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version: Matlab 2009a

I am generating a vector of size <1x116286> using randsrc() function. Since I am again adding it to the matrix of same size but of uint8 type, I am doing as follows -

l=typecast(randsrc(1,v(2)),'uint8');

Now, Matlab has changed the returned a vector of elements - [240,63,0] instead of [-1,1], with the size of <1x930288 uint8>. This is expected as double and uint8 has different size, but I want a vector of same size and values after type casting.

PS: I want to subtract or add '1' from all trhe values on a matrix of size <1x116286>. Is there any other neat way to do this?

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2 Answers 2

up vote 5 down vote accepted

As I understand the problem, there are a couple of issues with the above:

  • uint8 is an unsigned type so will not support a negative offset;
  • the "typecast" function is used to reinterpret existing data, not to convert it: here you are interpreting each byte of the floating-point output of randsrc(...) as an integer.

Unfortunately I don't have Matlab handy to test, but the following should provide something closer to what you are after:

l = int8( randsrc(1,v(2)) );
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+1 This is correct. Maybe it is better to cast the other vector to double instead, but that depends on what the OP wants to do later. –  angainor Oct 8 '12 at 14:33
    
done, Its exactly like C, don't know why I was thinking so complex. By the way. Thanks for the help –  CTRL-ALT-DELETE Oct 8 '12 at 14:35

well instead of forming a vector (-1,1...) and adding it to some vector 'z' , I did something like this.

l =randsrc(1,v(2));
z(l==-1)=z(l==-1)-1;
z(l==1)=z(l==1)+1;

So, I now, don't need to change types.

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"z(l==1)=z(l==1)+1" is surely equivalent to "z(l==1) = 2" ? –  Dan Oct 8 '12 at 15:14
    
nopes, what my codes does, it selects all the elements of Z for which corresponding elements of l vector are 1. so it will be increment some selected elements of z –  CTRL-ALT-DELETE Oct 8 '12 at 15:31
    
oh right obviously, sorry. –  Dan Oct 8 '12 at 15:32

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