747 lines
25 KiB
Matlab
747 lines
25 KiB
Matlab
classdef Signal
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%SIGNAL Summary of this class goes here
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% Detailed explanation goes here
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properties
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signal
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logbook
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fs
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end
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methods
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function obj = Signal(signal,options)
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%SIGNAL Construct an instance of this class
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% Detailed explanation goes here
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arguments
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signal
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options.fs = [];
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end
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obj.signal = signal;
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obj.signal = obj.signal;
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obj.fs = options.fs;
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SignalType = [];
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TimeStamp = [];
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Length = [];
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SignalPower = [];
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Nase = [];
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Description = [];
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obj.logbook = table(SignalType,TimeStamp,Length,SignalPower,Nase,Description);
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end
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%% CONVERT TO INFORMATIONSIGNAL
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function [i_sig, varargout] = Informationsignal(obj,options)
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arguments
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obj
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options.fs
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options.logbook
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end
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if isa(obj,'Electricalsignal')
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%convert to information
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varargout{1} = obj.fs;
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i_sig = Informationsignal(obj.signal,"fs",options.fs,"logbook",options.logbook);
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elseif isa(obj,'Opticalsignal')
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error("Cannot convert from optical- to informationsignal. Use O/E conversion first.");
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end
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end
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%% CONVERT TO Electricalsignal
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function [e_sig, varargout] = Electricalsignal(obj,options)
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arguments
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obj
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options.fs
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options.logbook
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end
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obj.logbook = options.logbook;
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if isa(obj,'Opticalsignal')
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%convert to electrical
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varargout{1} = obj.nase;
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varargout{2} = obj.lambda;
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e_sig = Electricalsignal(obj.signal,"fs",obj.fs,"logbook",obj.logbook);
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elseif isa(obj,'Informationsignal')
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try
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% specify fs at varargin{1}
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e_sig = Electricalsignal(obj.signal,"fs",options.fs,"logbook",options.logbook);
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catch
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error("Signal Conversion failed [I -> E] ");
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end
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end
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end
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%% CONVERT TO Opticalsignal
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function o_sig = Opticalsignal(obj, options)
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arguments
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obj
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options.fs
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options.logbook
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options.nase
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options.lambda
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end
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fn = fieldnames(options);
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for l = 1:numel(fn)
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try
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obj.(fn{l}) = options.(fn{l});
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end
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end
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if isa(obj,'Electricalsignal')
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%convert to optical
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o_sig = Opticalsignal(obj.signal,"fs",obj.fs,"lambda",options.lambda,"logbook",obj.logbook,"nase",options.nase);
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elseif isa(obj,'Informationsignal')
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error("Cannot convert from information- to opticalsignal. Use E/O conversion first.");
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end
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end
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function plot(obj, options)
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% signal to plot: obj.signal
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% fsamp : obj.fs (e.g. 92e9 => 92 GHz)
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% length: length(obj.signal)
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arguments
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obj
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options.fignum
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options.displayname = [];
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options.timeframe = 0;
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end
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figure(options.fignum); % If figure does not exist, create new figure
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% 2) Plot into the figure handle found or created in one
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t = (0:length(obj.signal)-1) / obj.fs; % time vector
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if options.timeframe ~= 0
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%only show a certain timeframe of signal
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t = t(t<options.timeframe);
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end
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% 2 a) Actual plot (hold on, displayname??)
