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I have a vector of vector of my object and I get a pointer of this vector. My problem is I can't create an iterator with that. This my code :

vector<vector<AbstractBlock*>> *vectorMap = _level->getMap()->getVectorMap();

for(vector<AbstractBlock*>::iterator i = vectorMap[colonneX-1].begin(); i < vectorMap[colonneX-1].end(); i++)
{
    /*some operations*/
}

It failed on vectorMap[colonneX-1].begin(), if the vectorMap is not a pointer I can do this

How I can make this?

Thanks!

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1  
Because vectorMap is a pointer, vectorMap[colonneX-1] is not using vector<>'s operator[], it's indexing into the pointer; try (*vectorMap)[colonneX-1]. Why are you using so many pointers in the first place anyway? Hideous... –  ildjarn Jan 25 '12 at 20:48
    
I would suggest that you use more references and less pointers. –  ypnos Jan 25 '12 at 20:52

3 Answers 3

up vote 3 down vote accepted

Dereference vectorMap:

for(vector<AbstractBlock*>::iterator i = (*vectorMap)[colonneX-1].begin();
    i != (*vectorMap)[colonneX-1].end(); i++)
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Ah, yeah that's work great I had tried *(vectorMap) so that doesn't work –  Guillaume Jan 25 '12 at 20:57
    
operator [] has higher precedence that *. –  hmjd Jan 25 '12 at 21:00

vectorMap is a pointer to a vector, not a vector. They are two different things. The pointer simply refers to the vector, they are not one in the same. You need to dereference vectorMap.

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You mistake the number of indirection. But there may be two different correct meaning.

if vectormap is a pointer, vectormap[x] is the x-th vectormap in an hypothetical vector<vector<AbstractBlock*>> array.

I found strange that's what you mean, since it doesn't match the iterator type.

But *vectormap is a vector<vector<...>>, (*vectormap)[x] is a vector<AbstractBlock*>>, whose iterator, if dereferenced twice, is an AbstractBlock.

You most likely mean

for(vector<AbstractBlock*>::iterator i = (*vectorMap)[colonneX-1].begin();
    i != (*vectorMap)[colonneX-1].end(); i++)
    (**i).abstractblock_methodcall();
share|improve this answer
    
Thanks for the explication! –  Guillaume Jan 25 '12 at 21:03

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