Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm trying to determine if a phrase is a palindrome (a word that is the same from left to rigth) or not but i can't make it work. What's wrong?, i can't use pointers or recursion or string type variables

#include <stdio.h>

#include <string.h>

int main()

{

 int i,j = 0,length;
 char space = ' ';
 char phrase [80],phrase2[80],phrase3[80];

 printf("Give me the phrase: ");
 gets(phrase);
 length = strlen(phrase);

 for(i =0; i <= length - 1; i++)
 {
  if(phrase[i] != space)    //Makes the phrase without spaces
  {
   phrase2[i] = phrase[i];
   j++;
  }
 }

 for(i = length -1; i >= 0;i--)
 {
  if(phrase[i] != space)    //Makes the phrase backwards an without spaces
  {
   phrase3[j] = phrase[i];
   j++;
  }
 }

 length = strlen(phrase2);

 for(i =0; i <= length -1;i++)      //Compare the phrases to know if they are the same
 {
  if(phrase2[i] != phrase3[i])
  {
   printf("It's not a palindrome\n"); 
   return 0;
  }
 }
 printf("It's a palindrome\n");
 return 0; 
}
share|improve this question
    
Any error messages? What's your sample input and output? – BoltClock Oct 14 '10 at 1:04
1  
you need to reset j – Anycorn Oct 14 '10 at 1:06
    
I always get the "It's not a palindrome " message, An example of my input would be never odd or even. The phrase2 its supposed to get neveroddoreven and the phrase3 the word in backwards without the spaces wich is the same neveroddoreven – Enrique Oct 14 '10 at 1:09
1  
i love the C homework assignment that says 'you may not use pointers or recursion' - cos of course that would be too easy or maybe not a useful pair of skills. – pm100 Oct 14 '10 at 22:32

Try this:

 for(i =0, j=0; i <= length - 1; i++)
 {
  if(phrase[i] != space)    //Makes the phrase without spaces
  {
   phrase2[j] = phrase[i];
   j++;
  } 
 }

 for(i = length -1, j = 0; i >= 0;i--)
 {
  if(phrase[i] != space)    //Makes the phrase backwards an without spaces
  {
   phrase3[j] = phrase[i];
   j++;
  }
 }

 length = j;

Update

In response to Praetorian's post here's the code to do it without copying the string.

#include <stdio.h>
#include <string.h>

int main()
{
  int i, j, length;
  char space = ' ';
  char phrase[80];

  printf("Give me the phrase: ");
  gets(phrase);
  length      = strlen(phrase);

  for( i = 0, j = length - 1; i < j; i++, j-- ) {
    while (phrase[i] == space) i++;
    while (phrase[j] == space) j--;
    if( phrase[i] != phrase[j] ) {
      printf("It's not a palindrome\n");
      return 0;
    }
  }

  printf("It's a palindrome\n");
  return 0; 
}
share|improve this answer

Before the 2nd loop you want to set j=0. It should work after that.

PS: If you debugged by printing out your three strings, you would've figured it out in a matter of minutes. When you don't know what goes wrong, print out the values of variables at intermediate steps, so you know where your problem occurs and what it is.

share|improve this answer

Your question has already been answered by others but I'm posting this code to show that it is not necessary to make the phrase3 copy to hold the reversed string.

#include <stdio.h>
#include <string.h>

int main()
{

  int i, j, length, halfLength;
  char space = ' ';
  char phrase1[80], phrase2[80];

  printf("Give me the phrase: ");
  gets(phrase1);
  length      = strlen(phrase1);

  for( i = 0, j = 0; i <= length; ++i ) {
    if( phrase1[i] != space ) {    //Makes the phrase1 without spaces
      phrase2[j++] = phrase1[i];
    }
  }

  length      = strlen(phrase2);
  halfLength  = length / 2;

  for( i = 0, j = length - 1; i < halfLength; ++i, --j ) {
    if( phrase2[i] != phrase2[j] ) {
      printf("It's not a palindrome\n");
      return 0;
    }
  }

  printf("It's a palindrome\n");
  return 0; 
}
share|improve this answer
    
It's also possible to do it in a single loop without copying the string at all. You just have to check for spaces and adjust the indexes appropriately as you parse the string from each end. – Andrew Cooper Oct 14 '10 at 22:22

This is what I came up with:

#include <stdio.h>
void main() {
char a[50],b[50];
int i=0,j,ele,test=0,x;
while((a[i]=getchar())!='\n') {
if(a[i]!=' ' && a[i]!=',') //do not read whitespaces and commas(for palindromes like "Ah, Satan sees Natasha")
i++;
}
a[i]='\0';
ele=strlen(a);
// Convert string to lower case (like reverse of Ava is avA and they're not equal)
for(i=0; i<ele; i++)
if(a[i]>='A'&&a[i]<='Z')
a[i] = a[i]+('a'-'A');
x = ele-1;
for(j=0; j<ele; j++) {
b[j] = a[x];
x--;
}
for(i=0; i<ele; i++)
if(a[i]==b[i])
test++;
if(test==ele)
printf("You entered a palindrome!");
else
printf("That's not a palindrome!");
}

Probably not the best way for palindromes, but I'm proud I made this on my own took me 1 hour :( lol

share|improve this answer

Why not use a std::stack? You will need two loops, each iterating the length of the input string. In the first loop, go through the input string once, pushing each character ont the stack. In the second loop, pop a character off the stack and compare it with the character at the index. If you get a mismatch before the loop ends, you don't have a palindrome. The nice thing with this is that you don't have to worry about the even/odd length corner-case. It will just work.

(If you are so inclined, you can use one stack (LIFO) and one queue (FIFO) but that doesn't substantially change the algorithm).

Here's the implementation:

bool palindrome(const char *s)
{
    std::stack<char> p; // be sure to #include <stack>

    for(int i = 0; s[i] != 0; i++)
        p.push(s[i]);

    for(int i = 0; s[i] != 0; i++)
    {
        if(p.top() != s[i])
            return false; // not a palindrome!

        p.pop();
    }    

    return true;
}

Skipping spaces is left as an exercise to the reader ;)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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