ...
|
||||||
|
m.realiz, m.eval_ptr, m.l, m.ri, err.message);
|
||||||
|
else
|
||||||
|
warning('rx_job error: realiz=%d eval=%d l=%d ri=%d | (unknown error)', ...
|
||||||
|
m.realiz, m.eval_ptr, m.l, m.ri);
|
||||||
|
end
|
||||||
|
catch
|
||||||
|
warning('rx_job error: realiz=%d eval=%d l=%d ri=%d | (error unreadable)', ...
|
||||||
|
m.realiz, m.eval_ptr, m.l, m.ri);
|
||||||
|
end
|
||||||
|
ffe_r = []; dfe_r = []; vnle_r = []; mlse_r = []; dbt_r = [];
|
||||||
|
end
|
||||||
|
|
||||||
|
output_ffe{m.l, m.ri, m.realiz, m.eval_ptr} = ffe_r;
|
||||||
|
output_dfe{m.l, m.ri, m.realiz, m.eval_ptr} = dfe_r;
|
||||||
|
output_vnle{m.l, m.ri, m.realiz, m.eval_ptr} = vnle_r;
|
||||||
|
output_mlse{m.l, m.ri, m.realiz, m.eval_ptr} = mlse_r;
|
||||||
|
output_dbt{m.l, m.ri, m.realiz, m.eval_ptr} = dbt_r;
|
||||||
|
end
|
||||||
|
|
||||||
|
% Remove harvested entries (descending for safety)
|
||||||
|
idxDone = sort(idxDone, 'descend');
|
||||||
|
F(idxDone) = [];
|
||||||
|
meta(idxDone) = [];
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
function [F, meta] = enqueue_atomic(F, meta, p, fun, nOut, varargin)
|
||||||
|
%ENQUEUE_ATOMIC Enqueue a parfeval job and append matching meta atomically.
|
||||||
|
% Usage:
|
||||||
|
% m = struct('l',l,'ri',ri,'realiz',realiz,'eval_ptr',eval_ptr);
|
||||||
|
% [F, meta, f] = enqueue_atomic(F, meta, p, @rx_job, 5, args..., 'META', m);
|
||||||
|
|
||||||
|
% Split varargin into args + meta struct
|
||||||
|
idx = find(strcmp(varargin, 'META'), 1, 'last');
|
||||||
|
if isempty(idx) || idx == numel(varargin)
|
||||||
|
error('enqueue_atomic: META struct must be provided as last named argument.');
|
||||||
|
end
|
||||||
|
args = varargin(1:idx-1);
|
||||||
|
m = varargin{idx+1};
|
||||||
|
|
||||||
|
% Create future first (local variable), but don't mutate F/meta yet
|
||||||
|
f = parfeval(p, fun, nOut, args{:});
|
||||||
|
|
||||||
|
% If future is unusable, do not append (prevents meta shift)
|
||||||
|
if f.ID < 0 || strcmp(f.State, 'unavailable')
|
||||||
|
warning('enqueue_atomic: got unusable future (ID=%d, State=%s). Dropping enqueue: realiz=%d eval=%d l=%d ri=%d', ...
|
||||||
|
f.ID, string(f.State), m.realiz, m.eval_ptr, m.l, m.ri);
|
||||||
|
return;
|
||||||
|
end
|
||||||
|
|
||||||
|
% Now append both together (atomic w.r.t. fprintf etc.)
|
||||||
|
F(end+1,1) = f;
|
||||||
|
meta(end+1,1) = m;
|
||||||
|
end
|
||||||
@@ -3,23 +3,23 @@
|
|||||||
% --- FIRST LINE: evaluate settings located beside this script ---
|
% --- FIRST LINE: evaluate settings located beside this script ---
|
||||||
run(fullfile(fileparts(mfilename('fullpath')),'WDM_settings.m'));
|
run(fullfile(fileparts(mfilename('fullpath')),'WDM_settings.m'));
|
||||||
|
|
||||||
s.num_realiz = 2;
|
num_realiz = 50;
|
||||||
s.wavelengthplan = calcWavelengthPlan(16,400e9,1310);
|
s.wavelengthplan = calcWavelengthPlan(16,400e9,1310);
|
||||||
% wavelengthplan = [1295,1305,1315,1325];
|
% wavelengthplan = [1295,1305,1315,1325];
|
||||||
link_length = 1;
|
link_length = 10;
|
||||||
s.pmd = 0.1;
|
pmd = 0.1;
|
||||||
s.gamma = 0.0023;
|
gamma = 0.0023;
|
||||||
|
|
||||||
s.M = 4;
|
M = 4;
|
||||||
m = floor(log2(s.M)*10)/10;
|
m = floor(log2(M)*10)/10;
|
||||||
fsym = 112e9;
|
fsym = 112e9;
|
||||||
fdac = 2*fsym;
|
fdac = 2*fsym;
|
||||||
fadc = 120000000000;
|
fadc = 2*fsym;
|
||||||
s.random_key = 100;
|
s.random_key = 100;
|
||||||
|
|
||||||
% Laser / s.Modulator
|
% Laser / s.Modulator
|
||||||
vbias_rel = 0.5;
|
vbias_rel = 0.5;
|
||||||
u_pi = 4.6;
|
u_pi = 3.2;
|
||||||
vbias = -vbias_rel*u_pi;
|
vbias = -vbias_rel*u_pi;
|
||||||
laser_linewidth = 0e6;
|
laser_linewidth = 0e6;
|
||||||
|
|
||||||
@@ -96,14 +96,13 @@ for realiz = 1:s.num_realiz
|
|||||||
"mrds_code",0,"mrds_blocklength",512,"duobinary_mode",duob_mode).process();
|
"mrds_code",0,"mrds_blocklength",512,"duobinary_mode",duob_mode).process();
|
||||||
|
|
||||||
% Digi_sig.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
% Digi_sig.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
||||||
Lp_awg = Filter('filtdegree',3,"f_cutoff",56e9,"fs",fdac*kover,"filterType",filtertypes.gaussian,"active",true);
|
Lp_awg = Filter('filtdegree',3,"f_cutoff",100e9,"fs",fdac*kover,"filterType",filtertypes.gaussian,"active",true);
|
||||||
El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",1,"kover",kover,"bit_resolution",6,"upsampling_method","samplehold","precomp_sinc_rolloff",0,"H_lpf",Lp_awg,"dac_max",0.6,"dac_min",-0.6).process(Digi_sig);
|
