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Can someone please explain how static method variables work in C++... if I have the following class:

class A {
   void foo() {
      static int i;
      i++;
   }
}

If I declare multiple instances of A, does calling foo() on one instance increment the static variable i on all instances? Or only the one it was called on?

I assumed that each instance would have its own copy of i, but stepping through some code I have seems to indicate otherwise.

Cheers

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up vote 76 down vote accepted

Since class A is a non-template class and A::foo() is a non-template function. There will be only one copy of static int i inside the program.

Any instance of A object will affect the same i and lifetime of i will remain through out the program. To add an example:

A o1, o2, o3;
o1.foo(); // i = 1
o2.foo(); // i = 2
o3.foo(); // i = 3
o1.foo(); // i = 4
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1  
Thanks for the good example! Would there be a way to actually achieve something that makes the scope of static int i specific to the instance, so that e.g. o1.foo(); // i = 1 and $o2.foo(); // i = 1 ...? – Stingery Mar 13 '14 at 10:16
3  
Although this may not be the style you are looking for, making i a private data member of class A would have the effect you are describing. If you are concerned about name conflicts, you could add a prefix such as m_ to indicate the status of i. – Carl Morris Oct 13 '14 at 17:37

The keyword static unfortunately has a few different unrelated meanings in C++

  1. When used for data members it means that the data is allocated in the class and not in instances.

  2. When used for data inside a function it means that the data is allocated statically, initialized the first time the block is entered and lasts until the program quits. Also the variable is visible only inside the function. This special feature of local statics is often used to implement lazy construction of singletons.

  3. When used at a compilation unit level (module) it means that the variable is like a global (i.e. allocated and initialized before main is run and destroyed after main exits) but that the variable will not be accessible or visible in other compilation units.

I added some emphasis on the part that is most important for each use. Use (3) is somewhat discouraged in favor of unnamed namespaces that also allows for un-exported class declarations.

In your code the static keyword is used with the meaning number 2 and has nothing to do with classes or instances... it's a variable of the function and there will be only one copy of it.

As correctly iammilind said however there could have been multiple instances of that variable if the function was a template function (because in that case indeed the function itself can be present in many different copies in the program). Even in that case of course classes and instances are irrelevant... see following example:

#include <stdio.h>

template<int num>
void bar()
{
    static int baz;
    printf("bar<%i>::baz = %i\n", num, baz++);
}

int main()
{
    bar<1>(); // Output will be 0
    bar<2>(); // Output will be 0
    bar<3>(); // Output will be 0
    bar<1>(); // Output will be 1
    bar<2>(); // Output will be 1
    bar<3>(); // Output will be 1
    bar<1>(); // Output will be 2
    bar<2>(); // Output will be 2
    bar<3>(); // Output will be 2
    return 0;
}
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11  
+1 for keyword static unfortunately has a few different unrelated meanings in C++ :) – iammilind Jun 3 '11 at 6:40
    
+1 completely agree – SVGreg Jun 3 '11 at 10:53
    
the world makes so much more sense after reading this, THANK YOU – mangguo Jan 9 '15 at 0:22
    
I like the trick with templates. I can't wait to find an excuse to use it. – Tomáš Zato Oct 15 '15 at 13:46
1  
@austinmarton: The phrase "The use of static to indicate 'local to translation unit' is deprecated in C++. Use unnamed namespaces instead (8.2.5.1)" is present on The C++ Programming Language in my edition (10th print, September 1999) at page 819. – 6502 Oct 16 '15 at 6:22

Simplified answer: Static variables, regardless wheter they are members of a (non-templated) class or a (non-templated) function, behave - technically - like a global label which scope is limited to the class or function.

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5  
No. Globals are initialized at program startup, function statics are initialized at first use. This is a big difference. – 6502 Jun 3 '11 at 11:35
    
I don't think this is what happens. However, this should be compiler specific anyway. – 0xbadf00d Jun 3 '11 at 11:44
1  
Then you think wrong: 3.6.1 in the C++ standard dictates that construction of object of namespace scope with static storage duration happens at startup; 6.7 (4) dictates that in general "... such a variable is initialized the first time control passes through its declaration; such a variable is considered initialized upon the completion of its initialization". By the way this initialization-on-first-use is very handy to implement lazy singleton construction. – 6502 Jun 3 '11 at 13:02
    
3.7.4: "Constant initialization (3.6.2) of a block-scope entity with static storage duration, if applicable, is performed before its block is first entered. An implementation is permitted to perform early initialization of other block-scope variables with static or thread storage duration under the same conditions that an implementation is permitted to statically initialize a variable with static or thread storage duration in namespace scope (3.6.2). Otherwise such a variable is initialized the first time control passes through its declaration;" – 0xbadf00d Jun 3 '11 at 13:09
1  
Curiously enough however: 1) for constant initialization it's irrelevant discussing if a local static can be initialized before entering the block the first time (the variable is only visible inside the block and constant initialization produces no side effects); 2) nothing in your post is said about constant initialization; 3) local statics are very useful for non-constant initialization like MyClass& instance(){ static MyClass x("config.ini"); return x; } - a valid portable implementation for single-thread use exactly because local statics are NOT simply like a global despite what you say. – 6502 Jun 4 '11 at 6:28

Thanks for the good example! Would there be a way to actually achieve something that makes the scope of static int i specific to the instance, so that e.g. o1.foo(); // i = 1 and $o2.foo(); // i > = 1 ...? – Stingery

I think one of the only ways must be to make a bool class member variable and then condition initialization upon its value and only change its value when doing the initialization. I can imagine a potentially more sophisticated way where a static map variable has the instance as the key, but that seems a bit complicated.

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I once left a const char* that was a static local (in a member function) pointed at another c style string that was actually an instance member of the class. The destructor of the object freed the instance pointer memory in this particular case, and the next instance of the class had a junk value because the runtime regarded the static local as initialized, even though it was left pointing where it shouldn't.

Static locals are easiest to wield inside of global functions or static member functions.

Template behavior was covered above. How about thread safety (or, if I am not mistaken, lack thereof)?

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