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Please take a look at my function:

int getByte(int x, int n) {
   int oneOnes = 255 << ( n << 3);
   int compute = oneOnes & x;
   //FIND A WAY TO RETURN CHAR (NOT INT)
   char result = (compute >> (n << 3));
   return result;
}

Everthing works great until the comment. That is, I start with an integer x, and I want to take only a certain subsection (specified by n). So what I did was make everything except the 8 bits I want to keep into zeros. So for example, if the input was:

 1001011 10011011 00101011 01001011

And I want to keep only the 3rd group of bits (counting from the right), then the result would be:

 00000000 10011011 00000000 00000000 

So I've managed to do that correctly. The issue is, I need to return only the bits that I want (with the zeros cropped, as a char). Despite creating a char result and returning that, what's being returned is still the 32 bit value.

Any help? Thanks!

To be clear: For 00000000 10011011 00000000 00000000, I want only 10011011 to be returned.

Thanks!

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2 Answers 2

up vote 1 down vote accepted

The basic problem is that you're trying to use signed integers to do this, but shifts of signed integers are not well defined -- whenever the bit pattern happens to be a negative value, bad things happen.

Instead, as is usually the case when doing bit manipulations, you want to use unsigned integers:

unsigned int getByte(unsigned int x, unsigned int n) {
  unsigned int oneOnes = 255U << ( n << 3);
  unsigned int compute = oneOnes & x;
  return (compute >> (n << 3));
}

Its even easier if you do the masking AFTER the shifting, as then you don't need to shift the mask:

unsigned int getByte(unsigned int x, unsigned int n) {
  return (x >> (n << 3)) & 255U;
}
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Thank you!!! this did it :) –  pauliwago Oct 13 '12 at 2:15

Yes, it is not a 8-bit value as your function is declared to return the int, not a char and you are returning not the result but compute. Also, if you would like it not to be sign-propagated somewhere use unsigned char as a result type:

unsigned char getByte(int x, int n) {
  int oneOnes = 255 << ( n << 3);
  int compute = oneOnes & x;
  //FIND A WAY TO RETURN CHAR (NOT INT)
  unsigned char result = (compute >> (n << 3));
  return result;
}

But the more efficient implementation is this one:

unsigned getByte(int x, int n) {
   return (x >> (n << 3)) & 0xFF;
}
share|improve this answer
    
Thanks, that was a careless typo, but in the actual program I had it return the result as your edit....still not the char I'm looking for. But it looks like it returns negative numbers... –  pauliwago Oct 13 '12 at 2:06
    
yes, as if the most significant bit of char is one then the result is negative number. then change the return type and/or result type to usigned char –  Serge Oct 13 '12 at 2:08
    
"it looks like it returns negative numbers" - then cast the function as "unsigned char". BTW the function should perform a range check on the value of parameter n. And since a full byte is returned, the bit masking is superfluous, i.e. result = x >> (n << 3). –  sawdust Oct 13 '12 at 2:13

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