El_sig = AWG("fdac",fdac,"f_cutoff",fsym,"lpf_active",1,"kover",kover,"bit_resolution",12,"upsampling_method","samplehold","precomp_sinc_rolloff",0,"H_lpf",Lp_awg,"dac_max",0.6,"dac_min",-0.6).process(Digi_sig);
|
||||||
% El_sig = s.M8199B("kover",kover).process(Digi_sig);
|
% El_sig = s.M8199B("kover",kover).process(Digi_sig);
|
||||||
% El_sig.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
% El_sig.spectrum("fignum",101,"displayname",'bla','normalizeTo0dB',0,'lambda0_nm',1310,'useWavelengthAxis',0);
|
||||||
|
|
||||||
%%%%% Electrical Driver Amplifier %%%%%%
|
%%%%% Electrical Driver Amplifier %%%%%%
|
||||||
El_sig = El_sig.normalize("mode","oneone");
|
El_sig = El_sig.normalize("mode","oneone");
|
||||||
El_sig = El_sig .* u_pi .* 0.5;
|
|
||||||
% El_sig = El_sig.setPower(1,"dBm");
|
% El_sig = El_sig.setPower(1,"dBm");
|
||||||
% figure;histogram(El_sig.signal);
|
% figure;histogram(El_sig.signal);
|
||||||
|
|
||||||
@@ -114,7 +113,7 @@ for realiz = 1:s.num_realiz
|
|||||||
end
|
end
|
||||||
|
|
||||||
Opt_sig_wdm = Optical_Multiplex("fs_in",fdac*kover,"fs_out",upsample_pow*fdac*kover,...
|
Opt_sig_wdm = Optical_Multiplex("fs_in",fdac*kover,"fs_out",upsample_pow*fdac*kover,...
|
||||||
"lambda_center",1310,"random_key",0,"filtype",1,"B",120e9).process(signal_cell);
|
"lambda_center",1310,"random_key",0,"filtype",1,"B",200e9).process(signal_cell);
|
||||||
|
|
||||||
Opt_sig_wdm = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",3+10*log10(N)).process(Opt_sig_wdm);
|
Opt_sig_wdm = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",3+10*log10(N)).process(Opt_sig_wdm);
|
||||||
|
|
||||||
@@ -145,19 +144,21 @@ for realiz = 1:s.num_realiz
|
|||||||
% Opt_sig_wdm_fib.move_it_spectrum("fignum",100212,"displayname",'bla');
|
% Opt_sig_wdm_fib.move_it_spectrum("fignum",100212,"displayname",'bla');
|
||||||
|
|
||||||
% Opt_sig = Fiber("fsimu",Opt_sig.fs,"fiber_length",s.link_length/1000,"alpha",0.3,"D",0,"lambda0",1310,"s.gamma",0,"Dslope",0.07).process(Opt_sig)
|
% Opt_sig = Fiber("fsimu",Opt_sig.fs,"fiber_length",s.link_length/1000,"alpha",0.3,"D",0,"lambda0",1310,"s.gamma",0,"Dslope",0.07).process(Opt_sig)
|
||||||
Opt_sig_wdm_demux = Optical_Demultiplex("attenuation",0,"B",200e9,"filtype",1,"fs_out",fdac*kover,"fs_in",fdac*kover*upsample_pow,"lambda_center",1310).process(Opt_sig_wdm_fib);
|
|
||||||
|
|
||||||
for ri = 1:length(s.rop)
|
for ri = 1:length(s.rop)
|
||||||
|
|
||||||
|
%%%%%% ROP %%%%%%
|
||||||
|
Opt_sig_wdm_rx = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",s.rop(ri)+10*log10(N)).process(Opt_sig_wdm_fib);
|
||||||
|
|
||||||
|
Opt_sig_wdm_demux = Optical_Demultiplex("attenuation",0,"B",200e9,"filtype",1,"fs_out",Opt_sig_wdm_rx.fs/upsample_pow,"fs_in",Opt_sig_wdm_rx.fs,"lambda_center",1310).process(Opt_sig_wdm_rx);
|
||||||
|
|
||||||
|
PD_cell = {};
|
||||||
for l = 1:N
|
for l = 1:N
|
||||||
|
|
||||||
%%%%%% ROP %%%%%%
|
|
||||||
Opt_sig_wdm_rx = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",s.rop(ri)).process(Opt_sig_wdm_demux{l}); % rop+10*log10(N)
|
|
||||||
|
|
||||||
%%%%%% PD Square Law %%%%%%
|
%%%%%% PD Square Law %%%%%%
|
||||||
assert(fdac*kover==Opt_sig_wdm_rx.fs,'Sampling Frequencies do not match! Check previous steps');
|
assert(fdac*kover==Opt_sig_wdm_demux{l}.fs,'Sampling Frequencies do not match! Check previous steps');
|
||||||
PD_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20,"nep",1.8e-11,"randomkey",s.random_key+l+realiz).process(Opt_sig_wdm_rx);
|
PD_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20,"nep",1.8e-11,"randomkey",s.random_key+l+realiz).process(Opt_sig_wdm_demux{l});
|
||||||
|
|
||||||
% PD_sig.spectrum("fignum",222,"displayname",'bla','normalizeTo0dB',1);
|
% PD_sig.spectrum("fignum",222,"displayname",'bla','normalizeTo0dB',1);
|
||||||
|
|
||||||
%%%%%% Low-pass RX (PD, El. Connectors and Scope %%%%%%
|
%%%%%% Low-pass RX (PD, El. Connectors and Scope %%%%%%
|
||||||
@@ -165,13 +166,13 @@ for realiz = 1:s.num_realiz
|
|||||||
PD_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(PD_sig);
|
PD_sig = Filter('filtdegree',4,"f_cutoff",rx_bwl,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(PD_sig);
|
||||||
|
|
||||||
% %%%%%% Low-pass Scope %%%%%%
|
% %%%%%% Low-pass Scope %%%%%%
|
||||||
Lp_scpe = Filter('filtdegree',4,"f_cutoff",80e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
|
Lp_scpe = Filter('filtdegree',4,"f_cutoff",110e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
|
||||||
|
|
||||||
%%%%%% Scope %%%%%%
|
%%%%%% Scope %%%%%%
|
||||||
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
||||||
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth,...
