function ofdm_rx(filename, foff, flip_spec, SNR, show_H) % % [sym_out, H, W] = ofdm_rx(filename, foff, flip_spec, SNR, show_H) % Example: ofdm_rx('drm-15435-if.wav', -174.65, 0, 400, 1) % Example: ofdm_rx('xv.wav', 0, 0, 400, 1) % or ofdm_rx('yv.wav', 0, 0, 400, 1) close all; MIN_ABS_H = 1e-10; drm_mode = 'B'; drm_bw = '10k'; [ofdm_drm_params, ofdm_spec_occ] = drm_params(drm_mode, drm_bw); [carrier_pilot, phi_pilot, mag_pilot] = getRefFreq(drm_mode); [carrier_time, phi_time, mag_time] = getRefTime(drm_mode); [W_syms, W_pilots] = calcWiener(drm_mode, drm_bw); filter_h = FIRCalcLowpass(0.25, 15); N = ofdm_drm_params.nu; Ng = ofdm_drm_params.ng; symbols_per_frame = ofdm_drm_params.nspf; symbols_to_delay = ofdm_drm_params.y; frames_per_window = 2*ofdm_drm_params.y; carriers = ofdm_spec_occ.kmin:ofdm_spec_occ.kmax; carrier_indexes = c2i(N, carriers); % Read wav file [fsize fs4] = wavread(filename, 'size'); [xwav, fs4, nbits] = wavread(filename, 0); wav_numCh = fsize(2); wav_size = fsize(1); fs = fix(fs4/4); isModePassband = 0; if (wav_numCh == 1) fprintf('Mode: Passband\n'); omega_xwav = (0.25-foff/fs4); isModePassband = 1; elseif (wav_numCh == 2) fprintf('Mode: Baseband\n'); omega_xwav = (foff/fs4); else error('Cannot read file'); end buf_recv = buffer(); buf_Z = buffer(); % Timing coarse stuff timingCoarse = struct('Z', 0, 'started', 0, 'sync_counter', 20, 'sync', 0, 'cp_off', 0, 'cp_off_', [], 'Nd', 0); % CFO coarse integer stuff cfoCoarseInteger = struct('Z', 0, 'started', 0, 'sync_counter', 20, 'sync', 0, 'f_err', 0); % CFO coarse fractional stuff cfoCoarseFractional = struct('Z', 0, 'started', 0, 'sync_counter', 20, 'sync', 0, 'f_err', 0, 'f_err_', [], 'df', 0, 'df_', []); % CFO Fine stuff cfoFine = struct('Z', 0, 'started', 0, 'sync_counter', 20, 'sync', 0, 'f_err', 0, 'f_err_', [], 'df', 0, 'df_', [], 'Xlast', [], 'phi', 0, 'bin_track', 1); % Frame timing stuff frameTiming = struct('Z', 0, 'started', 0, 'sync_counter', 20, 'sync', 0, 'kc_max', -1000, 'n', 0, 'n_max', 0); % Equalization stuff equalizer = struct('Z', 0, 'started', 0, 'sync_counter', 20, 'sync', 0, 'sync_frame_num', 0, 'f_err', 1000, 'f_err_', [], 's', 0, 'm', 0, 'kk', 1, 'eps_abs_h', MIN_ABS_H); fac_cell_list = ... { [], [], [13, 25, 43, 55, 67], [15, 27, 45, 57, 69], [17, 29, 47, 59, 71], [19, 31, 49, 61, 73], [9, 21, 33, 51, 63, 75], [11, 23, 35, 53, 65, 77], [13, 25, 37, 55, 67, 79], [15, 27, 39, 57, 69, 81], [17, 29, 41, 59, 71, 83], [19, 31, 43, 61, 73], [21, 33, 45, 63, 75], [23, 35, 47, 65, 77], [] }; filter_z = []; fileChunkSize = N; fileCunkCounter = 0; phi_xwav = 0; df_track = 0; df_track_ = []; max_H_plot = 0; symbol_count = -1; fileRemain = wav_size; while(fileRemain > fileChunkSize) n0 = fileCunkCounter*fileChunkSize+1; n1 = (fileCunkCounter+1)*fileChunkSize; [xwav] = wavread(filename, [n0 n1]); if (~isModePassband) xwav = xwav(:, 1) + j*xwav(:, 2); end xwav = xwav - mean(xwav); x = xwav.