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i have an unsigned char test_SHA1[20] of 20 bytes which is a return value from a hash function. With the following code, I get this output

unsigned char test_SHA1[20];
char hex_output[41];
for(int di = 0; di < 20; di++)
{
    sprintf(hex_output + di*2, "%02x", test_SHA1[di]);
}

printf("SHA1 = %s\n", hex_output);

50b9e78177f37e3c747f67abcc8af36a44f218f5

The last 9 bits of this number is 0x0f5 (= 245 in decimal) which I would get by taking a mod 512 of test_SHA1. To take mod 512 of test_SHA1, I do

int x = (unsigned int)test_SHA1 % 512;
printf("x = %d\n", x);

But x turns out to be 158 instead of 245.

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1 Answer 1

up vote 1 down vote accepted

I suggest doing a bit-wise and with 0x1ff instead of using the % operator.

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thanks. i tried "test_SHA1 = test_SHA1 & 0x1ff;" but it is giving me a compile error. could you pls post the command to do the bitwise AND and convert that into decimal. –  Romonov Apr 7 '11 at 18:55
    
I just realized that test_SHA1 is an array (20 long, I'm assuming from your loop). Assuming it's an array of char, you should use (test_SHA1[18] & 1) + test_SHA1[19]. Or if it's a wider integer type, test_SHA1[19] & 0x1ff. This also explains the earlier result--you were casting an array pointer (an address) to an unsigned int and taking the lower 9 bits of the address. –  Ted Hopp Apr 7 '11 at 19:29
    
my mistake. i should have added the declaration for test_SHA1. I edited the post to add it. –  Romonov Apr 7 '11 at 19:40
    
@Ted Hopp with test_SHA1 an unsigned char of 20bytes, could you pls post how to change this code "int x = (unsigned int)test_SHA1 % 512;" to get x = 245. –  Romonov Apr 7 '11 at 19:43
1  
Try int x = (test_SHA1[18] & 1) + (unsigned int)(test_SHA1[19]). –  Ted Hopp Apr 7 '11 at 20:21

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