|
"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth,...
|
||||||
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
||||||
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',0,'H_lpf',Lp_scpe).process(PD_sig);
|
"adcresolution",8,"quantbuffer",0.1,'block_dc',1,'lpf_active',1,'H_lpf',Lp_scpe).process(PD_sig);
|
||||||
|
|
||||||
Scpe_sig_2sps = Scpe_sig.resample("fs_out",2*fsym);
|
Scpe_sig_2sps = Scpe_sig.resample("fs_out",2*fsym);
|
||||||
% Scpe_sig.spectrum("fignum",222,"displayname",'bla','normalizeTo0dB',1);
|
% Scpe_sig.spectrum("fignum",222,"displayname",'bla','normalizeTo0dB',1);
|
||||||
@@ -2,60 +2,3 @@
|
|||||||
|
|
||||||
|
|
||||||
|
|
||||||
% Add the imdd_simulation framework to the path
|
|
||||||
if ispc
|
|
||||||
addpath(genpath('C:\Users\Silas\Documents\MATLAB\imdd_simulation'));
|
|
||||||
else
|
|
||||||
% Linux path on the cluster
|
|
||||||
addpath(genpath('/work_beegfs/sutef391/imdd_simulation'));
|
|
||||||
end
|
|
||||||
|
|
||||||
% Quiet the ambiguous CET warning (best is to set TZ in sbatch; see below)
|
|
||||||
warning('off','MATLAB:datetime:AmbiguousTimeZone');
|
|
||||||
|
|
||||||
% How many workers?
|
|
||||||
cpus = str2double(getenv('SLURM_CPUS_PER_TASK'));
|
|
||||||
if ~isfinite(cpus) || cpus < 1, cpus = max(1, feature('numcores')); end
|
|
||||||
|
|
||||||
% Use a per-job, node-local JobStorageLocation to avoid stale locks on $HOME
|
|
||||||
% Prefer $TMPDIR if your cluster provides it, else tempdir().
|
|
||||||
tmpbase = getenv('TMPDIR');
|
|
||||||
if isempty(tmpbase), tmpbase = tempdir; end
|
|
||||||
jsl = fullfile(tmpbase, sprintf('matlab_jobstorage_%s_%s', ...
|
|
||||||
getenv('USER'), getenv('SLURM_JOB_ID')));
|
|
||||||
if ~exist(jsl,'dir'); mkdir(jsl); end
|
|
||||||
|
|
||||||
% Configure the local cluster explicitly and start the pool
|
|
||||||
c = parcluster('local');
|
|
||||||
c.NumWorkers = cpus;
|
|
||||||
c.JobStorageLocation = jsl;
|
|
||||||
|
|
||||||
p = gcp('nocreate');
|
|
||||||
if isempty(p) || p.NumWorkers ~= cpus
|
|
||||||
if ~isempty(p), delete(p); end
|
|
||||||
p = parpool(c, cpus); % avoids the “queued” state
|
|
||||||
end
|
|
||||||
fprintf('parpool up with %d workers; JobStorage=%s\n', p.NumWorkers, c.JobStorageLocation);
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
% result filename (timestamp + optional job id)
|
|
||||||
t = datetime('now','TimeZone','local','Format','yyyyMMdd_HHmmss');
|
|
||||||
jobid = getenv('SLURM_JOB_ID'); if isempty(jobid), jobid = 'nojid'; end
|
|
||||||
host = getenv('HOSTNAME'); if isempty(host), host = 'localhost'; end
|
|
||||||
|
|
||||||
% Output directory depends on platform
|
|
||||||
if ispc
|
|
||||||
output_root = fullfile('C:\Users\Silas\Documents\MATLAB\Datensätze\FWM_2025\');
|
|
||||||
else
|
|
||||||
output_root = '/work_beegfs/sutef391/results_WDM';
|
|
||||||
end
|
|
||||||
if ~exist(output_root,'dir'), mkdir(output_root); end
|
|
||||||
|
|
||||||
% Build filename
|
|
||||||
t = datetime('now','TimeZone','local','Format','yyyyMMdd_HHmmss');
|
|
||||||
jobid = getenv('SLURM_JOB_ID'); if isempty(jobid), jobid = 'nojid'; end
|
|
||||||
host = getenv('HOSTNAME'); if isempty(host), host = 'localhost'; end
|
|
||||||
|
|
||||||
fname = sprintf('WDM_%s_%s_%s.mat', char(t), host, jobid);
|
|
||||||
32
projects/WDM/getDispersionVector.m
Normal file
32
projects/WDM/getDispersionVector.m
Normal file
@@ -0,0 +1,32 @@
|
|||||||
|
function dispersion_vector = getDispersionVector(N, D, ref_zdw, randomize_ZDW, randomkey)
|
||||||
|
% s.MATLAB version of the Python generator shown above.
