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I have a buffer with n bytes, but I only want read in sizeof(something) bytes from byte 3, meaning I don't want to read in byte 1 and 2 from the buffer. For example...

For some buffer, byte 1 = 'a', byte 2 = 'b', byte 3 = uint64_t variable. What I want to do is something like

1. set begin to byte 3
2. read in sizeof(uint64_t) bytes from buffer using memmove
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3  
Is the pointer math and casting too hard for you? –  Ignacio Vazquez-Abrams Mar 8 '12 at 23:59

2 Answers 2

up vote 2 down vote accepted

First, a bit of clarification. C array indexing starts at 0, not 1, so it's more accurate to say that byte 0 is 'a' and byte 1 is 'b'. Second, your third byte, cannot contain a uint64_t variable, but index 2 may well be the beginning of a uint64_t object.

No, there is no lseek equivalent for memmove() -- because, unlike file operations, a call to memmove() must specify the starting point.

And in this case, you might as well use memcpy() rather than memmove(). The only difference between them is that memmove() handles overlapping buffers correctly. Since your source and target are distinct objects, that's not a concern. It's not going to significantly affect your code's speed, but anyone reading it won't have to wonder why you chose to use memmove().

Given:

unsigned char buf[SOME_SIZE];
uint64_t target;

you can do something like this:

memcpy(&target, buf+2, sizeof target);

Note that I used sizeof target rather than sizeof (uint64_t). Either will work, but using sizeof target makes your code more resilient (less vulnerable to errors as you change it later on). If you decide to change the type of target, you don't need to remember to change the type in the memcpy() call.

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Why not simply use this:

uint64_t num;
num = * ((uint64_t *) (buffer + 2))
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Because it can fail if that address is misaligned. –  Keith Thompson Mar 9 '12 at 0:02
    
Right. Okay, you better use memcpy of some sort then, but I see you already made a nice answer explaining that :) –  xato Mar 9 '12 at 0:07

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