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int main()
{   
    int a, b, c;
    a = 10;
    b = 20;
    c = printf("%d", a) + ++b;
    printf("\n%d", c);
}

The output of the above program is 23 it seems but i dont know how it is obtained. Can anyone have an idea about it?

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3 Answers 3

printf has a return value, which is the total number of characters it prints.

The statement printf("%d",a) will print 10, which means the return value of printf here is 2.

The rest is easy:

c=printf("%d",a)+ ++b;

c will have a value of 2 + 20 + 1, which is 23.

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Excellent explanation. It's also worth pointing out that b is 21 at the end of this function. It got incremented on this line: c=printf("%d",a)+ ++b; –  dcaswell Sep 6 '13 at 7:19
    
@user814064 Right, that's the side effect. Your answer is correct but it seems that you have deleted it. –  Yu Hao Sep 6 '13 at 7:22
    
You were first by a few seconds -- instead I voted up your post. –  dcaswell Sep 6 '13 at 7:22

Here the output will be two different integers,for two different printf statements . For the first printf statement the code prints 10, then when this printf statement participate in some assignment statement , it is treated as the number of characters it is printing i.e. 2 here. Then it is added to ++b i.e. 21 (PRE-INCREMENTED) . So the output is 23(2 + 21) . The whole output looks like this :

10
23
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printf returns the number of characters printed as an integer. So as you are printing 10 it will return 2. So now

c=printf("%d",a)+ ++b; will become

c=2+ ++b;

since b with a value of 20 is pre-incremented this will become

c=2+21 Therefore c=23

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