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int main(void) 
{
int i,j=0,k;                               //initialization
char equation[100];                          //input is a string (I think?)
int data[3];                                 //want only 3 numbers to be harvested

printf("Enter an equation: ");
fgets(equation, 100, stdin);               //not so sure about fgets()

for (i = 0; i < equation[100]+1; i++) {            //main loop which combs through
                                                   //"equation" array and attempts
                                                   //to find int values and store
    while (j <= 2) {                               //them in "data" array
        if (isdigit(equation[i])) {
            data[j] = equation[i]
            j++;
        }
    }
    if (j == 2) break;

}

for (k = 0; k <= 2; k++) {                    //this is just to print the results
    printf("%d\n", data[k]);
}

return 0;
}

Hello! This is my program for my introductory class in C, I am trying to comb through an array and pluck out the numbers and assign them to another array, which I can then access and manipulate.

However, whenever I run this I get 0 0 0 as my three elements in my "data" array.

I am not sure whether I made an error with my logic or with the array syntax, as I am new to arrays.

Thanks in advance!!! :)

share|improve this question
    
do you not want 0's in your array? –  MasterOfAllTrades Feb 12 '14 at 2:11
    
Well, unless the input string is 0 0 0! I am ALWAYS getting 0 0 0 instead of the actual string :( –  ZumbaLover69 Feb 12 '14 at 2:15
    
This "for (i = 0; i < equation[100]+1; i++)" line is very strange. Mention the expected input and required output. So that it will be clear. –  mahendiran.b Feb 12 '14 at 2:15
    
correct you should use equation.size() but I don't want to post something that they have not learned yet. –  MasterOfAllTrades Feb 12 '14 at 2:17
    
@ZumbaLover69 (rofl at 69) have you tried taking out the break; And see what you get? –  MasterOfAllTrades Feb 12 '14 at 2:18

1 Answer 1

up vote 0 down vote accepted

There are a few problems in your code:

  1. for (i = 0; i < equation[100]+1; i++) { should be something like

    size_t equ_len = strlen(equation);
    for (i = 0; i < equ_len; i++) {
    

    Whatever the input is, the value of equation[100] is uncertain, because char equation[100];, equation only has 100 element, and the last of them is equation[99].

  2. equation[i] = data[j]; should be

    data[j] = equation[i];
    

    I suppose you want to store digit in equation to data.

  3. break; should be deleted.

    this break; statement will jump out of the while loop, the result is you will store the last digit in equation to data[0] (suppose you have switched data and equation, as pointed out in #2).

    If you want the first three digits in equation, you should do something like

    equ_len = strlen(equation);
    j = 0;
    for (i = 0; i < equ_len; i++) {
            if (j <= 2 && isdigit(equation[i])) {
                    data[j] = equation[i];
                    j++;
            }
            if (j > 2) break;
    }
    
  4. printf("%d\n", data[k]); should be printf("%c\n", data[k]);

    %d will give the ASCII code of data[k], for example, if the value of data[k] is character '1', %d will print 50 (the ASCII code of '1') instead of 1.


Here is my final code, based on the OP code:

#include <ctype.h>
#include <string.h>
#include <stdio.h>

int main(void) 
{
    int i,j,k;
    char equation[100];
    int data[3];
    int equ_len;


    printf("Enter an equation: ");
    fgets(equation, 100, stdin);

    equ_len = strlen(equation);
    j = 0;
    for (i = 0; i < equ_len; i++) {
        if (j <= 2 && isdigit(equation[i])) {
            data[j] = equation[i];
            j++;
        }
        if (j > 2) break;
    }

    for (k = 0; k <= 2; k++) {
        printf("%c\n", data[k]);
    }

    return 0;
}

Tested with:

$ ./a.out 
Enter an equation: 1 + 2 + 3
1
2
3
share|improve this answer
    
thanks for the response. I fixed my code but still ended up getting an error, this time it was the same number repeated 3 times, e.g., "50 50 50" regardless of input. –  ZumbaLover69 Feb 12 '14 at 2:52
    
@ZumbaLover69 I have updated my answer, give it a try. –  Lee Duhem Feb 12 '14 at 3:08
    
this was such a clean and simple solution. You're a savior, thanks. –  ZumbaLover69 Feb 12 '14 at 3:16

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