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why does the following program:

char *s, *p, c;

s = "abc";

printf(" Element 1 pointed to by S is '%c'\n", *s);
printf(" Element 2 pointed to by S is '%c'\n", *s+1);
printf(" Element 3 pointed to by S is '%c'\n", *s+2);
printf(" Element 4 pointed to by S is '%c'\n", *s+3);
printf(" Element 5 pointed to by S is '%c'\n", s[3]);
printf(" Element 4 pointed to by S is '%c'\n", *s+4);

give the following results?:

 Element 1 pointed to by S is 'a'
 Element 2 pointed to by S is 'b'
 Element 3 pointed to by S is 'c'
 Element 4 pointed to by S is 'd'
 Element 5 pointed to by S is ' '
 Element 4 pointed to by S is 'e'

How did the compiler continue the sequence? and why s[3] returns an empty value?

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5  
Precedence. You want *(s+1) etc. But *(s+4) would be undefined behaviour. –  Daniel Fischer May 11 '13 at 14:53
    
s[3] returns the 4'th character (they're indexed from 0), which is a string terminating \0 character. –  Joachim Isaksson May 11 '13 at 14:55
    
s[3] is \0, so it shows none –  bash.d May 11 '13 at 14:55
1  
I'm skeptical of that Element 5 output - there should be no space between the quotation marks. –  Mark Reed May 11 '13 at 14:56
    
By the way, if you're coding in C++ and not plain C - don't use printf. std::cout (from header file <iostream>) is safer, easier to use and less error-prone. –  Violet Giraffe May 11 '13 at 14:57

3 Answers 3

It doesn't continue the sequence. You are doing *s+3 which first dereferences s to give you the char with value 'a', and then you are adding on to that char value. Adding 3 to 'a' gives you the value of 'd' (at least in your execution character set).

If you change them to *(s+1) and so on, you'll get the undefined behaviour which is expected.

s[3] accesses the last element of the string which is the null character.

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got it! thanks! –  user1929226 May 11 '13 at 14:57
4  
One tip - "abc" often isn't a good test string - it's too easy to get the expected result (or something confusingly close) accidentally from incorrect code. –  Steve314 May 11 '13 at 15:05

Notice that *s is a character, which is essentially a number. Adding another number to it, results in a character with a higher ASCII value. The s[3] is empty, because you only assigned "abc" to entries 0,1,2 respectively. In fact the 3rd character is the '\0' character.

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What you have is a pointer to an array of char, it is the same as if you wrote this

char s[] = { 'a', 'b', 'c', '\0' };

The '\0' at the end is the null character, this is used to say where the array of char ends (which is what s[3] gives).

*s is the same as s[0], *s[1] is the same as s[1], and so on.

When you write *s+1 you are saying add 1 to the address *s is pointing to (which is why *s is called a pointer). Since a char is 1 byte in length this works out fine, but if you had a data type that was larger you would want to increment by the length of that data type (e.g. int is 4 bytes in length). See here for more info: http://www.cplusplus.com/doc/tutorial/variables/

When you have an array, it is much easier (to read and use) if you just refer to values using the s[1] type notation instead of pointer arithmetic. See here for more info: http://www.cplusplus.com/doc/tutorial/arrays/

Now on to way s[4] gives the value of 'e'. What has happen is that you are now reading dirty memory. You are access memory that you have not initialized to a value. This called a buffer overflow (see here for more info: What is a buffer overflow and how do I cause one?). To avoid buffer overflows you either need to keep track of the length of the array or use a data structure which keeps track of the length for you. Steve Yegge wrote a very interesting blog post about this topic: http://steve-yegge.blogspot.com/2008_12_01_archive.html

If you still have question look over this web page on Character Sequences in C++: http://www.cplusplus.com/doc/tutorial/ntcs/

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