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I have to code in C# a program to check which words in the given dictionary are anagrams of each other.

The program have to take this array of words {map, art, tar, pam, why} and the output should be map, pam, art, tar.

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8 Answers 8

Here's an article you might find useful.

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1  
+1: pretty cool find! –  naveen Feb 3 '11 at 7:06
    
@yetanothercoder, I've really had hard time finding it. Spent almost a day :-) –  Darin Dimitrov Feb 3 '11 at 7:09
    
me too googled there fast and saw you beat me to it :) –  naveen Feb 3 '11 at 7:28
using System;

namespace Anagram_Test
{
    class ClassCheckAnagram
    {
        public int check_anagram(char[] a, char[] b)
        {
            Int16[] first = new Int16[26];
            Int16[] second = new Int16[26];
            int c = 0;

            for (c = 0; c < a.Length; c++)
            {
                first[a[c] - 'a']++;
            }

            c = 0;

            for (c=0; c<b.Length; c++)
            {
                second[b[c] - 'a']++;
               
            }

            for (c = 0; c < 26; c++)
            {
                if (first[c] != second[c])
                    return 0;
            }

            return 1;
        }
    }
}

using System;

namespace Anagram_Test
{
    class Program
    {
        static void Main(string[] args)
        {

            ClassCheckAnagram cca = new ClassCheckAnagram();
            Console.WriteLine("Enter first string\n");
            string aa = Console.ReadLine();
            char[] a = aa.ToCharArray();

            Console.WriteLine("\nEnter second string\n");
            string bb = Console.ReadLine();
            char[] b = bb.ToCharArray();
            int flag = cca.check_anagram(a, b);

            if (flag == 1)
                Console.WriteLine("\nThey are anagrams.\n");
            else
                Console.WriteLine("\nThey are not anagrams.\n");
            Console.ReadKey();
        }

    }
}

This program shows how you can check if two given input strings are Anagrams or not in CSharp language. Anagrams are two different words or combinations of characters which have the same alphabets and their counts. Therefore a particular set of alphabets can create many permutations of Anagrams. In other words, if we have the same set of characters in two words(strings) then they are Anagrams.

We create a function that has input as a character array pair of inputs. When we get the two different sets of characters, we check the count of each alphabet in these two sets. Finally, we tally and check if the value of character count for each alphabet is the same or not in these sets. If all characters occur at the same rate in both the sets of characters, then we declare the sets to be Anagrams otherwise not.

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This won't work for input that contains capital ascii characters and won't work for any unicode input –  Edward Wilde Feb 3 '14 at 21:48

Check following script.

        var inputArr = new string[]{"mapa","art","tra","pam","why"};
        var outputList = new List<string>();
        for (int i = 0; i < inputArr.Length; i++)
        {
            for (int j = i+1; j<inputArr.Length ; j++)
            {                    
                char[] temp1 = inputArr[i].ToLower().ToCharArray();
                char[] temp2 = inputArr[j].ToLower().ToCharArray();
                if (temp1.Length != temp2.Length)
                    continue;
                else
                {
                    bool isAnnograms = true;
                    for (int k1 = 0, k2=temp1.Length-1; k1 < temp1.Length; k1++,k2--)
                    {
                        if (temp1[k1] == temp2[k2])
                            continue;
                        else
                            isAnnograms = false;
                    }
                    if (isAnnograms)
                    {
                        outputList.Add(new string(temp1));
                        outputList.Add(new string(temp2));
                        isAnnograms = false;
                    }
                }
            }
        }

outputList shows the list of Anagram

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Word is an anagram of each other if it has SAME number of certain letters. You can create a map of char->int and count the letters, then compare two maps. If they have identical elements, then those two words are anagrams.

Or:

Sort the characters in the each word (to temp variable) alphabetically, then compare what you got.

For homework, create BOTH algorithms!

:)

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Another approach would be counting sort.

