Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The proper way to iterate is to use iterators. However, I think by erasing, the iterator is invalidated.

Basically what I want to do is:

for(iterator it = begin; it != end; ++it)
{
    if(it->somecondition() )
    {
     erase it
    }

}

How could I do this without v[i] method?

Thanks

struct RemoveTimedEvent
{
    bool operator()(const AguiTimedEvent& pX, AguiWidgetBase* widget) const 
    {
        return pX.getCaller() == widget;
    }
};

void AguiWidgetContainer::clearTimedEvents( AguiWidgetBase* widget )
{
    std::vector<AguiTimedEvent>::iterator it = std::remove_if(timedEvents.begin(),
        timedEvents.end(), RemoveTimedEvent());
    timedEvents.erase(it, timedEvents.end());

}
share|improve this question

1 Answer 1

up vote 18 down vote accepted

erase() returns a new iterator:

for(iterator it = begin; it != end;)
{
    if (it->somecondition())
    {
        it = vec.erase(it);
    }
    else
    {
        ++it;
    }
}

A better method might be to combine std::remove_if and erase(). You change from being O(N2) (every element gets erased) to O(N):

iterator it = std::remove_if(begin, end, pred);
vec.erase(it, vec.end());

Where pred is you predicate, such as:

struct predicate // do choose a better name
{
    bool operator()(const T& pX) const // replace T with your type
    {
        return pX.somecondition();
    }
};

iterator it = std::remove_if(begin, end, predicate());
vec.erase(it, vec.end());

In your case, you can make it pretty general:

class remove_by_caller
{
public:
    remove_by_caller(AguiWidgetBase* pWidget) :
    mWidget(pWidget)
    {}

    // if every thing that has getCaller has a base, use that instead
    template <typename T> // for now a template
    bool operator()(const T& pX) const
    {
        return pX.getCaller() == mWidget;
    }

private:
    AguiWidgetBase* mWidget;
};

std::vector<AguiTimedEvent>::iterator it =
    std::remove_if(timedEvents.begin(), timedEvents.end(), remove_by_caller(widget));
timedEvents.erase(it, timedEvents.end());

Note lambda's exist to simplify this process, both in Boost and C++0x.

share|improve this answer
    
Oh great thanks! +1:) –  Milo Oct 15 '10 at 1:33
    
I'm not sure I understand how the first method is N squared, why is it not N, I only iterate through once to remove the items. –  Milo Oct 15 '10 at 1:49
    
Unless ofcourse the iterator returned by erase brings you back to the top –  Milo Oct 15 '10 at 1:50
    
The problem with that is the condition is dependent on an argument of a function passed to the erase function –  Milo Oct 15 '10 at 1:52
    
@Milo: It's N^2. If you erase the first element, all the other elements will be copied down to take it's place. Do that N times and you've touched each one N^2 times. You can pass the argument to the predicate, which forwards it. –  GManNickG Oct 15 '10 at 1:54

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.