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Why is it that scanf() needs the l in "%lf" when reading a double, when printf() can use "%f" regardless of whether its argument is a double or a regular-precision float?

Example code:

double d;
scanf("%lf", &d);
printf("%f", d);
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I don't understand what you mean by POINTER here. In scanf we only pass &variable (i.e)address so where is the pointer –  user1461834 Jun 17 '12 at 13:04
3  
@deetchanya In C, when you "take the address of" a variable with the unary & operator, the result of that operation is a pointer to the variable's storage location in memory. It is that pointer which is passed to scanf. –  zwol Jun 27 '13 at 23:03
    
this is a another post regarding this stackoverflow.com/questions/9291348/… –  vimalpt Sep 22 '14 at 10:03

5 Answers 5

up vote 117 down vote accepted

Because C will promote floats to doubles for functions that take variable arguments. Pointers aren't promoted to anything, so you should be using %lf, %lg, %le or %la (C99) to read in doubles.

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3  
Default argument promotions are standard C, not just MSVC. –  Robert Gamble Oct 16 '08 at 23:14
    
Fixed as per your comment. YAY! –  MSN Oct 16 '08 at 23:25
3  
+1 for being exactly right. IMHO, it shows that scanf() is a hideous function which you should only tolerate if there is no alternative. It is far too easy to introduce insidious defects by passing pointers to the wrong sort of data, and of course there is no type checking on the parameters you pass to it. –  AAT Sep 11 '09 at 10:48
    
@AAT True about weaknesses in scanf() family. Maybe modern compilers, when encountering a constant format will perform type checking and provide a warning (e.g. double d; scanf("%f", &d); -Wformat in gcc) –  chux Jun 2 '14 at 15:38
1  
"Pointers aren't promoted to anything" -- that's not the point, even if they were promoted to void *, scanf still had to know what to convert it back to. As another suggestion: It could be mentioned, that %lf is identical to %f for C99/C11 printf, but %lf was UB in C90 (though often worked). –  mafso Oct 4 '14 at 15:13

scanf needs to know the size of the data being pointed at by &d to fill it properly, whereas variadic functions promote floats to doubles (not entirely sure why), so printf is always getting a double.

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Because otherwise scanf will think you are passing a pointer to a float which is a smaller size than a double, and it will return an incorrect value.

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Using either a float or a double value in a C expression will result in a value that is a double anyway, so printf can't tell the difference. Whereas a pointer to a double has to be explicitly signalled to scanf as distinct from a pointer to float, because what the pointer points to is what matters.

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5  
float is converted to a double in this case because the arguments are part of a variable-length argument list, floats are not always converted to doubles in C. –  Robert Gamble Oct 16 '08 at 23:19
    
In pre-standard versions of C language float values were automatically promoted to double in expressions. That rule was abandoned in standard C. Generally, float does not get promoted to double in expressions. It only gets promoted to double when passed as a variadic argument, which is what happens in this case. –  AnT Jan 29 at 19:00

The matching between format specifiers and floating-point argument types in C is consistent between printf and scanf. It is

  • %f for float
  • %lf for double
  • %Lf for long double

However, when arguments of type float are passed to variadic functions (as variadic parameters) such arguments are implicitly converted to type double. This is the reason why in printf format specifiers %f and %lf are equivalent. In printf you can "cross-use" %lf with float or %f with double.

But this is not a reason to give in to that inconsistency. Don't use %f to printf arguments of type double. It is a widespread habit, but it is a bad habit. Use %lf in printf for double and keep %f reserved for float arguments.

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