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dn = options.displayname;
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if isa(obj,'Opticalsignal')
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sig = abs(obj.signal).^2;
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else
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sig = obj.signal;
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end
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hold on;
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plot(t, sig(1:length(t)), 'DisplayName', dn, 'LineWidth', 0.1, 'Marker', '.', 'LineStyle','none', 'MarkerSize', 0.1);
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% 2 c)
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% - xlabel if not already here: time in readable format (1 ms and not 1e-3 s)
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% - ylabel amplitude
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if isempty(get(gca, 'XLabel').String)
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xlabel('Time (mu s)');
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end
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if isempty(get(gca, 'YLabel').String)
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ylabel('Amplitude');
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end
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% Convert time axis to milliseconds for readability
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xticks = get(gca, 'XTick');
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set(gca, 'XTick', xticks, 'XTickLabel', xticks * 1e6);
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% Add legend if not already present
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if isempty(get(gca, 'Legend'))
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legend;
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end
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hold off;
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end
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%% Add signals from one signal to another, the first object will sustain
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function Sum = plus(X,y)
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if isa(y,'Signal')
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Sum = X;
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Sum.signal = X.signal + y.signal;
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elseif isnumeric(y)
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Sum = X;
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Sum.signal = X.signal + y;
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end
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end
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function Product = times(X,y)
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if isa(y,'Signal')
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Product = X;
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Product.signal = X.signal .* y.signal;
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elseif isnumeric(y)
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Product = X;
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Product.signal = X.signal .* y;
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end
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end
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%% Display length
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function return_length = length(obj)
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%METHOD1 Summary of this method goes here
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% Detailed explanation goes here
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return_length = length(obj.signal);
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end
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%% Write Logbook Entry
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function obj = logbookentry(obj,varargin)
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if nargin > 1
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Description = varargin{1};
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else
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Description = "";
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end
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SignalType = [string(class(obj))];
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TimeStamp = [(datetime('now','TimeZone','local','Format','HH:mm:ss'))];
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Length = num2str(obj.length, ['%' sprintf('.%df', 0)]);%[obj.length];
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SignalPower = [obj.power];
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Nase = [0];
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cell = {SignalType , TimeStamp , Length , SignalPower(1) , Nase, Description};
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obj.logbook = [obj.logbook;cell];
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end
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%% Resample Signal
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function obj = resample(obj,options)
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arguments
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obj Signal
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options.fs_in double
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options.fs_out double
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options.n double = 10;
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options.beta double = 5;
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end
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obj.signal = resample(obj.signal,options.fs_out,options.fs_in,options.n,options.beta);
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desc = ['resample signal from ', num2str(options.fs_in*1e-9), ' GHz to ', num2str(options.fs_out*1e-9), ' GHz' ];
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obj = obj.logbookentry(desc);
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obj.fs = options.fs_out;
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end
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%%
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function spectrum(obj,options)
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arguments
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obj
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options.fignum
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options.displayname = "";
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end
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% spectrum_plot(obj.signal,options.fsamp,options.figurename,options.displayname);
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N = 2^(nextpow2(length(obj.signal))-6);
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[p_lin,w] = pwelch(obj.signal,hanning(N),N/2,N,obj.fs,"centered","power","mean");
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p_dbm = 10*log10(p_lin)+30; %dB to dBm in case of "power"
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figure(options.fignum); % If figure does not exist, create new figure
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hold on
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plot(w.*1e-9,p_dbm,'DisplayName',options.displayname,'LineWidth',1);
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xlabel("Frequency in GHz");
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%ylabel("Power/frequency (dB/Hz)");
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ylabel("Power (dBm)");
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xlim([-obj.fs/2 obj.fs/2].*1e-9)
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edgetick = 2^(nextpow2(obj.fs*1e-9));
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xticks([-edgetick:16:edgetick]);
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xlim([-244, 244])
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ylim([-120,-0]);
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yticks([-200:10:10]);
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legend
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end
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%% Power of signal
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function pow = power(obj,options)
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arguments
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obj
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options.unit power_notation = power_notation.dBm
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end
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pow = mean(abs(obj.signal).^2);
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switch options.unit
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case power_notation.dBm
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if isa(obj,'Electricalsignal')
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pow = pow / 50;
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end
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pow = 10*log10(pow)+30; %dbm
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case power_notation.mW
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pow = pow .* 1e3; %mW
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case power_notation.W
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%pow = pow % Watt
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end
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end
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%% Peak Power of Signal
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function pow_pk = power_peak(obj,options)
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arguments
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obj
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options.unit power_notation = power_notation.dBm
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end
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pow_pk = max(abs(obj.signal).^2); % dBm
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switch options.unit
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case power_notation.dBm
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pow_pk = pow2db(pow_pk)+30; %dbm
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case power_notation.mW
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pow_pk = pow_pk .* 1e3; %mW
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case power_notation.W
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%pow = pow % Watt
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end
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end
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%% PAPR of signal
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function papr = papr_lin(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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% 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 = obj.power_peak("unit",power_notation.W) / obj.power("unit",power_notation.W); %linear
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end
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%% PAPR of signal
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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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% 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 = obj.power_peak("unit",power_notation.W) / obj.power("unit",power_notation.W);
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papr_db = 10*log10(papr);
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average_power = obj.power;
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peak_power = obj.power_peak;
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papr_db = peak_power - average_power; %db
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end
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%%
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function obj = normalize(obj,options)
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arguments
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obj Signal
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options.mode normalization_mode = normalization_mode.rms
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end
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switch options.mode
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case normalization_mode.rms
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obj.signal = obj.signal/sqrt(mean(abs(obj.signal).^2,"all"));
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case normalization_mode.oneone
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obj.signal = obj.signal - min(obj.signal);
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obj.signal = obj.signal/max(abs(obj.signal));
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obj.signal = (2*obj.signal) - 1;
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end
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end
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%%
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function [obj,delay_n] = delay(obj,options)
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arguments
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obj Signal
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options.delay_samples = 0
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end
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obj.signal=delayseq(obj.signal,options.delay_samples);
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end
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%%
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function [obj,D,cuts] = tsynch(obj,options)
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% time sync and cut
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arguments
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obj Signal
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options.reference Signal
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options.fs_ref = 0;
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end
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%normalize the signal
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a = obj.normalize("mode","oneone").signal;
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%resample the reference
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q = obj.fs/options.fs_ref;
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b = options.reference.resample("fs_in",options.fs_ref,"fs_out",obj.fs).normalize("mode","oneone").signal;
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%estimate delay between signals
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[co,lags] = xcorr(a,b,100);
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[~,pos] = max(co);
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D = lags(pos);
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if D == 100
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warning('Check Sync: Delay is found to be 100 which is the max. windowlength is xcorr function!')