Given two strings:

foo and oof. For the first string:

Dictionary<char, int> occurences = new Dictionary<char, int>();

foreach(var c in firstString){

   int result;
   if(occurences.tryGetValue(c, out result)){
     result++;
   }
   else
   {
     occurences.Add(c,0);
   }

}

Now you build your counts. Then you can iterate through the other string and decrement from each occurence. at the end, you should have the elements of your dictionary with values 0. and if a key is not in the dictionary, you return failing.

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I think you might find this example given in the MSDN quite useful: it's an adaptable LINQ solution.

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    /// <summary>
    /// This solutions works for all unicode string values.
    /// </summary>
    /// <remarks>2n time complexity. Dictionary insertion and retrieval will be minimal</remarks>
    public static bool Anagram(string valueA, string valueB)
    {
        if (string.IsNullOrWhiteSpace(valueA) || string.IsNullOrWhiteSpace(valueB))
        {
            return false;
        }

        if (valueA.Length != valueB.Length)
        {
            return false;
        }

        if (valueA.Equals(valueB))
        {
            return false;
        }

        var values = new Dictionary<char, int>();
        foreach (char key in valueA)
        {
            if (!values.ContainsKey(key))
            {
                values[key] = 1;
            }
            else
            {
                values[key] += 1;
            }
        }

        var uniqueCharacters = values.Keys.Count;
        for (var i = 0; i < valueB.Length; i++)
        {
            char item = valueB[i];
            if (!values.ContainsKey(item) || values[item] == 0)
            {
                return false; // too many occurances of char found
            }

            values[item] -= 1;
            if (values[item] == 0)
            {
                uniqueCharacters -= 1;

                if (uniqueCharacters == 0)
                {
                    return i == valueB.Length - 1;
                }
            }
        }

        return false;
    }

        [Test]
        public void Anagram3Test()
        {
            Assert.That(Anagram3(null, null), Is.False);
            Assert.That(Anagram3(string.Empty, null), Is.False);
            Assert.That(Anagram3("a", null), Is.False);

            Assert.That(Anagram3("ab", "ab"), Is.False);
            Assert.That(Anagram3("carthorses", "orchestra"), Is.False);
            Assert.That(Anagram3("orchestra", "carthorses"), Is.False);
            Assert.That(Anagram3("abc", "bce"), Is.False);

            Assert.That(Anagram3("orchestra", "carthorse"), Is.True);
        }
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I recently got a similar question in an interview and thought I'd throw my solution up here. This method works with Unicode characters and is case insensitive. It doesn't directly answer your question but could be used to verify if two strings in the array are anagrams.

    private static bool IsAnagram(String s1, String s2)
    {
        if (String.IsNullOrEmpty(s1)) throw new ArgumentNullException("s1");
        if (String.IsNullOrEmpty(s2)) throw new ArgumentNullException("s2");

        Dictionary<char, int> m1 = new Dictionary<char, int>();
        Dictionary<char, int> m2 = new Dictionary<char, int>();

        // get the length of the longer string, this is used for the for loop below
        int length = s1.Length > s2.Length ? s1.Length : s2.Length;

        // iterate through both strings at the same time
        // verifies that the index is not out of bounds before checking if the current character is a letter
        // adds character to dictionary if it doesn't exist and increments count
        for (int i = 0; i < length; i++)
        {
            if (i < s1.Length && Char.IsLetter(s1[i]))
            {
                if (!m1.ContainsKey(char.ToLower(s1[i])) m1.Add(char.ToLower(s1[i]), 0);

                m1[char.ToLower(s1[i])]++;
            }

            if (i < s2.Length && Char.IsLetter(s2[i]))
            {
                if (!m2.ContainsKey(char.ToLower(s2[i]) m2.Add(char.ToLower(s2[i]), 0);

                m2[char.ToLower(s2[i])]++;
            }
        }

        // if the two dictionaries don't match in length bail out now
        if (m1.Count != m2.Count) return false;

        // uses first dictionary to verify key and value exist in second dictionary
        foreach (char current in m1.Keys)
        {
            if (!m2.ContainsKey(current)) return false;
            if (m1[current] != m2[current]) return false;
        }

        return true;
    }
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