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I have a sample function as below:

int get_hash (unsigned char* str)
{
    int hash = (str[3]^str[4]^str[5]) % MAX;
    int hashVal =  arr[hash];
    return hashVal;
}

Here array arr has size as MAX. ( int arr[MAX] ).

My static code checker complains that there can be a out of bound array access here, as hash could be in the range -255 to -1.

Is this correct? Can bitwise operation on unsigned char produce a negative number? Should hash be declared as unsigned int?

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1  
When used with arithmetic/bitwise operations, an unsigned char is implicitly converted to int (yes, signed int) before the computation. (Now, a XOR between two ints in the range [0,255] will always yield an int in the same range (thus, never negative), but the static checker can't be that "deep".) –  gx_ May 28 '13 at 8:54
2  
Assuming an int is bigger than a char on your platform, this code looks fine. –  Oliver Charlesworth May 28 '13 at 8:55
    
@OliCharlesworth Oh, good point. Correction to my previous comment: on a platform where both unsigned char and int are the same size (say, 32 bits), then an unsigned char would be implicitly converted to unsigned int (the "unsignedness" would be preserved, because converting to signed int could potentially yield a different (negative) value). –  gx_ May 28 '13 at 9:02

2 Answers 2

up vote 4 down vote accepted

Is this correct?

No, the static code checker is in error(1).

Can bitwise operation on unsigned char produce a negative number?

Some bitwise operations can - bitwise complement, for example - but not the exclusive or.

For the ^, the arguments, unsigned char here, are subject to the usual arithmetic conversions (6.3.1.8), they are first promoted according to the integer promotions; about those, clause 6.3.1.1, paragraph 2 says

If an int can represent all values of the original type (as restricted by the width, for a bit-field), the value is converted to an int; otherwise, it is converted to an unsigned int. These are called the integer promotions.

So, there are two possibilities:

  1. An int can represent all possible values of unsigned char. Then all values obtained from the integer promotions are non-negative, the bitwise exclusive or of these values is also non-negative, and the remainder modulo MAX too. The value of hash is then in the range from 0 (inclusive) to MAX (exclusive) [-MAX if MAX < 0].

  2. An int cannot represent all possible values of unsigned char. Then the values are promoted to type unsigned int, and the bitwise operations are carried out at that type. The result is of course non-negative, and the remainder modulo MAX will be non-negative too. However, in that case, the assignment to int hash might convert an out-of-range value to a negative value [the conversion of out-of-range integers to a signed integer type is implementation-defined]. (1)But in that case, the range of possible negative values is greater than -255 to -1, so even in that - very unlikely - case, the static code checker is wrong in part.

Should hash be declared as unsigned int?

That depends on the value of MAX. If there is the slightest possibility that a remainder modulo MAX is out-of-range for int, then that would be safer. Otherwise, int is equally safe.

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As remarked correctly by gx_, the arithmetic is done in int. Just declare your hash variable as unsigned char, again, to be sure that everybody knows that you expect this to be positive in all cases.

And if MAX is effectively UCHAR_MAX you should just use that to improve readability.

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1  
But even if hash is unsigned, note that str[3], str[4] and str[5] respectively are implicitly promoted to the type int and the XOR is therefore performed on signed ints. In the end, unsigned int hash will solve that problem, but ideally the whole expression would be written as unsigned int hash = ((unsigned int)str[3]^str[4]^str[5]) % MAX;. –  Lundin May 28 '13 at 9:07
    
@Lundin, no I think that forcing hash to be of unsigned char, not unsigned int should convince the static analyser about the possible range of hash. Any value that the expression on the rhs would have, would be converted to the correct range 0...UCHAR_MAX. –  Jens Gustedt May 28 '13 at 9:12

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