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I'm having problems with this code. I'm pretty sure it's in the swapping.

The line: curr->Data() = nextEl.Data() gives me the following error:

"expression must be a modifiable lvalue"

Any help is appreciated. Thank you in advance. Here is the code for my bubble-sort algorithm:

class Node
{
private:
    int data;
    Node* next;
public:
    Node() {};
    void Set(int d) { data = d;};
    void NextNum(Node* n) { next = n;};
    int Data() {return data;};
    Node* Next() {return next;};
};

class LinkedList
{
    Node *head;
public:
    LinkedList() {head = NULL;};
    virtual ~LinkedList() {};
    void Print();
    void AddToTail(int data);
    void SortNodes();
};


void LinkedList::SortNodes() 
{
Node *curr = head;
Node *nextEl = curr ->Next();
Node *temp = NULL;

if(curr == NULL)
    cout <<"There is nothing to sort..."<< endl;
else if(curr -> Next() == NULL)
    cout << curr -> Data() << " - " << "NULL" << endl;
else
{
    for(bool swap = true; swap;)
    {
        swap = false;
        for(curr; curr != NULL; curr = curr ->Next())
        {
            if(curr ->Data() > nextEl ->Data())
            {
                temp = curr ->Data();
                curr ->Data() = nextEl ->Data();          
                nextEl ->Data() = temp;
                swap = true;
            }
            nextEl = nextEl ->Next();
        }
    }
}
curr = head;
do
{
    cout << curr -> Data() << " - ";
    curr = curr -> Next();
}
while ( curr != NULL);
cout <<"NULL"<< endl;
}
share|improve this question
1  
The code you show doesn't even include the line you say is causing the error. –  Ben Voigt Jul 19 '12 at 22:30
    
Yeah it's because i tried fixing it, but lines of this sort would go in the if statement in the second nested for loop where swapping occurs. –  philr Jul 19 '12 at 23:24

3 Answers 3

up vote 1 down vote accepted

You are doing it wrong. You cannot change the value of temp variable returned by a function.

But you can make it work this way..

int& Data() {return data;};

though this is not good practise. Instead just use the setter you have..

curr->Set(nextEl->Data());
share|improve this answer
    
I just tried this, and its giving me errors, for "curr" it gives me "expression must be of modifiable lvalue" and for "nextEL" it gives me "expression must have class type" –  philr Jul 19 '12 at 23:25
    
Did you add & the symbol as shown? Anyway, the second form should still work. –  vidit Jul 19 '12 at 23:42
    
yes i did, and thanks, i get no errors now! But i think my looping is wrong... i get a .exe problem –  philr Jul 19 '12 at 23:59
    
@user1539252- If you hover your mouse below the votes, you'll see a checkmark.. click that. –  vidit Jul 20 '12 at 17:16

The statement

curr->Data() = nextEl.Data();

will never work, you are trying to assign something to the return value of a function. I don't know how you defined Node, but you probably meant something like

curr->Data = nextEl.Data();

i.e., assign something to a member of Node.

share|improve this answer
    
curr->Set(nextEl.Data()), apparently –  Ben Voigt Jul 19 '12 at 22:29
    
Note that assigning to the return value of a function can work if the function returns a reference. Whether that's appropriate is an entirely different matter. –  Michael Burr Jul 19 '12 at 22:31
    
ups, i didn't see the definition of Node was right there :) Yes, you are right Ben. –  timos Jul 19 '12 at 22:31

change

curr ->Data() = nextEl ->Data(); 
nextEl ->Data() = temp;

to

curr->Set(nextEl ->Data()); 
nextEl->Set(temp);
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