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I'm using a vector for several arrays in my code due to the requirement of random access to the individual elements of the array. Some user GUI operations require searching through the array (but not enough to warrant the use of std::map), so littered through the code is this:

if (std::find(array.begin(), array.end(), searchfor) != array.end()) { ... }

I'm thinking of a better and more easily readable way of doing this, perhaps creating a method so I can do something like if (array_find(searchfor) != array.end()) or maybe even extending vector so I can do if (array.find(searchfor) != array.end()).

I'm not sure of the best way to do it. Any ideas?

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2  
Don't extend vector. Extending means inheritance. Inheritance from a class without a virtual dtor is pure evil. And even if vector had a virtual dtor, you wouldn't want to subclass just to add a single, stateless operation. –  larsmans Jun 7 '11 at 22:56

3 Answers 3

up vote 3 down vote accepted

Use whatever you prefer. I believe doing a function is better though, it avoids the hassle of creating a new class and using it everywhere. Something like :

bool array_contains(searchFor)
{
    return std::find(array.begin(), array.end(), searchfor) != array.end();
}
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You could even do it with array_contains as a templated function, which accepts any STL compatible container, and runs the search. –  Node Jun 7 '11 at 22:49
    
@Node: absolutely! OP may improve this according to his needs. –  Cicada Jun 7 '11 at 22:57

You might find Boost.Range worth a look. Basically you can get rid of begin/end calls as arguments, using collection reference instead.

#include <boost/range/algorithm/find.hpp>
...
if (boost::find(array, searchfor) != array.end()) { ... }

The advantage of this solution is that you still get iterator as a result, which often proves to be useful.

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Unless you want to re-write the entire Standard library to use ranges in cases where it's appropriate (like this one) and ensure that everyone that you work with also does this, then the first posted code is the best one.

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