0

I was trying codes to observe the segfault error. But neither did IDE give me a warning called a core dump.

    char *str = "soafasfafafasfmething and then foo";
    printf("%s", str[19]); 
/// << Segfault here<br />
    

http://imgim.com/image/u.png

http://imgim.com/image/u1.png

http://imgim.com/image/u2(2).png

http://imgim.com/image/u4.png

http://imgim.com/image/online.png

I tried to show you the outputs in codeblocks.

The first 4 images are of codeblocks. It will almost complete such a critical error without even showing a warning.

I can get the error I want to see when I try the same codes in the online compiler. How is this possible? I am using Windows, what exactly is the source of the problem?

5
  • 4
    Your code has undefined behavior. There's no guarantee that this will cause a segfault. – Barmar May 4 at 4:42
  • str[19] is a character - not the address / point to character required for the printf. – Mr R May 4 at 6:37
  • If you are using gcc then you got a warning about passing the wrong type to printf. Please ensure that you compile with -Werror when you are a beginner. – Lundin May 4 at 8:49
  • 1
    The image links are broken. Please remove or fix them. – Michael Rovinsky May 4 at 11:38
  • DO NOT post images of code, data, error messages, etc. - copy or type the text into the question. How to Ask – Rob May 5 at 10:18
0

There are some confusion here. Compilers don't generate segfault messages. It's like:

  • Compiler/linker generates errors and warnings

  • Segfault/coredump happens when the program is executed, i.e. at run time.

You are probably getting confused because many IDEs and online compilers put the two things into a single step, i.e. they compile (and link) and (in the absent of compiler errors) execute in one step.

Your compiler should generate a warning like:

format '%s' expects argument of type 'char *', but argument 2 has type 'int' [-Wformat=]

If your IDE didn't do that, you need to figure out how you increase the warning level of the IDEs compiler. It seems you are using gcc so at least use the compiler flags -Wall -Wextra -Werror.

Maybe you can find help here: How to add compiler flags on codeblocks

The segfault comes at run time because you pass an integer (i.e. s[19]) to printf. You should have passed a pointer, i.e. just s or perhaps &s[19] depending on what you want to print.

Your question:

How is this possible? I am using Windows, what exactly is the source of the problem?

Your bug: You wanted to pass a pointer to the string but instead you passed an integer. That is actually valid C code! An integer can always to converted to a pointer so the compiler can't generate an error. You must make sure that the integer actually equals an address where a string is stored but the compiler can't know whether that is true, so - again - it can't generate an error.

For historycal reasons compilers like gcc doesn't even generate a warning when you use an integer as pointer. And why should they? It's valid C code.

Well, bugs like yours have turned out to be very common. So today the compilers detects such code and give you a warning. It kind of ask you: "Are you really sure you want to do this".

But in order not to break old code bases, the warning is not generated by default. You need to use appropriate compiler flags to turn on warning-generation for code like yours. As already mentioned something like: gcc -Wall -Wextra -Werror ...

4
  • -Wall -Wextra -Werror for beginners. If everyone did that, we'd reduce the FAQ questions posted on SO drastically. – Lundin May 4 at 8:50
  • @Lundin Agree, I should have added -Werror. I'll update now... done – 4386427 May 4 at 8:51
  • Thank you for the answer. I added the flags you asked for. "format '% s' expects argument of type 'char *', but argument 2 has type 'int' [-Wformat =]" I get a return like this. 2. When I say build and run once, it does not give such a warning, I guess this is normal. Isn't it more positive that it warns direct segmentation fault in the online compiler, isn't it more positive, I'm using the 20.03 version, as if it was showing as a direct warning before. – halfcoder May 4 at 14:18
  • @halfcoder The compiler never - like in never ever - warns about segmentation fault. Please read my answer again – 4386427 May 4 at 14:23

Not the answer you're looking for? Browse other questions tagged or ask your own question.