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This is part of an assignment to complete a word search. I have to use command line arguments to search a predetermined 2D array. I need to searh only the Horizontal (left to right), Diagnal (top-left to bottom-right), and Vertical (top to bottom). I'll write the Diag and Vert once I understand the pointer issue better.

I get

warning: comparison between pointer and integer

This happens at the following if-statement

if (argv[count] == g[i][j]){

Why do I get the warning and what am I missing in my understanding of pointers that prevents me from doing this.

I've tried different variations of *g and (int star)g with worse results than just the warning.

I need to have warning free code for turn-in.

Thank You for helping the new people.

#include <stdio.h>
#define ROW 3
#define COL 4
#define TRUE 1
#define FALSE 0

int checkHoriz(char *data, char *data2);

main(int argc, char *argv[]){
    int count, i, j, rowValue, colValue;
    char g[ROW][COL] = {{'a','b','c','d'},
                        {'d','c','b','a'},
                        {'x','y','z','d'}};

    count=1;
    if(argc>1){
        for(i=0; i<ROW; i++){
            for(j=0; j<COL; j++){
                if (argv[count] == g[i][j]){
                    rowValue = i;
                    colValue = j;
                    if(checkHoriz(argv[count],g[i][j]) ==TRUE){
                        printf("%s appears horizontally starting @ g[%d]{%d]. \n", argv[count], i,j);
                    }
                }
            }
        }
    }else{
        printf("No arguments were entered.\n");
    }
}

int checkHoriz(char *data, char *data2){
    int i = 0;
    while (data == data2 && data!=' ' && data2 != '\0'){
        data++;
        data2++;
    }
    if(data2 == '\0'){
        return 1;
    }else{
        return 0;
    }
}
share|improve this question
    
You can edit your question via this link. – ruakh Mar 4 '12 at 4:01
up vote 2 down vote accepted

argv is an array of strings; a char** and g is an array of char arrays; a char[][].

Therefore, argv[count] is of type char* (a string), and g[i][j] is of type char. You're comparing a pointer to a single char, an integer type. This is what the warning is telling you.

If you want to search for the chars of g inside of argv[count], then you're going to need to dereference argv[count] one level further, and work with the individual chars in the range of argv[count][0] to argv[count][strlen(argv[count]) - 1].

share|improve this answer
    
Is argv[count][0] the same as *argv[count]? – CodeBlue Mar 4 '12 at 4:09
1  
@CodeBlue: Yes they are the same, since the operator [] has higher precedence than the operator *. Therefore *argv[count] is the same as *(argv[count]), which refers to the first char in the string. – AusCBloke Mar 4 '12 at 4:23
    
Thank you AusCBloke. – Larry Mar 4 '12 at 4:43

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