WIP Büro
This commit is contained in:
@@ -4,6 +4,7 @@ classdef AWG
|
||||
|
||||
properties(Access=public)
|
||||
|
||||
preset
|
||||
kover %oversampling factor e.g. 16
|
||||
repetitions %repeat the signal to generate a longer sequence?
|
||||
fdac %needed
|
||||
@@ -64,13 +65,8 @@ classdef AWG
|
||||
obj.dac_max = 0.5;
|
||||
obj.dac_min = -.5;
|
||||
obj.f_cutoff = 80e9;
|
||||
|
||||
end
|
||||
|
||||
|
||||
|
||||
|
||||
|
||||
end
|
||||
|
||||
function signalclass_out = process(obj,signalclass_in)
|
||||
@@ -91,7 +87,8 @@ classdef AWG
|
||||
signalclass_in = Electricalsignal(signalclass_in,"fs",obj.fdac*obj.kover,"logbook",signalclass_in.logbook);
|
||||
|
||||
% append to logbook
|
||||
signalclass_in = signalclass_in.logbookentry();
|
||||
lbdesc = ['AWG preset ', obj.preset, 'k_over:',num2str(obj.kover),'. f_dac:',num2str(obj.fdac*1e-9),'GHz. Resolution:',num2str(obj.bit_resolution),' bits.'];
|
||||
signalclass_in = signalclass_in.logbookentry(lbdesc);
|
||||
|
||||
% write to output
|
||||
signalclass_out = signalclass_in;
|
||||
|
||||
@@ -32,7 +32,7 @@ classdef EML
|
||||
%EML Construct an instance of this class
|
||||
% Detailed explanation goes here
|
||||
arguments
|
||||
options.mode;
|
||||
options.mode eml_mode = eml_mode.im_cosinus ;
|
||||
options.fsimu;
|
||||
options.lambda;
|
||||
options.power;
|
||||
@@ -70,7 +70,7 @@ classdef EML
|
||||
signalclass_in = Opticalsignal(signalclass_in,"fs",obj.fsimu,"logbook",signalclass_in.logbook,"lambda",obj.lambda*1e-9,"nase",0);
|
||||
|
||||
% append to logbook
|
||||
lbdesc = ['EML '];
|
||||
lbdesc = [num2str(obj.lambda),' nm Laser with ',num2str(obj.power),' dBm P_out. Linew.=',num2str(obj.linewidth*1e-6),' MHz. Modulation mode: ',char(obj.mode) ];
|
||||
signalclass_in = signalclass_in.logbookentry(lbdesc);
|
||||
|
||||
% write to output
|
||||
|
||||
@@ -73,8 +73,11 @@ classdef Fiber
|
||||
|
||||
obj.linstep = -obj.alpha_lin/2 - 2*1j*pi^2*obj.b2*faxis.^2 - 4/3*1j*pi^3*obj.b3*faxis.^3;
|
||||
|
||||
opt_out = obj.NLSE(opt_in);
|
||||
|
||||
if obj.gamma ~= 0
|
||||
opt_out = obj.NLSE(opt_in);
|
||||
else
|
||||
opt_out = ifft(fft(opt_in).*exp(obj.linstep*obj.fiber_length)); % only one linear step
|
||||
end
|
||||
%attenuate nase
|
||||
|
||||
end
|
||||
|
||||
@@ -153,12 +153,36 @@ classdef Filter
|
||||
faxis=ifftshift(faxis(1:end-1));
|
||||
|
||||
H=exp(-((faxis)/(obj.f_cutoff*2)).^(2*obj.filtdegree)*log(2)*2^(2*obj.filtdegree-1));
|
||||
|
||||
% figure()
|
||||
% hold on
|
||||
% xline(obj.f_cutoff*1e-9,'LineWidth',3,LineStyle='--');
|
||||
% xline(-obj.f_cutoff*1e-9,'LineWidth',3,LineStyle='--');
|
||||
% plot(faxis*1e-9,20*log10(abs(H)),'LineWidth',3);
|
||||
% ax = gca;
|
||||
% ylim([-6 0])
|
||||
% grid on
|
||||
% xlabel('Freq in GHz')
|
||||
% ylabel('Magnitude (dB)')
|
||||
|
||||
end
|
||||
|
||||
% Build Filter from coefficients
|
||||
if filterType ~= 10
|
||||
[H,w] = freqz(B, A, obj.signal_length,'whole');
|
||||
|
||||
% figure()
|
||||
% hold on
|
||||
% plot(w/(2*pi)*obj.fsamp*1e-9,20*log10(abs(H)),'LineWidth',3);
