384 lines
18 KiB
Matlab
384 lines
18 KiB
Matlab
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%% Parameter to simulate and save
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params = struct;
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params.M = [4];
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params.datarate = [448];
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params.rop = [0];
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params.sir = 45;
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params.random_key_laser_phase = 10:20;
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precomp_mode = 0; %0=do nothing ; 1= measure; 2=precomp active
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postfilter = 1; % noise whiten. approach -> Postfilter + MLSE
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db_precode = 0;
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db_encode = 0;
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db_channelapproach = 0;
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laser_linewidth = 5e5;
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random_key_sequence = 15;
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random_key_laser_phase = 66;
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sir = 20;
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if ismac
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precomp_path = "/Users/silasoettinghaus/Documents/MATLAB/imdd_simulation/projects/standard_system";
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else
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precomp_path = "C:\Users\Silas\Documents\MATLAB\imdd_simulation\projects\standard_system\";
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end
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precomp_fn = "400G_simulative_setup";
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usemrds = 0;
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name = ['wh_',strrep(num2str(now),'.','')];
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wh = DataStorage(params);
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wh.addStorage("ber_vnle");
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wh.addStorage("ber_mlse");
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%% Init Params
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link_length = 1000; %meter
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endcnt = prod(wh.dim);
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cnt=0;
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disp(['Start Simulation of ',num2str(endcnt),' loops...'])
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tic
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for random_key_laser_phase = wh.parameter.random_key_laser_phase.values
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for M = wh.parameter.M.values
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for datarate = wh.parameter.datarate.values
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% SETUP HERE: %%
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kover = 16;
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M8199 = M8199B("kover",kover);
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fdac = M8199.fdac;
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fsym = round(datarate / log2(M)) * 1e9;
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rrcalpha = 0.05;
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Pform = Pulseformer("fsym",fsym,"fdac",4*fsym,"pulse","rrc","pulselength",16,"rrcalpha",rrcalpha);
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% MAIN SIGNAL
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%%%%% Symbol Generation MAIN %%%%%%
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[Digi_sig,Symbols,Bits] = PAMsource("fsym",fsym,"M",M,"order",19,"useprbs",1,...
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"fs_out",M8199.fdac,"applyclipping",0,"clipfactor",1.5,...
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"applypulseform",0,"pulseformer",Pform,"randkey",random_key_sequence,...
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"db_precode",db_precode,"db_encode",db_encode,...
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"mrds_code",usemrds,"mrds_blocklength",512).process();
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%%%%% Symbol Generation INTERFERENCE %%%%%%
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[Digi_sig_I,Symbols_I,Bits_I] = PAMsource("fsym",fsym,"M",M,"order",19,"useprbs",0,...
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"fs_out",M8199.fdac,"applyclipping",0,"clipfactor",1.5,...
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"applypulseform",0,"pulseformer",Pform,"randkey",random_key_sequence+1,...
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"db_precode",db_precode,"db_encode",db_encode,...
