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I know this might be a common question but I have tried to search but still cannot find a clear answer.

I have the following code:

int* f() {
    int a[] = {1,2,3};
    return a;
}

int main() {

    int a[] = f(); // Error here

    getch();
    return 0;
}

This code produces the error message: "Cannot convert from 'int *' to 'int []'"

I found this quite strange because I have read that pointer and array are similar. For example, we can use a[i] instead of *(a + i). Can anyone give me a clear explanation, please?

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"a[i] instead of *(a + i)" this is not true for arrays that are not of char. maybe *(a + sizeof(a[0])*i). not sure if that is correct in all cases. –  hexa Jun 27 '11 at 13:05
4  
@hexa: a[i] == *(a+i) is an identity that is always true except if the type of a is not complete or is void*. –  Alexander Gessler Jun 27 '11 at 13:06
7  
Arrays are not pointers and pointers are not arrays. I suggest you read section 6 of the c-faq. Hint: choose "section at a time". –  pmg Jun 27 '11 at 13:11
2  
@hexa: that identity is true even for types other than char; you're not considering how pointer arithmetic works. –  Matteo Italia Jun 27 '11 at 13:15
    
No one has mentioned here, but you probably want to use a vector return value. –  Neil G Jun 27 '11 at 19:40
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4 Answers 4

up vote 16 down vote accepted

There are actually two errors in this code.

Firstly, you are returning the address of a temporary (the int array within f), so its contents are undefined after the function returns. Any attempt to access the memory pointed to by the returned pointer will cause undefined behaviour.

Secondly, there is no implicit conversion from pointers to array types in C++. They are similar, but not identical. Arrays can decay to pointers, but it doesn't work the other way round as information is lost on the way - a pointer just represents a memory address, while an array represents the address of a continuous region, typically with a particular size. Also you can't assign to arrays.

For example, we can use a[i] instead of *(a + i)

This, however, has little to do with the differences between arrays and pointers, it's just a syntactic rule for pointer types. As arrays decay to pointers, it works for arrays as well.

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The type int[] doesn't actually exist.

When you define and initialize an array like

int a[] = {1,2,3};

the compiler counts the elements in the initializer and creates an array of the right size; in that case, it magically becomes:

int a[3] = {1,2,3};

int[] used as a parameter to a function, instead, it's just plain int *, i.e. a pointer to the first element of the array. No other information is carried with it, in particular nothing about the size is preserved. The same holds when you return a pointer

Notice that an array is not a pointer: a pointer can be changed to point to other stuff, while an array refers always to the same memory; a pointer does not know anything about how big is the space of memory it points to, while the size of an array is always known at compile time. The confusion arises from the fact that an array decays to a pointer to its first element in many circumstances, and passing it to a function/returning it from a function are some of these circumstances.

So, why doesn't your code work? There are two big errors:

  1. You are trying to initialize an array with a pointer. We said that an int * doesn't carry any information about the size of the array. It's just a pointer to the first element. So the compiler cannot know how big a should be made to accomodate the stuff returned by f().

  2. In f you are returning a pointer to a variable that is local to that function. This is wrong, because a pointer does not actually store the data, it only points to where the data is stored, i.e. in your case to the a local to f. Because that array is local to the function, it ceases to exist when the function exits (i.e. at the return).

    This means that the pointer you are returning points to stuff that does not exist anymore; consider the code:

    int * a = f();
    

    This initialization works, and you can try to use a later in the function, but a will be pointing to the no-longer existent array of f; in the best case your program will crash (and you'll notice immediately that you've done something wrong), in the worst it will seem to work for some time, and then start giving strange results.

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int * and int [] are similar but different. int * is a real pointer, meanwhile int[] is an array reference ( a sort of "constant pointer" to the begin of the data) wich cannot be modified. So, a int * can be threated like a int [] but not viceversa.

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2  
int[] is not a constant pointer. I suggest you read section 6 of the c-faq. –  pmg Jun 27 '11 at 13:17
    
@pmg: I try to modify my answer. Please have a look to it. Sometimes I have still some problem writing in English. –  Heisenbug Jun 27 '11 at 13:21
    
downvote removed :) –  Matteo Italia Jun 27 '11 at 13:22
    
it's better now ... if it weren't for that "reference" in there, lol, but I think that's a C++ thing :) –  pmg Jun 27 '11 at 13:42
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You can use a[b] and*(a+b) interchangeably because that is exactly how a[b] is defined when one of a or b is a pointer and the other is of integer or enumeration type.

Note: This also means that expressions like 42[a] are perfectly legal. Human readers might object strongly, but the compiler won't bat an eye at this.

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