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end
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% delay by lagging samples
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obj = obj.delay("delay_samples",-D);
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cuts = obj.length-(options.reference.length*q);
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if cuts > 10
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warning('Check Sync: Signal difference larger than 10.')
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end
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if cuts < 0
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% warning('Check Sync: Reference Signal shorter than signal to sync.')
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else
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% then cut out the length of the reference
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obj.signal = obj.signal(1:end-cuts);
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end
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end
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function er = extinctionratio(obj,fsym,M)
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histpoints = 1024; %% verticale resolution
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histpoints = floor(histpoints/2)*2+1; %% to have the eye digram centered around one point make the vertical resolution uneven
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histpoints_horizontal = 512; %% horizontal resolution
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hist_data=zeros(histpoints,histpoints_horizontal ); %% initilize eye diagram
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if isa(obj,'Opticalsignal')
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sig = abs(obj.signal).^2;
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elseif isa(obj,'Electricalsignal')
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sig = obj.signal;
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else
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sig = obj.signal;
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end
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x = (sig); %% make input signal rea)l
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x = resample(x,fsym*histpoints_horizontal/2,obj.fs); %% up sample to original fsym rate
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if mod(length(x),2)==1 %% if the signal lenght is not divisible by 2 (symbols displayed in the eye diagram are 2) remove last symbol
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x = x(1:end-1);
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end
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eye_mat = reshape(x(1:end-mod(length(x),histpoints_horizontal)),histpoints_horizontal,floor(length(x)/histpoints_horizontal)); %% reshape signal into 256 rows each row has the histogram(eye data of all symbols)
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maxA = max(sig(100:end-100));
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minA = min(sig(100:end-100));
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difference= maxA-minA;
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data_ind_y=round((eye_mat-minA)/difference*(histpoints-1)) +1;
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for n=1:size(data_ind_y,1)
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nn=histcounts(data_ind_y(n,:),1:histpoints+1);
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hist_data(:,n)=flip(nn.'); %without flip, the eye is upside down :-(
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end
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plot_data = 20*log10(hist_data);
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plot_data(plot_data==-Inf) = 0;
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maxall = 0;
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for l = 1:size(plot_data,2)
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[maxpk_,pos_] = max(plot_data(:,l));
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if maxpk_ > maxall
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maxall = maxpk_;
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posxall = l;
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posyall = pos_;
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end
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end
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hist_interest = plot_data(:,posxall);
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hist_interest_smoth = smooth(hist_interest,20);
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[pk,loc] = findpeaks(hist_interest_smoth,"MinPeakDistance",40,"NPeaks",M,"MinPeakHeight",30);
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for i = 1:numel(loc)
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ppeak(i) = maxA - (difference/histpoints*loc(i));
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end
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if isa(obj,'Opticalsignal')
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er=10*log10(ppeak(1)/ppeak(end));
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elseif isa(obj,'Electricalsignal')
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if mean([ppeak(1),ppeak(end)]) < 1e-2
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disp("No Extiction Ration for Bipolar Electrical Signal. Calculating Outer OMA instead...")