|
||||||
|
% Returns an N×1 vector (ps/(nm·km)).
|
||||||
|
%
|
||||||
|
% D is the nominal dispersion magnitude. For D>0 the link is segmented with
|
||||||
|
% alternating sign (+D, -D, +D, …). For D==0 it is flat (0) except for
|
||||||
|
% ZDW randomization. The ZDW detuning is ~N(0, 2 nm) around 1310 nm and is
|
||||||
|
% converted to dispersion via 0.09 ps/(nm·km) per nm.
|
||||||
|
|
||||||
|
% constants (matching the Python code)
|
||||||
|
meanLambda_nm = 1310; % center wavelength
|
||||||
|
sigma_nm = 2; % ZDW sigma
|
||||||
|
Dslope = 0.07; % ps/(nm·km) per nm detuning
|
||||||
|
|
||||||
|
% random ZDW-induced dispersion offset
|
||||||
|
if randomize_ZDW
|
||||||
|
rng(randomkey, 'twister');
|
||||||
|
rand_zdws_nm = meanLambda_nm + sigma_nm .* randn(N,1);
|
||||||
|
rand_D = (rand_zdws_nm - ref_zdw) .* Dslope; % ps/(nm·km)
|
||||||
|
else
|
||||||
|
rand_D = zeros(N,1);
|
||||||
|
end
|
||||||
|
|
||||||
|
% nominal segmented pattern (match Python intent; keep length N)
|
||||||
|
if D > 0
|
||||||
|
base = (-1) .^ ((0:N-1).'); % +1,-1,+1,-1,...
|
||||||
|
else % D == 0 (or anything else)
|
||||||
|
base = ones(N,1);
|
||||||
|
end
|
||||||
|
|
||||||
|
dispersion_vector = base .* D + rand_D; % ps/(nm·km)
|
||||||
|
end
|
||||||
198
projects/WDM/plot_BER_vs_ROP.m
Normal file
198
projects/WDM/plot_BER_vs_ROP.m
Normal file
@@ -0,0 +1,198 @@
|
|||||||
|
%% =========================
|
||||||
|
% Routine A: BER vs ROP plots
|
||||||
|
%% =========================
|
||||||
|
function S = plot_BER_vs_ROP(res, varargin)
|
||||||
|
% S = plot_BER_vs_ROP(res, 'fec', 3.8e-3, 'eval_list', [], 'colormap', 'Spectral')
|
||||||
|
%
|
||||||
|
% Creates one BER-vs-ROP figure per evaluated distance.
|
||||||
|
% Returns S struct with FEC crossings: S.Sffe, S.Sdfe, S.Svnle, S.Smlse, S.Sdbt
|
||||||
|
%
|
||||||
|
% res.* assumed: res.ffe{ch,rop,realiz,eval_distance} etc.
|
||||||
|
|
||||||
|
p = inputParser;
|
||||||
|
p.addParameter('fec', 3.8e-3, @(x)isnumeric(x)&&isscalar(x));
|
||||||
|
p.addParameter('eval_list', [], @(x)isnumeric(x));
|
||||||
|
p.addParameter('colormap', 'Spectral', @(x)ischar(x) || isstring(x));
|
||||||
|
p.parse(varargin{:});
|
||||||
|
fec = p.Results.fec;
|
||||||
|
|
||||||
|
% -------------------- Basic metadata --------------------
|
||||||
|
rop = res.settings.rop(:);
|
||||||
|
wavelengthplan = res.settings.wavelengthplan(:);
|
||||||
|
distances = res.eval_dist_km(:);
|
||||||
|
|
||||||
|
N_ch = numel(wavelengthplan);
|
||||||
|
N_rop = numel(rop);
|
||||||
|
|
||||||
|
% -------------------- Determine dims robustly --------------------
|
||||||
|
dims = size(res.ffe);
|
||||||
|
if numel(dims) < 4, dims(end+1:4) = 1; end
|
||||||
|
N_distances = dims(4);
|
||||||
|
|
||||||
|
if numel(distances) ~= N_distances
|
||||||
|
distances = (1:N_distances).';
|
||||||
|
end
|
||||||
|
|
||||||
|
% -------------------- Choose eval distances --------------------
|
||||||
|
eval_list = p.Results.eval_list;
|
||||||
|
if isempty(eval_list)
|
||||||
|
eval_list = 1:N_distances;
|
||||||
|
end
|
||||||
|
|
||||||
|
% -------------------- Colors --------------------
|
||||||
|
try
|
||||||
|
cols = cbrewer2(char(p.Results.colormap), N_ch);
|
||||||
|
catch
|
||||||
|
cols = linspecer(N_ch);
|
||||||
|
end
|
||||||
|
|
||||||
|
% -------------------- Crossings containers --------------------
|
||||||
|
S = struct();
|
||||||
|
S.rop = rop;
|
||||||
|
S.wavelengthplan = wavelengthplan;
|
||||||
|
S.distances = distances;
|
||||||
|
S.fec = fec;
|
||||||
|
|
||||||
|
S.Sffe = cell(N_distances, N_ch);
|
||||||
|
S.Sdfe = cell(N_distances, N_ch);
|
||||||
|
S.Svnle = cell(N_distances, N_ch);
|
||||||
|
S.Smlse = cell(N_distances, N_ch);
|
||||||
|
S.Sdbt = cell(N_distances, N_ch);
|
||||||
|
|
||||||
|
% -------------------- Plot per distance --------------------
|
||||||
|
for eval_ptr = eval_list
