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Basically, I have a byte-string of data like: \x00\x00\x00\x00 \x08\x00\x00\x00 \x05\x00\x00\x00 (spaces are used only for visibility, there are no space bytes in the actual byte-string). The data is little-endian.

Now, I need to extract the second 4-byte group (\x08\x00\x00\x00, which is 128) and turn them it an unsigned long. So, uint32_t type.

Basically, what I'm doing is: moveBlock(&gdata->str[4], &second_group, 4);

Where moveBlock is a macro: #define moveBlock(src,dest,size) memmove(dest,src,size). I use the macro because I personally prefer that order of parameters, if someone's wondering.

gdata->str is a pointer to a gchar *(ref. here) and gdata is a GString *(ref. here). second_group is defined as an uint32_t.

So, this works sometimes, but not always. I honestly don't know what I'm doing wrong!

Thanks!


P.S: The code it a bit lengthy and weird, and I don't think that going through it all would be relevant. Unless someone asks for it, I won't unnecessarily clutter the question

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It works "sometimes"? What happens in the cases where it doesn't work? –  一二三 Feb 19 '12 at 2:53
    
Are you checking to make sure gdata->len is >= 8? –  Alok Singhal Feb 19 '12 at 2:54
    
@JamesMcLaughlin that somehow produced 1. –  destiel starship Feb 19 '12 at 2:54
1  
@withadot.: Nope. You typed \08\00\00\00. Which is an invalid octal sequence, so i figured you meant \x08\x00\x00\x00. –  cHao Feb 19 '12 at 3:12
1  
memmove is safe when the source and destination ranges overlap; using memcpy in that case invokes UB. But at least the way I see it, using memmove also documents your knowledge that you're moving data within a single buffer. When I see memmove, I expect it to be used for this purpose, and if it's not, I'll probably spend an inordinate amount of time trying to figure out why it was used instead of memcpy and if the code was perhaps originally moving data within a single buffer. –  R.. Feb 19 '12 at 4:31

2 Answers 2

up vote 4 down vote accepted

Here's the clean portable version:

unsigned char *p = (void *)data_source;
uint32_t x = p[0] + 256U*p[1] + 65536U*p[2] + 16777216U*p[3];
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You could try strtoul()

Edit: you will have to null terminate your array to make it a string.

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No. strtoul converts nul-terminated string of digits to number. –  asaelr Feb 19 '12 at 3:16
    
Then it isn't a 4-byte "string". –  Dave Feb 19 '12 at 3:19
    
There were quotations for a reason. :D –  destiel starship Feb 19 '12 at 3:20
    
Well you could go with R.. which is a good solution or null terminate and use a standard C function. –  Dave Feb 19 '12 at 3:23
    
No. He can't nul-terminate and use strtoul. His bytes don't contain digits. They contain 8-bit numbers. –  asaelr Feb 19 '12 at 3:35

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