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I think I am creating this pair incorrectly because I am getting a segfault when I debug using DDD. Can anyone see where I made a mistake? Thanks! The segfault happens when processing the input file:

char vertex = 'a';
Vertex* newVertex = new Vertex();
map.insert(pair<char,Vertex*>(vertex,newVertex));

Code:

void MSTapp::processFile()

{

int pos1;

int pos2;

map<char, Vertex*> adjacencyList;

vector<char> listOrder;

string input;

bool test = false;

while (getline(cin, input)) {

    pos1 = pos2 = 0;

    if(std::string::npos != input.find_first_of("0123456789"))

    {



        char source = input[0];

        char destination = input[2];

        stringstream ss(input.substr(4));       

        int weight;

        ss >> weight;

        Edge newEdge(destination, weight);

        adjacencyList[source]->addEdge(destination, newEdge);

        Edge roadBack(source, weight);

        adjacencyList[destination]->addEdge(source, roadBack);

    }

    else

    {

        while(input.find(' ', pos1) != string::npos)

        {

            pos2 = input.find(' ', pos1);

            char vertex = input[pos1];

            listOrder.push_back(vertex);

            Vertex* newVertex = new Vertex(vertex);

            adjacencyList[vertex] = newVertex;

            pos1 = pos2;

        };

    };

};

Graph graph(listOrder, adjacencyList);

prim(graph, adjacencyList[listOrder[0]]);

}

Input:

A B C D E F G
A B 3
A E 4
B C 7 
B E 6
B F 5
C D 9
C F 8
D F 9
D G 4
E F 6
F G 8
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In what line do you get your segfault? – Mark Garcia Dec 16 '13 at 3:59
    
You probably don't need pointers. Just pair<char, Vertex> should usually do, and smart pointers otherwise. – chris Dec 16 '13 at 4:00
    
I segfault on the map.insert line. I am trying to create an adjacency list for an undirected graph so I can apply prim's algorithm to create a minimum spanning tree – CodeManiak Dec 16 '13 at 4:02
    
Can you give us a self-contained, minimal, compilable example that replicates the problem? We can't tell from your code what type map is, for example. – David Schwartz Dec 16 '13 at 4:03
    
I added some code, I can add more if you would like to look at it – CodeManiak Dec 16 '13 at 4:06
up vote 2 down vote accepted

There are several ways of adding items to an std::map<K,V>. The most common one is by using the index operator, like this:

map[vertex] = newVertex;

You can also make a pair explicitly by calling std::make_pair:

map.insert(std::make_pair(vertex,newVertex));

Note that you do not need to specify type parameters of the pair being created, because std::make_pair infers the types from the context.

share|improve this answer
1  
and of course emplace – user405725 Dec 16 '13 at 4:20

If you are able to compile but are getting memory faults on this, I would look at the comparison function of your std::map<char, Vertex *, ...>. The STL's map should be a Red-Black balanced binary tree, which does a less than/not less than comparison on nodes as it inserts and re-balances itself. I would guess that you either have a bad node comparison function or that Vertex members sometimes contain bad pointers that are getting touched by the comparison function in the insert() call. Also, calling your std::map instance 'map' as above might be confusing even in example form.

Edit: nevermind, just saw the code added above, and you aren't doing anything fancy with your map definition/compare function.

If you are crashing on one of the two following lines, it means that your node lookups are failing and that you are trying to modify objects that aren't really there. Check these values (the Vertex *) before you attempt to read or modify them:

adjacencyList[source]->addEdge(destination, newEdge);
adjacencyList[destination]->addEdge(source, roadBack);

Put a breakpoint on your Vertex::addEdge(char, Vertex *) call and see what this's address and contents show. std::map::operator[] will silently create an element (using the default constructor) for a key on a failed lookup, so you might well be making null Vertex *s and then trying to add elements to them.

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