|
||||||
|
|
||||||
|
figure('Name', sprintf('BER vs ROP @ %s', distLabel(distances, eval_ptr)));
|
||||||
|
hold on;
|
||||||
|
|
||||||
|
for ch = 1:N_ch
|
||||||
|
|
||||||
|
% Extract cell slices
|
||||||
|
ffe_cells = sliceCells4D(res.ffe , ch, eval_ptr, N_rop);
|
||||||
|
dfe_cells = sliceCells4D(res.dfe , ch, eval_ptr, N_rop);
|
||||||
|
vnle_cells = sliceCells4D(res.vnle, ch, eval_ptr, N_rop);
|
||||||
|
mlse_cells = sliceCells4D(res.mlse, ch, eval_ptr, N_rop);
|
||||||
|
dbt_cells = sliceCells4D(res.dbt , ch, eval_ptr, N_rop);
|
||||||
|
|
||||||
|
% Crossings (only depends on cells)
|
||||||
|
[S.Sffe{eval_ptr,ch}, ~] = fecCrossings(rop, ffe_cells, fec);
|
||||||
|
[S.Sdfe{eval_ptr,ch}, ~] = fecCrossings(rop, dfe_cells, fec);
|
||||||
|
[S.Svnle{eval_ptr,ch}, ~] = fecCrossings(rop, vnle_cells, fec);
|
||||||
|
[S.Smlse{eval_ptr,ch}, ~] = fecCrossings(rop, mlse_cells, fec);
|
||||||
|
[S.Sdbt{eval_ptr,ch}, ~] = fecCrossings(rop, dbt_cells, fec);
|
||||||
|
|
||||||
|
% BER matrices (complete realizations only)
|
||||||
|
ffe_mat = extractCompleteBER(ffe_cells); % N_rop x K
|
||||||
|
|
||||||
|
if ~isempty(ffe_mat)
|
||||||
|
plot(rop, ffe_mat, 'Color', cols(ch,:), ...
|
||||||
|
'DisplayName', sprintf('FFE @ %dnm', round(wavelengthplan(ch))));
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
set(gca,'XScale','linear','YScale','log', ...
|
||||||
|
'TickLabelInterpreter','latex','FontSize',11);
|
||||||
|
|
||||||
|
yline([3.8e-3, 2.2e-4], 'HandleVisibility','off','LineWidth',1.5);
|
||||||
|
|
||||||
|
ylabel('BER');
|
||||||
|
xlabel('ROP [dB]');
|
||||||
|
title(sprintf('BER vs. ROP @ %s', distLabel(distances, eval_ptr)));
|
||||||
|
xlim([min(rop) max(rop)]);
|
||||||
|
ylim([1e-5 0.3]);
|
||||||
|
grid on;
|
||||||
|
legend show;
|
||||||
|
beautifyBERplot;
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
%% =========================
|
||||||
|
% Shared helpers (unchanged)
|
||||||
|
%% =========================
|
||||||
|
|
||||||
|
function cells2D = sliceCells4D(C4, ch, eval_ptr, N_rop)
|
||||||
|
dims = size(C4);
|
||||||
|
if numel(dims) < 4, dims(end+1:4) = 1; end
|
||||||
|
N_realiz = dims(3);
|
||||||
|
|
||||||
|
cells2D = cell(N_rop, N_realiz);
|
||||||
|
|
||||||
|
chMax = dims(1);
|
||||||
|
ropMax = dims(2);
|
||||||
|
rMax = dims(3);
|
||||||
|
eMax = dims(4);
|
||||||
|
|
||||||
|
if ch > chMax || eval_ptr > eMax
|
||||||
|
return;
|
||||||
|
end
|
||||||
|
|
||||||
|
ropUse = min(N_rop, ropMax);
|
||||||
|
rUse = min(N_realiz, rMax);
|
||||||
|
|
||||||
|
tmp = squeeze(C4(ch, 1:ropUse, 1:rUse, eval_ptr));
|
||||||
|
tmp = reshape(tmp, ropUse, rUse);
|
||||||
|
|
||||||
|
cells2D(1:ropUse, 1:rUse) = tmp;
|
||||||
|
end
|
||||||
|
|
||||||
|
function lbl = distLabel(distances, eval_ptr)
|
||||||
|
if eval_ptr <= numel(distances)
|
||||||
|
d = distances(eval_ptr);
|
||||||
|
if isfinite(d)
|
||||||
|
lbl = sprintf('%.0f km', d);
|
||||||
|
return;
|
||||||
|
end
|
||||||
|
end
|
||||||
|
lbl = sprintf('eval\\_%d', eval_ptr);
|
||||||
|
end
|
||||||
|
|
||||||
|
function [S, noCrossingMask] = fecCrossings(rop, cellsNxR, fec)
|
||||||
|
Y = extractCompleteBER(cellsNxR);
|
||||||
|
if isempty(Y)
|
||||||
|
S = [];
|
||||||
|
noCrossingMask = [];
|
||||||
|
return;
|
||||||
|
end
|
||||||
|
|
||||||
|
ok = mean(Y,1,'omitnan') <= 0.1;
|
||||||
|
Y = Y(:, ok);
|
||||||
|
if isempty(Y)
|
||||||
|
S = [];
|
||||||
|
noCrossingMask = [];
|
||||||
|
return;
|
||||||
|
end
|
||||||
|
|
||||||
|
nR = size(Y,2);
|
||||||
|
S = nan(1,nR);
|
||||||
|
noCrossingMask = true(1,nR);
|
||||||
|
|
||||||
|
rop = rop(:);
|
||||||
|
for j = 1:nR
|
||||||
|
y = Y(:,j);
|
||||||
|
above = (y > fec);
|
||||||
|
idx = find(above(1:end-1) & ~above(2:end), 1, 'first');
|
||||||
|
if ~isempty(idx)
|
||||||
|
x1 = rop(idx); y1 = y(idx);
|
||||||
|
x2 = rop(idx+1); y2 = y(idx+1);
|
||||||
|