|
||||
% ax = gca;
|
||||
% ylim([-6 0])
|
||||
% grid on
|
||||
% xlabel('Freq in GHz')
|
||||
% ylabel('Magnitude (dB)')
|
||||
|
||||
|
||||
% freqz(B, A)
|
||||
%hfvt = fvtool(B,A);
|
||||
end
|
||||
|
||||
end
|
||||
@@ -167,7 +191,12 @@ classdef Filter
|
||||
function show(obj)
|
||||
obj.signal_length = 1024;
|
||||
[H,w] = obj.buildFilter(obj.filterType);
|
||||
plot(w,20*log10(abs(H)))
|
||||
plot(w/pi,20*log10(abs(H)));
|
||||
ax = gca;
|
||||
ax.XTick = 0:.5:2;
|
||||
grid on
|
||||
xlabel('Normalized Frequency (\times\pi rad/sample)')
|
||||
ylabel('Magnitude (dB)')
|
||||
%freqz(H);
|
||||
end
|
||||
end
|
||||
|
||||
@@ -42,6 +42,7 @@ classdef Opticalsignal < Signal
|
||||
function pow = power(obj)
|
||||
|
||||
pow = mean(abs(obj.signal.^2)) ;
|
||||
% pow = pow2db(pow)+30;
|
||||
|
||||
end
|
||||
end
|
||||
|
||||
104
Classes/Signal.m
104
Classes/Signal.m
@@ -24,6 +24,7 @@ classdef Signal
|
||||
|
||||
end
|
||||
|
||||
%% CONVERT TO INFORMATIONSIGNAL
|
||||
function [i_sig, varargout] = Informationsignal(obj)
|
||||
|
||||
if isa(obj,'Electricalsignal')
|
||||
@@ -40,6 +41,7 @@ classdef Signal
|
||||
|
||||
end
|
||||
|
||||
%% CONVERT TO Electricalsignal
|
||||
function [e_sig, varargout] = Electricalsignal(obj,options)
|
||||
|
||||
arguments
|
||||
@@ -70,6 +72,7 @@ classdef Signal
|
||||
|
||||
end
|
||||
|
||||
%% CONVERT TO Opticalsignal
|
||||
function o_sig = Opticalsignal(obj, options)
|
||||
|
||||
arguments
|
||||
@@ -104,12 +107,14 @@ classdef Signal
|
||||
end
|
||||
|
||||
|
||||
%% Display length
|
||||
function return_length = length(obj)
|
||||
%METHOD1 Summary of this method goes here
|
||||
% Detailed explanation goes here
|
||||
return_length = length(obj.signal);
|
||||
end
|
||||
|
||||
%% Write Logbook Entry
|
||||
function obj = logbookentry(obj,varargin)
|
||||
|
||||
if nargin > 1
|
||||
@@ -130,6 +135,7 @@ classdef Signal
|
||||
|
||||
end
|
||||
|
||||
%% Resample Signal
|
||||
function obj = resample(obj,options)
|
||||
|
||||
arguments
|
||||
@@ -146,6 +152,104 @@ classdef Signal
|
||||
|
||||
end
|
||||
|
||||
%%
|
||||
function spectrum(obj,fsamp,options)
|
||||
|
||||
arguments
|
||||
obj
|
||||
fsamp
|
||||
options.figurename = [];
|
||||
options.displayname = [];
|
||||
end
|
||||
|
||||
%Get figure if there is already a spectrum plot -> I want to add the new
|
||||
%spectum "onto" the existing plot to have a better comparison
|
||||
if isempty(options.figurename)
|
||||
fig = findall(groot, 'Type', 'figure', 'Name', 'power density');
|
||||
if isvalid(fig)
|
||||
fig = get(fig);
|
||||
hold on
|
||||
else
|
||||
figure('name','power density');
|
||||
end
|
||||
else
|
||||
fig = findall(groot, 'Type', 'figure', 'Name', options.figurename);
|
||||
if isvalid(fig)
|
||||
fig = get(fig);
|
||||
hold on
|
||||
else
|
||||
figure('name',options.figurename);
|
||||
end
|
||||
|
||||
end
|
||||
|
||||
|
||||
%compute FFT of input
|
||||
Fsignal = fft(obj.signal);
|
||||
|
||||
%POWER spectral density (todo: toggle?)
