1

This question already has an answer here:

While using gets() in my code, the compiler shouts

warning: the 'gets' function is dangerous and should not be used.`

and

warning: ‘gets’ is deprecated (declared at /usr/include/stdio.h:638)
[-Wdeprecated-declarations]

Any specific reasons?

marked as duplicate by P.P. c Jun 17 '15 at 11:53

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • Use fgets with stdin instead. As the message says, gets is dangerous, since it provides no protection against buffer overflow.. – Weather Vane Jun 17 '15 at 11:49
  • 1
    The literal answer to "Why does the compiler emit a warning here?" is "Because the compiler's programmers made it do that." – immibis Jun 17 '15 at 12:12
3

Can someone explains why the compiler shows like that…?

Yes, because, the gets() function is dangerous, as it suffers from buffer overflow issue. Anyone should refrain from using that.

Also, regarding the warning with -Wdeprecated-declarations, gets() is no longer a part of C standard [C11 onwards]. So, C libraries compilers are not bound to support that any more. It can be removed in future. To warn the developer about the potential pitfall and to discourage the further usage of gets(), the compiler## emits the warning message.


(##) To be pedantic, the warning is not generated by the compiler (gcc) all by itself, rather caused by a pragma or attribute on the implementation of gets() in the glibc that causes the compiler to emit the warning. [Courtesy, FUZxxl, from the dupe answer.]

2
  1. gets may cause buffer overflow, since it don't consider length of the data. More details are here : gets() function in C

  2. deprecated message means, this function is marked as deprecated and may remove from standard in later time. So discouraging user to use it.

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