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er=max(ppeak)-min(ppeak);
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else
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er=10*log10(ppeak(1)/ppeak(end));
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end
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else
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er=10*log10(ppeak(1)/ppeak(end));
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end
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if 0
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findpeaks(hist_interest_smoth,"MinPeakDistance",40,"NPeaks",M,"MinPeakHeight",30);
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end
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end
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function eye(obj,fsym,M)
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mode = 1;
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histpoints = 1024; %% verticale resolution
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histpoints = floor(histpoints/2)*2+1; %% to have the eye digram centered around one point make the vertical resolution uneven
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histpoints_horizontal = 512; %% horizontal resolution
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hist_data=zeros(histpoints,histpoints_horizontal ); %% initilize eye diagram
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if isa(obj,'Opticalsignal')
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sig = abs(obj.signal).^2;
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elseif isa(obj,'Electricalsignal')
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sig = obj.signal;
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else
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sig = obj.signal;
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end
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x = (sig); %% make input signal rea)l
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x = resample(x,fsym*histpoints_horizontal/2,obj.fs); %% up sample to original fsym rate
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if mod(length(x),2)==1 %% if the signal lenght is not divisible by 2 (symbols displayed in the eye diagram are 2) remove last symbol
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x = x(1:end-1);
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end
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eye_mat = reshape(x(1:end-mod(length(x),histpoints_horizontal)),histpoints_horizontal,floor(length(x)/histpoints_horizontal)); %% reshape signal into 256 rows each row has the histogram(eye data of all symbols)
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figure(922)
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clf
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if mode == 2
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% generate "intuitive eye diagram" by drawing lines on top over
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% each other; only draw 1000 lines, otherwise the plot is too
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% crowded
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col = cbrewer2('Set1',2);
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for n=1:1000
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hold on
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plot(eye_mat(:,n),'LineStyle',':','LineWidth',0.1,'Color',col(2,:));
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end
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ylabel('Amplitude of Signal');
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elseif mode == 1
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% generate eye diagram using histogram
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maxA = max(sig(100:end-100));
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minA = min(sig(100:end-100));
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difference= maxA-minA;
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data_ind_y=round((eye_mat-minA)/difference*(histpoints-1)) +1;
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for n=1:size(data_ind_y,1)
|
|
nn=histcounts(data_ind_y(n,:),1:histpoints+1);
|
|
hist_data(:,n)=flip(nn.'); %without flip, the eye is upside down :-(
|
|
end
|
|
|
|
plot_data = 20*log10(hist_data);
|
|
plot_data(plot_data==-Inf) = 0;
|
|
|
|