|
||||
psd = Fsignal.*conj(Fsignal);
|
||||
|
||||
%Use only magnitude of FFT (which was complex)
|
||||
psd = abs(psd);
|
||||
|
||||
%Shift the spectrum to yield
|
||||
psd = fftshift(psd);
|
||||
|
||||
%divide by N
|
||||
psd = psd/length(Fsignal);
|
||||
|
||||
%smoothing
|
||||
psd = smooth(psd,100);
|
||||
|
||||
psd_plot = 20*log10(psd);
|
||||
|
||||
|
||||
testParseval = 1;
|
||||
if testParseval == 1
|
||||
E_FreqDomain = sum(psd);
|
||||
%test parseval
|
||||
E_TimeDomain = sum(abs(Fsignal.^2));
|
||||
|
||||
if isequal(round(E_FreqDomain,1),round(E_TimeDomain,1))
|
||||
%disp('Parseval is right!');
|
||||
else
|
||||
disp('Parseval theorem is not right...');
|
||||
end
|
||||
end
|
||||
|
||||
if fsamp <= 1e+100
|
||||
%Frequency Axis
|
||||
freq_vec = linspace(-fsamp/2,fsamp/2,length(psd));
|
||||
freq_vec = reshape(freq_vec,size(psd_plot));
|
||||
|
||||
|
||||
if ~isempty(options.displayname)
|
||||
plot(freq_vec*1e-9,psd_plot,'Linewidth',0.5,'DisplayName',options.displayname);
|
||||
else
|
||||
plot(freq_vec*1e-9,psd_plot,'Linewidth',0.5);
|
||||
end
|
||||
|
||||
xlabel('Frequency [GHz]')
|
||||
else
|
||||
%Wavelength Axis
|
||||
freq_vec = physconst('LightSpeed')*linspace(-fsamp/2,fsamp/2,length(psd))./((physconst('LightSpeed')/1550e-9)^2);
|
||||
if ~isempty(options.displayname)
|
||||
plot(freq_vec*1e9,psd_plot,'Linewidth',0.5,'DisplayName',options.displayname);
|
||||
else
|
||||
plot(freq_vec*1e9,psd_plot,'Linewidth',0.5);
|
||||
end
|
||||
|
||||
xlabel('Wavelength [nm]')
|
||||
end
|
||||
|
||||
|
||||
ylabel('Magnitude [dB]')
|
||||
legend
|
||||
grid minor;
|
||||
|
||||
end
|
||||
|
||||
end
|
||||
end
|
||||
|
||||
|
||||
@@ -1,4 +1,4 @@
|
||||
classdef emlmodes < int32
|
||||
classdef eml_mode < int32
|
||||
|
||||
enumeration
|
||||
im_linear (1)
|
||||
@@ -13,8 +13,8 @@ else
|
||||
end
|
||||
|
||||
%Bau das Filter (hier rrc)
|
||||
racos_len = 2048;
|
||||
alpha = 0.1;
|
||||
racos_len = 32;
|
||||
alpha = 0.05;
|
||||
h = rcosdesign(alpha,racos_len,sps);
|
||||
|
||||
%Apply Filter using Matlab build in fctn.