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"mrds_code",usemrds,"mrds_blocklength",512).process();
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% Digi_sig.eye(fsym,M);
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% Digi_sig.normalize("mode","rms").spectrum("displayname",'Tx Signal','fignum',10);
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if precomp_mode == 1 %measure
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freqresp = ChannelFreqResp("Nacq",1024,"Navg",64,"Ncp",63,'f_ref',Digi_sig.fs);
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Digi_sig = freqresp.buildOFDM();
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Digi_sig_I = freqresp.buildOFDM();
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elseif precomp_mode == 2 %apply
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Digi_sig = ChannelFreqResp("Nacq",1024,"Navg",64,"Ncp",63,'f_ref',Digi_sig.fs).precomp(Digi_sig,'maxampdb',3,'loadPath',precomp_path,'fileName',precomp_fn);
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Digi_sig_I = ChannelFreqResp("Nacq",1024,"Navg",64,"Ncp",63,'f_ref',Digi_sig_I.fs).precomp(Digi_sig_I,'maxampdb',3,'loadPath',precomp_path,'fileName',precomp_fn);
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Digi_sig.spectrum("fignum",11,"displayname",'after precomp');
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end
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%%%%% AWG MAIN %%%%%%
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El_sig = M8199.process(Digi_sig);
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%%%%% Lowpass el. components %%%%%%
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El_sig = Filter('filtdegree',2,"f_cutoff",100e9,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(El_sig);
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%%%%% Electrical Driver Amplifier %%%%%%
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El_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","gain","amplification_db",3).process(El_sig);
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fprintf('Driver output power: %s dBm\n', num2str(El_sig.power));
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fprintf('Driver output peak voltage: %s Vpp \n', num2str(max(El_sig.signal)-min(El_sig.signal)));
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% El_sig.spectrum("displayname",'Transmit PDS','fignum',10);
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%%%%% AWG INTERFERENCE %%%%%%
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El_sig_I = M8199.process(Digi_sig_I);
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%%%%% Lowpass el. components %%%%%%
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El_sig_I = Filter('filtdegree',3,"f_cutoff",100e9,"fs",fdac*kover,"filterType",filtertypes.butterworth,"active",true).process(El_sig_I);
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%%%%% Electrical Driver Amplifier %%%%%%
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El_sig_I = Amplifier("amp_mode","ideal_no_noise","gain_mode","gain","amplification_db",3).process(El_sig_I);
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% MAIN SIGNAL
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%%%%% MODULATE E/O CONVERSION %%%%%%
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vbias_rel = 0.5;
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u_pi = 2.9;
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vbias = -vbias_rel*u_pi;
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[Opt_sig] = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig.fs,"lambda",1290,"bias",vbias,"u_pi",u_pi,"linewidth",laser_linewidth,"randomkey",random_key_laser_phase).process(El_sig);
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Optfilter = Filter('filtdegree',3,"f_cutoff",110e9,"fs",fdac*kover,"filterType",filtertypes.gaussian,"active",true);
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Opt_sig = Optfilter.process(Opt_sig);
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Opt_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",0).process(Opt_sig);
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[Opt_sig_I] = EML("mode",eml_mode.im_cosinus,"power",3,"fsimu",El_sig_I.fs,"lambda",1290,"bias",vbias,"u_pi",u_pi,"linewidth",laser_linewidth,"randomkey",random_key_laser_phase+1).process(El_sig_I);
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Optfilter = Filter('filtdegree',3,"f_cutoff",110e9,"fs",fdac*kover,"filterType",filtertypes.gaussian,"active",true);
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Opt_sig_I = Optfilter.process(Opt_sig_I);
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Opt_sig_I = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",0).process(Opt_sig_I);
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%%%%% Interference Signal Fiber Prop 2x fiber length %%%%%%
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Opt_sig_I = Fiber("fsimu",Opt_sig_I.fs,"fiber_length",2*link_length/1000,"alpha",0.3,"D",0,"lambda0",1310,"gamma",0,"Dslope",0.07).process(Opt_sig_I);
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% ber=zeros(i_);
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% patten=zeros(i_);
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i_ = wh.parameter.rop.length;
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j_ = wh.parameter.sir.length;
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ber_vnle=zeros(i_,j_);
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ber_mlse=zeros(i_,j_,3);
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for j = 1:j_
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sir = wh.parameter.sir.values(j);
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%%%%% Set SIR %%%%%%
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Opt_sig_I_atten = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",Opt_sig.power-sir).process(Opt_sig_I);
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%%%%% ADD Interference and Main Signal %%%%%%
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Opt_sig_MPI = Opt_sig_I_atten + Opt_sig;
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%%%%% Interference Signal Fiber Prop %%%%%%
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Opt_sig_MPI = 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_MPI);
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% Receiver ROP curve
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for i = 1:i_
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rop=wh.parameter.rop.values(i);
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% Set ROP
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Rx_sig = Amplifier("amp_mode","ideal_no_noise","gain_mode","output_power","amplification_db",rop).process(Opt_sig_MPI);
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% patten(i) = Rx_sig.power;
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%%%%%% Square Law %%%%%%
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Rx_sig = Photodiode("fsimu",fdac*kover,"dark_current",2e-08,"responsivity",1,"temperature",20,"nep",1.8e-11).process(Rx_sig);
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%%%%%% Lowpass PhDiode %%%%%%
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Rx_sig = Filter('filtdegree',2,"f_cutoff",70e9,"fs",fdac*kover,"filterType",filtertypes.gaussian,"active",true).process(Rx_sig);
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%%%%%% Scope %%%%%%
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fadc = 256e9;
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Lp_scpe = Filter('filtdegree',4,"f_cutoff",100e9,"fs",fadc,"filterType",filtertypes.butterworth,"active",true);
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Scpe_sig = Scope("fsimu",fdac*kover,"fadc",fadc,...
