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Why is simple function will cause seg fault?

int main(int argc, char** argv) {
    FILE* file1;
    file1 = fopen(argv[argc + 1], "wt");
    fclose(file1);
}

Thanks in advance for any help!

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2  
Why are you accessing past the end of argv[]? –  Dan Fego Feb 28 '12 at 19:21
    
Because I want to run this program like './a.out file.txt'. –  Shen Feb 28 '12 at 19:24
    
argc is the number of elements in argv[], so argv has valid elements from 0 to argc-1. –  Dan Fego Feb 28 '12 at 19:27
    
@ShengchaoHuangfu: argv does contain exactly argc strings. The parameter 'file.txt' would be in argv[1] –  datenwolf Feb 28 '12 at 19:28
    
Oh, I got it. Thanks everyone. –  Shen Feb 28 '12 at 19:32

2 Answers 2

Your fopen() is failing to open the file, so fp is NULL, so fclose() is legitimately objecting by crashing. Check the return from fopen().

Also, by definition, argv[argc] == 0 and argv[argc+1] is beyond the end of the array. In practice, on Unix systems, it will often be the name=value of the first environment variable, but it is unlikely to be a valid filename and most certainly wasn't obtained legitimately.

If your program is invoked as:

./a.out file.txt

then the file name is argv[1]; the string pointed at by argv[0] is the name of the program, a.out give or take path information, and argc == 2 and argv[2] == 0. Don't forget to check that argc == 2 before trying to open the file.

Always check return statuses, especially from 'known to fail' function such as fopen(). And print the name that you're opening - it would have told you a lot about your problem - after checking that argc is set to a value you expect.

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You access two elements after the last element of argv. You also don't check the return value of fopen(), both could cause the segfault.

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