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I want to pass in a hardcoded char array as the source parameter to memcpy ... Something like this:

memcpy(dest, {0xE3,0x83,0xA2,0xA4,0xCB} ,5);

This compiled with clang gives the following error:

cccc.c:28:14: error: expected expression

If i modify it to be (see the extra parenthesis ):

memcpy(dest,({0xAB,0x13,0xF9,0x93,0xB5}),5);

the error given by clang is:

cccc.c:26:14: warning: incompatible integer to pointer
              conversion passing 'int' to parameter of
              type 'const void *' [-Wint-conversion]

cccc.c:28:40: error: expected ';' after expression
memcpy(c+110,({0xAB,0x13,0xF9,0x93,0xB5}),5);

So, the question:

How do I pass in a hardcoded array as the source parameter of memcpy (http://www.cplusplus.com/reference/cstring/memcpy/)

I have tried:

(void*)(&{0xAB,0x13,0xF9,0x93,0xB5}[0])  - syntax error
{0xAB,0x13,0xF9,0x93,0xB5}               - syntax error
({0xAB,0x13,0xF9,0x93,0xB5})             - see above
(char[])({0xE3,0x83,0xA2,0xA4,0xCB})     - error: cast to incomplete type 'char []' (clang)

and some more insane combinations I'm shamed to write here ...

Please remember: I do NOT want to create a new variable to hold the array.

share|improve this question
14  
C or C++? Make up your mind. – n.m. Mar 2 at 11:06
18  
memcpy(dest, "\xAB\x13\xF9\x93\xB5",5); – BLUEPIXY Mar 2 at 11:13
7  
@n.m. The title says C, so I guess C. – MikeCAT Mar 2 at 11:20
11  
@fritzone We’re asking you to clarify the language not to annoy you but because the answer will be different in C and C++. If you’re interested in both, consider asking two separate questions. – Konrad Rudolph Mar 2 at 11:22
7  
cccc.c is my kind of filename. :) – erip Mar 2 at 11:25
up vote 36 down vote accepted

If you use C99 or later, you can use compound literals. (N1256 6.5.2.5)

#include <stdio.h>
#include <string.h>
int main(void){
    char dest[5] = {0};
    memcpy(dest, (char[]){0xE3,0x83,0xA2,0xA4,0xCB} ,5);
    for (int i = 0; i < 5; i++) printf("%X ", (unsigned int)(unsigned char)dest[i]);
    putchar('\n');
    return 0;
}

UPDATE: This worked for C++03 and C++11 on GCC, but are rejected with -pedantic-errors option. This means this is not a valid solution for standard C++.

#include <cstdio>
#include <cstring>
int main(void){
    char dest[5] = {0};
    memcpy(dest, (const char[]){(char)0xE3,(char)0x83,(char)0xA2,(char)0xA4,(char)0xCB} ,5);
    for (int i = 0; i < 5; i++) printf("%X ", (unsigned int)(unsigned char)dest[i]);
    putchar('\n');
    return 0;
}

points are:

  • Make the array const, or taking address of temporary array will be rejected.
  • Cast numbers to char explicitly, or the narrowing conversion will be rejected.
share|improve this answer
4  
Funny enough OP seems to have tried this — but with a C++ compiler. – Konrad Rudolph Mar 2 at 11:23
1  
Your update made your answer incorrect: this is illegal in C++ (all versions). If your compiler allowed it, it’s wrong. – Konrad Rudolph Mar 2 at 11:34
    
If you make the source an unsigned char const[], you don't need all those (char) casts. – Toby Speight Mar 3 at 11:13

You can just send a string as parameter. It seems to compile just fine.

#include <iostream>
#include <string.h>
using namespace std;

int main() {
    char dest[6] = {0};
    memcpy(dest,"\XAB\x13\XF9\X93\XB5", 5);

    return 0;
}
share|improve this answer
1  
If you must initialize dest at all (which is questionable), you should use '\0' rather than 0... – Mikhail T. Mar 2 at 11:31
1  
You are right. I copied the entire example from the OP ideone example. I just changed the memcpy line. – Igal S. Mar 2 at 12:08
3  
@MikhailT. where's the difference between '\0' and 0? They both compile to the same 0 value for me. – AcidShout Mar 2 at 15:18
2  
@NateEldredge: Wouldn't strcpy copy the trailing null? – user2357112 Mar 2 at 19:08
1  
@MikhailT. By the way, NULL must always evaluate to a zero: " An integer constant expression with the value 0, or such an expression cast to type void *, is called a null pointer constant" (6.3.2.3:3); "the [stddef.h] macros are: NULL, which expands to an implementation-defined null pointer constant…" (7.19:3). So the only bit that's implementation-defined is whether it's 0 or ((void *) 0). – wchargin Mar 3 at 3:28

The best solution is not to do this at all, but to use a temporary variable:

const char src[] = {0xE3,0x83,0xA2,0xA4,0xCB};
memcpy(dest, src, sizeof(src));

This code is the most maintainable, because it contains no "magic numbers", so it will not contain any missing array item or array-out-bounds bugs, like the compound literal version could.

This code is also compatible with C++ and C90.

The most important thing here is to realize that the generated machine code will be identical anyway. Don't think you are doing any form of optimization by using compound literals.

share|improve this answer
3  
-1, OP explicitly said he does not want to do this in his original post. Advising someone to do something the "right" way after they specifically said it would not work in their fringe case undermines the core problem. – user1717828 Mar 2 at 13:17
9  
@user1717828 well, for argument's sake, I would say there's a difference between saying something won't work in a particular fringe case and saying they simply don't want to do it. As far as I can tell from the question, the latter is the case here. And it's often - not always, but often - the case that when someone says "I don't want to do X", they really should be doing X anyway, they're just mistaken or misguided about the reason why they think they shouldn't be doing it. – David Z Mar 2 at 13:40
12  
@user1717828 One of the most important tasks in any form of engineering is to question the specification, particularly when it doesn't make any sense. In this case, the specification (OP) suggests that the poster may not be aware of how variables are allocated in memory or how compiler optimizations work. It is therefore important to post a "counter-answer", or otherwise beginners might read this post and think that the "no variable" requirement in the question makes sense, then start to obfuscate their code accordingly, by spamming compound literals all over it. – Lundin Mar 2 at 13:56
4  
@DavidZ You are right but from a 13K user I'd consider that "I do not want to do X" is a sentence we can trust. – LPs Mar 2 at 13:57
6  
Arguing that we should trust a statement because they're from a 13K user is the logical fallacy "Argument from Authority". Just because someone with a good reputation (in any field) makes a claim doesn't mean they're right. – Hank Schultz Mar 2 at 14:20

You can use Compound Literals.

int main()
{
    unsigned char dest[5];
    size_t i;

    memcpy(dest, (unsigned char[]){0xE3,0x83,0xA2,0xA4,0xCB} ,5);

    printf("Test: " );
    for(i=0; i<sizeof(dest)/sizeof(dest[0]); i++)
        printf("%02X - ", dest[i] );
    printf("\n");
    return 0;
}
share|improve this answer

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