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C question with pointers

I need some help with pointers, specifically the following example:

#include <stdio.h>
int main()
{
    int *i, *j;

    i = (int *) 60;
    j = (int *) 40;
    printf("%d", i - j);

    return 0;
}

This code generates 10 as output. I just need to know what exactly i - j does here.

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marked as duplicate by Puppy, R. Martinho Fernandes, Johan Lundberg, derekerdmann, Xeo Aug 3 '12 at 8:11

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

6 Answers 6

i and j point to memory locations 60 and 40, respectively.

What you're doing here is pointer subtraction. If i and j were byte pointers (char *), i-j would be 20, as one might expect.

However, with other pointers, it returns the number of elements between the two pointers. On most systems, (int *)60 - (int *)40 would be 5, as there is room for five 4-byte integers in those twenty bytes. Apparently, your platform has 16 bit integers.

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The program is probably supposed to print the pointer difference between 60 and 40, cast to pointer to int. The pointer difference is the number of ints that would fit in the array from address 40 to address 60 (exclusive).

That said, the program violates the C standard. Pointer arithmetic is undefined except with pointers pointing into the same (static, automatic or malloc'd) array, and you cannot reliably print a pointer difference with %d (use %td instead).

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3  
There is more violation of the standard. In general arithmetic with pointers that do not point to valid objects is undefined. –  Jens Gustedt Aug 2 '12 at 18:19

This is pointer arithmetic, the code i - j subtracts two pointers to int. Such arithmetic is aware of the data sizes involved, and so in this case will return the number of ints between the two addresses.

A result of 10 indicates that you're running this on a system with 2-byte integers: 20 memory addresses between i and j, and your code prints 10, so there are 10 2-byte ints between the two addresses.

But on another system, with 4-byte integers, this would print 5: 20 memory addresses between i and j, so there are 5 4-byte ints between the two addresses.

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printf("%d",i-j); return 0;

both i and j are pointer to an integer.So they follow pointer arithematics. As per pointer mathematics pointer to an integer always shift sizeof(int).I think you use gcc compiler where sizeof int is 4.So 60-40=20 but as unit is 4 so out put is 5.

but if you use turbo c where sizeof int is 2.then out put is 10.

NOTE

if pointers are included in some expression evaluation then they follow pointer arithematics.

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1  
Drise, that's no reason for a downvote. He might have started writing before the other was submitted. –  Cubic Aug 2 '12 at 15:05
    
@Cubic You can downvote for whatever reason you like. And the answer is still poorly written. –  Drise Aug 2 '12 at 15:06
1  
larsmans - not necessarily. Most compilers would use the word size of the architecture as the size of int, but I don't think this is actually a requirement. –  Cubic Aug 2 '12 at 15:08
    
@larsmans :- for clarification about sizeof .The sizeof is a keyword and keywords use by compiler.so sizeof converted at the time of compilation not at run time.Just go through the keyword sizeof..... –  Rajesh Aug 2 '12 at 15:26
    
@RajeshKumarSahoo: yes. And its value is determined by the processor architecture for which you're compiling. –  larsmans Aug 2 '12 at 16:06

i an j are the pointer to int variable, that means which is going to store virtual address of an int variable.

If we do any pointer arithmatic on this variable it will preform based on size of the type of variable which is pointing. For example i++ will increase the value from 60 to 64 if size of int is 4 bytes.

So you are getting 10 for i - j, that means size of int is 2 in your environment. Always i - j will give you how much element(of type int) that can accomodate in that range.

So between 60 and 40, we can store 10 elements of type int if size of int is 2 bytes.

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Why did you submit this answer 2.5 hours after all the others, and say practically the exact same thing? –  Drise Aug 2 '12 at 18:34

First, two integer pointers are declared which are called i and j. Note that their values are memory addresses to where pointers are stored, not integers themselves (the concept of a pointer).

Next, the pointers i & j are changed to 60 and 40, respectively. Now this represents a spot in memory and not the integers sixty and forty because i and j was never dereferenced.

Then it prints the memory address of i-j which will subtract that two memory addresses.

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1  
Pointer subtraction is a well defined operation in C. –  Max Aug 2 '12 at 15:01
    
This will always output 10 on his system because he specifically assigns the pointers. This is an example for pointer arithmetic, not for dynamic allocation. –  Cubic Aug 2 '12 at 15:02
    
Yeah, I realize that I did not explain myself clearly. Apologies. I meant that the subtraction would not yield any meaningful results in the given scenario. –  NX1 Aug 2 '12 at 15:04
    
@Cubic Yeah, you're right. Thanks for pointing that out. –  NX1 Aug 2 '12 at 15:05

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