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I have a unsigned int[16] array that when printed out looks like this:

4418703544ED3F688AC208F53343AA59

The code used to print it out is this:

for (i = 0; i < 16; i++)
    printf("%X", CipherBlock[i] / 16), printf("%X",CipherBlock[i] % 16);
printf("\n");

I need to pass this unsigned int array "CipherBlock" into a decrypt() method that only takes unsigned char *. How do correctly memcpy everything from the "CipherBlock" array into an unsigned char array without losing information?

My understanding is an unsigned int is 4 bytes and unsigned char 1 byte. Since "CipherBlock" is 16 unsigned integers, the total size in bytes = 16 * 4 = 64 bytes. Does this mean my unsigned char[] array needs to be 64 in length?

If so, would the following work?

unsigned char arr[64] = { '\0' };
memcpy(arr,CipherBlock,64); 

This does not seem to work. For some reason it only copies the the first byte of "CipherBlock" into "arr". The rest of "arr" is '\0' thereafter.

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Apparently, only the least 8 bits of each element CipherBlock[i] matter, so they are not arbitrary ints (or their 24 highest bits don't matter to you). –  Basile Starynkevitch Sep 9 '12 at 20:55
1  
Is your decrypt function specified to accept arbitrary zero terminated strings, or can it only accept hex string (with hex digit in ASCII)? –  Basile Starynkevitch Sep 9 '12 at 20:56
    
@Basile Starynkevitch: That's the question. What are we passing in the form of an unsigned char*? (See my answer for speculations.) –  aib Sep 9 '12 at 21:45
    
I think the question is inadequately specified. There are several different ways to convert or reinterpret 16 unsigned int values as a number of unsigned char values, and it's not possible to tell from the question which one you want. For example, you don't say whether you want the first unsigned char in arr to represent the most significant 8 bits of the first unsigned int, or the least significant 8 bits, or something else. It rather depends how the CipherBlock was generated and transmitted to you in the first place. –  Steve Jessop Sep 9 '12 at 22:24
1  
Regarding your observation that memcpy with a last argument of 64 only copies one byte -- on the face of it this is impossible, there must be some bug in the code you've left out. –  Steve Jessop Sep 9 '12 at 22:26

3 Answers 3

up vote 2 down vote accepted

An int is at least 16 bits, same as a short in that regard.

It looks like every unsigned int has values 0-255 or 00-FF in your case, which is a safe range for an unsigned char. However, the proper way to convert one to the other is a cast:

for (int i=0; i<16; ++i) arr[i] = (unsigned char) CipherBlock[i];

But you have not specified what kind of data decrypt() expects. From the signature, I suspect integral data (strings are usually char* or const char*) but it's hard to be sure without a context.

Note that you could also do printf("%02X", CipherBlock[i]); for printing.

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you are the man. –  user1068636 Sep 9 '12 at 23:16

Why don't you just cast the CipherBlock pointer to unsigned char * and pass that?

decrypt((unsigned char *)CipherBlock);
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As @James has suggested, this will be wrong unless decrypt() actually expects a pointer to an unsigned int array cast to a pointer to unsigned char. The only way to decode this would be to cast the pointer back to an unsigned int* (in which case asking for an unsigned char* would be pointless) or be very, very sure of the underlying representation and decode the ints byte by byte (error prone and quite as unnecessary). –  aib Sep 9 '12 at 21:43
    
Though this is the correct reduction of the code in the question's body. –  aib Sep 9 '12 at 21:47
    
Yes. He doesn't mention what type the underlying data is. The int's could be ASCII chars, 16-bit Unicode chars, or a mish-mash data struct. His routine to print out the hex values is also wrong because it doesn't take into account leading zeros. –  Kent Sep 9 '12 at 21:53

You need to repack the numbers so you can not use memcpy or cast it directly. Aib has it correct.

unsigned char array[16];
for(int i = 0; i < 16; i++) {
    array[i] = CipherBlock[i];
}
share|improve this answer
    
What? No, it indicates that CipherBlock[i] holds the value verbatim. The encoding is probably 4 bytes 2's complement little endian, which means the value is in the first byte and the other 3 are either 00 or FF. –  aib Sep 9 '12 at 21:21
    
@aib Yea you are right. I was thinking shift by 16 instead of divide by 16 (which is shift by 4). –  James Sep 9 '12 at 21:26
    
%X discards leading 0's. –  aib Sep 9 '12 at 21:28
    
@aib Still can not use memcpy. Your answer is correct, but I can't up vote. Sorry. –  James Sep 9 '12 at 21:32
    
Note that there are (at least) two characters printed per CipherBlock element. The first two are 44, meaning CB[0]/16 = 4 and CB[0]%16 = 4. That would give it value 0x44 or 0x00000044. If there were more than 32 characters, that would make at least one element >FF and throw all bets off. –  aib Sep 9 '12 at 21:33

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