how to take integers as command line arguments?

自古美人都是妖i 提交于 2019-11-27 01:34:54

问题


I've read a getopt() example but it doesn't show how to accept integers as argument options, like cvalue would be in the code from the example:

 #include <ctype.h>
 #include <stdio.h>
 #include <stdlib.h>
 #include <unistd.h>

 int
 main (int argc, char **argv)
 {
   int aflag = 0;
   int bflag = 0;
   char *cvalue = NULL;
   int index;
   int c;

   opterr = 0;

   while ((c = getopt (argc, argv, "abc:")) != -1)
     switch (c)
       {
       case 'a':
         aflag = 1;
         break;
       case 'b':
         bflag = 1;
         break;
       case 'c':
         cvalue = optarg;
         break;
       case '?':
         if (optopt == 'c')
           fprintf (stderr, "Option -%c requires an argument.\n", optopt);
         else if (isprint (optopt))
           fprintf (stderr, "Unknown option `-%c'.\n", optopt);
         else
           fprintf (stderr,
                    "Unknown option character `\\x%x'.\n",
                    optopt);
         return 1;
       default:
         abort ();
       }

   printf ("aflag = %d, bflag = %d, cvalue = %s\n",
           aflag, bflag, cvalue);

   for (index = optind; index < argc; index++)
     printf ("Non-option argument %s\n", argv[index]);
   return 0;
 }

If I ran the above as testop -c foo, cvalue would be foo, but what if I wanted testop -c 42? Since cvalue is of type char *, could I just cast optarg to be (int)? I've tried doing this without using getopt() and accessing argv[whatever] directly, and casting it as an integer, but I always end up with a large negative number when printing with %d. I'm assuming I'm not dereferencing argv[] correctly or something, not sure...


回答1:


You need to use atoi() to convert from string to integer.




回答2:


All of the answers above are broadly correct (Vikram.exe gets props for explaining why you have to call a library function, which nobody else bothered to do). However, nobody has named the correct library function to call. Do not use atoi. Do not use sscanf.

Use strtol, or its relative strtoul if you don't want to allow negative numbers. Only these functions give you enough information when the input was not a number. For instance, if the user types

./a.out 123cheesesandwich

atoi and sscanf will cheerfully return 123, which is almost certainly not what you want. Only strtol will tell you (via the endptr) that it processed only the first few characters of the string.

(There is no strtoi, but there is strtod if you need to read a floating-point number.)




回答3:


As you have already used in your code, the prototype for main function is

int main (int argc, char** argv)

What ever arguments are provided as command line arguments, they are passed to your 'program' as an array of char * (or simply strings). so if you invoke a prog as foo.exe 123, the first argument to foo.exe will be a string 123 and not an integer value of 123.

If you try casting the argument to integer (as you said) probably using some thing like: (int) argv[1], you will not get the integer value of first argument, but some memory address where the first arg is stored in your address space. To get an integer value, you must explicitly convert string value to integer value. For this, you can use atoi function. Check THIS man page for similar functions that can be used for conversion.




回答4:


Use atoi.

cvalue = atoi( optarg );

And declare cvalue as an int.




回答5:


atoi(), which means ascii to integer is the function to use. Similarly, atof() can be used to get float values.




回答6:


In this situation i would go for a sscanf().




回答7:


No, you can't just cast to convert it to an integer value. You need to transform it using sscanf, atoi, atol or similar function.



来源:https://stackoverflow.com/questions/4796662/how-to-take-integers-as-command-line-arguments

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