Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have created two structs:

typedef struct mainNode {
    int theNode;
    int visited;
    struct mainNode *next;
} node_rec, *node_ptr;

and

typedef struct neighborNode {
    struct neighborNode *next;
} neighbor_node_rec, *neighbor_node_ptr;

which I need to insert into a list:

void insert(node_ptr head, int theNodeVal, int neighborNodeVal, int weight) {

//if list is empty
if (head == NULL) {
    head = (node_ptr) malloc(sizeof (node_rec)); //create head of list
    head->theNode = theNodeVal; //set head value to node value
    head->next = NULL; //point to null       
}

//while list is not pointing no null
while (head != NULL) {
    //if node IS NOT equal to node value   
    if (head->theNode != theNodeVal) {
        head->theNode = theNodeVal; //set head value (new node) to node value
        head->next = tail; //connect to next node
        tail->next = NULL; //point to null
    }
    else
    {          
        //if node IS equal to node value (the node already exists)
        tail->next = head // head is the new tail
        head->neighbor = n; //point at the neighbor of head (new tail)
    }
}
}

I'm trying to see if the logic I implemented is correct. That is the reason I commented every line. You can refer to the link at the top of the page for a visual.

share|improve this question
    
What's the question? What are you stuck on? –  nneonneo Oct 21 '12 at 4:40

1 Answer 1

up vote 2 down vote accepted

Replace the if (head->theNode = theNodeVal) { with if (head->theNode == theNodeVal) {. Would it help?

This is how I would implement the graph for this algorithm:

#include <limits.h>
#include <string.h>
#include <malloc.h>
#include <stdio.h>

struct Vertex {
    struct Vertex *next; // The reference to the next vertex in the global list of vertices
    int nodeId;
    int distance;
    struct Vertex *previous; // The reference to trace back the shortest path;
    struct Edge *neighbor; // The reference to the list of edges of this 
};

struct Edge {
    struct Edge *next;   // The reference to the next edge of this vertex;
    struct Vertex *node; // The reference to the vertex at other end of this edge;
    int weight;
};


struct Vertex *head = NULL;

struct Vertex *newVertex(int nodeId) {
    struct Vertex *p = malloc(sizeof(struct Vertex));
    memset(p,0,sizeof(struct Vertex));
    p->nodeId = nodeId;
    p->distance=INT_MAX;
    p->next = head;
    head = p;
    return p;
}

void addEdge(struct Vertex *v1, struct Vertex *v2, int weight) {
    struct Edge *e = malloc(sizeof(struct Edge));
    e->next = v1->neighbor;
    v1->neighbor = e;
    e->node = v2;
    e->weight = weight;
}

void insert(int node1, int node2, int weight) {
    struct Vertex *current = head, *p1 = NULL, *p2 = NULL;

    while (current != NULL) {
        if (current->nodeId == node1) p1 = current;
        if (current->nodeId == node2) p2 = current;
        current = current->next;
    }

    if (p1 == NULL) p1 = newVertex(node1);
    if (p2 == NULL) p2 = newVertex(node2);

    addEdge(p1,p2,weight);
    addEdge(p2,p1,weight);
}

void main(int argc, char **argv) {
    int node1, node2, weight;
    while (EOF != scanf("%d %d %d \n", &node1, &node2, &weight)) {
        insert(node1, node2, weight);
    }
}
share|improve this answer
    
I did not dive into details. Just noted the obvious thing... –  Serge Oct 21 '12 at 4:51
    
As for the logic, I suppose the member neighbor of the struct mainNode should be declared as neighbor_node_ptr. The bodies of two if statements are very similar. I would propose to pull outside the common things. Then it will be more readable and clear to understand –  Serge Oct 21 '12 at 4:54
    
Again the same problem. = is an assignment! I will fix your post a bit –  Serge Oct 21 '12 at 5:08
    
+1 I swear I need to write a regex that scans a file looking at control flow statement expressions followed by asign-ops rather than equality tests. I can only imagine how quickly some SO questions could be answered with such a beast. nice eye. –  WhozCraig Oct 21 '12 at 6:21

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.