*exp(-j*(2*pi*omega_xwav*(0:fileChunkSize-1)' + phi_xwav)); phi_xwav = mod(phi_xwav + 2*pi*omega_xwav*fileChunkSize, 2*pi); if flip_spec x = conj(x); end % add noise x = awgn(x, SNR); if (isModePassband) [x, filter_z] = filter(filter_h, 1, x, filter_z); buf_recv.write(x(1:4:length(x))); else buf_recv.write(x); end % -------------------------------------------------------------- % Timing coarse if (~timingCoarse.sync) if (~timingCoarse.started) timingCoarse.started = 1; fprintf('Coarse timing acquisition'); end x = buf_recv.read(N+Ng); [timingCoarse.cp_off, timingCoarse.Nd, valid, timingCoarse.Z] = timing_coarse(x, N, Ng, Ng, timingCoarse.Z); if (valid) timingCoarse.cp_off_ = [timingCoarse.cp_off_ timingCoarse.cp_off]; if (timingCoarse.sync_counter > 0) timingCoarse.sync_counter = timingCoarse.sync_counter - 1; else timingCoarse.sync = 1; end end; if (timingCoarse.sync) timingCoarse.cp_off = round(median(timingCoarse.cp_off_)); % Reset buffer to Cp offset buf_recv.setReadIndex(timingCoarse.cp_off); fprintf(' (cp_off=%d, Nd=%d)\n', timingCoarse.cp_off, timingCoarse.Nd); end end % Integer CFO coarse if (timingCoarse.sync) & (~cfoCoarseInteger.sync) if (~cfoCoarseInteger.started) cfoCoarseInteger.started = 1; fprintf('Coarse integer CFO acquisition'); end x = buf_recv.read(N+Ng); if (~isempty(x)) [d_bin, valid, cfoCoarseInteger.Z] = cfo_coarse_int(x(Ng+1:N+Ng), N, carrier_pilot, 11, cfoCoarseInteger.Z); if valid cfoCoarseInteger.f_err = -d_bin(1)/N*fs; if (cfoCoarseInteger.sync_counter > 0) cfoCoarseInteger.sync_counter = cfoCoarseInteger.sync_counter - 1; else cfoCoarseInteger.sync = 1; % Reset buffer to Cp offset buf_recv.setReadIndex(timingCoarse.cp_off); fprintf(' (f_err_i=%f)\n', cfoCoarseInteger.f_err); end end end end % Fractional CFO coarse if (cfoCoarseInteger.sync) & (~cfoCoarseFractional.sync) if (~cfoCoarseFractional.started) cfoCoarseFractional.started = 1; fprintf('Coarse fractional CFO acquisition'); end x = buf_recv.read(N+Ng); if (~isempty(x)) [f_err, cfoCoarseFractional.Z] = cfo_coarse_fract(x, N, Ng, Ng, timingCoarse.Nd, cfoCoarseFractional.Z); cfoCoarseFractional.f_err_ = [cfoCoarseFractional.f_err_ f_err*fs]; if (cfoCoarseFractional.sync_counter > 0) cfoCoarseFractional.sync_counter = cfoCoarseFractional.sync_counter - 1; else cfoCoarseFractional.sync = 1; cfoCoarseFractional.f_err = mean(cfoCoarseFractional.f_err_); cfoCoarseFractional.df = cfoCoarseInteger.f_err + cfoCoarseFractional.f_err; cfoCoarseFractional.df_ = cfoCoarseInteger.f_err + cfoCoarseFractional.f_err_; % Reset buffer to Cp offset buf_recv.setReadIndex(timingCoarse.cp_off); fprintf(' (f_err_f=%f, df_est=%f)\n', cfoCoarseFractional.f_err, cfoCoarseFractional.df); end end end % Create symbols if (cfoCoarseFractional.sync) if (~cfoFine.started) cfoFine.started = 1; df_track = cfoCoarseFractional.df; fprintf('Creating Symbols\n'); fprintf('Fine fractional CFO acquisition\n'); end kn = fs/(2*pi*(1+Ng/N))/N; sym_pilot = exp(j*2*pi*phi_pilot'/1024); bin_pilot = c2i(N, carrier_pilot); x = buf_recv.read(N+Ng); if (~isempty(x)) if equalizer.sync df_track = df_track + 0.1*equalizer.f_err; else df_track = df_track + 0.1*cfoFine.f_err; end df_track_ = [df_track_ df_track]; x = x.