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.
std::array<LINE,10> currentPaths=PossibleStrtPaths();
LINE s=shortestLine(currentPaths);                       //ERROR

LINE CShortestPathFinderView::shortestLine(std::array<LINE,10> *currentPaths)
{
std::array<LINE,10>::iterator iter;

LINE s=*(currentPaths+1);                      //ERROR

for(iter=currentPaths->begin()+1;iter<=currentPaths->end();iter++)
{
     if(s.cost>iter->cost)
     s=*iter;
}

std::remove(currentPaths->begin(),currentPaths->end(),s);

    //now s contains the shortest partial path  
return s; 


}

At both those statements I'm getting the same error: no suitable conversion from std::array<LINE,10U>*currentPaths to LINE . Why is this so? Should I pass the array another way? I've also tried passing currentPaths as a reference, but it tells me that a reference of the type cannot be initialized.

share|improve this question
    
*(currentPaths+1); can you do that? or did you mean (*currentPaths)[1] –  andre Dec 28 '12 at 14:12
    
@ahenderson I want assign the second LINE object of currentPaths to s. Isn't *(currentPaths+1) the same as currentPaths[1]? –  Ghost Dec 28 '12 at 14:14
    
Unless null is a possible value passing by reference is the better way to go. With your method you might be accessing (*currentPaths)[10] which is the same as currentPaths[1]. remember you have a pointer to an array not an array. –  andre Dec 28 '12 at 14:26
add comment

2 Answers

up vote 4 down vote accepted

You said you tried a reference and it failed. I don't know why, because that was the correct thing to do.

LINE CShortestPathFinderView::shortestLine(std::array<LINE,10> &currentPaths);

From the sounds of it, you also used a reference for the temporary variable. That's wrong.

std::array<LINE,10>& currentPaths = PossibleStrtPaths(); // WRONG
std::array<LINE,10>  currentPaths = PossibleStrtPaths(); // RIGHT
LINE s = shortestLine(currentPaths);

And finally, the first element is number zero. The subscripting operator [] is preferred when you are doing array access. So:

LINE s = currentPaths[0];

But you also can easily get the first item from the iterator.

Final code:

/* precondition: currentPaths is not empty */
LINE CShortestPathFinderView::shortestLine(std::array<LINE,10>& currentPaths)
{
    std::array<LINE,10>::iterator iter = currentPaths.begin();
    LINE s = *(iter++);

    for(; iter != currentPaths->end(); ++iter) {
       if(s.cost>iter->cost)
          s=*iter;
    }

    std::remove(currentPaths.begin(), currentPaths.end(), s);

    //now s contains the shortest partial path  
    return s;
}
share|improve this answer
    
I've inserted the code you've given me, but I'm still getting an error message at the line LINE s=shortestLine(currentPaths); : error C2664: 'CShortestPathFinderView::shortestLine' : cannot convert parameter 1 from 'std::tr1::array<_Ty,_Size>' to 'std::tr1::array<_Ty,_Size> &' –  Ghost Dec 28 '12 at 14:31
    
@Ghost: Show the entire error message, including what _Ty and _Size are. I wonder if you have more than one type named LINE. –  Ben Voigt Dec 28 '12 at 14:33
    
[ 1> Ty=CShortestPathFinderView::Brains::LINE, 1> _Size=10 1> ] 1> and 1> [ 1> _Ty=LINE, 1> _Size=10 1> ] Brains() is the function I'm calling _shortestLine from. –  Ghost Dec 28 '12 at 14:35
    
@Ghost: You have two different types named LINE. An array of Brains::LINE isn't the same as an array of ::LINE. –  Ben Voigt Dec 28 '12 at 14:35
    
@ Ben Voigt Ohh, I didn't see that. Thanks a lot! Greatly appreciated. –  Ghost Dec 28 '12 at 14:39
add comment

You are dereferencing (currentPaths+1) which is of type std::array* (more precisely: you are incrementing the pointer and then accessing its pointed data) while you probably want to retrieve the first element of currentPaths, that is: currentPaths[0] (the first index in an array is 0).

share|improve this answer
add comment

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.