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I have a string as input and have to break the string in two substrings. If the left substring equals the right substring than do some logic.

How can I do this?

Sample:

public bool getStatus(string myString)
{

}

Example: myString = "ankYkna", so if we break it into two substring it would be: left-part = "ank". right-part = "ank" (after reversal).

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What's your actual problem here? Just use myString.SubString(). –  ken2k Mar 20 '12 at 16:23
    
@ken2k how to break a string into two equal substring. –  ankur Mar 20 '12 at 16:24
1  
So you just want to check if the string is an anagram? –  Thomas Levesque Mar 20 '12 at 16:25
    
@ThomasLevesque yup. –  ankur Mar 20 '12 at 16:26
3  
Or just a palindrome? –  cadrell0 Mar 20 '12 at 16:27

14 Answers 14

up vote 5 down vote accepted
public static bool getStatus(string myString)
    {
        string first = myString.Substring(0, myString.Length / 2);
        char[] arr = myString.ToCharArray();
        Array.Reverse(arr);
        string temp = new string(arr);
        string second = temp.Substring(0, temp.Length / 2);
        return first.Equals(second);
    }
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Just for fun:

return myString.SequenceEqual(myString.Reverse());
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Using LINQ and off course far from the best solution

var original = "ankYkna";
var reversed = new string(original.ToCharArray().Reverse().ToArray());
var palindrom = original == reversed;
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C#
A single line of code using Linq

    public static bool IsPalindrome(string str)  
    {
        return str.SequenceEqual(str.Reverse());
    }
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You don't need backticks around a code block that's indented. They're for inline code. –  khagler Dec 16 '12 at 3:20
    
It was my first code posted on Stackoverflow. I just thought they put it. like marking the region of the code. Thanks anyways –  Ernesto Cejas Dec 16 '12 at 3:47

//This c# method will check for even and odd lengh palindrome string

public static bool IsPalenDrome(string palendromeString)
        {
            bool isPalenDrome = false;

            try
            {
                int halfLength = palendromeString.Length / 2;

                string leftHalfString = palendromeString.Substring(0,halfLength);

                char[] reversedArray = palendromeString.ToCharArray();
                Array.Reverse(reversedArray);
                string reversedString = new string(reversedArray);

                string rightHalfStringReversed = reversedString.Substring(0, halfLength);

                isPalenDrome = leftHalfString == rightHalfStringReversed ? true : false;
            }
            catch (Exception ex)
            {
                throw ex;
            }

            return isPalenDrome;
        }
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 int halflength = (myString.length - 1) / 2;
 return myString.substring(0 , l) == myString.Substring(l + 1 , l);
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int length = myString.Length;
for (int i = 0; i < length / 2; i++)
{
    if (myString[i] != myString[length - i - 1])
        return false;
}
return true;
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protected bool CheckIfPalindrome(string text)
{
    if (text != null)
    {
        string strToUpper = Text.ToUpper();
        char[] toReverse = strToUpper.ToCharArray();
        Array.Reverse(toReverse );
        String strReverse = new String(toReverse);
        if (strToUpper == toReverse)
        {
            return true;
        }
        else
        {
            return false;
        }
    }
    else
    {
        return false;
    }
}

Use this the sipmlest way.

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If you just need to detect a palindrome, you can do it with a regex, as explained here. Probably not the most efficient approach, though...

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That is non-trivial, there is no built in method to do that for you, you'll have to write your own. You will need to consider what rules you would like to check, like you implicitly stated you accepted reversing of one string. Also, you missed out the middle character, is this only if odd length?

So you will have something like:

if(myString.length % 2 = 0)
{
     //even
     string a = myString.substring(0, myString.length / 2);
     string b = myString.substring(myString.length / 2 + 1, myString.lenght/2);

     if(a == b)
           return true;

     //Rule 1: reverse
     if(a == b.reverse()) //can't remember if this is a method, if not you'll have to write that too
           return true;

etc, also doing whatever you want for odd strings

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This C# method will check for even and odd length palindrome string (Recursive Approach):

public static bool IsPalindromeResursive(int rightIndex, int leftIndex, char[] inputString)
{
    if (rightIndex == leftIndex || rightIndex < leftIndex)
        return true;
    if (inputString[rightIndex] == inputString[leftIndex])
        return IsPalindromeResursive(--rightIndex, ++leftIndex, inputString);
    else
        return false;            
}
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public Boolean IsPalindrome(string value)
{
   var one = value.ToList<char>();
   var two = one.Reverse<char>().ToList();
   return one.Equals(two);
}
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This way is both concise in appearance & processes very quickly.

Func<string, bool> IsPalindrome = s => s.Reverse().Equals(s);
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public static bool IsPalindrome(string value)
{
int i= 0;
int j = value.Length - 1;
while (true)
{
    if (i> j)
    {
    return true;
    }
    char a = value[i];
    char b = value[j];
    if (char.ToLower(a) != char.ToLower(b))
    {
    return false;
    }
    i++;
    j--;
}
}
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