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What will the below program print?

#include <iostream> 
using namespace std;    

static int x = 10;

void main1()    
{      
    cout << x << endl;    
    x = x + 1;    
}    

int main()   
{    
    main1();    
    main1();        
    cout << x << endl;    
}

As per my understanding, the above program we used static variable, so x retains the last initialized variable. So the output will be

10    
11    
12

but if we removed static, we should get

10    
10    
10

but I am getting the below output, even after removing static.

10    
11    
12

Please help me to understand.

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2  
Why do you think that removing static will make a difference? – Oliver Charlesworth Mar 30 '13 at 11:42
2  
The x variable is global. – soon Mar 30 '13 at 11:42
up vote 7 down vote accepted

Even if int x is not static, it is still a global variable, outside the scope of main and main1.

Thus whatever change you make to x from anywhere inside this file is going to change it permanently.

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2  
Just as a reminder : the only thing that changes when you remove static is the linker visibility of that variable. – Daniel Kamil Kozar Mar 30 '13 at 11:50
    
thanks every one for your time,understood after some more examples – satish Mar 30 '13 at 12:09

Since x is global visible to both main1 and main it will not make difference whether static is there or not.

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the static keyword has several meanings in C depending on where yoi use it. Read this http://msdn.microsoft.com/en-us/library/s1sb61xd(v=vs.80).aspx

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