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-(void)userShow{
    xVal = new vector<double>();
    yVal = new vector<double>();
    xyVal = new vector<double>();
    xxVal = new vector<double>();
    value = new vector<double>();
for(it = xp->begin(); it != xp->end(); ++it){
    xVal->push_back(it->y);
    xxVal->push_back(it->x);

}
for(it = yp->begin(); it != yp->end(); ++it){
    xyVal->push_back(it->x);
    yVal->push_back(it->y);
}

    for (int i = 0; i < xVal->size(); i++){
        int c = (*xVal)[i];
        for(int i = 0; xyVal[i] < xxVal[i]; i++){
           double value = yVal[c-1] + (yVal[c] - yVal[c-1])*(xxVal[i] - xyVal[c-1])/(xyVal[c] - xyVal[c-1]);
            yVal->push_back(value);
        }
    }
}

I am having an issue with the double value = ... part of my code. I get three errors saying invalid operands to binary expression ('vector<double>' and 'vector<double>') pointing to the c.

should int c = (*xVal)[i]; be double c = (*xVal)[i]; when i try to use double i get 6 errors saying Array subscript is not an integer. Which means I need to convert the array into an integer. How am I getting an array if I am using vectors? Just a lot of confusion at the moment.

Not really sure if i really need to explain what the code is supposed to do, but if it helps. I am trying to get it so it take two vectors splits the vectors x and y's into x and y. then take the y of xp and the y of yp and put them together. but because xp and yp vectors do not match i need to use the for loop and the double value algorithm to get a decent set of numbers.

share|improve this question
    
Is this C++, or Objective-C? That doesn't look like a C++ function signature. –  Ben Voigt Oct 21 '11 at 16:51
    
Why dynamically-allocated vectors? –  Lightness Races in Orbit Oct 21 '11 at 16:55
    
Its a mix of both I guess. ipad dev. –  John Riselvato Oct 21 '11 at 16:56
    
If you use objective-c, roll-back your question (from the edits) and use objective-c tag.. –  Kiril Kirov Oct 21 '11 at 16:59

1 Answer 1

up vote 3 down vote accepted

The c is fine. The problem really is in double value = .., as your compiler says. You have pointers, so you can't access the array's elements like this:

double value = yVal[c-1] + ...

It must be

double value = (*yVal)[c-1] +

The same for xyVal, xxVal, etc. You need to fix the whole inner for loop.


But why you allocate the vectors like this...? Is there any reason to use new? This is so error prone. I'd use just

vector<double> xVar;

instead of

xVal = new vector<double>();

And then use . instead of -> combined with *. It so much easier.


Ah, forgot about the question for c - no, it should not be double. You can't use floating point numbers for indices. Also, if xVal is supposed to contain integer numbers (so that they can be used for indices), why don't you just declare the vector as vector< int > instead of vector< double >? I don't what's the logic in your program, but it looks like it(the logic) should be improved, IMO.

share|improve this answer
    
Seems most likely. –  John Dibling Oct 21 '11 at 16:49
    
i used new because when i try it your way it gives me Local declaration of xVal hides instance variable. ! Member reference type 'vector<double>' is not a pointer. –  John Riselvato Oct 21 '11 at 16:52
    
@KirilKirov I did what you said changed it to this double value = (*yVal)[c-1] + ((*yVal)[c] - (*yVal)[c-1])*(xxVal[i] - (*xyVal)[c-1])/((*xyVal)[c] - (*xyVal)[c-1]); and now i am getting invalid operands to binary expression ('vector<double>' and 'double')` –  John Riselvato Oct 21 '11 at 16:55
    
@JohnRiselvato: You still have xxVal[i] - change to (*xxVal)[i] –  Lightness Races in Orbit Oct 21 '11 at 16:56
1  
yVal is container: std::vector< double >. This is supposed to be a vector (array), containing doubles, right? Floating point numbers, in other words. So, push_back is supposed to "push" a double inside this container, not a pointer to another vector (value is pointer to std::vector< double >). The compiler may miss such error, as pointer is just an integer number, and there's an implicit cast from int to double. In other words, if this compiles at all, will be absolutely wrong. You'll add some value, which will be the address of the value vector, converted to double –  Kiril Kirov Oct 21 '11 at 17:11

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