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double d;
scanf("%f", &d);
printf("%f", d);

result:

input: 10.3

output: 0.00000

Why? i think output should be 10.3 visual studio 2008.

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now that your problem is solved, stackoverflow.com/questions/2377733/how-does-this-program-work might clarify things a bit more! –  Lazer Mar 7 '10 at 19:12

2 Answers 2

For scanf(), %f is for a float. For double, you need %lf. So,

#include <stdio.h>
main() {
    double d; 
    scanf("%lf", &d); 
    printf("%f\n", d);
}

with input 10.3 produces 10.300000.

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+1 for %4.1lf format string Sergey could view this: cplusplus.com/reference/clibrary/cstdio/printf –  stacker Mar 7 '10 at 10:13
5  
%lf is needed for scanf(), but for printf(), %f means double (and works with float too, because float is promoted to double in the variable portion of the argument list). %lf is meaningless to printf(). –  caf Mar 7 '10 at 10:20
    
printf is a vararg function, so argument promotion need not apply - compiler does not know argument types beyond format string. Said that, %lf is needed. –  el.pescado Mar 7 '10 at 14:18
    
el.pescado: There are a particular set of argument promotions that are always applied to arguments in the variable portion of the argument list (they are the same as those applied to the arguments of a function declared without a prototype). –  caf Mar 8 '10 at 6:33

Try replacing %f with %lf. %f is used when dealing with float, not double. (or alternately, you could make d a float).

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thanks, it works –  Sergey Mar 7 '10 at 10:09

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