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There's no way to know how many arguments there are; the user can provide a list of indeterminate length.

I'm very bad with C. How can I read arguments out of the command-line array and into a new array of strings?

Frankly I don't even know how to make an array of separate strings, if I'm going to be honest. An example would be super-helpful.

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Can't say that I understand what you are asking for. Usually the first argument to main is an int that holds the number of commandline arguments. –  Jens Gustedt Apr 18 '12 at 15:06
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Do you mean getting arguments out of the command line? These are passed to your main() function in the argc and argv parameters. The former is an integer containing the count of the arguments and the latter is an array of pointers to chars (i.e. strings). –  Mathew Hall Apr 18 '12 at 15:07
    
Have you tried google("c command line arguments")? –  taskinoor Apr 18 '12 at 15:08
    
Oh, I'm an airhead. Of course argc tells me how many they gave. I'm tired; don't judge me. So what I'm uncertain of is how to read a number of the array-parameter's contents into a different array. The first one (argv[1]) is for one thing, but everything else goes together and I'd like to group it into a new array somewhere else. –  New2This Apr 18 '12 at 15:10
    
I can't imagine why, but someone might want to squirrel away these arguments as part of a log as to how the program was called. IMHO it's a good, albeit somewhat unique, question. –  octopusgrabbus Apr 18 '12 at 15:33

3 Answers 3

up vote 2 down vote accepted

Yes there is.

If you look at the main function's full prototype:

int main(int argc, char **argv, char **env)

argc: This is the argument counter, it contains the number of argument given by the user (Assumin the command is cd, entering cd home will give argc = 2 because the command name is always argument 0)

argv: This is the arguments values, it is an array of size argc of char* pointing to the arguments themselves.

env: This is a table (as argv) containing the environment when the program is called (through a shell for example, it's given with env command).

As for an example of making an array of things: Two ways are possible:

First, a fixed-length array:

char tab[4]; // declares a variable "tab" which is an array of 4 chars
tab[0] = 'a'; // Sets the first char of tab to be the letter 'a'

Second, a variable-length array:

//You cannot do:
//int x = 4;
//char tab[x];
//Because the compiler cannot create arrays with variable sizes this way
//(If you want more info on this, look for heap and stack memory allocations
//You have to do:
int x = 4; //4 for example
char *tab;
tab = malloc(sizeof(*tab) * x); //or malloc(sizeof(char) * x); but I prefer *tab for
//many reasons, mainly because if you ever change the declaration from "char *tab"
//to "anything *tab", you won't have to peer through your code to change every malloc,
//secondly because you always write something = malloc(sizeof(*something) ...); so you
//have a good habit.

Using the array:

Any way you choose to declare it (fixed-size or variable-size), you always use an array the same way:

//Either you refer a specific piece:
tab[x] = y; //with x a number (or a variable containing a value inside your array boundaries; and y a value that can fit inside the type of tab[x] (or a variable of that type)
//Example:
int x = 42;
int tab[4]; // An array of 4 ints
tab[0] = 21; //direct value
tab[1] = x; //from a variable
tab[2] = tab[0]; //read from the array
tab[3] = tab[1] * tab[2]; //calculus...
//OR you can use the fact that array decays to pointers (and if you use a variable-size array, it's already a pointer anyway)
int y = 21;
int *varTab;
varTab = malloc(sizeof(*varTab) * 3); // An array of 3 ints
*varTab = y; //*varTab is equivalent to varTab[0]
varTab[1] = x; //Same as with int tab[4];
*(varTab + 2) = 3; //Equivalent to varTab[2];
//In fact the compiler interprets xxx[yyy] as *(xxx + yyy).

Star-ing a variable is called dereferencing. If you don't know how this works I highly suggest you take a look.

I hope this is explained well-enough. If you still have questions please comment and I'll edit this answer.

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That's kind of perfect. –  New2This Apr 18 '12 at 15:30
    
Glad I could help. –  Eregrith Apr 18 '12 at 15:33
int main ( int argc, char *argv[] ) {

}

This is how you declare your main entry function. argc is the number of arguments input by the user INCLUDING the program name which is the first string in argv (argv[0] = program name).

and since argv is an already array of strings I suggest you use as this is what it is for. (Just don't forget to skip index 0)

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 int main(int argc, char *argv[]) 

That's what main should look like in your program. argc is the number of arguments passed into the program. argv is a list of strings which are the arguments passed into the program with argv[0] being the program name.

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