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I am trying to compile the below code using "g++ main.cpp -c" but it gives me this strange error .. any ideas?

main.cpp: In function ‘int main()’:
main.cpp:9:17: error: invalid conversion from ‘Graph*’ to ‘int’
main.cpp:9:17: error:   initializing argument 1 of ‘Graph::Graph(int)’
main.cpp:10:16: warning: deprecated conversion from string constant to ‘char*’

This is my main module which i am trying to compile and below that is the graph class i have in graph.hpp

#include <iostream>
#include "graph.hpp"

using namespace std;

int main()
{
  Graph g;
  g = new Graph();
  char* path = "graph.csv";
  g.createGraph(path);
  return 0;
}

AND this is my Graph class

    /*
 * graph.hpp
 *
 *  Created on: Jan 28, 2012
 *      Author: ajinkya
 */

#ifndef _GRAPH_HPP_
#define _GRAPH_HPP_

#include "street.hpp"
#include "isection.hpp"
#include <vector>

class Graph
{
 public:
  Graph(const int vertexCount = 0);
  //void addIsection(Isection is);
  //void removeIsection(int iSectionId);
  Isection* findIsection(int);
  void addStreet(int iSection1, int iSection2, int weight);
  void createGraph(const char *path); //uses adj matrix stored in a flat file
  //void removeStreet(int streetID);
  void printGraph();
  ~Graph();
 private:
  //Isection *parkingLot;
  //Isection *freeWay;
  int** adjMatrix;
  std::vector <Street*> edgeList;
  std::vector <Isection*> nodeList;
  int vertexCount;
};

    #endif
share|improve this question
    
Consider using std::strings for strings, boost::ptr_vectors for vectors of pointers, a matrix class for matrices, and not using using namespace std; (especially when it serves absolutely no purpose). –  Anton Golov Feb 2 '12 at 1:49

4 Answers 4

This is C++, not Java or C#. new doesn't work the same way here.

new expressions return pointers. You cannot assign a pointer to a Graph (i.e. a Graph*) to a variable of type Graph:

Graph g;
g = new Graph(); // Graph = Graph* ? nope

Seems like the compiler is trying to be "helpful" and trying to use your constructor take takes an int argument to make a value of type Graph, but it can't convert a Graph* to an int.

When you write Graph g; you already have a Graph object. You don't need to create one with new. In fact, you probably don't even want to do that, as it will lead to memory leaks.

Then there's this line:

char* path = "graph.csv";

"graph.csv" has type char const[10] so you should not assign it to a char*. In the past you could, but that turned out to be a bad idea. That feature was marked as deprecated, and now it was completely removed in C++. Instead of doing that you can:

  • Make an array out of it: char path[] = "graph.csv";;
  • Make a pointer to it with the proper type: char const* path = "graph.csv"; (this works because array types decay to pointers);
share|improve this answer
    
Except that, unlike Java, you don't write Graph g;, you write Graph* g; which is causing his error. –  Tim Gostony Feb 2 '12 at 0:24
    
""graph.csv" has type char const[10] so you cannot assign it to a char*" Morally you shouldn't, but technically you certainly can. @Tim : In idiomatic C++ you certainly do/should write Graph g;. –  ildjarn Feb 2 '12 at 0:25
    
@Tim - there's no need to make it a pointer and use new here at all - this isn't Java after all. –  Flexo Feb 2 '12 at 0:26
    
@ildjarn: good point, I made that clearer. –  R. Martinho Fernandes Feb 2 '12 at 0:29
3  
I guess working on Objective-C all day is destroying my brain. –  Tim Gostony Feb 2 '12 at 0:35

That should probably be g = Graph(); and forget the g = new Graph;. The reason is that new returns a pointer to the created object (e.g. a Graph*), not an object value.

Better still, just do Graph g; and forget about assigning anything to g. This will automatically create a Graph for you by calling Graph's no-arg constructor.

share|improve this answer

Graph* g;

It has to be a pointer.

share|improve this answer
1  
For a bit more explanation: the only viable constructor for Graph is the one taking an int. This could be a conversion constructor as it isn't explicit but this conversion can't be used as the argument type mismatch. You might want to make your constructor explicit to improve error messages for situations like the one quite and to avoid accidentally creating a Graph. –  Dietmar Kühl Feb 2 '12 at 0:21
    
His constructor has a default value of 0: Graph(const int vertexCount = 0); therefore Graph() = Graph(0) –  Tim Gostony Feb 2 '12 at 0:22
    
It can still be be explicit, however. My point was just to explain where the odd error message about an int to Graph conversion came from. –  Dietmar Kühl Feb 2 '12 at 0:31
1  
Insisting on making everything a pointer and using new to initalise (or assign values to) them is a very Java-esque way of thinking, which doesn't map directly onto C++ as well. –  Flexo Feb 2 '12 at 0:32
    
If you advocate for it be a pointer, please at least add something about it being a smart pointer (or that it must be explicitly deleted and that throwing exceptions will probably cause memory leaks/drive the author insane). –  Anton Golov Feb 2 '12 at 1:52

First of all new Graph() returns a Graph*. In c++, a constructor with one argument can be implicitly called, so currently your code is really meaning:

g = Graph(new Graph());

What you want is

g = Graph();
share|improve this answer
    
This will needlessly assign to g the exact same value it already has. How is that an answer? –  ildjarn Feb 2 '12 at 1:18
    
When I learned C++ I was taught to always initialize my variables myself and never leave it to the system or the compiler. I also was fixing his problem as it was and explaining what is current code was actually doing. –  JKor Feb 3 '12 at 3:32
    
All I can say is that if that's true, you were taught very poorly. This defines cargo cult programming. –  ildjarn Feb 3 '12 at 3:52

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