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I want to create an array that holds pointers to many object, but I don't know in advance the number of objects I'll hold, which means that I need to dynamically allocate memory for the array. I have thought of the next code:

ants = new *Ant[num_ants];
for (i=1;i<num_ants+1;i++)
{
    ants[i-1] = new Ant();
}

where ants is defined as Ant **ants; and Ant is a class.

Will it work?

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3  
Did you try it? –  Carl Norum May 4 '11 at 17:47
    
@Carl Norum;I can't try it at the moment, as I'm only starting to write the code, and I still have many parts missing. –  Ilya Melamed May 4 '11 at 17:48
1  
You might want to change your loop to iterate from 0 to num_ants, and assign to ants[i]. No need to offset everything by 1. –  Mike O'Connor May 4 '11 at 17:50
1  
There's no reason you couldn't try it with a dummy empty class. Just create a class Foo that has nothing in it, and use the same logic. –  Mike O'Connor May 4 '11 at 17:51

5 Answers 5

up vote 7 down vote accepted

Will it work?

Yes.

However, if possible, you should use a vector:

#include <vector>

std::vector<Ant*> ants;
for (int i = 0; i < num_ants; ++i) {
    ants.push_back(new Ant());
}

If you have to use a dynamically allocated array then I would prefer this syntax:

typedef Ant* AntPtr;
AntPtr * ants = new AntPtr[num_ants];
for (int i = 0; i < num_ants; ++i) {
    ants[i] = new Ant();
}

Edit: Fix syntax error.

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Can you really assign the result of new to an array? –  Mark B May 4 '11 at 18:03
    
@Mark B: Good catch. Fixed it. –  StackedCrooked May 4 '11 at 20:26
    
So basically new Ant* [num_ants] is a fake call, as it doesn't call constructor at all right? Only allocates the pointer array. Thats why the new seems as if it is called twice. –  Ciantic May 24 '12 at 12:30
std::vector<Ant> ants(num_ants);
ants.resize(new_num_ants);
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4  
If the OP wants to use pointers to Ants, the declaration would be: std::vector<Ant *> ant_pointers(num_ants); –  Thomas Matthews May 4 '11 at 17:51
    
You would also have to use std::generate to new all the respective items. –  Mark B May 4 '11 at 18:03
    
I down voted because the OP directly mentioned he wanted to use pointers, which as @ThomasMatthews mentioned, needs a different declaration. Your answer is good for a different case though. –  Purefan May 2 at 8:20
    
I upvoted because OP apparently doesn't know of the array-of-objects being a better option –  likejiujitsu Jun 19 at 16:46
std::vector<Ant*> ants( num_ants );
for ( int i = 0; i != num_ants; ++ i ) {
    ants[i] = new Ant;
}

Or if you don't know how many in advance:

std::vector<Ant*> ants;
while ( moreAntsNeeded() ) {
    ants.push_back( new Ant );
}

On the other hand, I think you need to ask yourself whether Ant is an entity type or a value. If it's a value, you'll probably want to skip the pointers and the dynamic allocation; if it's an entity type, you'll have to consider the lifetime of the object, and when and where it will be deleted.

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Do you really need to hold pointers to the items? If you can use objects by value, a far simpler approach is to use a vector: std::vector<Ant> ants(num_ants);. Then not only do you not have to write looping, but you don't have to worry about memory leaks from raw pointers and other object management items.

If you need object pointers to say satisfy an API you can still use vector for the outer container and allocate the objects manually.

struct CreateAnt
{
    Ant* operator()() const { return new Ant; }
};

std::vector<Ant*> ants(num_ants);  // Create vector with null pointers.
std::generate(ants.begin(), ants.end(), CreateAnt());
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Yes that's the general idea. However, there are alternatives. Are you sure you need an array of pointers? An array of objects of class Ant may be sufficient. The you would only need to allocate the array:

Ant *ants = new Ant[num_ants];

In general, you should prefer using std::vector to using an array. A vector can grow as needed, and it will handle the memory management for you.

In the code you have posted, you would have to delete each element of ants in a loop, and then delete the array itself, delete [] ant. Keep in mind the difference between delete and delete [].

One more point, since array indices in C++ are 0-based, the following convention is used to iterate over the elements:

for (i=0; i<num_ants; i++)
{
    ants[i] = new Ant();
}

This makes code much more readable.

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