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I need to create a vector which holds the pointers to some static objects (e.g., a1, a2, a3).

void foo()
{
    static TEST a1, a2, a3;
    static vector<TEST *> m_test;
    m_test.push_back( &a1 );
    m_test.push_back( &a2 );
    m_test.push_back( &a3 );
}

But I don't want to have to write out the declaration for each static object.

How can I use a loop to do this? I have tried something like:

    for (unsigned int i=0; i<10; i++)
    {
        m_test.push_back( &(static TEST()));
    }

But it seems the static doesn't have any effect inside an expression, as the objects get destroyed, as I'd expect from a normal temporary.

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How does this manifest itself? Show the code that produces unexpected behavior. –  Matt Phillips Feb 16 '12 at 15:18
    
I'm surprised that even compiles –  Lightness Races in Orbit Feb 16 '12 at 15:19

4 Answers 4

up vote 7 down vote accepted

Function-static objects may only be created by a defining declaration with a name. You can't create a "function-static temporary" like that.

How about:

static const size_t N = 10;
static TEST tests[N];

for (size_t i = 0; i < N; i++) {
   m_test.push_back(&tests[i]);
}

Otherwise, you have no option but to resort to dynamic-storage objects, the only objects whose very existence in any given scope can be controlled programmatically (not least because they're not really in any scope at all). In fact, this is pretty much the use case for objects of dynamic storage duration.

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You can't, unless your static objects are stored in an array.

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Will this be good for you?

void foo()
{
    static TEST t[10];
    static vector<TEST *> m_test;
    for (unsigned int i=0; i<10; i++)
    {
        m_test.push_back( &(t[i]));
    }
}
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Instead of declaring the TEST objects individually, declare a vector of TEST objects:

void foo()
{
    static vector<TEST> a(3);
    static vector<TEST *> m_test(3);
    for(int i = 0; i < 3; i++)
        m_test[i] = &a[i];

    // Of course, now you may discover that you didn't 
    // need "m_test" after all, you could just use "a"
}
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