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So I am writing a very small and simple program which takes a number as input, converts it to hex, and prints it out two characters at a time.

For some numbers, it prints out ffffff in front of the output.

This is my code:

    //Convert the input to an unsigned int
unsigned int a = strtoul (argv[1], NULL, 0);
//Convert the unsigned int to a char pointer
char* c = (char*) &a;

//Print out the char two at a time
for(int i = 0; i < 4; i++){
    printf("%02x ", c[i]);
}

Most of the output is fine and looks like this:

./hex_int 1

01 00 00 00

But for some numbers the output looks like this:

./hex_int 100000

ffffffa0 ffffff86 01 00

If you remove all the f's the conversion is correct, but I cannot figure out why it is doing this only on some inputs.

Anyone have any ideas?

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1  
    
Not the cause of your problem, but since strtoul returns an unsigned long, you should probably declare a to be unsigned long even though on your processor it may or may not be the same size. – lurker Aug 28 '13 at 20:47
    
@mbratch - that's a good idea for consistency's sake, but probably not strictly necessary. The conversion from unsigned long to unsigned int is well-defined. – Carl Norum Aug 28 '13 at 20:48
    
@CarlNorum indeed. I guess I'm just a little OCD... – lurker Aug 28 '13 at 20:49
up vote 4 down vote accepted

You're mismatching parameters and print formats. The default argument promotions cause your char parameter (c[i]) to be promoted to int, which sign extends (apparently your char is a signed type). Then you told printf to interpret that argument as unsigned int by using the %x format. Boom - undefined behaviour.

Use:

printf("%02x ", (unsigned int)(unsigned char)c[i]);

Instead.

share|improve this answer
    
I also realized the problem can be solved (I think) by declaring c as an unsigned char* instead of just char*. Thanks for the quick response though. – billg118 Aug 28 '13 at 20:47
1  
Using unsigned char will probably give you the right output, but it's still undefined behaviour. The argument promotion is still to undecorated int. – Carl Norum Aug 28 '13 at 20:48
    
The cast directly to unsigned int will avoid the undefined behaviour but you are still likely to get the ffffff "prefix" on negative char values. – Charles Bailey Aug 28 '13 at 20:50
    
Ok I'm going to go with unsigned int then. Thanks guys! – billg118 Aug 28 '13 at 20:50
    
@CharlesBailey - that's probably true. Let me fix that up. – Carl Norum Aug 28 '13 at 20:51

char is, by default, signed on your system. Moving an int into it makes your compiler think you want to use the highest bit as sign bit on operations that needs to be cast to an int. And printing it as a hex number is one.

Make the char pointer c an unsigned char * and the problem will go away.

If Carl is right with his comment (I'm going to check), use this fail-safe method instead:

printf("%02x ", c[i] & 0xff);
share|improve this answer
    
Strictly speaking, using unsigned char * still causes undefined behaviour in the print statement. – Carl Norum Aug 28 '13 at 20:50
    
The change you made didn't fix that either. The UB is caused by the default argument promotion turning that value into an int and then using %x to print an unsigned int. The same happens with your &. – Carl Norum Aug 28 '13 at 20:53
    
So it'd need printf("%02x ", ((int)c[i]) & 0xff);? (Probably too many parentheses, but now I'm going for broke!) – Rad Lexus Aug 28 '13 at 20:59
    
No, you need to pass an unsigned int to match the %x. Use printf("%02x ", (unsigned int)c[i]);, assuming c is an unsigned char *. – Carl Norum Aug 28 '13 at 20:59
1  
It most certainly does not. "If an int can represent all values of the original type (as restricted by the width, for a bit-field), the value is converted to an int..." A signed int can represent all of the values of an unsigned char (assuming sizeof(int) > 1, that is). Undefined behaviour is still undefined, even if it happens to give apparently correct results. – Carl Norum Aug 28 '13 at 23:14

I where doing this for a while and i realize, you can see the exe image in a process, use a debuger, the code is all right, but i cant for the moment to pass this machine code to assembler, but well, with a pointer all is possible

include stdio.h

include windows.h

int main ()

{

int i=0;

char * p = (char *)0x400000;

for(int i = 0; i < 20; i++)

{

    printf("%p %02x \n",p+i, (unsigned int)(unsigned char)*(p+i));
}

}
share|improve this answer
    
How is this even remotely relevant to OP's question? P.S.1. The (unsigned int) cast is unnecessary. P.S.2. Memory address 0x400000 is not guaranteed to be readable at all. Yes, it may usually be in Windows x86 (since you mentioned windows.h) but note that the question was tagged as just C without reference to any particular OS or platform. – dxiv Jul 5 at 5:46

Well, the windows.h was added to use some system calls, i omit those in the example, because is not necesary to use those in the code below, about unsigned, yes it can be ommited, cause char is always >0, about the address, as you said before, 0400000 is the header of the exe, "mz" header in this case, but the code of the dll of the process could be 7c911000, and the header of the dll another address, and so on.., this infomation is inside the exe file and must be readed to have and idea of where the loaded image is load in principal memory, but when you have only one process, is you have more, you must use system calls to know where is the second process, if one address is not readable, just read de exe in a notepad, that address was only an example

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1  
Please read the help page before answering questions. This is basically a comment on your answer instead of an answer. Also your other answer isn't in the scope of the question. – rfkortekaas Jul 5 at 21:05
    
what?, did you read the title of the thread?, printing in hex etc, that's the main theme here, billg118 open this thread, i am posting and altenative code than carl, i am not doing a paralel dialog box or wathever, my answer is in the scope of the question bacause of the code i`ve posted, instead of talking about questions, talking about main thread is in scope in this forum, or not? – dbg Jul 6 at 17:01

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