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I've been trying to create a tester for my Stack ADT, by dynamically passing in the amount of items to add to the stack. However, when I try passing in an integer, for instance, 22, it assigns the global variable (ITEMS) as 50. If I try something else, the range is between 45, and 55.

My main function is this:

int main(int numArgs, char* numItems[]) {
    Stack stack;

    if (numArgs == 0) {
        printf("Good job, you broke C.\n");
    } else if (numArgs == 2) {
        int items = (int)*numItems[1];
        if(*numItems[1] != ITEMS) {
            setItems(items);
        } 
    } else if (numArgs>=3) {
        printf("Usage: TestStack <numItems> <-help>\n");
        exit(1);
    } else if(numItems[1] == "-h" || numItems[2] == "-help") {
        printf("numItems   - Number of items to add to the stack.\n            -h     (-help) -  Shows this help output.\n");
        exit(1);
    }
    /* test code here*/
}

The assignment function is:

static void setItems(int numItems) {
    ITEMS = numItems;
    printf("ITEMS IS %d\n",ITEMS);
}

And my global variable is just

int ITEMS = 11; //Default value.

Any reason that I can't actually get the real value I'm trying to pass in?

share|improve this question
    
the arguments come in a strings, so you are getting the value of the first character in the string. As Chris notes below, you need to convert the string to an integer. – David Hope Feb 1 '13 at 18:02
1  
printf("Good job, you broke C.\n"); - Now this is hilarious. – user529758 Feb 1 '13 at 18:07
up vote 2 down vote accepted

Your problem is here:

int items = (int)*numItems[1];

This will read the int value of the first char that you pass in... Since you pass in 22, it will get the ASCII Valule of 2 which is 50. Refer to this chart (thanks asciitable.com) under Dec 50:

ASCII table

What you want to do instead is interpret the whole cstring as an integer, using atoi:

int items = atoi(numItems[1]);

or strtol:

int items = strtol(numItems[1], NULL, 10);
share|improve this answer
    
Thanks! I'm pretty new to C, so atoi is completely new to me. Thanks though, it worked! – ChrisDevWard Feb 1 '13 at 18:07
    
"It will get the ASCII Valule of 2" - even if your system is non-ASCII? Don't mislead beginners. The C standard says nothing about the character encoding used. – user529758 Feb 1 '13 at 18:10
1  
@H2CO3 But it did so his system obviously is ASCII... – Gunther Fox Feb 1 '13 at 18:12
    
@GuntherFox But it's not the point... – user529758 Feb 1 '13 at 18:13

What you need to do is something like numItems = atoi(argv[1]) instead of casting the first character of said argument to an int. Read up in the manual page on atoi(3). And do yourself a favor, go read Steve Summit's C tutorial (yes, it is dated, but still very relevant). Also read Rob Pike's ramblings on C style.

share|improve this answer
    
Thanks, I'll definitely give them a read through. – ChrisDevWard Feb 1 '13 at 18:56

So others basically made the point: the value you're obtaining is not 22 but the character code of the first character of "22", which is the character code of 2 (probably 50, if your system uses ASCII or Unicode).

But for the love of God, don't use atoi()! It's deprecated, ugly, unsafe and incomplete. You should be using strtol() or strtoll() instead:

int theNum = strtol(argv[1], NULL, 10);
share|improve this answer

In C program command line arguments will be received as strings even you pass integers or float.

If you pass 10, then argv[1] will have the address of string of two bytes which has ASCII value of 1(49) and 0(48). So *argv[1] will give the value of first byte, which is 49. If you try to print that as character you will get 1 or you will get 48 if you try to print it as integer.

printf("%s", argv[1]) //will print 10
printf("%u", argv[1]) //will print address of the string "10"
printf("%c", *argv[1]) //will print 1
printf("%d", *argv[1]) //will print 49
share|improve this answer

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