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Just as I compiled:

#include<stdio.h> 

main() 
{ 
print("hello\cworld"); 
}

I got this error/output:

warning:unknown escape sequence '\c'

C:\Users\Abc\Appdata\Local\Temp/ccQLcaaa.o(.txt+ox32):abc.c:undefined reference to 'print'

ld returned 1 exit status.

Can anyone of you deduce this error and tell me,in some words,what the compiler wants to say(especially "undefined reference" one)

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migrated from programmers.stackexchange.com May 22 '13 at 7:51

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3  
Please turn in your compiler's warnings! -Wall -Werror, and adding -std=c99 is a good idea too. –  Mat May 22 '13 at 6:32
    
Is it a printf ? Change print to printf –  Navnath May 22 '13 at 8:00

4 Answers 4

undefined reference to 'print'

print is not a function declared in stdio.h. Surely you meant printf.

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or puts for when you don't want any formatting –  ratchet freak May 22 '13 at 8:15

The messages you cite start with reference to "\c". This is called "escape sequence", because it should have some special meaning. However, "\c" is not known, like "\n" which means linefeed, "\r" (carriage return"), "\t" (tab) or others.

This is the "warning" you get, as soon as the compiler parses hello-world string. Later on it complains about print what others pointed out already.

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The compiler creates the object code files from the source code.

The linker creates the executable that can be ran.

If you receive a linker error, it means that your code compiled OK, but some functions or libraries that is needed cannot be found. In your case the linker prevent the executable to be created since print is not a standard function that's part of stdio.h, so it can't find a reference to it, exactly like it says. As others told you, you probably want to printf and not to print Turning compiler's error on should really help you.

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If you are trying to print the string hello\cworld without warning then you'll have to do the following

printf("hello\\cworld");

Else, if you were trying to figure out whether \c would do anything special, then it does not. The compiler encounters a \ and thinks that the next character will have a special meaning and hence performs that way. It works for \n , \r and so on, but when the compiler sees \c he tries to tell you that either you have written \c by mistake, and hence warns you.

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