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"delay",0,"fixed_delay",0,"filtertype",filtertypes.butterworth,...
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"samplingdelay",0,"rand_samplingdelay",0,"freq_offset",0,"samp_jitter",0,...
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"adcresolution",10,"quantbuffer",0.1,'block_dc',1,'lpf_active',1,'H_lpf',Lp_scpe).process(Rx_sig);
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if precomp_mode == 1
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freqresp.estimate(Scpe_sig,"save",true,"savePath",precomp_path,"fileName",precomp_fn);
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freqresp.plot();
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end
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% Scpe_sig_normalized = Scpe_sig.normalize("mode","rms");
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%
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% Scpe_sig_normalized.normalize("mode","rms").spectrum("displayname",'After Scope','fignum',23);
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%%%%%% Sample to 2x fsym %%%%%%
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Scpe_sig = Scpe_sig.resample("fs_in",fadc,"fs_out",2*fsym);
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%%%%%% Sync Rx signal with reference %%%%%%
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[Scpe_sig,S] = Scpe_sig.tsynch("reference",Symbols,"fs_ref",fsym);
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%%%%% EQUALIZE %%%%%%
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Eq = FFE("epochs_tr",5,"epochs_dd",5,"len_tr",4096*2,"mu_dd",1e-4,"mu_tr",0,"order",25,"sps",2,"decide",0);
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% Eq = VNLE("epochs_tr",5,"epochs_dd",5,"len_tr",4096*2,"mu_dd",[0.0004 0.0005 0.0006],"mu_tr",0,"order",[50,7,7],"sps",2,"decide",1);
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% Eq = EQ("Ne",[50,7,7],"Nb",[0,0,0],"training_length",4096*2,"training_loops",5,"dd_loops",5,"K",2,"DCmu",0.0,"DDmu",[0.0004 0.0004 0.0004 0.0004 ],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
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% Eq = FFE_Kalman("epochs_tr",5,"epochs_dd",5,"len_tr",4096*2,"mu_dd",1e-4,"mu_tr",0,"order",25,"sps",2,"decide",0);
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% Eq = FFE_Kalman_Feedback("epochs_tr",5,"epochs_dd",5,"len_tr",4096*2,"mu_dd",1e-4,"mu_tr",0,"order",25,"sps",2,"decide",0);
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% Eq = FFE_adaptive_decision("epochs_tr",5,"epochs_dd",5,"len_tr",4096*2,"mu_dd",1e-4,"mu_tr",0,"order",25,"sps",2,"decide",1,"buffer_length",80);
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% Eq = FFE_DCremoval("epochs_tr",5,"epochs_dd",5,"len_tr",4096*2,"mu_dd",1e-4,"mu_tr",0,"order",25,"sps",2,"decide",0,"mu_dc",0.05,"dc_buffer_len",100);
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%
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% Eq = EQ("Ne",[50,7,7],"Nb",[0,0,0],"training_length",4096*2,"training_loops",5,"dd_loops",5,"K",2,"DCmu",0.0,"DDmu",[0.0004 0.0004 0.0004 0.0004 ],"DFEmu",0.005,"FFEmu",0,"plotfinal",0,"ideal_dfe",1);
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if db_channelapproach
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% ref symbols and transm. sequence are precoded
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[EQ_sig, Noi] = Eq.process(Scpe_sig,Duobinary().encode(Symbols));
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EQ_sig = MLSE("DIR",[1,1],"duobinary_output",1,"M",M,"trellis_states",PAMmapper(M,0).levels).process(EQ_sig);
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EQ_sig = Duobinary().decode(EQ_sig);
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Rx_bits = PAMmapper(M,0).demap(EQ_sig);
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[~,~,ber_vnle(i,j),~] = calc_ber(Rx_bits.signal,Bits.signal,"skip_front",100,"skip_end",150,"returnErrorLocation",1);
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EQ_sig.spectrum('displayname','EQ DB Out','fignum',12345,'normalizeTo0dB',0,'normalizeToNyquist',0,'color',cols(3,:));
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Noi.spectrum('displayname','Noise PSD optimal','fignum',1234,'normalizeTo0dB',0,'normalizeToNyquist',0,'color',cols(4,:));
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elseif db_encode
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[EQ_sig, Noi] = Eq.process(Scpe_sig,Symbols);
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EQ_sig = MLSE("DIR",[1,1],"duobinary_output",1,"M",M,"trellis_states",PAMmapper(M,0).levels).process(EQ_sig);
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EQ_sig = Duobinary().decode(EQ_sig);
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elseif postfilter
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[EQ_sig, Noi] = Eq.process(Scpe_sig,Symbols);
