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I have a C program that parses a configuration file. The configuration file allows some wildchars in the format option=%any.

The problem is that when I use strcmp to compare the value, I get an illegal instruction error.

Sample program to illustrate this:

char str1[10];
sprintf(str1,"%any");

if(strcmp(str1,"%any") == 0) 
        printf("match\n");

return 0;

Output:

$ ./a.out
Illegal instruction

printf also throws this error.

With printf("%s\n",str1);

output is:

$ ./a.out
0x0.07fff00000001p-1022ny
Illegal instruction

I tried escaping, i.e using "\%any" instead of "%any" in sprintf; but this doesn't help.

In C++, with std::string == comparison, and printing using cout seems to be working fine.

Could some one please help me to find out how to do this with C.

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closed as too localized by H2CO3, Peter O., fancyPants, halex, casperOne Nov 8 '12 at 19:31

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
In every decent documentation of printf() is documented the escaping of %. Why not just read one of those documentations? –  user529758 Nov 8 '12 at 14:43
    
Should not be closed as too localized... asking how to escape % is not localized at all. –  AAA Nov 8 '12 at 18:09
    
@djechlin Not reading the documentation makes this too localized (to those who don't read the documentation). –  user529758 Nov 8 '12 at 18:20
    
@H2CO3 stackoverflow.com/faq#close no, that is a very liberal interpretation, not reading documentation does not constitute an "extremely narrow situation." Downvote as poor research effort per tooltip on downvote error is appropriate. –  AAA Nov 8 '12 at 18:24
    
@djechlin I'm hoping you didn't actually think I haven't yet read the FAQ. –  user529758 Nov 8 '12 at 18:25

2 Answers 2

up vote 6 down vote accepted

It comes from sprintf.

#include <stdio.h>

sprintf(str1, "%%any");

As Paul R. stated, you can use rather strcpy to don't worry about these formats.

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2  
Better still, use strcpy rather than sprintf. –  Paul R Nov 8 '12 at 14:41
1  
@PaulR Nope, rather strncpy() or snprintf(). One should really avoid using insecure functions (i. e. those ones which do not take a length argument). –  user529758 Nov 8 '12 at 14:43
3  
@H2CO3: I agree with snprintf, but not with strncpy. This function is not designed to null-terminated strings. –  md5 Nov 8 '12 at 14:44
1  
Or, sprintf(str1, "%s", "%any"). This variant works better when %any` is not a literal and makes it easy to add something to the string. Of course, it should also be snprintf. –  user4815162342 Nov 8 '12 at 14:44
2  
@H2CO3 strncpy is NOT a secure version of strcpy. Read this. –  Lundin Nov 8 '12 at 14:46

In this case you should probably write one of the following:

char str1[10] = "%any";
char str1[] = "%any"; // str1 has size 5
const char *str1 = "%any"; // str1 points to a string literal

%a in a formatting string is a hex floating point format. Aside from the fact you didn't supply a double argument (causing undefined behavior), this can write more than 10 bytes and hence overrun your buffer str1 (causing undefined behavior).

That's why you see 0x0.07fff00000001p-1022ny, it's a hex floating-point value 0x0.07fff00000001p-1022 followed by ny. Probably the illegal instruction error you get is because you smashed the return address stored on the stack, so when your function returns it jumps to an invalid address.

As a rule of thumb, if you use one of the printf functions and you don't specify at least one vararg after the format string, there's a reasonable chance that you're doing something wrong. The meaning of the f in printf is that the function does formatting, but you're using it when you don't have anything to format. So it's just a string copy with an extra opportunity to get it wrong.

If you want to use one of the printf family of functions to write a string, then you can avoid accidentally specifying a format you didn't mean like this:

sprintf(str1, "%s", SOME_STRING);

or to take advantage of length-checking:

#define STR1_SIZE 10
char str1[STR1_SIZE];

if (snprintf(str1, STR1_SIZE, "%s", SOME_STRING) >= STR1_SIZE) {
    // error-handling here
}

If you somehow know that SOME_STRING fits in your buffer, then you could omit the error-handling and/or use strcpy instead. But you look pretty stupid when you do that and get the lengths wrong.

You can also use sizeof(str1) in place of STR1_SIZE provided that str1 is an array (as it is here) rather than a pointer (as it is in most string-handling code).

I tried escaping, i.e using "\%any" instead of "%any" in sprintf; but this doesn't help.

Nice try, no cigar ;-)

The backslash is to escape special characters in a string literal. Since % doesn't mean anything special in a string literal, escaping it has no effect. The resulting string is five characters %, a, n, y, \0.

Later you pass that string to sprintf. Now the % has special meaning, and has a different way of escaping it: %%.

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