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I am trying to initialize *argv with these values : test_file model result Can anyone help me how to directly initialize the argv instead of using command line. I am doing it like this:

*argv[]= {"test_file","model","output",NULL};

but its not working. I know its simple but i am new to programming. Can anyone help me?

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3  
Why do you want to do this ? –  cnicutar Aug 22 '12 at 15:52
    
I am doing this because i don't want to pass these arguments at run time fro terminal but directly inside program –  BlueBee Aug 22 '12 at 15:57
1  
Can you show who is accepting these arguments and how you're calling it ? Are you trying to pass some "default" arguments to main ? –  cnicutar Aug 22 '12 at 15:58
    
You can have a look at the code sum-predict.c here:code.metager.de/source/xref/libsvm/svm-predict.c These arguments are used for opening the test file model file and save an output –  BlueBee Aug 22 '12 at 16:05
    
@cnicutar: I sometimes use this kind of thing when developing in an IDE because I find having to change the IDE project settings for command line arguments to be more painful than modifying a line of code in the editor when I'm debugging and need to try out different command lines. –  Michael Burr Aug 22 '12 at 18:29

2 Answers 2

up vote 4 down vote accepted
char* dummy_args[] = { "dummyname", "arg1", "arg2 with spaces", "arg3", NULL };

int main( int argc, char** argv)
{
    argv = dummy_args;
    argc = sizeof(dummy_args)/sizeof(dummy_args[0]) - 1;

    // etc...

    return 0;
}

One thing to be aware of is that the standard argv strings are permitted to be modified. These replacement ones cannot be (they're literals). If you need that capability (which many option parsers might), you'll need something a bit smarter. Maybe something like:

int new_argv( char*** pargv, char** new_args) 
{
    int i = 0;
    int new_argc = 0;
    char** tmp = new_args;

    while (*tmp) {
        ++new_argc;
        ++tmp;
    }

    tmp = malloc( sizeof(char*) * (new_argc + 1));
    // if (!tmp) error_fail();

    for (i = 0; i < new_argc; ++i) {
        tmp[i] = strdup(new_args[i]);
    }
    tmp[i] = NULL;

    *pargv = tmp;

    return new_argc;
}      

That gets called like so:

argc = new_argv( &argv, dummy_args);
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Bu doing as you suggested i am receiving this error:warning: deprecated conversion from string constant to 'char*' –  BlueBee Aug 22 '12 at 16:18
    
@wishee77 - Yep, that's because (as Michael wrote), the standard argv strings are pointers to char*, which can be modified. The char* dummy_args[] = {}; produces an array of pointers to string constants, that is, const char *. You'll need to use strdup and malloc to create an array of mutable char* strings, but that seems over-the-top for this. –  Kevin Vermeer Aug 22 '12 at 16:42
    
More to the point, you're not modifying these strings (just reading them and printing them to stderr), so you can ignore this error if this is a one-time thing. –  Kevin Vermeer Aug 22 '12 at 16:44

Initialisation like that is only available at declaration time, and (presumably) you've declared argv as a parameter to your function (main I assume). You will have to assign each individually in this instance.

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Yes you are right i have already declared argv. Can you explain how to assign them individually. –  BlueBee Aug 22 '12 at 15:58
    
It's really hard to see what you actually intend to do with it without more code. I think explaining string assignments might directly answer your question but not be what you need to do, if that makes sense. –  moopet Aug 22 '12 at 16:02
    
code.metager.de/source/xref/libsvm/svm-predict.c I am using it for the main() function. The code is long that's why i am posting this link. The main function reads these files using argv. It works fine from terminal but i want to include it directly in the code. –  BlueBee Aug 22 '12 at 16:07
    
Then rather than assign things directly to argv, use @michael 's fix –  moopet Aug 22 '12 at 16:16
    
I did the way he said but now i am getting this new error:warning: deprecated conversion from string constant to 'char*'. How to solve this now? –  BlueBee Aug 22 '12 at 16:24

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