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I have a problem in C while parsing the argv Variable. This is the task:

I got some Parameters form the Command line into my C programm. One of them looks like "-r=20-5". There I have to find the "r". this works with:

if (argv[i][0] != 0 && argv[i][1] != 0 && argv[i][2] != 0 &&
    argv[i][0] == '-' && argv[i][2] == '=') { /* Check the Variables */
    switch (argv[i][1]) {
        case 'r':
            /* what have to be here? */
            break;
}

Now I have the "r". But I need the 20 and the 5 in two different variables too. Here is what i thougt about, but it did't work. I tried something with

strsep(argv[i]+3, "-");

But my Compiler (Xcode) throws a warning (warning: passing argument 1 of 'strsep' from incompatible pointer type)

Does anyone has any idea (or link) how I can solve the problem?


After it's solved there was still a warning, so I was answered to post my entire new code:


int parse(int argc, const char *argv[]) {
    int i, x, y;
    int intTmp;
    long longTmp;
    char *strTmp;
    char *end;

    for (i = 1; i < argc; i++) {
        /* check for (-?=) */
        if (argv[i][0] != 0 && argv[i][1] != 0 && argv[i][2] != 0 &&
            argv[i][0] == '-' && argv[i][2] == '=') {

            /* IGNORE THIS
             * longTmp = strtol(argv[i]+3, &end, 10);
             * intTmp = analyseEndptr(longTmp, argv[i]+3, end);
             */

            switch (argv[i][1]) {
                case 'r':
                    strTmp = argv[i]+3;                 /* <= Here I got the warning */
                    x = atoi(strsep(&strTmp, "-"));
                    y = atoi(strsep(&strTmp, "-"));
                    printf("x=%d, y=%d\n", x, y);
                    break;
            }
        }
    }
}

The warning is: warning: passing argument 1 of 'strsep' from incompatible pointer type

My compiler is: gcc on MacOS using XCode as IDE

share|improve this question
2  
strsep takes a char ** as its first argument, not a char * –  Paul R May 2 '12 at 20:22
    
Or you can write your own parser. It will take some time, but it will be working as you wish. All you need to do is just iterate over the string. As a separator you can use '-' symbol. –  besworland May 2 '12 at 20:27
    
@Paul R How do I get a char** from a char*? (I quickly google that, but with no good results) –  waXve May 2 '12 at 20:29
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2 Answers

up vote 1 down vote accepted

Do you know sscanf? Have a look at:

  unsigned a,b;
  if( 2==sscanf(argv[i],"-r=%u-%u",&a,&b) )
    printf("%u-%u",a,b);
share|improve this answer
    
That one is much simpler as the other one. Althow, the other one works too. –  waXve May 2 '12 at 21:29
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Here is how you pass a string to strsep()

    switch (argv[i][1]) {
        char *s;
        int x, y;
        case 'r':
            s = argv[i] + 3;
            x = atoi(strsep(&s, "-"));
            y = atoi(strsep(&s, "-"));
            printf("x=%d, y=%d\n", x, y);
            break;
    }

Will produce:

x=3, y=4

Do not use it as is. You will have to do additional NULLchecks on x and y appropriately for your case.

share|improve this answer
    
Cool. that works, but I still got the warning. Why? (Warnings aren't good) –  waXve May 2 '12 at 21:07
    
what is the warning ? can you post your entire code ? –  dpp May 2 '12 at 21:09
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