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I have an array that is like this:

unsigned char array[] = {'\xc0', '\x3f', '\x0e', '\x54', '\xe5', '\x20'};
unsigned char array2[6];

When I use memcpy:

memcpy(array2, array, 6);

And print both of them:

printf("%x %x %x %x %x %x", array[0],  // ... etc
printf("%x %x %x %x %x %x", array2[0], // ... etc

one prints like:

c0 3f e 54 e5 20

but the other one prints

ffffffc0 3f e 54 ffffffe5 20

what happened?

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3  
Can you please double check the definition of array2? –  Charles Bailey Aug 18 '10 at 13:49
2  
It seems to be treating array2 like signed ints rather than unsigned chars. –  Paul Tomblin Aug 18 '10 at 13:50
    
array2 is an unsigned char[] –  Hock Aug 18 '10 at 13:52
4  
Just can't confirm what you are seeing. –  pmr Aug 18 '10 at 13:54
3  
what compiler are you using? with gcc4.2 both lines give the same output –  Vladimir Aug 18 '10 at 13:55
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4 Answers

up vote 9 down vote accepted

I've turned your code into a complete compilable example. I also added a third array of a 'normal' char which on my environment is signed.

#include <cstring>
#include <cstdio>

using std::memcpy;
using std::printf;

int main()
{

        unsigned char array[] = {'\xc0', '\x3f', '\x0e', '\x54', '\xe5', '\x20'};
        unsigned char array2[6];
        char array3[6];

        memcpy(array2, array, 6);
        memcpy(array3, array, 6);

        printf("%x %x %x %x %x %x\n", array[0], array[1], array[2], array[3], array[4], array[5]);
        printf("%x %x %x %x %x %x\n", array2[0], array2[1], array2[2], array2[3], array2[4], array2[5]);
        printf("%x %x %x %x %x %x\n", array3[0], array3[1], array3[2], array3[3], array3[4], array3[5]);

        return 0;
}

My results were what I expected.

c0 3f e 54 e5 20
c0 3f e 54 e5 20
ffffffc0 3f e 54 ffffffe5 20

As you can see, only when the array is of a signed char type do the 'extra' ff get appended. The reason is that when memcpy populates the array of signed char, the values with a high bit set now correspond to negative char values. When passed to printf the char are promoted to int types which effectively means a sign extension.

%x prints them in hexadecimal as though they were unsigned int, but as the argument was passed as int the behaviour is technically undefined. Typically on a two's complement machine the behaviour is the same as the standard signed to unsigned conversion which uses mod 2^N arithmetic (where N is the number of value bits in an unsigned int). As the value was only 'slightly' negative (coming from a narrow signed type), post conversion the value is close to the maximum possible unsigned int value, i.e. it has many leading 1's (in binary) or leading f in hex.

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You always have to be careful checking the value of memory with a print style statement - much better to use the debugger –  Martin Beckett Aug 18 '10 at 14:58
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You should mask off the higher bits, since your chars will be extended to int size when calling a varargs function:

printf("%x %x %x %x %x %x", array[0] & 0xff,  // ..
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%hhx is better. –  osgx Aug 18 '10 at 14:01
    
@osgx - yes, but us old c guys learned LONG ago to & 0xff :) old habits die hard –  KevinDTimm Aug 18 '10 at 14:06
1  
%hhx is not (yet) C++, remember that C++ refers to the pre-C99 standard version for its printf contract. –  Charles Bailey Aug 18 '10 at 14:09
    
@Charles Bailey, but there is no libc library for C++, and any C++ prog will use libc from C. So, in most recent (sorry, not ancient) libc hhx will be supported. –  osgx Aug 18 '10 at 14:53
    
@osgx: Please check your standard, particularly 1.2 Normative references. In the C++ standard what is referred to (and available in C++) as the Standard C Library is clauses 7 of ISO/IEC 9899:1990 and ISO/IEC 9899/Amd.1:1995 i.e. the C90 standard library. –  Charles Bailey Aug 18 '10 at 14:59
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The problem is not memcpy (unless your char type really is 32 bits, rather than 8), it looks more like integer sign extension while printing.

you may want to change your printf to explicitly use unsigned char conversion, ie.

printf("%hhx %hhx...", array2[0], array2[1],...);

As a guess, it's possible that your compiler/optimizer is handling array (whose size and contents are known at compile time) and array2 differently, pushing constant values onto the stack in the first place and erroneously pushing sign extended values in the second.

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%x format expects integer type. Try to use casting:

printf("%x %x %x %x %x %x", (int)array2[0], ...

Edit: Since there are new comments on my post, I want to add some information. Before calling the printf function, compiler generates code which pushes on the stack variable list of parameters (...). Compiler doesn't know anything about printf format codes, and pushes parameters according to their type. printf collects parameters from the stack according to formatting string. So, array[i] is pushed as char, and handled by printf as int. Therefore, it is always good idea to make casting, if parameter type doesn't match exactly format specification, working with printf/scanf functions.

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char is integer type. C99 std: 6.2.5 para 4: There are five standard signed integer types, designated as signed char, short int, int, long int, and long long int. (These and other types may be designated in several additional ways, as described in 6.7.2.) –  osgx Aug 18 '10 at 13:57
    
But a char may not be passed on the stack in four bytes, which is what %x will be expecting. –  Mark B Aug 18 '10 at 14:00
    
the function call will promote the char's to int's (and bit fill the existing promotion) –  KevinDTimm Aug 18 '10 at 14:05
    
Why would this make any difference? It's just making the same conversion that promotion for a varargs function parameter would make anyway only making it explicit. –  Charles Bailey Aug 18 '10 at 14:06
    
@Osgx, @Mark B: %x expects an int type. a char will always by expanded to an int when passed as a parameter. It's the sign extension as it's expanded that's the issue. –  James Curran Aug 18 '10 at 14:06
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