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I am programming in C in Unix, and I am using gets to read the inputs from keyboard. I always get this warning and the program stop running:

warning: this program uses gets(), which is unsafe.

Can anybody tell me the reason why this is happening?

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It is an unsafe function; buffer overflow attacks can be issued if programs use such functions that do not offer the possibility to check for buffer size –  INS Jun 4 '10 at 12:44
    
If I use scanf() instead of gets() it works, but i have to read 2 inputs from the keyboard and the program stops after i've read the 1st one. Why? this is the code: char user; char pass; printf("Iser ID"); scanf("%s",user); printf("Pin Code:"); scanf("%s",pass); –  Peiska Jun 4 '10 at 12:59
1  
@peiska: The program stops after the first one because it is waiting for you to enter the second one. You yourself put that second scanf in there. Why does it surprise you that the program "stops" then? –  AndreyT Jun 4 '10 at 15:23
    
user and pass need to be declared as arrays of char, not single chars. The "%s" conversion specifier expects the corresponding argument to have type char *, and that argument needs to point to a buffer that's long enough to hold the input string plus the 0 terminator (the undecorated "%s" conversion specifier exposes the same security flaw as gets() in that regard, but there's not enough room here to go into that in any detail). Change the declarations of user and pass to char user[N]; char pass[M] where N and M are the sizes you need for the two arrays. –  John Bode Jun 4 '10 at 16:03

4 Answers 4

up vote 5 down vote accepted

As mentioned in the previous answers use fgets instead of gets.

But it is not like gets doesn't work at all, it is just very very unsafe. My guess is that you have a bug in your code that would appear with fgets as well so please post your source.

EDIT Based on the updated information you gave in your comment I have a few suggestions.

  • I recommend searching for a good C tutorial in your native language, Google is your friend here. As a book I would recommend The C Programming Language

  • If you have new information it is a good idea to edit them into your original post, especially if it is code, it will make it easier for people to understand what you mean.

  • You are trying to read a string, basically an array of characters, into a single character, that will of course fail. What you want to do is something like the following.

    char username[256];
    char password[256];
    scanf("%s%s", username, password);
    

    Feel free to comment/edit, I am very rusty even in basic C.

EDIT 2 As jamesdlin warned, usage of scanf is as dangerous as gets.

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Your scanf usage is just as bad as gets. (Avoid using scanf too: c-faq.com/stdio/scanfprobs.html ) –  jamesdlin Jun 4 '10 at 18:14
    
@jamesdlin Thanks for the heads up, I didn't know about the buffer overflow problem, though I've run into other problems with scanf before. –  ponzao Jun 4 '10 at 21:30

gets is unsafe because you give it a buffer, but you don't tell it how big the buffer is. The input may write past the end of the buffer, blowing up your program fairly spectacularly. Using fgets instead is a bit better because you tell it how big the buffer is, like this:

const int bufsize = 4096; /* Or a #define or whatever */
char buffer[bufsize];

fgets(buffer, bufsize, stdin);

...so provided you give it the correct information, it doesn't write past the end of the buffer and blow things up.

Slightly OT, but:

You don't have to use a const int for the buffer size, but I would strongly recommend you don't just put a literal number in both places, because inevitably you'll change one but not the other later. The compiler can help:

char buffer[4096];
fgets(buffer, (sizeof buffer / sizeof buffer[0]), stdin);

That expression gets resolved at compile-time, not runtime. It's a pain to type, so I used to use a macro in my usual set of headers:

#define ARRAYCOUNT(a) (sizeof a / sizeof a[0])

...but I'm a few years out of date with my pure C, there's probably a better way these days.

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if you're dealing with an array of char, there's no need to divide by sizeof buffer[0] as sizeof (char) == 1 by definition, ie the function call can be simplified to fgets(buffer, sizeof buffer, stdin) –  Christoph Jun 4 '10 at 14:20
    
@Christoph: Are you certain that char will be one byte on all platforms, and/or that if it's (say) two bytes, that the buf size argument to fgets will be applied as chars rather than bytes ? Most docs I've seen have said bytes. I've been out the C game a while and I know that this stuff has gotten more complicated, so I was being a bit defensive in the code. But yes, @OP, if those assumptions are safe, then you can leave out the calculation with a char array (but not similar applications of this idiom with int, long, etc.). –  T.J. Crowder Jun 4 '10 at 16:24
    
@T.J. Crowder: The C standard defines char to be 1 byte. –  jamesdlin Jun 4 '10 at 18:12
    
@T.J. Crowder: see C99 section 3.7.1 which states that C characters are single-byte and 6.5.3.4 §3, which explicitly mentions that sizeof (char) is always 1 –  Christoph Jun 4 '10 at 18:42
    
It's C. not C++ so use #define or enum. –  Nyan Jun 5 '10 at 9:09

man gets says:

Never use gets(). Because it is impossible to tell without knowing the data in advance how many characters gets() will read, and because gets() will continue to store characters past the end of the buffer, it is extremely dangerous to use. It has been used to break computer security. Use fgets() instead.

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gets() is unsafe. It takes one parameter, a pointer to a char buffer. Ask yourself how big you have to make that buffer and how long a user can type input without hitting the return key.

Basically, there is no way to prevent a buffer overflow with gets() - use fgets().

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