*exp(j*(2*pi*df_track/fs*(0:N+Ng-1)' + cfoFine.phi)); cfoFine.phi = cfoFine.phi + 2*pi*df_track/fs*(N+Ng); X = fft(x(Ng+1:N+Ng)); buf_Z.write(X); symbol_count = symbol_count + 1; % CFO Fine acquisition if ~equalizer.sync if (~isempty(cfoFine.Xlast)) Z = cfoFine.Xlast .* conj(X); f_err = kn*angle(Z(bin_pilot)); cfoFine.f_err = mean(f_err(cfoFine.bin_track)); cfoFine.f_err_ = [cfoFine.f_err_ cfoFine.f_err]; end cfoFine.Xlast = X; end end % Frame timing acquisition bins = c2i(N, carrier_time); skip_syms = ofdm_drm_params.nspf*4; if (~frameTiming.sync) && (buf_Z.len() >= (N*(1+ofdm_drm_params.nspf+skip_syms))) if (~frameTiming.started) frameTiming.started = 1; fprintf('Frame timing acquisition'); end if (frameTiming.n < ofdm_drm_params.nspf) frameTiming.Z = 0; Z1 = buf_Z.readAt(N, N*skip_syms); Z2 = buf_Z.readAt(N, N*(ofdm_drm_params.nspf+skip_syms)); kc = abs(Z1(bins)' * Z2(bins)); if valid if kc > frameTiming.kc_max frameTiming.n_max = frameTiming.n; frameTiming.kc_max = kc; end end frameTiming.n = frameTiming.n + 1; buf_Z.read(N); else frameTiming.sync = 1; % Reset Buffer to frame start buf_Z.setReadIndex(N*(frameTiming.n_max)); fprintf(' (frame_start=%d)\n', frameTiming.n_max); end end if (frameTiming.sync) if (~equalizer.started) equalizer.started = 1; H_gain_cell = cell (frames_per_window, 1); H_raw = zeros(length(carriers),1); fprintf('Channel estimation and symbol reception\n'); figure(100); end Z = transpose(buf_Z.read(N)); if ~isempty(Z) equalizer.n = rem(equalizer.m + symbols_to_delay-1, ofdm_drm_params.y); [carrier_gain, phi_gain, mag_gain] = getRefGain(ofdm_drm_params, ofdm_spec_occ, equalizer.s); carrier_gain_bins = c2i(N, carrier_gain); H_ = Z(carrier_gain_bins)./(mag_gain.*exp(j*2*pi*phi_gain/1024)); H_raw(carrier_gain_bins) = (H_); H_gain_cell{equalizer.m+1} = (H_); str = sprintf('Symbol %d, s=%d, m=%d, n=%d', symbol_count, equalizer.s, equalizer.m, equalizer.n); if equalizer.kk > frames_per_window ii = 1+mod(equalizer.m+symbols_to_delay-1+(0:frames_per_window-1), frames_per_window); H_gain = [H_gain_cell{ii}]; H_syms = H_gain*W_syms{equalizer.n+1}; H_pilots = (H_gain)*W_pilots{equalizer.n+1}; % Get the correctly delayed symbols Z = buf_Z.readAt(N, -N*(symbols_to_delay+1)); sym = Z(carrier_indexes).'; % Get the correctly delayed raw channel estimate Hr = H_gain_cell{mod(equalizer.m-1, frames_per_window)+1}; % get frequency error % correlate wiener filtered channel with raw estimate equalizer.f_err = fs/(2*pi*N)*angle(H_pilots * Hr' + equalizer.eps_abs_h); equalizer.f_err_ = [equalizer.f_err_ equalizer.f_err]; if (abs(equalizer.f_err) < 0.1) & (equalizer.sync == 0) if equalizer.sync_counter > 0 equalizer.sync_counter = equalizer.sync_counter - 1; else equalizer.sync = 1; equalizer.sync_frame_num = symbol_count; fprintf('Enter fine tracking mode at frame %d\n', equalizer.sync_frame_num); end end % check for too small H rms_H = sqrt( abs( H_syms*H_syms' )/length(H_syms) ); equalizer.eps_abs_h = max( rms_H/20, MIN_ABS_H ); H_too_small_index = find( abs(H_syms)