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I have the code:

unsigned int length = strlen(somestring);

I'm compiling with the warning level on 4, and it's telling me that "conversion from size_t to unsigned int, possible loss of data" when a size_t is a typedef for an unsigned int.

Why!?

Edit:

I just solved my own problem. I'm an XP user, and my compiler was checking for 64 bit compatibility. Since size_t is platform dependent, for 64 bit it would be an unsigned long long, where that is not the same as an unsigned int.

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All sizes are dependent. size_t doesn't have to equal to any other type, they could all be different. The only guarantee you have is that sizeof(char) == 1, and that the number of bits in a char (which is also dependent!) is defined in the macro CHAR_BIT in the header <climits>, and that sizeof(short) >= sizeof(char), sizeof(int) >= sizeof(long), and sizeof(long long) >= sizeof(long). –  GManNickG Apr 3 '10 at 3:12
    
@GMan: Actually I believe sizeof(long) >= sizeof(int) :) +1 though –  Billy ONeal Apr 3 '10 at 3:20
    
@Billy: Oh dangit. Now it's too late to fix. -_- Oh well. :3 –  GManNickG Apr 3 '10 at 3:22
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And an int has to be at least 16 bits and a long at least 32 bits; that's specified in limits.h in the C89 standard, which also applies to C++03. –  James McNellis Apr 3 '10 at 3:35

1 Answer 1

up vote 7 down vote accepted

Because unsigned int is a narrower type on your machine than size_t. Most likely size_t is 64 bits wide, while unsigned int is 32 bits wide.

EDIT: size_t is not a typedef for unsigned int.

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Well, size_t is a typedef for unsigned on some systems. It won't be on LP64 and LLP64 systems though. :-) –  James McNellis Apr 3 '10 at 2:45
    
@James McNellis: Maybe, but the standard doesn't define it that way :) –  Billy ONeal Apr 3 '10 at 2:47

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