if isfinite(y1) && isfinite(y2) && y2 ~= y1
|
||||||
|
t = (fec - y1) / (y2 - y1);
|
||||||
|
S(j) = x1 + t*(x2 - x1);
|
||||||
|
noCrossingMask(j) = false;
|
||||||
|
end
|
||||||
|
end
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
function Y = extractCompleteBER(cellSlice)
|
||||||
|
if isempty(cellSlice), Y = []; return; end
|
||||||
|
nR = size(cellSlice,2);
|
||||||
|
keep = false(1,nR);
|
||||||
|
for r = 1:nR
|
||||||
|
col = cellSlice(:,r);
|
||||||
|
keep(r) = all(cellfun(@(c) ~isempty(c), col));
|
||||||
|
end
|
||||||
|
if ~any(keep), Y = []; return; end
|
||||||
|
Y = cellfun(@(c) c.metrics.BER, cellSlice(:,keep), 'UniformOutput', true);
|
||||||
|
end
|
||||||
219
projects/WDM/plot_FEC_violin.m
Normal file
219
projects/WDM/plot_FEC_violin.m
Normal file
@@ -0,0 +1,219 @@
|
|||||||
|
function plot_FEC_violin(res, varargin)
|
||||||
|
% plot_FEC_violin Violin plot of ROP-at-FEC crossings per wavelength/channel
|
||||||
|
% Uses the Bechtold community violinplot (MATLAB Central 45134).
|
||||||
|
%
|
||||||
|
% Requirements:
|
||||||
|
% - community violinplot must be on path, either as:
|
||||||
|
% (a) violinplot.m (shadows MATLAB official), OR
|
||||||
|
% (b) violinplot_community.m (renamed + function name adjusted)
|
||||||
|
%
|
||||||
|
% Usage:
|
||||||
|
% plot_FEC_violin(res, 'tech','VNLE', 'fec',3.8e-3, 'eval_ptr',[], 'ylim',[-10 -6], 'bandwidth',0.15);
|
||||||
|
|
||||||
|
% -------- args --------
|
||||||
|
p = inputParser;
|
||||||
|
p.addParameter('tech', 'VNLE', @(x)ischar(x)||isstring(x));
|
||||||
|
p.addParameter('fec', 3.8e-3, @(x)isnumeric(x)&&isscalar(x));
|
||||||
|
p.addParameter('eval_ptr', [], @(x)isnumeric(x)&&isscalar(x));
|
||||||
|
p.addParameter('ylim', [], @(x)isnumeric(x)&&numel(x)==2);
|
||||||
|
p.addParameter('bandwidth', [], @(x)isnumeric(x)&&isscalar(x));
|
||||||
|
p.parse(varargin{:});
|
||||||
|
opt = p.Results;
|
||||||
|
|
||||||
|
tech = upper(string(opt.tech));
|
||||||
|
fec = opt.fec;
|
||||||
|
|
||||||
|
% -------- pick result field --------
|
||||||
|
switch tech
|
||||||
|
case "FFE", C4 = res.ffe;
|
||||||
|
case "DFE", C4 = res.dfe;
|
||||||
|
case "VNLE", C4 = res.vnle;
|
||||||
|
case "MLSE", C4 = res.mlse;
|
||||||
|
case "DBT", C4 = res.dbt;
|
||||||
|
otherwise, error('Unknown tech "%s". Use FFE/DFE/VNLE/MLSE/DBT.', tech);
|
||||||
|
end
|
||||||
|
|
||||||
|
rop = res.settings.rop(:);
|
||||||
|
wavelengthplan = res.settings.wavelengthplan(:);
|
||||||
|
distances = res.eval_dist_km(:);
|
||||||
|
|
||||||
|
N_ch = numel(wavelengthplan);
|
||||||
|
N_rop = numel(rop);
|
||||||
|
|
||||||
|
dims = size(C4);
|
||||||
|
if numel(dims) < 4, dims(end+1:4) = 1; end
|
||||||
|
N_dist = dims(4);
|
||||||
|
|
||||||
|
eval_ptr = opt.eval_ptr;
|
||||||
|
if isempty(eval_ptr), eval_ptr = N_dist; end
|
||||||
|
eval_ptr = max(1, min(N_dist, eval_ptr));
|
||||||
|
|
||||||
|
% -------- compute crossings per channel + "completeness" --------
|
||||||
|
S_cell = cell(1, N_ch); % crossings values (finite only)
|
||||||
|
K_total = zeros(1, N_ch); % number of complete realizations for that channel
|
||||||
|
K_cross = zeros(1, N_ch); % number of realizations that crossed
|
||||||
|
|
||||||
|
for ch = 1:N_ch
|
||||||
|
cells = sliceCells4D(C4, ch, eval_ptr, N_rop); % N_rop x N_realiz (may contain [])
|
||||||
|
[S_cell{ch}, K_total(ch), K_cross(ch)] = crossings_and_counts(rop, cells, fec);
|
||||||
|
end
|
||||||
|
|
||||||
|
% -------- build vector+category representation (NO NaNs in xAll) --------
|
||||||
|
catLabels = arrayfun(@(nm)sprintf('%d nm', round(nm)), wavelengthplan, 'UniformOutput', false);
|
||||||
|
catsAll = categorical(strings(0,1), catLabels, 'Ordinal', false);
|
||||||
|
xAll = zeros(0,1);
|
||||||
|
|
||||||
|
for ch = 1:N_ch
|
||||||
|
v = S_cell{ch}(:);
|
||||||
|
if ~isempty(v)
|
||||||
|
xAll = [xAll; v];
|
||||||
|
catsAll = [catsAll; repmat( ...
