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Say I have an object containing a value. I wish to get the index of object with a particular value from a list of objects. I use the below code to do it,

int MyClass::getIndex(list& somelist, int requiredValue)
{

    for( i=0; i != somelist.count(); ++i)
    {

        if(somelist.at(i)->value() == requiredValue)
            return i;
        else
            continue;
    }

return -1;
}

How to avoid the "doesn't return a value on all code paths" warning without using an iterator?

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1  
This code does not produce that warning. Why did you edit your code to render the question completely nonsensical? –  R. Martinho Fernandes Jun 22 '12 at 5:32
3  
OP: You added the return -1 didn't you? –  juergen d Jun 22 '12 at 5:33
    
yes i did... but I still believe that the else part doesn't return a value... am I wrong? let me test it. –  Sulla Jun 22 '12 at 5:34
1  
The else part is completely redundant. –  R. Martinho Fernandes Jun 22 '12 at 5:34

2 Answers 2

up vote 3 down vote accepted

You must return T from the function in any case. If the value possibly does not exists in the list you have options:

  1. return default value (nullptr for pointer for example, -1 for integer possibly)
  2. use boost::optional<T>
  3. return end iterator:

    std::list<int>::iterator find_something(std::list<int> &my_list)
    {
         for (auto it = my_list.begin(); it != my_list.end(); ++it)
         { 
             if (cond)
             {
                 return it;
             }
         }
    
         return my_list.end();
    }
    

Also

If you just want to find the iterator to some value, use std::find:

auto it = std::find(my_list.begin(), my_list.end(), my_value);

Finally

Don't use list if you need access by index. Use vector in that case

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The answer to this question is the same as the answer to "What do you want to happen when the element is not found?".

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+1! This one makes sense. –  Jay Jun 22 '12 at 5:32

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