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#include<stdio.h>
#include<math.h>
int main()
{
     char sign1='-',sign2='-' ;

     double x=-1,y=4,radius=9;

        if(x<0.0)
        {
            sign1='+';
            x=x*-1;
        }
        if(y<0.0) {
            sign2='+';
            y=y*-1;
        }

        printf("(x %c %.3lf)^2 + (y %c %.3lf)^2=%.3lf^2\n",x,sign1,y,sign2,radius);//here doesn't print the values of sign1 and sign2

        printf("%c %c\n",sign1,sign2);//here prints properly;

    return 0;
}

in my code, first printf function doesn't work properly. it should print (x + 1.000)^2 + (y - 4.000)^2 = 9.000^2 but it prints (x 0.000)^2 + (y 0.000)^2 = 9.000^2

Why?

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closed as too localized by WhozCraig, Bo Persson, H2CO3, Jonathan Leffler, Anand Dec 31 '12 at 8:43

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3  
The order of your arguments to printf does not match its format specification –  K-ballo Dec 31 '12 at 6:53
    
Try sign1, x, sign2, y, radius for parameters perhaps ? –  WhozCraig Dec 31 '12 at 6:54
2  
"printf function doesn't work properly" - rather, "I fail to use the printf function properly"... –  user529758 Dec 31 '12 at 6:56
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2 Answers

printf is not type safe!

Any mismatch in the actual type passed to printf and the format specifier specified for it results in Undefined Behavior.

sign1 and sign2 are declared as char so using %f results in Undefined Behavior.


You messed up the ordering of parameters to printf,

printf("(x %c %.3lf)^2 + (y %c %.3lf)^2=%.3lf^2\n",x,sign1,y,sign2,radius);

should be:

printf("(x %c %.3lf)^2 + (y %c %.3lf)^2=%.3lf^2\n",sign1,x,sign2,y,radius);
share|improve this answer
    
thanks i got it.. –  Moshiur Rahman Dec 31 '12 at 8:31
    
The funny thing is that with my gcc, the UB results in the intended output being produced, since the floating point arguments are passed in floating point registers :-o –  Daniel Fischer Dec 31 '12 at 11:31
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Correct this line as

printf("(x %c %.3lf)^2 + (y %c %.3lf)^2=%.3lf^2\n",sign1,x,sign2,y,radius);
share|improve this answer
    
thanks, i got it. –  Moshiur Rahman Dec 31 '12 at 8:31
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