|
||||||
|
categorical(string(catLabels{ch}), catLabels, 'Ordinal', false), ...
|
||||||
|
numel(v), 1)];
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
% -------- plot --------
|
||||||
|
figure('Name', sprintf('%s FEC violin @ %s', tech, distLabel(distances, eval_ptr)));
|
||||||
|
hold on;
|
||||||
|
|
||||||
|
% Violin only if we have any data at all
|
||||||
|
if ~isempty(xAll)
|
||||||
|
violinplot_community(xAll, catsAll,'Bandwidth', 0.15, ... % KDE bandwidth (critical!)
|
||||||
|
'ViolinColor', [0.2 0.4 0.8], ... % or Nx3 for per-channel colors
|
||||||
|
'ViolinAlpha', 0.15, ...
|
||||||
|
'EdgeColor', [0.3 0.3 0.3], ...
|
||||||
|
'MarkerSize', 14, ...
|
||||||
|
'ShowData', true, ...
|
||||||
|
'ShowMean', false, ...
|
||||||
|
'ShowMedian', true, ...
|
||||||
|
'ShowBox', false, ...
|
||||||
|
'ShowWhiskers', false);
|
||||||
|
else
|
||||||
|
warning('No FEC crossings found at eval_ptr=%d (%s). Plotting only markers.', eval_ptr, distLabel(distances, eval_ptr));
|
||||||
|
set(gca,'XTick',1:N_ch,'XTickLabel',catLabels);
|
||||||
|
end
|
||||||
|
|
||||||
|
% Marker X positions (violin groups are at 1..N_ch)
|
||||||
|
xpos = 1:N_ch;
|
||||||
|
|
||||||
|
% -------- overlay mean markers (black/red/blue) --------
|
||||||
|
yBlue = -9;
|
||||||
|
|
||||||
|
for ch = 1:N_ch
|
||||||
|
if K_total(ch) == 0 || K_cross(ch) == 0
|
||||||
|
% no complete realizations OR none crossed -> blue X at -9
|
||||||
|
scatter(xpos(ch), yBlue, 80, 'x', 'LineWidth', 2, 'MarkerEdgeColor', [0 0 1], 'HandleVisibility','off');
|
||||||
|
continue;
|
||||||
|
end
|
||||||
|
|
||||||
|
mu = mean(S_cell{ch}, 'omitnan');
|
||||||
|
|
||||||
|
if K_cross(ch) < K_total(ch)
|
||||||
|
% some complete realizations did not cross -> red X
|
||||||
|
scatter(xpos(ch), mu, 80, 'x', 'LineWidth', 2, 'MarkerEdgeColor', [1 0 0], 'HandleVisibility','off');
|
||||||
|
else
|
||||||
|
% all complete realizations crossed -> black X
|
||||||
|
scatter(xpos(ch), mu, 80, 'x', 'LineWidth', 2, 'MarkerEdgeColor', [0 0 0], 'HandleVisibility','off');
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
title(sprintf('%s | BER %.2e | %s', tech, fec, distLabel(distances, eval_ptr)));
|
||||||
|
ylabel('ROP at FEC crossing');
|
||||||
|
grid on; box on;
|
||||||
|
|
||||||
|
if ~isempty(opt.ylim)
|
||||||
|
ylim(opt.ylim);
|
||||||
|
end
|
||||||
|
|
||||||
|
end
|
||||||
|
|
||||||
|
|
||||||
|
% ================= helpers =================
|
||||||
|
|
||||||
|
function cells2D = sliceCells4D(C4, ch, eval_ptr, N_rop)
|
||||||
|
dims = size(C4);
|
||||||
|
if numel(dims) < 4, dims(end+1:4) = 1; end
|
||||||
|
N_realiz = dims(3);
|
||||||
|
|
||||||
|
cells2D = cell(N_rop, N_realiz);
|
||||||
|
|
||||||
|
if ch > dims(1) || eval_ptr > dims(4)
|
||||||
|
return;
|
||||||
|
end
|
||||||
|
|
||||||
|
ropUse = min(N_rop, dims(2));
|
||||||
|
rUse = min(N_realiz, dims(3));
|
||||||
|
|
||||||
|
tmp = squeeze(C4(ch, 1:ropUse, 1:rUse, eval_ptr));
|
||||||
|
tmp = reshape(tmp, ropUse, rUse);
|
||||||
|
cells2D(1:ropUse, 1:rUse) = tmp;
|
||||||
|
end
|
||||||
|
|
||||||
|
function [S, K_total, K_cross] = crossings_and_counts(rop, cellsNxR, fec)
|
||||||
|
% counts "complete" realizations and how many of those crossed
|
||||||
|
% S returns only finite crossings (no NaN).
