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I looked over but couldn't find a decent answer.

I was wondering how printf works in case like this:

char arr[2] = {5,6};

printf ("%d%d",arr[0],arr[1]);

I was thinking that printf just walks through the format and when it encouter %d for example it reads 4 bytes from the it's current position... however that's gotta be misconcepition cause that above works perfectly.

so, where am I wrong ?

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int need not be 4 bytes. –  Alok Singhal Feb 4 '10 at 10:31

2 Answers 2

up vote 9 down vote accepted

You're right. But there's argument promotion that converts (among other things) your char:s into int:s when they are used with a "varargs" function like printf().

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Also, floats are promoted to doubles. –  anon Feb 4 '10 at 10:29

When you say:

 printf ("%d%d",arr[0],arr[1]);

the string and the result of evaluating the two array expressions are placed on the stack and printf is called. printf takes the string from the stack and uses the % formatters in it to access the other stacked arguments in sequence. Exactly how it does that depends, as you say on the actual % value - for example, %d reads 4 bytes but %f reads 8 (for most 32-bit architectures).

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