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I am creating a new class instance like this:

Cube* cube1;

There is code in the Cube constructor, but it's not being run! Is this usual?

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migrated from gamedev.stackexchange.com Sep 23 '11 at 15:54

This question came from our site for professional and independent game developers.

5  
Find a good tutorial on C++, you're lacking a very important basic notion : the difference between pointers and objects. –  Jonathan Merlet Sep 23 '11 at 14:41
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This is not a game development question and probably belongs on StackOverflow. –  Josh Petrie Sep 23 '11 at 14:46

2 Answers 2

up vote 6 down vote accepted

You're actually not creating any instance.

the variable you're calling cube1 is a pointer to a Cube.

To create a Cube you should have:

Cube* cube1 = new Cube();

This create a new instance of Cube in heap memory, you should call delete cube1 once you don't use it anymore.

or:

Cube cube1;

This create a new instance of Cube in stack memory, it will be destroyed once it goes out of scope.

PS. you should get a C++ textbook.

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I did think this, but the strange thing is I can call functions on the pointer without it being instantiated. Clearly another misunderstanding, but can you clarify? –  SirYakalot Sep 23 '11 at 17:08
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The compiler doesn't check to see if the pointer is actually pointing at anything, because in most cases it's impossible for it to know. The programmer must make sure to avoid using the pointer before it has been assigned to a legitimate object. –  Kylotan Sep 23 '11 at 18:36
    
Kylotan is right, you created a valid (from a type pov) Cube pointer. But this pointer isn't pointing to any valid object. From the compiler's pov everything is OK, but at runtime it fails as there's no actual Cube. –  Clodéric Sep 26 '11 at 12:25

You're not creating an instance of a Cube; you're creating a pointer to a Cube.

To create a pointer to a new instance of a Cube, you'd want code like this:

Cube* cube1 = new Cube;

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