|
||||
|
||||
@@ -1,4 +1,6 @@
|
||||
clear all
|
||||
|
||||
|
||||
%% Set Simulation Variables
|
||||
|
||||
O = 18; %order of prbs
|
||||
N = 2^(O-1); %length of prbs
|
||||
@@ -9,7 +11,8 @@ M = 4; %PAM-M
|
||||
bitpattern = zeros(N,log2(M));
|
||||
|
||||
% Symbol Rate
|
||||
fsym = 80e9;
|
||||
fsym = 112e9;
|
||||
|
||||
% DAC Rate
|
||||
fdac = 120e9;
|
||||
|
||||
@@ -22,144 +25,157 @@ fadc = 256e9;
|
||||
% Simulation frequency in "analog domain"
|
||||
fsimu = kover * fdac ;
|
||||
|
||||
|
||||
|
||||
%% CONSTRUCT ALL CLASSES
|
||||
|
||||
pam_mapper = PAMmapper(M,0);
|
||||
digimod = PAMmapper(M,0);
|
||||
|
||||
awg = AWG('preset','M8199B','fdac',fdac,'kover',kover,'lpf_active',1,'f_cutoff',80e9,'lpf_type',filtertypes.gaussian);
|
||||
awg = AWG('preset','M8199B','fdac',fdac,'kover',kover,'lpf_active',1,'f_cutoff',56e9,'lpf_type',filtertypes.gaussian,'bit_resolution',5.5);
|
||||
|
||||
fil_50 = Filter('filtdegree',1,"f_cutoff",50e9,"fsamp",fdac,"filterType",filtertypes.bessel_inp);
|
||||
lp_laser = Filter('filtdegree',1,"f_cutoff",60e9,"fsamp",fdac,"filterType",filtertypes.bessel_inp);
|
||||
|
||||
|
||||
u_pi = 3.5;
|
||||
u_pi = 4.6;
|
||||
vbias = (0.5*u_pi)-u_pi;
|
||||
extmodlaser = EML("mode",emlmodes.im_cosinus,"power",5,"fsimu",fsimu,"lambda",1550,"bias",vbias,"u_pi",u_pi,"linewidth",10000);
|
||||
extmodlaser = EML("mode",eml_mode.im_cosinus,"power",5,"fsimu",fsimu,"lambda",1550,"bias",vbias,"u_pi",u_pi,"linewidth",10000);
|
||||
|
||||
amp = Amplifier("amp_mode","ideal_no_noise","amplification_db",0,"gain_mode","output_power");
|
||||
amp = Amplifier("amp_mode","ideal_no_noise","amplification_db",0,"gain_mode","output_power");
|
||||
|
||||
fib = Fiber("fsimu",fdac*kover,"fiber_length",0,"alpha",0.2,"D",17,"lambda0",1550);
|
||||
fib = Fiber("fsimu",fdac*kover,"fiber_length",0,"alpha",0.2,"D",17,"lambda0",1550,"gamma",0);
|
||||
|
||||
phdiode = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20);
|
||||
optatten = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",5);
|
||||
|
||||
fil_diode = Filter('filtdegree',1,"f_cutoff",120e9,"fsamp",fdac,"filterType",filtertypes.bessel_inp);
|
||||
edfaamp = Amplifier("amp_mode","edfa_increase_nase","gain_mode","output_power","amplification_db",0,"nase_mode","generate_ase","noifig",5);
|
||||
|
||||
phdiode = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20);
|
||||
|
||||
lp_diode = Filter('filtdegree',1,"f_cutoff",80e9,"fsamp",fdac,"filterType",filtertypes.bessel_inp);
|
||||
|
||||
scp = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
||||
"delay",0,"fixed_delay",0,"lpf_bw",113e9,"filtertype",filtertypes.butterworth,...
|
||||
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
||||
"adcresolution",6,"quantbuffer",0.1);
|
||||
|
||||
eq = EQ("K",2,"plottrain",0,"plotfinal",1,...
|
||||
"training_length",4096,"training_loops",5,...
|
||||
"Ne",[50,0,0],"Nb",[0,0,0],...
|
||||
"DCmu",0.005,"DDmu",[0.0004 0.0004 0.0004 0.0004 ],"DFEmu",0.005,"FFEmu",0.000,...
|
||||
"dd_loops",2,"epsilon",[10 100 1000 ],"M",4,...
|
||||
"thres",[0.005 0.004 0.0005 ],"l1act",0,"delay",1,"rho",0.0005,"ideal_dfe",0,"DB_aim",0);
|
||||
|
||||
scp = Scope("fsimu",fdac*kover,"fadc",fadc,...
|
||||
"delay",0,"fixed_delay",0,"lpf_bw",113e9,"filtertype",filtertypes.butterworth,...
|
||||
"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
|
||||
"adcresolution",6,"quantbuffer",0.1);
|
||||
|
||||
eq = EQ("K",2,"plottrain",0,"plotfinal",1,...
|
||||
"training_length",4096,"training_loops",5,...
|
||||
"Ne",[50,0,0],"Nb",[0,0,0],...
|
||||
"DCmu",0.005,"DDmu",[0.0004 0.0004 0.0004 0.0004 ],"DFEmu",0.005,"FFEmu",0.000,...
