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 #include "MyArrayList.h"

 MyArrayList::MyArrayList()
 {
size = 0;   
 }

 NODE* MyArrayList::list_create(void *data)
 {
NODE *node;
if(!(node=malloc(sizeof(NODE))))
    return (NODE*)NULL;
node->data=data;
node->next=NULL;
return node;
}

NODE *MyArrayList::list_add(NODE *node, void *data)
{
    NODE *newnode;
    newnode=list_create(data);
    newnode->next = node->next;
    node->next = newnode;
return newnode;
}

On

  NODE* MyArrayList::list_create(void *data)
 {


 NODE *MyArrayList::list_add(NODE *node, void *data)
{

myarraylist.cpp(8): error C2143: syntax error : missing ';' before '*'

myarraylist.cpp(8): error C4430: missing type specifier - int assumed. Note: C++ does not support default-int

myarraylist.cpp(8): error C2065: 'data' : undeclared identifier

myarraylist.cpp(8): error C2761: 'MyArrayList::NODE *MyArrayList::list_create(void *)' : member function redeclaration not allowed

myarraylist.cpp(8): fatal error C1903: unable to recover from previous error(s); stopping compilation

Its a linked list

share|improve this question
1  
What exact error message did you get from the compiler? – In silico Dec 11 '10 at 16:20
1  
What is the error message? What is your code supposed to do? If you want people to help you fix your code you should provide enough details for them to understand your problem. – APC Dec 11 '10 at 16:22
    
Where is the definition of NODE? – ybungalobill Dec 11 '10 at 16:26

You shouldn't use NULL in C++, but 0. And you don't need to cast a null pointer: any pointer type can point at null. And you shouldn't use void pointers in C++ if you can avoid these. In fact, you shouldn't use raw pointers if you can avoid these. And you shouldn't use malloc() in C++ if you can use new. That said, you must cast the return value of malloc() if the left-hand-side of the assignment is not a void pointer:

node = (NODE*)malloc(sizeof(NODE))
share|improve this answer
    
Instead of void what should i be using – Maricela Esmeralda Dec 11 '10 at 17:13
    
Either static or dynamic polymorphism. Program to an interface. void* says nothing about the type. Create an interface and call its functions. – wilhelmtell Dec 11 '10 at 17:34

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