How can i replace 0 by -1 in all binary number till 256 as 00000000, 00000001, 00000010, 00000011, 00000100, ..........​​.........​.​........​..​...., 11111111 ?

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kailash kumar
kailash kumar 2015년 7월 17일
댓글: arich82 2015년 7월 17일
Without using loops

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Azzi Abdelmalek
Azzi Abdelmalek 2015년 7월 17일
편집: Azzi Abdelmalek 2015년 7월 17일
a=dec2bin(0:255)
out=strrep(cellstr(a),'0','1')
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kailash kumar
kailash kumar 2015년 7월 17일
Sir it turnout to a 256X8 matrix , but all elements are 1. but it should be 0 to 255 binary numbers, in which all 0 should be replaced by '-1'.

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arich82
arich82 2015년 7월 17일
편집: arich82 2015년 7월 17일
[Edited to use 0:255 instead of 1:256]
n = 8;
a = dec2bin(0:n-1) - '0'
returns a as a matrix of doubles:
a =
0 0 0
0 0 1
0 1 0
0 1 1
1 0 0
1 0 1
1 1 0
1 1 1
Now just use a logical mask to change 0 --> -1:
a(a == 0) = -1
which returns
a =
-1 -1 -1
-1 -1 1
-1 1 -1
-1 1 1
1 -1 -1
1 -1 1
1 1 -1
1 1 1
For your case, use n = 256. The complete solution (I think) is:
n = 256;
a = dec2bin(0:n-1) - '0';
a(a==0) = -1;
disp(a);
Please accept this answer if it helps, or let me know in the comments if it's not what you're looking for.
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arich82
arich82 2015년 7월 17일
Alternative to dec2bin: bitget.
Unfortunately, it seems bitget can only get either several bits from a scalar, or a single bit from each element of an array. Wrapping it in bsxfun gets around this apparent limitation:
a = bsxfun(@bitget, [0:255].', 8:-1:1);
a(a == 0) = -1;
Not an issue for your use case, but for much larger arrays, I'd expect bitget to be much quicker than all of the character conversions going on in the dec2bin version, though I could be wrong. (You'd also want to use nextpow2 to get all digits for the more general case).
n = 256;
a = bsxfun(@bitget, (0:n - 1).', nextpow2(n - 1):-1:1);
a(a == 0) = -1;
There's also de2bi if you have the appropriate toolbox (Communications System Toolbox?):
http://www.mathworks.com/help/comm/ref/de2bi.html

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