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Does someone knows what happens when a char is returned when int is expected?

char testunc1(char a)
{
    return a;
}

void main()
{

    int x1;
    x1 = testfunc1(7);
    printf("%d\n",x1);
}
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closed as off-topic by dandan78, meagar, ta.speot.is, Pascal Cuoq, Randy Jul 11 '13 at 12:35

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  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – dandan78, meagar, ta.speot.is, Pascal Cuoq, Randy
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You will get the answer as 7. In the testfunc1 the int will be converted to char and in the main function , the char will be promoted back to int , if u want to print the charecter the use printf("%c \n",x1); –  Santhosh Pai Jul 11 '13 at 12:42
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4 Answers

up vote 5 down vote accepted

The char is implicitly converted to an int.

In section 6.5.16.1 paragraph 2 of the C99 standard:

In simple assignment (=), the value of the right operand is converted to the type of the assignment expression and replaces the value stored in the object designated by the left operand.

The type of an assignment expression is defined in section 6.5.16 paragraph 3:

The type of an assignment expression is the type of the left operand unless the left operand has qualified type, in which case it is the unqualified version of the type of the left operand.

Since the variable is of type int, the returned char value is converted to type int as specified in section 6.5.16.1 of the C99 standard.

In this case, the value 7 can be fully represented by an int, so no loss of precision occurs as the 7 is stored in your int variable.

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Since the variable is of type int, the returned char value is promoted to type int following the type There is no integer promotion in the assignment of testfunc1 to x1. The right operand of the assignment operator is converted to the type of the left operand, here from char to int, but this does not occur as a part of the 6.3.1.1 integer promotions. –  ouah Jul 11 '13 at 14:18
    
@ouah Yes, I believe you are correct; 6.3.1.1 covers integer promotions when evaluating expressions, not the resulting type of an assignment. I'll update the answer to quote the correct section of the standard regarding the conversion to the left operand type. –  Vilhelm Gray Jul 11 '13 at 15:22
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When the function is called int is implicitly cast to char. As char can fit values up to 127, this works just fine. Later the result returned from the function is cast back to int, which of course again works as int fits all values that can fit in char.

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There is an implicit conversion between all arithmetic types in C. So here the int value 7 is implicitly converted to char when passed to the testunc1 function. Same when testfunc1 return value is assigned to x1 (the char return value is converted to int).

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Cause integers and characters are strictly related in C. To get an ASCII char index, you can simply cast it to int.

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