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Sorry if this is too simple a question.

Prior error checking ensures l1.size() == l2.size().

std::list<object1>::iterator it1 = l1.begin();
std::list<object2>::iterator it2 = l2.begin();

while(it1 != l1.end() && it2 != l2.end()){

  //run some code

  it1++;
  it2++;
}

Is this a reasonable approach, or is there a more elegant solution? Thanks for your help.

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it is reasonable. –  akonsu Nov 12 '13 at 15:47
1  
Minor point: The common idiom for incrementing an iterator uses prefix rather than postfix ++. I.e. ++it1; rather than it1++; There is an obscure performance related reason for this. –  Dale Wilson Nov 12 '13 at 15:50
2  
And another minor point: if l1.size() == l2.size() you only need one test in the while condition. –  Dale Wilson Nov 12 '13 at 15:52
1  
@TomSwifty: It really depends on what you're incrementing. operator++() is supposed to return a T&, while operator++(int) returns a T. However, I'm not sure if it really poses problem with today's compilers, given return-value optimization, move semantics and all. –  thokra Nov 12 '13 at 15:56
1  
It's for iterators of given object type. The reason is that the post increment makes a copy, increments it and then returns the original. It's the copy that is expensive. –  graham.reeds Nov 12 '13 at 15:56

4 Answers 4

up vote 3 down vote accepted

I prefer to use for if increments unconditionally occurs:

for(; it1 != l1.end() && it2 != l2.end(); ++it1, ++it2)
{
    //run some code
}

You can omit one test while the size of lists are the same, but I'm not sure what's going on in run some code!

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I think this is perfectly reasonable (except that I'd use pre-increment rather than post-increment).

You could consider using a "zip iterator" of some sort, but it's not totally obvious that this would be worth the hassle in this case.

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If you are doing a simple operation on each pair of objects, you can use std::transform.

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It is reasonable to do it the way you have, there are some other approaches you could take to minimise the amount of checks being done:

If you have already checked both lengths are equal (as stated as a prior check), a standard for loop may well suffice, which eliminates the access of two variables and relies only on the increment of one variable:

for (int i = 0; i< l1.size();i++)
{
    // run some code here
}

However you would need to use advance() or next() to march through the objects in the list within the "some code here".

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