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Say i have:

unsigned char *varA, *varB, *varC;
varA=malloc(64);
varB=malloc(32);
varC=malloc(32);

How can i put the first 32 byte of varA into varB and the last 32 byte of varA into varC?

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Your question has remarkable little to do with pointers and you might want to rethink what it means to "split them". –  pmr Jan 30 '13 at 22:37
1  
I would recommend a union... just to clarify, i'm suspecting it's gonna be bits instead of bytes in the end. –  Shark Jan 30 '13 at 22:37
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3 Answers

up vote 5 down vote accepted
memcpy(varB, varA, 32);
memcpy(varC, varA + 32, 32);

It's this simple because the underlying data type is unsigned char, which is the same size as a byte. If varA, varB, and varC were integers, you would need to multiply the size parameter to memcpy (i.e. 32) by sizeof(int) to compute the right number of bytes to copy. If I were being pedantic, i could have multiplied 32 by sizeof(unsigned char) in the example above, but it is not necessary because sizeof(unsigned char) == 1.

Note that I don't need to multiply the 32 in varA + 32 by anything because the compiler does that for me when adding constant offsets to pointers.

One more thing: if you want to be fast, it might be sufficient to just work on each half of varA separately, rather than allocate two new buffers and copy into them.

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First of all thanks a lot for your answer, you have been very clear and exhaustive :) Then how can i work with "half of varA"? Let's say i need to do void *function(int, half_of_varA);, how can i pass only "half of memory"? –  polslinux Jan 30 '13 at 22:44
    
You would choose one of void* p = function(1234, varA); or void* p = function(1234, varA + 32); depending on which half of varA you need to use. And I am using 1234 as a guess as to the first parameter of function(), of course. –  Randall Cook Jan 30 '13 at 22:48
    
Ok thanks! I've understood! –  polslinux Jan 30 '13 at 22:51
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You could use loop to copy individual bytes one by one:

for (int i = 0; i != 32; ++i)
    varB[i] = varA[i];

for (int i = 0; i != 32; ++i)
    varC[i] = varA[32 + i];

Or memcpy function from the C runtime library:

memcpy(varB, varA, 32);
memcpy(varC, varA + 32, 32);
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Loops certainly work, but I would trust the compiler and/or memcpy implementer in this case. They can do tricks in the underlying assembly that a compiled loop can't touch (at least without a great optimizer), like moving multiple bytes at once. –  Randall Cook Jan 30 '13 at 22:45
    
It's just a different approaches. Copying through the loop could include some processing, like bit shuffling for example. –  arabesc Jan 30 '13 at 22:50
    
Yes, if processing is required, a loop is necessary. –  Randall Cook Jan 30 '13 at 22:51
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Ok let's do this....

uint64 source;
uint32 upperBytes, lowerBytes;

upperBytes = source&0xFFFFFFFF00000000;
lowerBytes = source&0x00000000FFFFFFFF;

Homework done.

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I don't understand your answer. –  polslinux Jan 30 '13 at 22:41
    
I read bits first. Then just went along with it. –  Shark Jan 30 '13 at 22:42
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