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int main(void)
{
    int a=12,b=3;
    printf("\n a+b = %i\n",a+b);
    printf("\n a-b = %i\n",a-b);
    printf("\n a*b = %i\n",a*b);
    printf("\n a/b = %i\n",a/b);
    printf("\n a%b = %i\n",a%b);//conversion type error 
}

The modulus part is giving the warning as Unknown conversion type character 'b' in format.

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marked as duplicate by devnull, Oliver Charlesworth, Blastfurnace, lpapp, Ansgar Wiechers Mar 23 '14 at 1:29

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1 Answer 1

up vote 6 down vote accepted

It is printf giving the warning, scape the modulus character with another modulus:

printf("\n a%%b = %i\n",a%b);

As you may see in the manual: printf(3) there's no b flag character, so when printf find your %b in your string it doesn't know what to do. Since you don't want any formatting in that case, just include the % character in your string, you just need to scape the % character with another % character as in the example above.

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Yes it's working now, but why this extra %? –  Gopal Mar 22 '14 at 16:48
2  
Added a brief explanation and the reference to the manual page. Those are the semantics for printf :) –  Paulo Bu Mar 22 '14 at 16:49
2  
@Gopal In %% for the printf(3) function, the first % acts as an escape character for the second %. It tells printf that the character following the first % is not a "conversion type character", but an actual percent symbol. –  Diti Mar 22 '14 at 16:51

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