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This is probably a very elementary problem, but I cannot find the answer anywhere, and this is the first time I've had the problem after several weeks of programming in C. In essence, if I write some code looking something like this:

int size;
scanf("%d", &size);
printf("size is %d", &size);

If I input, say, size = 2, the program will print back out something along the lines of 133692 or a similar number. Why is this? What have I done wrong here?

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Do you know what & operator does in the first place? –  qrdl Nov 17 '12 at 18:24
    
... And not a single answer was accepted! –  user9000 Nov 17 '12 at 19:16
    
@user9000 he is a new user and this is him first question so ... it will take time –  NullPoiиteя Nov 20 '12 at 3:38
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5 Answers 5

Try

printf("size is %d", size);

& gives you the memory location (address) of a variable.

printf("size is %d", &size);

So, the above will print the memory location(address) of size, not the value stored in size.

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You have to do:

printf("size is %d", size);

instead. This prints the value of the int object size.

But

 printf("size is %d", &size);

is undefined behavior.

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1  
What do you mean by undefined? It's quite clear that the latter prints the address of size. (and compiler gives a warning) –  Aki Suihkonen Nov 17 '12 at 16:30
2  
@AkiSuihkonen d conversion specifier requires an int argument, passing an argument of type pointer to int invokes undefined behavior. –  ouah Nov 17 '12 at 16:31
    
If you wanted to print the pointer value of &size, you'd use %p rather than %d. –  Snips Nov 17 '12 at 16:42
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You are printing the address of size, i.e., &size.

Just pass a plain size.

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Remove the & in the printf statement as &size --> prints the address.

      printf("size is %d", size);
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The calling conventions are different in printf, and scanf.

Printf's arguments are typically by value (no &), but scanf has to have pointers. (&)
(You can't put a new value to e.g. 1.0, but you can print it...)

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