imagesc(plot_data);
|
|
|
|
|
|
|
|
% beautify
|
|
colormap(cbrewer2("Blues",4096));
|
|
|
|
|
|
if isa(obj,'Opticalsignal')
|
|
title("Optical Eye")
|
|
ylabel("Power in mW");
|
|
y_tickstring = string(linspace(maxA.*1e3,minA.*1e3,16));
|
|
min_ = min(abs(obj.signal(100:end-100)).^2);
|
|
max_ = abs(max(obj.signal(100:end-100)).^2);
|
|
elseif isa(obj,'Electricalsignal')
|
|
title("Electrical Eye")
|
|
ylabel("Voltage in V");
|
|
y_tickstring = string(linspace(maxA,minA,16));
|
|
min_ = min(obj.signal(100:end-100));
|
|
max_ = abs(max(obj.signal(100:end-100)));
|
|
else
|
|
title("Digital Eye")
|
|
ylabel("Digital Signal Amplitude");
|
|
y_tickstring = string(linspace(maxA,minA,16));
|
|
min_ = min(obj.signal(100:end-100));
|
|
max_ = abs(max(obj.signal(100:end-100)));
|
|
end
|
|
|
|
% add information
|
|
|
|
if 1
|
|
|
|
pwr_dbm = round(obj.power,3);
|
|
pwr_lin = obj.power("unit",power_notation.W);
|
|
|
|
papr_ = obj.papr_lin;%round(papr(obj.signal.^2),3);
|
|
|
|
yline( histpoints-(pwr_lin - minA)/difference*histpoints );
|
|
yline( histpoints-(min_ - minA)/difference*histpoints );
|
|
yline( histpoints-(max_ - minA)/difference*histpoints );
|
|
|
|
maxall = 0;
|
|
for l = 1:size(plot_data,2)
|
|
[maxpk_,pos_] = max(plot_data(:,l));
|
|
if maxpk_ > maxall
|
|
maxall = maxpk_;
|
|
posxall = l;
|
|
posyall = pos_;
|
|
end
|
|
end
|
|
|
|
hold on
|
|
xline(posxall)
|
|
|
|
hist_interest = plot_data(:,posxall);
|
|
hist_interest_smoth = smooth(hist_interest,20);
|
|
a = scatter(hist_interest_smoth+posxall,1:length(hist_interest_smoth),4,'.','MarkerEdgeColor','red');
|
|
|
|
[pk,loc] = findpeaks(hist_interest_smoth,"MinPeakDistance",40,"NPeaks",M,"MinPeakHeight",30);
|
|
scatter(posxall,loc,'red','Marker','x','LineWidth',2);
|
|
yline(loc,'Color','red','LineWidth',1,'LineStyle',':');
|
|
|
|
for i = 1:numel(loc)
|
|
ppeak(i) = maxA - (difference/histpoints*loc(i));
|
|
end
|
|
|
|
oma = false;
|
|
if isa(obj,'Opticalsignal')
|
|
er=10*log10(ppeak(1)/ppeak(end));
|
|
elseif isa(obj,'Electricalsignal')
|
|
if mean([ppeak(1),ppeak(end)]) < 1e-2
|
|
oma = true;
|
|
er=max(ppeak)-min(ppeak);
|
|
else
|
|
er=10*log10(ppeak(1)/ppeak(end));
|
|
end
|
|
else
|
|
er=10*log10(ppeak(1)/ppeak(end));
|
|
end
|
|
|
|
% Define properties
|
|
boxPosition = [0.15 0.86 0.2 0.05]; % Position for the first box [x y width height]
|
|
boxColor = [0.9 0.9 0.9]; % Light grey background color
|
|
boxEdgeColor = 'k'; % Black edge color
|
|
boxLineStyle = '--'; % Dashed line style
|
|
boxFontWeight = 'bold'; % Bold font
|
|
|
|
% Create first annotation box for Power
|
|
annotation('textbox', boxPosition, ...
|
|
'String', ['Power: ',num2str(pwr_dbm),' dBm'], ...
|
|
'BackgroundColor', boxColor, ...
|
|
'EdgeColor', boxEdgeColor, ...
|
|
'LineStyle', boxLineStyle, ...
|
|
'FontWeight', boxFontWeight, ...
|
|
'HorizontalAlignment', 'center');
|
|
|
|
% Adjust position for the second box (slightly to the right)
|
|
boxPosition = [0.37 0.86 0.2 0.05]; % Adjusted position
|
|
|
|
% Create second annotation box for PAPR
|
|
annotation('textbox', boxPosition, ...
|
|
'String', ['PAPR(lin):',num2str(papr_),''], ...
|
|
'BackgroundColor', boxColor, ...
|
|
'EdgeColor', boxEdgeColor, ...
|
|
'LineStyle', boxLineStyle, ...
|
|
'FontWeight', boxFontWeight, ...
|
|
'HorizontalAlignment', 'center');
|
|
|
|
% Adjust position for the third box (slightly to the right)
|
|
boxPosition = [0.59 0.86 0.2 0.05]; % Adjusted position
|
|
|
|
% Create third annotation box for Vmax
|
|
if ~oma
|
|
thirdboxstring = ['ER (db):',num2str(er),' dB'];
|
|
else
|
|
thirdboxstring = ['OMA outer:',num2str(er),' V'];
|
|
end
|
|
|
|
annotation('textbox', boxPosition, ...
|
|
'String',thirdboxstring , ...
|
|
'BackgroundColor', boxColor, ...
|
|
'EdgeColor', boxEdgeColor, ...
|
|
'LineStyle', boxLineStyle, ...
|
|
'FontWeight', boxFontWeight, ...
|
|
'HorizontalAlignment', 'center');
|
|
|
|
|
|
yticks(linspace(0,histpoints,16));
|
|
yticklabels(y_tickstring);
|
|
|
|
end
|
|
|
|
|
|
|
|
|
|
end
|
|
|
|
% disp('h');
|
|
%
|
|
% fsig = obj.fs;
|
|
% q = fsig/fsym;
|
|
%
|
|
% if q > 10 && isinteger(q)
|
|
% sig = (obj.signal);
|
|
% else
|
|
% sig = (obj.resample("fs_in",fsig,"fs_out",fsym*30).signal);
|
|
% q = 10;
|
|
% end
|
|
%
|
|
% figure()
|
|
% clf
|
|
% cursor = 200*q;
|
|
%
|
|
% for s = 1:700
|
|
% plot(sig(cursor-q:cursor+q),'Color','black','LineWidth',0.1,'LineStyle','-');
|
|
% hold on
|
|
% cursor=cursor+q;
|
|
% s=s+1;
|
|
% end
|
|
%
|
|
% ylim([-3 3]);
|
|
|
|
|
|
end
|
|
|
|
end
|
|
end
|
|
|