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I'm expecting h here.But it is showing g. Why?

char *c="geek"; 
printf("%c",++*c);
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3  
did you try running it yourself? –  Bhavik Shah Nov 8 '12 at 9:02
    
@BhavikShah I did. ideone.com/bCLyDj ideone agrees with him. –  RedX Nov 8 '12 at 9:03
    
@JoachimPileborg : even I'm surprised i was expecting e or h since g+1=h –  Bhavik Shah Nov 8 '12 at 9:05
    
Yes.I tried it on codepad.org –  Amit Gupta Nov 8 '12 at 9:11

3 Answers 3

up vote 9 down vote accepted

You are attempting to modify a string literal, which is undefined behaviour. This means that nothing definite can be said about what your program will print out, or indeed whether it will print anything out.

Try:

char c[]="geek"; 
printf("%c",++*c);

For further discussion, see the FAQ.

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1  
What about this 'printf("%c",*(c++));' –  Amit Gupta Nov 8 '12 at 9:13
1  
@amitgupta Hello. StackOverflow is not a discussion site. If you observe something difficult to explain about printf("%c",*(c++));, please ask in another question, not in a comment to an existing answer. Don't forget to include the “observed behavior” and “expected behavior” as you did in this question, it is very useful. –  Pascal Cuoq Nov 8 '12 at 9:17
    
@Pascal Cuoq: Ok! I will keep that in mind. –  Amit Gupta Nov 8 '12 at 9:47

It's undefined behaviour since you are trying to modify the string literal

*c will give character 'g' but when you apply this ++*c means you are trying to do

*c=*c+1; which is modifying the string and its undefined in language standard

It's better to use char array to solve this since "string" literal are stored in readonly memory and modifying it causes this.

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The expression will be evaluated like this (++(*c)),

First the inner *C will be evaluated so it will print g. then the increment operator will be applied to the pointer variable C. After this print statement the pointer c will point to the next character 'e'.

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4  
No, see other answers. –  Luchian Grigore Nov 8 '12 at 9:05

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