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I'm having some trouble with pointers and arrays in C. Here's the code:


int *ap;
int a[5]={41,42,43,44,45};
int x;

int main()
    ap = a[4];
    x = *ap;
    return 0;

When I compile and run the code I get this warning:

[Warning] assignment makes pointer from integer without a cast [enabled by default]

For line number 9 (ap = a[4];) and the terminal crashes. If I change line 9 to not include a position (ap = a;) I don't get any warnings and it works. Why is this happening? I feel like the answer is obvious but I just can't see it.

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closed as off-topic by Shafik Yaghmour, Seki, Jonathan Leffler, Yu Hao, Kerrek SB Apr 3 '14 at 22:25

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "This question was caused by a problem that can no longer be reproduced or a simple typographical error. While similar questions may be on-topic here, this one was resolved in a manner unlikely to help future readers. This can often be avoided by identifying and closely inspecting the shortest program necessary to reproduce the problem before posting." – Shafik Yaghmour, Seki, Jonathan Leffler, Yu Hao, Kerrek SB
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3 Answers 3

up vote 10 down vote accepted

In this case a[4] is the 4th integer in the array a, ap is a pointer to integer, so you are assigning an integer to a pointer and that's the warning.
So ap now holds 45 and when you try to de-reference it (by doing *ap) you are trying to access a memory at address 45, which is an invalid address, so your program crashes.

You should do ap = &(a[4]); or ap = a + 4;

In c array names decays to pointer, so a points to the 1st element of the array.
In this way, a is equivalent to &(a[0]).

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@njzk2 I think it is not needed. pointer arithmetic deals with the size. – Dipto Feb 18 '14 at 15:45
Oh, now I feel silly. I even read about that a few hours before. Thanks! – user2274889 Feb 18 '14 at 19:01

What are you doing: (I am using bytes instead of in for better reading)

You start with int *ap and so on, so your (your computers) memory looks like this:

-------------- memory used by some one else --------
000: ?
001: ?
098: ?
099: ?
-------------- your memory  --------
100: something          <- here is *ap
101: 41                 <- here starts a[] 
102: 42
103: 43
104: 44
105: 45
106: something          <- here waits x

lets take a look waht happens when (print short cut for ...print("$d", ...)

print a[0]  -> 41   //no surprise
print a     -> 101  // because a points to the start of the array
print *a    -> 41   // again the first element of array
print a+1   -> guess? 102
print *(a+1)    -> whats behind 102? 42 (we all love this number)

and so on, so a[0] is the same as *a, a[1] = *(a+1), ....

a[n] just reads easier.

now, what happens at line 9?

ap=a[4] // we know a[4]=*(a+4) somehow *105 ==>  45 
// warning! converting int to pointer!
-------------- your memory  --------
100: 45         <- here is *ap now 45

x = *ap;   // wow ap is 45 -> where is 45 pointing to?
-------------- memory used by some one else --------
bang!      // dont touch neighbours garden

So the "warning" is not just a warning it's a severe error.

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int[] and int* are represented the same way, except int[] allocates (IIRC).

ap is a pointer, therefore giving it the value of an integer is dangerous, as you have no idea what's at address 45.

when you try to access it (x = *ap), you try to access address 45, which causes the crash, as it probably is not a part of the memory you can access.

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"int[] and int* are represented the same way" - only in a function parameter declaration. Otherwise, they are not represented the same way at all. An expression of array type will be converted to an expression of pointer type in most circumstances, but array types and pointer types are not the same at all. – John Bode Feb 18 '14 at 15:58
45 is only accitently part of the addess range, luckily if so you search the failor a long time :-) – halfbit Feb 18 '14 at 19:38

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