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Why does the following call:

printf("%d %d", 'a', 'b');

result in the "correct" 97 98 values? %d indicates the function has to read 4 bytes of data, and printf shouldn't be able to tell the type of the received arguments (besides the format string), so why isn't the printed number |a||b||junk||junk|?

Thanks in advance.

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%d is a signed integer, says nothing about the number of bytes involved... – leppie Oct 18 '10 at 13:35
2  
@leppie: However, it has to be passed with some definite number of bytes, and printf has to pick a certain number of bytes off the stack for it, and these certain numbers have to be the same. – David Thornley Oct 18 '10 at 14:04
3  
'a' has type int not char. – R.. Nov 14 '10 at 19:05
up vote 14 down vote accepted

In this case, the parameters received by printf will be of type int.

First of all, anything you pass to printf (except the first parameter) undergoes "default promotions", which means (among other things) that char and short are both promoted to int before being passed. So, even if what you were passing really did have type char, by the time it got to printf it would have type int. In your case, you're using a character literal, which already has type int anyway.

The same is true with scanf, and other functions that take variadic parameters.

Second, even without default promotions, character literals in C already have type int anyway (§6.4.4.4/10):

An integer character constant has type int.

So, in this case the values start with type int, and aren't promoted--but even if you started with chars, something like:

char a = 'a';

printf("%d", a);

...what printf receives would be of type int, not type char anyway.

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1  
Default promotions? Really? Since when do varargs do default promotions? Isn't it just that the type of a character literal is int? – Oliver Charlesworth Oct 18 '10 at 13:42
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Yes and no -- yes, a char literal has type int, but even if he assigned it to a char and passed that, printf would still receive an int, so it's pretty much irrelevant. – Jerry Coffin Oct 18 '10 at 13:45
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No promotions are happening here. 'a' and 'b' have type int in C. – R.. Nov 14 '10 at 19:05
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@R: Gee, thanks! I'm sure nobody else here noticed anything like that. Closed captioning for the humor impaired:If "@R" had bothered to read the previous comments, he'd see that everybody else noticed that weeks ago -- and that I already pointed out that/how it's irrelevant. – Jerry Coffin Nov 14 '10 at 19:26
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@R.. Your point forced me to asked another question: Why is printf("%d", (char)'a'); working fine? Does printf bypass coercion too? Do enlighten. :) – CᴴᴀZ Aug 14 '13 at 19:48

In C, a char literal is a value of type int.

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it prints the DEC ASCII for the characters entered by you.

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