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I was reading a program in C (an implementation of a server/client communication) and I saw this:

for (i = 0; i < len; i++)
 sprintf(nickmsg+i*2, "%02X", buf[i] & 0xFF);

What does this line do? I don't understand this especially: nickmsg+i*2. nickmsg is a char table and i is an integer. If it was just nickmsg, ok I'll understand but there what's the aim of this line ?

Thanks.

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3  
Why the downvotes/votes do close? This is a perfectly reasonable beginner's question and an excellent example of typical idioms in C. –  Adam Liss Apr 10 '12 at 15:23
    
@AdamLiss Probably because the chance of anyone ever coming across this question in a search for their question is nil. –  Andrew Finnell Apr 10 '12 at 15:26
    
@AndrewFinnell: Changing the title and tags makes the question easier to find, and not much more effort than downvoting. –  Adam Liss Apr 10 '12 at 15:28
    
The close is for "too localized". I have no idea why. Hex representation is the same everywhere, surely? –  JeremyP Apr 10 '12 at 15:32
    
@AdamLiss Indeed I am sure it is. I didn't down vote, was just answering the question that was asked in the comments. But I will say that by changing the title, it has completely change the original question. The title answers the question originally asked. This question is now useful, but the question has changed. –  Andrew Finnell Apr 10 '12 at 15:34
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3 Answers

up vote 3 down vote accepted

Start at the address pointed to by nickmsg and then go an additional i * 2 * CHAR_BIT / 8 bytes in memory. From there, write the hex representation of buf[i] & 0xFF, which will occupy 2 * CHAR_BIT / 8 bytes. Repeat for each i.

Assuming buf looks like

buf[0] = 20
buf[1] = 12

Then the memory pointed to by nickmsg will look like:

nickmsg
|
|
|
+ + + + +
0 2 4 6 8
140C\

Where the \ is my nomenclature for the null-terminator that sprintf writes at the end.

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As a visual example imagine you have buf containing 03|FE|B4 you will have nickmsg containing 00|03|00|FE|00|B4 afterwards –  Eregrith Apr 10 '12 at 15:24
    
sizeof(char) == 1 is written into the C standard, so you can assume it :) –  JeremyP Apr 10 '12 at 15:25
    
On another hand, if buf is a char table, why do & 0xFF ? –  Eregrith Apr 10 '12 at 15:25
    
@Eregrith No, nickmsg will contain 03F3B4, followed by a null character. –  Adam Liss Apr 10 '12 at 15:26
    
Yes sorry, my mind got upside-down on the hex/char. %02X ensures 0x03 will be written "03" as characters, not 0x00 0x03 as hex XD. Duh. –  Eregrith Apr 10 '12 at 15:28
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It's converting the values in the buf array to their hexadecimal representation and storing them in the nickmsg array.

As it steps through each value in buf, it extracts the rightmost 8 bits by performing a bitwise AND with 0xFF, which is binary 1111 1111.

Then it uses the format string "%02X" to print each value as 2 hex digits.

It stores each pair of hex digits in the nickmsg array, then advances past them by using the index i*2.

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nickmsg+i*2 is treating the nickmsg variable as a pointer to a C string table, then stepping through it 2 entries every loop.

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