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It prints 3 while I want to print 2. I do not understand the reason when I am incrementing only once. Also let me know if this is correct use of pointers t pointers? I just made a sample code to see how pointers to pointers work.

#include<stdio.h>
void main(){
int a1[] = {1,2,3,4,5,6};
int a2[] = {7,8,9,10,11,12};
int *a3 = a1;
int *a4 = a2;
int **a[2];
a[0] = a3;
a[1] = a4;

printf("%d",*(++(*a)));



}
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closed as off-topic by SK9, Borgleader, talonmies, Igor R., Stony Jul 9 '13 at 8:27

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1  
You shouldn't do the increment in the function argument. –  alex Jul 9 '13 at 5:56
5  
Short answer to your second question: No. More thorough answer: He|| no! This is utterly insane. –  Jerry Coffin Jul 9 '13 at 5:58
3  
I'm not going to stop until it's valid code: stackoverflow.com/questions/17540026/… –  chris Jul 9 '13 at 5:58
2  
@Bhaskar void main is not standard, you should use int main instead. Also, this code does not compile for me. However, if I change int **a[2]; to int *a[2] I get the expected print of 2 (and not 3 as your question suggests. –  Borgleader Jul 9 '13 at 5:59
2  
well question is valid..but he seems to be not showing his complete code..:) –  Anirudha Jul 9 '13 at 6:10
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6 Answers 6

up vote 6 down vote accepted

You declared a as an array of int**, so *a is not a pointer to int but a pointer to pointer to int. Incrementing a pointer adds the size of the data type it points to, so ++*a advances the value at at a[0] by the size of a pointer.

What you actually stored in a[0] is a pointer to int, not a pointer to pointer to int. This is wrong and the compiler should have warned you about this. On your architecture it seems that a pointer is double the size of an int, so the increment ++*a adds the size of two ints to the pointer, so the value at a[0], if interpreted as int* instead of int **, skips over the 2.

To get the results you expect declare a as an array of int *.

int *a[2];
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2  
I'm glad I'm not the only one here who got this right. The "answers" and comments here are one of the worst cases of the blind leading the blind that I've seen at SO. –  Jim Balter Jul 9 '13 at 6:39
    
Does assigning a[0] ad a[1] to pointer to pointer to int solvs purpose? Is this correct? a[0] = &a3; a[1] = &a4; –  Bhaskar Jul 9 '13 at 6:50
    
@JimBalter - since you advocated that Joni is right then can you please explain on my above comment? –  Bhaskar Jul 9 '13 at 6:56
    
@Bhaskar a[0] will have pointer to pointer.so a[0]=&a3(where a3 is pointer) is perfectly correct. –  Dayal rai Jul 9 '13 at 6:59
    
But it does not print the values right! –  Bhaskar Jul 9 '13 at 7:05
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a[0] = &a3;
a[1] = &a4;

printf("%d",*(++(**a)));

As per definition, a is supposed to contain pointer to int pointer. So need to add & in front of a3 and a4. In printf need to use de-reference twice before incrementing for same reason.

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  • *a = *(a + 0) = a[0] that contain address = a3 , int*(in your code a[0] = a3;).

  • a3 points to first element of a1 (in your code int *a3 = a1;, that is one) Hence *a point first element of of a1.

  • By doing ++(*a) you are pointing to next element in a1 that is at index 1 and last by using * at ++(*a) you are printing 1 indexed value in a1 array that outputs: 2 thats is a1[1]

So, *(++(*a)) actually a1[1].

You code print 2 not 3, check here your working code at codepade

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But I don't know why my gcc is printing 3. –  Bhaskar Jul 9 '13 at 6:11
1  
Are you sure the code you have in your question is the exact code you're compiling? –  greatwolf Jul 9 '13 at 6:11
    
*a is not integer.It is pointer to integer so increment will be of pointer size not of integer size.Value '3' looks correct –  Dayal rai Jul 9 '13 at 6:12
1  
@Bhaskar google it , its very simple :) –  PHI Jul 9 '13 at 6:21
1  
@Bhaskar gcc -Wall -pedantic Codename.c -o outexename –  Grijesh Chauhan Jul 9 '13 at 6:22
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You are apparently using a compiler with 64-bit pointers and 32-bit ints. Because you have declared a incorrectly, when you increment *a you are incrementing by the size of a pointer -- 64 bits, which is 8 bytes -- rather than the size of an int -- 32 bits, which is 4 bytes -- so effectively you increment by the size of two ints.

Change the declaration of a to

int* a[2];

and your program will behave correctly. Also, compile with -Wall (at least) to get warnings.

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I got you I didn't notice precisely that defalcation is int **a[2]; then assignment to a[0] = is wrong : Sorry man –  Grijesh Chauhan Jul 9 '13 at 6:51
    
@GrijeshChauhan Well, I'm glad you finally got it ... it's only been mentioned half a dozen times by various people. Anyway, apology accepted. –  Jim Balter Jul 9 '13 at 6:54
    
Can you see deleted answers ? –  Grijesh Chauhan Jul 9 '13 at 6:58
    
But if I change assignment of a[0] = &a1 i.e. pointer to pointer to int then also it does not work but throwing random value. –  Bhaskar Jul 9 '13 at 6:58
    
@GrijeshChauhan No, I can't see a deleted answer. –  Jim Balter Jul 9 '13 at 7:02
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You are incrementing the pointer itself and again printing it..

So,

printf("%d",*(++(*a)));//would print 2

printf("%d",*(++(*a)));//would print 3

You should use *((*a)+1)

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Not sure it is sufficient. The initial source code produces warnings. –  Korchkidu Jul 9 '13 at 6:10
    
@Korchkidu well it depends on the compiler you are using..but its working here –  Anirudha Jul 9 '13 at 6:11
    
It still prnts 3. –  Bhaskar Jul 9 '13 at 6:16
    
Well, the one you are using does not even trigger a warning for something like func(){} in C. –  Korchkidu Jul 9 '13 at 6:16
    
@Bhaskar as i said you are incrementing the pointer somewhere..check your code.. –  Anirudha Jul 9 '13 at 6:17
show 1 more comment
#include<stdio.h>

int main(void)
{
    int a1[] = {1,2,3,4,5,6};
    int a2[] = {7,8,9,10,11,12};
    int *a3 = a1;
    int *a4 = a2;
    int **a[2];
    a[0] = &a3; // a3 is a pointer, so take its address to get a pointer to pointer
    a[1] = &a4; // same here

    printf("%d",*(*(a[0])+1)); // PRINTS 2
    printf("%d",*(*(a[1])+1)); // PRINTS 8

    return 0;
}
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a[0] is &a3. *a[0] is a3. **a[0] is *a3 is 1. ++(**a[0]) will change a1[0] from 1 to 2, so this will print 2, but probably not the way the OP wants. –  Jim Balter Jul 9 '13 at 7:18
    
@JimBalter: thanks Jim. I am not even sure to understand what he asked actually^^ –  Korchkidu Jul 9 '13 at 7:57
    
I believe he wants to print a1[1], not ++a1[0]. –  Jim Balter Jul 9 '13 at 8:00
    
@JimBalter: then why using ++? Wouldn't be + 1 more clear here? –  Korchkidu Jul 9 '13 at 8:03
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