180 lines
5.4 KiB
Matlab
180 lines
5.4 KiB
Matlab
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function z = fskdemod(y,M,freq_sep,nSamp,varargin)
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%FSKDEMOD Frequency shift keying demodulation
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% Z = FSKDEMOD(Y,M,FREQ_SEP,NSAMP) noncoherently demodulates the complex
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% envelope Y of a signal using the frequency shift keying method. M is the
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% alphabet size and must be an integer power of 2. FREQ_SEP is the frequency
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% separation, and must be positive. NSAMP is the required samples per symbol
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% and must be an integer greater than 1. For two dimensional signals, the
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% function treats each column of data as one channel.
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%
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% Z = FSKDEMOD(Y,M,FREQ_SEP,NSAMP,Fs) specifies the sampling frequency (Hz).
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% The default sampling frequency is 1.
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%
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% Z = FSKDEMOD(Y,M,FREQ_SEP,NSAMP,Fs,SYMBOL_ORDER) specifies how the
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% function assigns binary words to corresponding integers. If SYMBOL_ORDER
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% is set to 'bin' (default), then the function uses a natural binary-coded
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% ordering. If SYMBOL_ORDER is set to 'gray', then the function uses a
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% Gray-coded ordering.
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%
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% See also FSKMOD, PSKDEMOD, QAMDEMOD, PAMDEMOD, OQPSKDEMOD.
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% Copyright 1996-2012 The MathWorks, Inc.
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% Error checks -----------------------------------------------------------------
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if (nargin < 4)
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error(message('comm:fskdemod:numarg1'));
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end
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if (nargin > 6)
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error(message('comm:fskdemod:numarg2'));
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end
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% Check that M is a positive integer
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if (~isreal(M) || ~isscalar(M) || M<2 || (ceil(M)~=M) || ~isnumeric(M))
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error(message('comm:fskdemod:Mreal'));
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end
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% Check that M is of the form 2^K
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if(~isnumeric(M) || ceil(log2(M)) ~= log2(M))
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error(message('comm:fskdemod:Mpow2'));
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end
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% Check that the FREQ_SEP is greater than 0
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if( ~isnumeric(freq_sep) || ~isscalar(freq_sep) || freq_sep<=0 )
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error(message('comm:fskdemod:freqSep'));
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end
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% Check that NSAMP is an integer greater than 1
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if((~isnumeric(nSamp) || (ceil(nSamp) ~= nSamp)) || (nSamp <= 1))
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error(message('comm:fskdemod:nSampPos'));
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end
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% Check Fs
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if (nargin >= 5)
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Fs = varargin{1};
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if (isempty(Fs))
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Fs = 1;
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elseif (~isreal(Fs) || ~isscalar(Fs) || ~isnumeric(Fs) || Fs<=0 )
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error(message('comm:fskdemod:FsReal'));
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end
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else
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Fs = 1;
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end
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% Check that the maximum transmitted frequency does not exceed Fs/2
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maxFreq = ((M-1)/2) * freq_sep;
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if (maxFreq > Fs/2)
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error(message('comm:fskdemod:maxFreq'));
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end
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% Check SYMBOL_ORDER
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if(nargin==4 || nargin==5 )
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Symbol_Ordering = 'bin'; %default
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else
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Symbol_Ordering = varargin{2};
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if (~ischar(Symbol_Ordering)) || (~strcmpi(Symbol_Ordering,'GRAY')) && (~strcmpi(Symbol_Ordering,'BIN'))
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error(message('comm:fskdemod:SymbolOrder'));
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end
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end
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% End of error checks ----------------------------------------------------------
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% Assure that Y, if one dimensional, has the correct orientation
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wid = size(y,1);
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if(wid ==1)
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y = y(:);
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end
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[nRows, nChan] = size(y);
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% Preallocate memory
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z = zeros(nRows/nSamp, nChan);
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% Define the frequencies used for the demodulator.
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freqs = (-(M-1)/2 : (M-1)/2) * freq_sep;
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% Use the frequencies to generate M complex tones which will be multiplied with
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% each received FSK symbol. The tones run down the columns of the "tones"
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% matrix.
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t = (0 : 1/Fs : nSamp/Fs - 1/Fs)';
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phase = 2*pi*t*freqs;
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tones = exp(-1i*phase);
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% For each FSK channel, multiply the complex received signal with the M complex
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% tones. Then perform an integrate and dump over each symbol period, find the
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% magnitude, and choose the transmitted symbol corresponding to the maximum
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% magnitude.
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for iChan = 1 : nChan % loop for each FSK channel
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for iSym = 1 : nRows/nSamp
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% Load the samples for the current symbol
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yTemp = y( (iSym-1)*nSamp+1 : iSym*nSamp, iChan);
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% Replicate the received FSK signal to multiply with the M tones
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yTemp = yTemp(:, ones(M,1));
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% Multiply against the M tones
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yTemp = yTemp .* tones;
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% Perform the integrate and dump, then get the magnitude. Use a
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% subfunction for the integrate and dump, to omit the error checking.
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yMag = abs(intanddump(yTemp, nSamp));
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% Choose the maximum and assign an integer value to it. Subtract 1 from the
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% output of MAX because the integer outputs are zero-based, not one-based.
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[~, maxIdx] = max(yMag, [], 2);
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z(iSym,iChan) = maxIdx - 1;
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end
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end
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% Restore the output signal to the original orientation
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if(wid == 1)
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z = z';
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end
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% Gray decode if necessary
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if (strcmpi(Symbol_Ordering,'GRAY'))
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[~,gray_map] = gray2bin(z,'fsk',M); % Gray decode
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% --- Assure that X, if one dimensional, has the correct orientation --- %
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if(size(z,1) == 1)
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temp = zeros(size(z));
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temp(:) = gray_map(z+1);
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z(:) = temp(:);
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else
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z = gray_map(z+1);
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end
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end
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% EOF -- fskdemod.m
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% ------------------------------------------------------------------------------
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function y = intanddump(x, Nsamp)
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%INTANDDUMP Integrate and dump.
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% Y = INTANDDUMP(X, NSAMP) integrates the signal X for 1 symbol period, then
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% outputs one value into Y. NSAMP is the number of samples per symbol.
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% For two-dimensional signals, the function treats each column as 1
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% channel.
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%
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% --- Assure that X, if one dimensional, has the correct orientation --- %
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wid = size(x,1);
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if(wid ==1)
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x = x(:);
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end
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[xRow, xCol] = size(x);
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x = mean(reshape(x, Nsamp, xRow*xCol/Nsamp), 1);
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y = reshape(x, xRow/Nsamp, xCol);
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% --- restore the output signal to the original orientation --- %
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if(wid == 1)
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y = y.';
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end
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% EOF --- intanddump.m
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