sir_loop = -30:5:-10; for lp = 1:5 sir = sir_loop(lp); rkey = 13; rng(rkey); %% Set Simulation Variables O = 18; %order of prbs N = 2^(O-1); %length of prbs [~,seed] = prbs(O,1); %initialize first seed of prbs % Modulation M = 4; %PAM-M bitpattern = zeros(N,log2(M)); % Symbol Rate fsym = 112e9; % DAC Rate fdac = 120e9; % Simulation oversampling rate "k"; kover = 16; % ADC Rate fadc = 256e9; % Simulation frequency in "analog domain" fsimu = kover * fdac ; %% CONSTRUCT ALL CLASSES digimod = PAMmapper(M,0); pulseform = Pulseformer("pulseform","rrc","fdac",fdac,"fsym",fsym,"pulselength",32,"rrcalpha",0.1); awg = AWG('fdac',fdac,'kover',kover,'lpf_active',1,'f_cutoff',56e9,'lpf_type',filtertypes.gaussian,'bit_resolution',5.5); lp_laser = Filter('filtdegree',1,"f_cutoff",50e9,"fsamp",fdac*kover,"filterType",filtertypes.bessel_inp); u_pi = 3.5; vbias = (0.5*u_pi)-u_pi; extmodlaser = EML("mode",eml_mode.im_cosinus,"power",5,"fsimu",fsimu,"lambda",1550,"bias",vbias,"u_pi",u_pi,"linewidth",1e6); fib = Fiber("fsimu",fdac*kover,"fiber_length",0,"alpha",0.2,"D",16,"lambda0",thz2nm(193.1),"gamma",0); reflectionpoint = Amplifier("amp_mode","ideal_no_noise","gain_mode","gain","amplification_db",sir); reflectionprop = Fiber("fsimu",fdac*kover,"fiber_length",1,"alpha",0.2,"D",16,"lambda0",1550,"gamma",0); opticatten = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",-5); edfaamp = Amplifier("amp_mode","edfa_increase_nase","gain_mode","output_power","amplification_db",0,"nase_mode","generate_ase","noifig",10.5); phdiode = Photodiode("fsimu",fdac*kover,"dark_current",0,"responsivity",1,"temperature",20); lp_diode = Filter('filtdegree',1,"f_cutoff",50e9,"fsamp",fdac*kover,"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,'block_dc',1); eq = EQ("K",2,"plottrain",0,"plotfinal",0,... "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",0.00,... "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); %% PROCESS % PRBS Generation for i = 1:log2(M) [bitpattern(:,i),seed] = prbs(O,N,seed); end %bitpattern = prms_out'; % Build Inf. signal class bits = Informationsignal(bitpattern); % Digi Mod mod_out = digimod.map(bits); % merken für EQ training reference = mod_out; % shape shape X = pulseform.process(mod_out); % AWG -> ELECTRICAL DOMAIN awg_out = awg.process(X); X = lp_laser.process(awg_out); X = lp_laser.process(X); X = X.normalize("mode","oneone"); X.signal = X.signal .* 0.6*(u_pi/2-abs(((0.5*u_pi)-u_pi/2))); % Laser; Modulation -> OPTICAL DOMAIN X = extmodlaser.process(X); % Fiber Propagation X = fib.process(X); %% Reflect with attenuation R = reflectionpoint.process(X); % Propagate R = reflectionprop.process(R); % Delay R = R.delay("delay_meter",200); % Add together X = X+R; X.spectrum(fsimu,"displayname",['SIR: ',num2str(sir)],"figurename",'spectrum') %% X = opticatten.process(X); X = edfaamp.process(X); % Photo Diode -> ELECTRICAL DOMAIN X = phdiode.process(X); X = lp_diode.process(X); % 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); % Normalize X = X.normalize("mode","rms"); % Equalizer eq_out = eq.process(X,reference); % Digi Demod demap_out = digimod.demap(eq_out); % BER [bits,errors,BER] = calc_ber(demap_out.signal(1:end-1,:),bitpattern(1:end,:),1000); disp(['BER: ', sprintf('%2E',BER), ' ERRORS: ' ,num2str(sum(errors))]); %% Generate some Plots if 0 col = cbrewer2('Paired',8); figure(11) clf subplot(2,1,1) hold on plot(reference.signal(4150:4175),'DisplayName','Tx','Color',col(1,:),'LineWidth',3); plot(eq_out.signal(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(4150:4175,1),'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 end if 1 col = cbrewer2('Paired',8); xax = 1:eq_out.length; figure(3) sgtitle('') % subplot(1,4,1:2) % scatter(1:4:X.length,X.signal(1:4:end),4,'.','MarkerEdgeColor',col(6,:),'DisplayName','Before EQ'); % xlim([1, xax(end)]); % %ylim([-2 2]); % xlabel('Sampling Index') % ylabel('Amplitude') % legend subplot(1,5,lp) 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 end