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I wish to have a file name as an argument to the C program. I tried all the possible ways in fopen something like the below.

fp = fopen(*argv[2], "r");

Also used "*argv[2]" but did not work. I want to know where I am going wrong so that I can use this correctly. Thanks!

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3 Answers 3

up vote 4 down vote accepted

It should be

fp = fopen(argv[2], "r");

Please be aware that argv[0] will contain your exe name(with path), other arguments which you pass will start from argv[1].

Refer to this for more details on using command line arguments in C.

In your main function if you are getting char **argv as the argument, the array subscripting argv[1] automatically turns it into a char * which is expected as an argument by fopen.

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Thanks it worked –  Shash May 29 '12 at 12:33
1  
+1, it would help to explain that the array subscripting (e.g. x[1]) is what takes the char** to the char* needed. –  user7116 May 29 '12 at 12:34
fp = fopen(argv[2], "r" ) 

is enough

argv is an array of character pointers. Indexing this array gives you the strings you've passed on the command line. You don't need further dereferencing with an additional *

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Thanks it worked –  Shash May 29 '12 at 12:33

fopen takes a char* as argument for the filename:

FILE *fopen(const char *path, const char *mode);

You just need to use it like:

fp = fopen(argv[2], "r"); // if 2nd argument passed is your filename
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Thanks it worked –  Shash May 29 '12 at 12:32

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