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Okay so I am trying to print hexadecimal values of a struct. Now my print function does the following:

int len = sizeof(someStruct);
unsigned char *buffer = (unsigned char*)&someStruct;
int count;
for(count = 0; count < len; count++) {
    fprintf(stderr, "%02x ", buffer[count]);
}
fprintf(stderr, "\n");

Here is the definition of the struct:

struct someStruct {
   unsigned char a;
   short myShort;
} __attribute__((packed)) someStruct;

The length of this struct printed out as expected is (output on console):

sizeof(someStruct): 3 bytes

Issue here is the following that I am encountering. There is a short which I set to a value.

someStruct.myShort = 0x08;

Now this short is 2 bytes long. When it is printed out into the console however, it does not show the most significant 0x00. Here is the output I get,

stderr: 00 08

I would like the following output however (3 bytes long),

stderr: 00 00 08 

If I fill the short with a 0xFFFF, then I do get the 2 byte output, however, whenever there is leading 0x00, it does not output the leading 0x00 to console.

Any ideas on what I am doing wrong. Probably something small I would assume I am overlooking.

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1  
Assuming buffer = (unsigned char*)&someStruct; len = sizeof(someStruct) I don't see anything wrong with your code. Could you post a self-contained example demonstrating your problem? –  user786653 Nov 5 '13 at 19:34
1  
The output (on a little-endian machine) should be nn 08 00, where nn is the value of the first struct member a. If len = sizeof(someStruct) = 3, then your code should print three hex bytes. –  Martin R Nov 5 '13 at 20:00
1  
Please provide the actual output of the program. If your length (sizeof) is 3, you should see xx xx xx, not a single xx. –  Arkadiy Nov 5 '13 at 20:02
1  
@Edwin: That is very strange, and I cannot reproduce it. Is that your real code? Did you try single-stepping in the debugger? –  Martin R Nov 5 '13 at 20:06
1  
I'll have a go with the debugger, something fishy is going on here... –  Edwin Nov 5 '13 at 20:07

5 Answers 5

up vote 1 down vote accepted

After you provided more info, your code is OK for me. It prints the output:

00 08 00

First 00 is from unsigned char a; and second bytes 08 00 are from short. They are switched because of platform dependent data storing in memory.

If you want switched bytes of the short you could just show a short:

fprintf(stderr, "%02x %02x", (someStruct.myShort >> 8) & 0xFF, someStruct.myShort & 0xFF)
share|improve this answer
    
so to add to this, basically the issue was with the endianess of the system plus configuration error on the shell which was making it skip some prints. –  Edwin Nov 6 '13 at 23:29

I don't see a problem with your code. However, I get 08 00, which makes sense on my little-endian Intel machine.

share|improve this answer
    
Hi Fred, Note that the struct being printed prints byte by byte. The buffer[count] is a single byte (unsigned char). So although your 04x will work at face value, it is not exactly printing the short. It is just padding the byte with 0's instead of printed the leading 0x00 of the short –  Edwin Nov 5 '13 at 19:45
1  
@Edwin: Your code example doesn't make that clear. Please show the declaration and assignment of buffer. –  Fred Larson Nov 5 '13 at 19:46
    
@Fred Larson If buffer[count] is 0xF123, msb becomes fff2 and fprintf(stderr, "%02x", msb) prints fffffff2. –  chux Nov 5 '13 at 19:50
    
@Fred: Sorry about that, cleared that up now –  Edwin Nov 5 '13 at 19:50

The problem is in the format of the printf

%02x

%02x means that the result will be printed as hex value (x), with a minimum lenght of 2 (2) and filling the spaces with 0 (0)

Try with

fprintf(stderr, "%04x ", buffer[count]); 
share|improve this answer
    
Hi Evan, the thing is however that I am printing it in the function per byte. So that means that printing %04x would just print like this: 0008. But note, that is not the 2 bytes I want, it's just the single byte printed with leading 0's. which is not what is desired here. –  Edwin Nov 5 '13 at 19:38
1  
@Edwin: Your question isn't clear. There's not connection between buffer and someStruct.myShort in your code example, making it difficult to understand what your looking for. –  Fred Larson Nov 5 '13 at 19:45

The width specifier in the format string (2 in your case) refers to the minimum number of characters in the text output, not the number of bytes to print. Try using "%04x " as your format string instead.

As for the digit grouping (00 08 as opposed to 0008): Plain old printf doesn't support that, but POSIX printf does. Info here: Digit grouping in C's printf

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Need to take care not to shift in a signed bit should buffer be signed. Use "hh" to only print 1 byte worth of data. "hh" available with C99. See What is the purpose of the h and hh modifiers for printf?

fprintf(stderr, "%02hhx %02hhx", buffer[count] >> 8, buffer[count]);

[Edit OP's latest edit wants to see 3 bytes] This will print all field's contents. Each field is in the endian order of the machine.

size_t len = sizeof(someStruct);
const unsigned char *buffer = (unsigned char*)&someStruct;
size_t count;
for(count = 0; count < len; count++) {
    fprintf(stderr, "%02x ", buffer[count]);
}
fprintf(stderr, "\n");
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