|
||||
"dd_loops",2,"epsilon",[10 100 1000 ],"M",4,...
|
||||
"thres",[0.005 0.004 0.0005 ],"l1act",0,"delay",2,"rho",0.0005,"ideal_dfe",0,"DB_aim",0);
|
||||
|
||||
%% PROCESS
|
||||
% INFORMATION SIGNAL
|
||||
|
||||
% PRBS Generation
|
||||
for i = 1:log2(M)
|
||||
[bitpattern(:,i),seed] = prbs(O,N,seed);
|
||||
end
|
||||
|
||||
bits = Informationsignal(bitpattern);
|
||||
% Build Inf. signal class
|
||||
bits = Informationsignal(bitpattern);
|
||||
|
||||
mod_out = pam_mapper.map(bits);
|
||||
% Digi Mod
|
||||
mod_out = digimod.map(bits);
|
||||
|
||||
reference = mod_out;
|
||||
|
||||
reference = mod_out;
|
||||
|
||||
mod_out.signal = applyPulseShaping(mod_out.signal,fsym,fdac);
|
||||
|
||||
% ELECTRICAL DOMAIN
|
||||
X = awg.process(mod_out);
|
||||
X = fil_50.process(X);
|
||||
X = X.normalize;
|
||||
|
||||
% OPTICAL DOMAIN
|
||||
X = extmodlaser.process(X);
|
||||
% AWG -> ELECTRICAL DOMAIN
|
||||
X = awg.process(mod_out);
|
||||
|
||||
X = amp.process(X);
|
||||
X = lp_laser.process(X);
|
||||
|
||||
X = fib.process(X);
|
||||
X = X.normalize;
|
||||
|
||||
X = phdiode.process(X);
|
||||
% Laser; Modulation -> OPTICAL DOMAIN
|
||||
X = extmodlaser.process(X);
|
||||
X.spectrum(fsimu,"displayname",'laser out','figurename','after laser');
|
||||
|
||||
X = fil_diode.process(X);
|
||||
%X = amp.process(X);
|
||||
|
||||
% ELECTRICAL DOMAIN
|
||||
X = scp.process(X);
|
||||
% Fiber Propagation
|
||||
X = fib.process(X);
|
||||
X = optatten.process(X);
|
||||
X = edfaamp.process(X);
|
||||
|
||||
X = X.resample("fs_out",2*fsym,"fs_in",fadc);
|
||||
% Photo Diode -> ELECTRICAL DOMAIN
|
||||
X = phdiode.process(X);
|
||||
X = lp_diode.process(X);
|
||||
X.spectrum(fsimu,"displayname",'diode out','figurename','after diode');
|
||||
% Oscilloscope (Sampling to f_adc; Quantization; Bandwidth Limitation)
|
||||
X = scp.process(X);
|
||||
|
||||
% Resample to Symbol Rate
|
||||
X = X.resample("fs_out",2*fsym,"fs_in",fadc);
|
||||
|
||||
% INFORMATION SIGNAL
|
||||
X = X.normalize;
|
||||
eq_out = eq.process(X,reference);
|
||||
rx_series = eq_out.signal;
|
||||
X = X.normalize;
|
||||
|
||||
demap_out = pam_mapper.demap(eq_out);
|
||||
% Equalizer
|
||||
eq_out = eq.process(X,reference);
|
||||
rx_series = eq_out.signal;
|
||||
|
||||
[bits,errors,BER] = calc_ber(demap_out.signal(:,10000:end-20),bitpattern(10000:end-19,:)',0);
|
||||
|
||||
|
||||
%%
|
||||
figure(22)
|
||||
clf
|
||||
subplot(3,1,1)
|
||||
hold on
|
||||
plot(reference.signal(10000:end-20));
|
||||
plot(rx_series(10000:end-20));
|
||||
hold off
|
||||
subplot(3,1,2)
|
||||
hold on
|
||||
plot(reference.signal(4150:4175));
|
||||
plot(rx_series(4150:4175));
|
||||
hold off
|
||||
subplot(3,1,3)
|
||||
hold on
|
||||
stem(demap_out.signal(1,4150:4175))
|
||||
stem(bitpattern(4150:4175,1)')
|
||||
hold off
|
||||
legend
|
||||
|
||||
