Bit stream in to digits
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i have a stream of bits(1 and o), when i save these bit , like i have 128 bits, b1 contains 1 to 10 bits, b2 contain 11 to 20 and so on. Now i got a problem that when i save these bits in b1, b2 , b3 and so on. and want to retrieve, it gives value instead of binary digits, so to solve this issue, i used bitget command but it only support 52 digits, while my requirement is 128
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Mischa Kim
2014년 2월 19일
Raza, you can retrieve the bit pattern by concatenating the cell strings:
[r, c] = size(b);
bit_stream = [];
for ii = 1:c
bit_stream = strcat(bit_stream,b{ii});
end
disp(bit_stream)
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Jos (10584)
2014년 2월 19일
STRCAT can concatenate an infinite number of arguments. In Mischa's nice answer you can exploit comma-separate list expansion and get rid of the for-loop:
b = {'101','000','111','010','101'} % shortened example
bitstream = strcat(b{:})
추가 답변 (1개)
Jos (10584)
2014년 2월 19일
You can split the string into cells
% (smaller) example
MyStr = '10100101010101010010101010101010' ; % a string of arbitrary length
N = 5 ; % the size of each block (in your case 128).
maxN = numel(MyStr)
ix0 = 1:N:maxN
fh = @(X) MyStr(X:min((X+N-1),maxN))
B = arrayfun(fh,ix0,'un',0)
% now B{K} holds the K-th block of N bits of S
MyStrToo = cat(2,B{:})
isequal(MyStrToo, MyStr) % check!
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