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int palindrome(char * str){
char * pt1 = str;
char * pt2 = str;
    if(pt1==NULL){
        std::cout<<"\n invalid string";
        return -1;
    }
    while(*pt2 != '\0')
        pt2++;
    pt2--;
    while(pt1 < pt2){ // why does this work correctly ?
        if(*pt1 != *pt2){
            std::cout<<"\n not palindrome";
            return 0;
        }
        else{
        pt1++;
        pt2--;
        }
    }
std::cout<<"\n yes palindrome";
return 1;
}

hello
this is a function to check if the passed char* points to a palindrome/not.
here two pointers
pt1 - starts from begining moves fwds
pt2 - starts from end moves backwards
now i do not want them to continue once they meet in the middle..
SO i check if always pt1 why? i am not comparing *pt1 vs *pt2.
what values does it compare ?

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5 Answers

up vote 2 down vote accepted

These are the three concepts leading this block of code executing correctly:

  1. Your pointers are operating on a continuous block of memory (the input string)
  2. The pointer 'values' are addresses (basically just arbitrary numbers allocated at runtime)
  3. C allocates addresses for continuous memory in a well defined, increasing manner

Due to the fact that pointers are really just integers (such as 0x000001, 0x000002 etc) you can use comparison operators on them.

Lastly due to the fact that the memory for the string will be continuous and increasing, there is a level of abstraction that you can make: Pointers further along in memory will evaluate as greater than addresses earlier in memory.

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s/continuous/contiguous/g :) +1 –  Billy ONeal Jan 22 '13 at 19:18
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A pointer points to a place in memory. The value of a pointer is thus a memory address. For a given memory allocation, every byte in it is contiguous and has the next higher address assigned to it (0x0000, 0x0001, 0x0002 and so on) So, when a pointer is greater than another pointer and both pointers belong to the same memory allocation, it is further along in said allocation.

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3  
Nitpick: the standard doesn't require that pointers actually be memory addresses; though one could say that the requirements placed upon them imply a model of memory addresses. A conformant implementation could store segment offsets or something like that in pointers too. But +1. –  Billy ONeal Jan 22 '13 at 2:20
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Pointers model memory addresses. Because the first pointer points somewhere in memory before the second, the less than comparison succeeds.

They don't continue when they meet in the middle because when a == b, then a < b must be false.

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There two kinds of comparison you use in your code, pt1 < pt2 and *pt1 != *pt2. In the first case, you compare memory addresses, i.e. where in the string you are right now. Once pt1 >= pt2, your pointers are crossing or will have crossed. In the second case, you dereference pointers using the *-operator and compare the values these pointers point to.

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isn't method 1 better? this is because there is a possibility that values the pointers point to could be same along the same memory line. Am i right? –  lakesh Jan 22 '13 at 3:17
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Pointers are addresses. When you compare two pointers it's comparing their addresses, which is wrong for your use. You'll need to maintain an offset or other variables of the integer kind to figure out when the positions meet.

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Completely false. Comparing pointers this way has completely well defined behavior. –  Billy ONeal Jan 22 '13 at 2:20
    
You'd probably be much better off literally "consuming" the string from both ends. That is actually taking a character off, alternating between the start and the end of the string. Then you don't need to compare at all, because the string will have become fully consumed (empty) when they meet and the loop terminates. –  chris Jan 22 '13 at 2:22
    
There is no technical advantage to using offset integers versus using pointers for this application. If you want to say "better" you have to show a reason why. –  Billy ONeal Jan 22 '13 at 2:23
    
@chris, also "consuming" wouldn't be appropriate, there is no reasonable way to "take characters off" at each end. Moving the pointers is the most direct way of implementation. –  s.bandara Jan 22 '13 at 2:25
1  
@KimKardashian, yes, most likely you would do this with a "cast" between pointer types. Related to that, there is also a void pointer (void *) which could take the value of pt1, for example. You can't dereference it, though, as it's not pointing to anything of a type. –  s.bandara Jan 22 '13 at 2:47
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