xax = 1:eq_out.length;
|
||||
col = cbrewer2('Set1',4);
|
||||
|
||||
figure(12)
|
||||
sgtitle('Laser Linewidth = 10 MHz; SIR = 24 dB ; $N_{1,2}$ = 100')
|
||||
subplot(1,4,1:2)
|
||||
scatter(1:X.length,X.signal,4,'.','MarkerEdgeColor',col(2,:),'DisplayName','A1');
|
||||
xlim([1, xax(end)]);
|
||||
%ylim([-2 2]);
|
||||
xlabel('Sampling Index')
|
||||
ylabel('Amplitude')
|
||||
legend
|
||||
|
||||
subplot(1,4,3:4)
|
||||
scatter(xax,eq_out.signal,4,'.','MarkerEdgeColor',col(1,:),'DisplayName','No MPI Mitigation');
|
||||
xlim([1, xax(end)]);
|
||||
%ylim([-2 2]);
|
||||
xlabel('Sampling Index')
|
||||
ylabel('Amplitude')
|
||||
legend
|
||||
|
||||
a = fftshift(xcorr(X.signal(1,:),circshift(bitpattern(:,1)',0)));
|
||||
% Digi Demod
|
||||
demap_out = digimod.demap(eq_out);
|
||||
|
||||
% BER
|
||||
if (length(X.signal) ~= length(bitpattern'))
|
||||
warning("TX and RX bitstreams have different length...")
|
||||
end
|
||||
|
||||
|
||||
|
||||
disp(demap_out.logbook);
|
||||
[bits,errors,BER] = calc_ber(demap_out.signal(:,1:end-1),bitpattern(1:end,:)',0);
|
||||
disp(['BER: ', sprintf('%2E',BER)]);
|
||||
|
||||
% disp(demap_out.logbook);
|
||||
|
||||
|
||||
|
||||
%% Generate some Plots
|
||||
if 0
|
||||
col = cbrewer2('Paired',8);
|
||||
|
||||
figure(22)
|
||||
clf
|
||||
% subplot(3,1,1)
|
||||
% hold on
|
||||
% plot(reference.signal(10000:end-20),'DisplayName','Tx','Color',col(1,:),'LineWidth',3);
|
||||
% plot(rx_series(10000:end-20),'DisplayName','Rx','Color',col(6,:));
|
||||
% title('Modulated Sequence Tx - Rx');
|
||||
% legend
|
||||
% hold off
|
||||
subplot(2,1,1)
|
||||
hold on
|
||||
plot(reference.signal(4150:4175),'DisplayName','Tx','Color',col(1,:),'LineWidth',3);
|
||||
plot(rx_series(4150:4175),'DisplayName','Rx after EQ','Color',col(6,:),'LineWidth',1);
|
||||
title('Modulated Sequence Zoom');
|
||||
legend
|
||||
hold off
|
||||
subplot(2,1,2)
|
||||
hold on
|
||||
stem(demap_out.signal(1,4150:4175),'DisplayName','Tx','Color',col(1,:),'LineStyle','-','LineWidth',5)
|
||||
stem(bitpattern(4150:4175,1)','DisplayName','Rx','Color',col(6,:),'LineStyle','--','LineWidth',2)
|
||||
title('Bitpattern Tx - Rx');
|
||||
legend
|
||||
hold off
|
||||
|
||||
|
||||
xax = 1:eq_out.length;
|
||||
|
||||
figure(12)
|
||||
sgtitle('')
|
||||
subplot(1,4,1:2)
|
||||
scatter(1:4:X.length,X.signal(1:4:end),4,'.','MarkerEdgeColor',col(5,:),'DisplayName','Before EQ');
|
||||
xlim([1, xax(end)]);
|
||||
%ylim([-2 2]);
|
||||
xlabel('Sampling Index')
|
||||
ylabel('Amplitude')
|
||||
legend
|
||||
|
||||
|
||||
|
||||
|
||||
subplot(1,4,3:4)
|
||||
scatter(xax,eq_out.signal,4,'.','MarkerEdgeColor',col(6,:),'DisplayName','After EQ');
|
||||
xlim([1, xax(end)]);
|
||||
%ylim([-2 2]);
|
||||
xlabel('Sampling Index')
|
||||
ylabel('Amplitude')
|
||||
legend
|
||||
end
|
||||
|
||||
Reference in New Issue
Block a user