|
||||||
|
|
||||||
|
Y = extractCompleteBER(cellsNxR); % N_rop x K_total
|
||||||
|
K_total = size(Y,2);
|
||||||
|
|
||||||
|
if K_total == 0
|
||||||
|
S = [];
|
||||||
|
K_cross = 0;
|
||||||
|
return;
|
||||||
|
end
|
||||||
|
|
||||||
|
% optional quality gate (keep your style)
|
||||||
|
ok = mean(Y,1,'omitnan') <= 0.1;
|
||||||
|
Y = Y(:,ok);
|
||||||
|
K_total = size(Y,2);
|
||||||
|
|
||||||
|
if K_total == 0
|
||||||
|
S = [];
|
||||||
|
K_cross = 0;
|
||||||
|
return;
|
||||||
|
end
|
||||||
|
|
||||||
|
rop = rop(:);
|
||||||
|
S = nan(1, K_total);
|
||||||
|
|
||||||
|
for j = 1:K_total
|
||||||
|
y = Y(:,j);
|
||||||
|
above = (y > fec);
|
||||||
|
idx = find(above(1:end-1) & ~above(2:end), 1, 'first');
|
||||||
|
if ~isempty(idx)
|
||||||
|
x1 = rop(idx); y1 = y(idx);
|
||||||
|
x2 = rop(idx+1); y2 = y(idx+1);
|
||||||
|
if isfinite(y1) && isfinite(y2) && (y2 ~= y1)
|
||||||
|
t = (fec - y1) / (y2 - y1);
|
||||||
|
S(j) = x1 + t*(x2 - x1);
|
||||||
|
end
|
||||||
|
end
|
||||||
|
end
|
||||||
|
|
||||||
|
K_cross = sum(isfinite(S));
|
||||||
|
S = S(isfinite(S));
|
||||||
|
end
|
||||||
|
|
||||||
|
function Y = extractCompleteBER(cellSlice)
|
||||||
|
if isempty(cellSlice), Y = []; return; end
|
||||||
|
nR = size(cellSlice,2);
|
||||||
|
keep = false(1,nR);
|
||||||
|
|
||||||
|
for r = 1:nR
|
||||||
|
col = cellSlice(:,r);
|
||||||
|
keep(r) = all(cellfun(@(c) ~isempty(c), col));
|
||||||
|
end
|
||||||
|
|
||||||
|
if ~any(keep), Y = []; return; end
|
||||||
|
Y = cellfun(@(c) c.metrics.BER, cellSlice(:,keep), 'UniformOutput', true);
|
||||||
|
end
|
||||||
|
|
||||||
|
function lbl = distLabel(distances, eval_ptr)
|
||||||
|
if eval_ptr <= numel(distances) && isfinite(distances(eval_ptr))
|
||||||
|
lbl = sprintf('%.0f km', distances(eval_ptr));
|
||||||
|
else
|
||||||
|
lbl = sprintf('eval_%d', eval_ptr);
|
||||||
|
end
|
||||||
|
end
|
||||||
@@ -13,7 +13,6 @@ db_precode = 0;
|
|||||||
|
|
||||||
db_encode = 0;
|
db_encode = 0;
|
||||||
|
|
||||||
rcalpha = 0.05;
|
|
||||||
kover = 16;
|
kover = 16;
|
||||||
vbias_rel = 0.5;
|
vbias_rel = 0.5;
|
||||||
u_pi = 2.9;
|
u_pi = 2.9;
|
||||||
@@ -47,15 +46,21 @@ if M == 6
|
|||||||
bitpattern = bitpattern(1:end-mod(length(bitpattern),5));
|
bitpattern = bitpattern(1:end-mod(length(bitpattern),5));
|
||||||
end
|
end
|
||||||
|
|
||||||
bits = Informationsignal(bitpattern);
|
bits = Informationsignal(bitpattern.');
|
||||||
|
|
||||||
symbols = PAMmapper(M,0).map(bits);
|
symbols = PAMmapper(M,0).map(bits);
|
||||||
symbols.fs = fsym;
|
symbols.fs = fsym;
|
||||||
|
|
||||||
Pform = Pulseformer("fsym",fsym,"fs",fsym,"alpha",0.6,"pulse","rrc","pulselength",64,"matched_sps",4,"output_sps",2);
|
symbols.spectrum("displayname",'Symbols','fignum',1);
|
||||||
Pform.process(symbols);
|
%% RRC Shaping
|
||||||
|
rcalpha = 1;
|
||||||
|
Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rrc","pulselength",16,"alpha",rcalpha);
|
||||||
|
Digi_sig = Pform.process(symbols);
|
||||||
|
Digi_sig.spectrum("displayname",'Signal after pluse shaping','fignum',1);
|
||||||
|
|
||||||
|
%% RRC Matched Filtering
|
||||||
|
Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rrc","pulselength",16,"alpha",rcalpha);
|
||||||
|
Rx_sig = Pform.process(Digi_sig);
|
||||||
|
Rx_sig.spectrum("displayname",'Signal after matched filter','fignum',1);
|
||||||
|
|
||||||
MF = Pulseformer("fsym",fsym,"fdac",fdac,"pulse","rrc","pulselength",1024,"alpha",rcalpha,"matched",0);
|
|
||||||
Digi_sig = MF.process(Digi_sig);
|
|
||||||
|
|
||||||
Digi_sig.spectrum("displayname",'Signal after shaping','fignum',1);
|
|
||||||
|
|||||||
Reference in New Issue
Block a user