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%%% REMOVE DC peak from Noi PSD
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S = Noi.signal;
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N1 = 1001;
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% recursion
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% Initialize the moving sum for the first window
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half_window = (N1 - 1) / 2;
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moving_sum = sum(S(1:N1));
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% Calculate the first element of R1
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S_(1:half_window+1) = S(1:half_window+1) - (moving_sum / N1);
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% Loop over the signal and apply the recursive moving average subtraction
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for n = (half_window+2):(length(S)-half_window)
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% Update the moving sum by subtracting the oldest value and adding the new one
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moving_sum = moving_sum - S(n-half_window-1) + S(n+half_window);
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% Calculate the new value of R1
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S_(n) = S(n) - (moving_sum / N1);
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end
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S_(n+1:length(S)) = S(n+1:end) - (moving_sum / N1);
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Noi.signal = S_;
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%%% END REMOVE DC PEAK %%%
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Rx_bits = PAMmapper(M,0).demap(EQ_sig);
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[~,~,ber_vnle(i,j),~] = calc_ber(Rx_bits.signal,Bits.signal,"skip_front",100,"skip_end",150,"returnErrorLocation",1);
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EQ_sig.spectrum('displayname','EQ Out','fignum',12345,'normalizeTo0dB',0,'normalizeToNyquist',0,'color',cols(1,:));
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Noi.spectrum('displayname','Noise PSD optimal','fignum',22,'normalizeTo0dB',1,'normalizeToNyquist',0,'color',cols(2,:));
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for nc = 1:3
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burg_coeff = arburg(Noi.signal,nc);
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EQ_sig_filt = EQ_sig.filter(burg_coeff,1);
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% EQ_sig.spectrum("displayname","Signal Spectrum after Postfilter","fignum",1234);
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EQ_sig_mlse = MLSE("DIR",burg_coeff,"duobinary_output",0,"M",M,"trellis_states",PAMmapper(M,0).levels).process(EQ_sig_filt);
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% EQ_sig.spectrum("displayname","Signal Spectrum after MLSE","fignum",1234);
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if 1
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cols = linspecer(12);
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% EQ_sig_filt.normalize('mode','rms').spectrum('displayname','Noise PSD','fignum',1234,'normalizeTo0dB',1,'normalizeToNyquist',0,'color',cols(nc+2,:));
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[h,w] = freqz(1,burg_coeff,length(Noi),"whole",Noi.fs);
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% h = 1./h;
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h = h/max(abs(h));
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hold on
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w_ = (w - Noi.fs/2);
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figure(22)
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plot(w_.*1e-9,20*log10(fftshift(h)),'DisplayName',['', num2str(nc), ' coefficients for burg alg.']);
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end
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Rx_bits = PAMmapper(M,0).demap(EQ_sig_mlse);
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[~,errors_bm,ber_mlse(i,j,nc),errors] = calc_ber(Rx_bits.signal,Bits.signal,"skip_front",100,"skip_end",150,"returnErrorLocation",1);
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% disp(['BER: ',sprintf('%.1E',ber_mlse(i,j)),' - - ROP: ',num2str(patten(i)),'dBm - - PAM-',num2str(M),' - - ',num2str(fsym*1e-9),' GBd']);
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end
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else
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[EQ_sig, Noi] = Eq.process(Scpe_sig,Symbols);
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if 0
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Noi.spectrum('displayname','Noise PSD','fignum',123,'normalizeTo0dB',1,'normalizeToNyquist',1);
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EQ_sig.plot("displayname",'After EQ','fignum',1113);
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end
