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I am going through the book The C programming Language by K & R to learn c. It says that

Since an argument of a function call is an expression, type conversion also takes place when arguments are passed to functions. In the absence of a function prototype, char and short become int, and float becomes double.

I am struggling over this line for the past few days to understand. I think it is an important point. Whatever assumptions that I am making, its not coming true. Can anybody help me to understand it clearly?

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marked as duplicate by The Mask, lnafziger, Rob, madth3, Avadhani Y Jul 5 '13 at 6:24

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What assumptions are you making? –  Vaughn Cato Jul 4 '13 at 1:38
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I removed c++ tag because this there's no C++ relation, since C and C++ are different languages. –  The Mask Jul 4 '13 at 1:39
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Good info in the answers to related question regarding C function prototypes: stackoverflow.com/questions/2575153/… –  franji1 Jul 4 '13 at 1:40
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You should not be writing C code without prototypes in scope, so the sentence shouldn't matter. However, if you insist on writing retrograde code, you need to know that if you pass a char or short variable to a function without a prototype in scope, C will automatically convert the values to int, and will convert float values to double. So without a prototype in scope, somefunc(3.0F) will be pass a double to somefunc(); etc. –  Jonathan Leffler Jul 4 '13 at 3:24

2 Answers 2

up vote 2 down vote accepted

In pre-ANSI C it was common to have functions with no prototype. In this case only the default type promotions took place.

When there is a prototype, each parameter expression is converted to the type expected by the function, as if there were a cast:

// Declaration
void callMe(char x, int y);
...
// Call
callMe(50, 'x');

The above call is equivalent to calling

callMe((char)50, (int)'x');

This is important because of an implicit agreement between the caller and the callee on passing parameters: the way a parameter is passed, as well as the memory footprint of the parameter, depends on the type. If the caller does not place parameters in memory in the right format, the callee would not be able to use the parameters correctly. That's why the two must agree on the type of each parameter in some way. The standard says that the "agreement" comes in the shape of a function prototype. If the prototype is missing, the standard supplies the "default agreement", i.e. char and short become int, and float becomes double.

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Note that for variadic functions such as printf(), the default type promotions still always apply. –  Elchonon Edelson Jul 4 '13 at 2:15
    
Common? In pre-standard C, it was impossible to have prototypes! –  Jonathan Leffler Jul 4 '13 at 3:25
    
just to confirm what I have understood from you answer.. that if I didn't declare the function prototype, then the function will pass its argument as callMe((int)50, (int)'x') –  noufal Jul 4 '13 at 4:23
    
@noufal Yes, this is correct. –  dasblinkenlight Jul 4 '13 at 9:32

The key thing here is "in the absence of a function prototype", which isn't the usual situation. The most common place you'll see this kind of conversion is in a variable argument list to a function like printf.

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The other situation is dealing with ancient code that uses K&R style function definitions. –  Barmar Jul 4 '13 at 1:38

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