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I created a very simple progam whith a menu, that take a value, then memorize it into the local variable value, and finally with the second option the progam prints the value.

my question is: Why does the program work only if I add an "h" to the scanf parameter? In other words: what kind of relation there is between scanf() and my local int value variable?

thanks!

p.S. (I used Dev-C++ (GCC) to compile it. With Visual Studio it works)

#include <stdio.h>

main () {

    int value = 0;
    short choice = 0;

    do {
       printf("\nYour Choice ---> ");
       scanf("%d", &choice);  /* replace with "%hd" and it works */

       switch (choice) {
          case 1:
               printf("\nEnter a volue to store ");
               scanf("%d", &value);
               getchar();              
               printf("\nValue: %d", value);
               break;
          case 2:
               printf("\nValue: %d", value);            
               break;  
       }

    } while (choice < 3);

    getchar();
}
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Sorry for the bad text formatting –  Mario Jul 15 '10 at 16:28

10 Answers 10

up vote 8 down vote accepted

With scanf, the "h" modifier indicates that it's reading a short integer, which your variable choice just happens to be. So the "%hd" is necessary to write only two bytes (on most machines) instead of the 4 bytes that "%d" writes.

For more info, see this reference page on scanf

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2  
Ok Thanks! for replies –  Mario Jul 15 '10 at 16:35

The variable choice is of type short so that's why you need the %h specifier in scanf to read into it (in fact you don't need the d here). The int type just requires %d. See the notes on conversions here

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Yes I know, but the problem is why because of this "h" missing, my program doesn't store the value into the int value variable? –  Mario Jul 15 '10 at 16:31
    
@Mario: because scanf defines "%hd" to mean "read two bytes (on a 32-bit platform) and put it into a short int data type. –  Randolpho Jul 15 '10 at 16:33

You're reading into a short. The h is necessary because %d is the size of an int by default. See this reference page on scanf.

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It looks like your problem is that choice is a short, which is (generally) 2 bytes long, while %d expects an integer, which is (generally) 4 bytes long… So the scanf clobbers whatever comes after choice on the stack.

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choice is a short and %d specifies an int.

When you specify %d, scanf has to assume that the associated argument is a pointer to an int sized block of memory, and will write an int to it. When that happens it will likely be writing to data adjacent to but not part of choice and the results are undefined and probably not good! If it works in one compiler and not another that is simply the nature of undefined behaviour!

In GCC -Wformat should give you a warning when you make this error.

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%d is for reading an int, not a short. Your code never really "worked" -- it just appears that in this case you didn't notice any difference between what you wanted and the undefined behavior you got.

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The modifier for scanf to input a variable of type short is %hd. Hence you need to specify the correct modifier.

scanf("%d",&integer);  // For integer type
scanf("%hd",&short_int); // For short type

Hence it doesnt work.

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Depending upon numeric padding, endian-ness, and other such issues, you may be storing either the upper or lower part of the input value into choice; you are storing the rest of the input value into memory that may or may not be being used for anything else.

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"%hd" is used for short integer type format string

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