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%
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Rx_bits = PAMmapper(M,0).demap(EQ_sig);
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[~,errors_bm,ber_vnle(i,j),errors] = calc_ber(Rx_bits.signal,Bits.signal,"skip_front",100,"skip_end",150,"returnErrorLocation",1);
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end
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end
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end
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for j = 1:j_
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sir = wh.parameter.sir.values(j);
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for i = 1:i_
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rop=wh.parameter.rop.values(i);
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wh.addValueToStorage(ber_vnle(i,j),'ber_vnle',M,datarate,rop,sir,random_key_laser_phase);
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wh.addValueToStorage(ber_mlse(i,j,:),'ber_mlse',M,datarate,rop,sir,random_key_laser_phase);
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end
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end
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toc
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% wh.save('C:\Users\Silas\Documents\MATLAB\imdd_simulation\projects\MPI_August\auswertung\')
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end
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end
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end
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disp('Simulation Done!')
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ber_mlse=[];
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ber_vnle=[];
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cols = linspecer(8);
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random_key_laser_phase_ = wh.parameter.random_key_laser_phase.values;
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cnt = 0;
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for r = random_key_laser_phase_
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cnt = cnt+1;
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ber_mlse(cnt,:,1:3) = wh.getStoValue('ber_mlse',M,datarate,wh.parameter.rop.values(1),wh.parameter.sir.values,r);
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ber_vnle(cnt,:,1) = wh.getStoValue('ber_vnle',M,datarate,wh.parameter.rop.values(1),wh.parameter.sir.values,r);
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end
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ber_mlse=squeeze(mean(ber_mlse,1));
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ber_vnle = mean(ber_vnle,1);
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% Create the initial plot
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figure(466);
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a = gca;
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hold on; % Retain the plot so new points can be added without complete redraw
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dispname = ['Lw: ',num2str(laser_linewidth.*1e-6),' MHz'];
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cols = linspecer(6);
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plot(wh.parameter.sir.values,ber_vnle,"LineWidth",0.5,"LineStyle","--","Marker",".","MarkerSize",15,"DisplayName",['PAM',num2str(M),' VNLE ',dispname],'Color',cols(1,:));
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plot(wh.parameter.sir.values,ber_mlse(:,1),"LineWidth",0.5,"LineStyle","--","Marker",".","MarkerSize",15,"DisplayName",['PAM',num2str(M),'MLSE 1 ',dispname],'Color',cols(2,:));
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plot(wh.parameter.sir.values,ber_mlse(:,2),"LineWidth",0.5,"LineStyle","--","Marker",".","MarkerSize",15,"DisplayName",['PAM',num2str(M),'MLSE 2',dispname],'Color',cols(3,:));
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plot(wh.parameter.sir.values,ber_mlse(:,3),"LineWidth",0.5,"LineStyle","--","Marker",".","MarkerSize",15,"DisplayName",['PAM',num2str(M),'MLSE 3',dispname],'Color',cols(4,:));
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yline(3.8e-3,'DisplayName','HD-FEC','LineStyle','--','HandleVisibility','off');
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xlabel('Received Optical Power (dBm)');
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ylabel('Bit Error Rate (BER)');
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title('Bit Error Rate vs. ROP');
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set(gca,'yscale','log');
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set(gca,'Box','on');
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grid on;
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grid minor
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legend
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