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I'm totally a newbie with PHP. Today I just got a problem that I can't know how to solve, even after searching google and digging SOF. It's the Anagram algorithm.

So basically, I understand the problem here : When user input a string, I split it and compare with my library (a given array), then I will have to join it by 2-3-...etc characters to compare again, it's exactly where I'm stuck now, I don't know how to join the elements of the array.

Here is the code that I'm implementing, and also a sample dictionary.

I have a self-made dictionary with these elements in the array $dict. And i have a form for users to input a string, the string inputted will be passed to the code below and declared as $anagram. I have to split the string inputted to compare with my dictionary. But I don't know how to join them like comparing 2 letters, 3 letters...etc...and so on, to the dictionary.

<?php

$dict = array(
'abde',
'des',
'klajsd',
'ksj',
'hat',
'good',
'book',
'puzzle',
'local',
'php',
'e');

$anagram = $_POST['anagram'];
//change to lowercase
$anagram = strtolower($anagram);

//split the string
$test = str_split($anagram);

//compare with $dict for the first split without joining
for ($i=0; $i<strlen($anagram); $i++) {
    if ($test[$i]==$dict[$i]) {
        echo $test[$i]."<br />";
    }
}

//problem: how to join elements of the array in the loops
//like user inputs "hellodes"
//after echo "e", how to join the elements like: h-e,h-l,h-l,h-o,h-d,h-e,h-s
//and then h-e-l,h-e-l,h-e-o...etc...
?>

I hope to get the algorith as simple as possible because I'm totally a newbie. And I'm sorry because my english is not so good. Best regards, Khiem Nguyen.

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found two links: sourceforge.net/projects/phpag and phpclasses.org/browse/file/12539.html –  Gerep May 17 '12 at 14:57
    
Thanks Gerep, I've read through them but it's like useless because it's too complicated that I cannot understand. I expect to have a simpler algorithm, by just joining elements of the string by using the loops and compare it with the library. –  khiemnn May 17 '12 at 15:03
1  
would it not be better to sort the anagram characters alphabetically and in the loop do the same for each dictionary word. if the anagram is a substring of the dictionary word then its an anagram –  gunnx May 17 '12 at 15:07
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5 Answers

up vote 10 down vote accepted

(I'm adding this as a separate answer, as it's a different way of dealing with the issue than I mentioned in my first issue)

This is a more complex way of working out which words in the dictionary are part of the word that you're looking for; I'll leave it up to the reader to work out how it works.

It's using factorisation to work out whether a word is an anagram of another. What it will do is assign each letter a unique, prime value; you can calculate the value of the letters in a given word by multiplying all the values together. CAT, for example, is 37 * 5 * 3, or 510. If your target word factors to the same number, you can be sure that the one is an anagram of the other.

I've ordered the prime numbers by how common they are in UK English, to keep the factors generated smaller.

<?php
function factorise ($word) {
        // Take a number, split it into individual letters, and multiply those values together
        // So long as both words use the same value, you can amend the ordering of the factors 
        // as you like

        $factors = array("e" => 2, "t" => 3, "a" => 5, "o" => 7, "i" => 11,
                        "n" => 13, "s" => 17, "h" => 19, "r" => 23, "d" => 29,
                        "l" => 31, "c" => 37, "u" => 41, "m" => 43, "w" => 47,
                        "f" => 53, "g" => 59, "y" => 61, "p" => 67, "b" => 71,
                        "v" => 73, "k" => 79, "j" => 83, "x" => 89, "q" => 97,
                        "z" => 101);

        $total = 1;

        $letters = str_split($word);

        foreach ($letters as $thisLetter) {
                if (isset($factors[$thisLetter])) {
                        // This will skip any non-alphanumeric characters.
                        $total *= $factors[$thisLetter];
                }
        }

        return $total;
}

$searchWord = "hasted";

$dict = array ("abde", "des", "klajsd", "ksj", "hat", "hats");

$searchWordFactor = factorise($searchWord);

foreach ($dict as $thisWord) {
        // Factorise each word that we're looking for
        // If the word we've just factored is an exact divisor of the target word, then all the 
        // letters in that word are also present in the target word
        // If you want to do an exact anagram, then check that the two totals are equal

        $dictWordFactor = factorise($thisWord);

        if (($searchWordFactor % $dictWordFactor) == 0) {
                print ($thisWord . " is an anagram of " . $searchWord . "\n");
        }
}

?>

For what it's worth, I think this is a much more elegant solution - you can speed it up by pre-calculating the values in your dictionary. If you go through and work out the factors for every word in your dictionary, you can do the searching direct in the database:

SELECT word FROM dictionary WHERE wordFactor='$factorOfThisWord'
share|improve this answer
    
Can I respectfully ask you to add comment for the code above? I don't know what the function factorise does. –  khiemnn May 18 '12 at 14:26
    
Actually, I deliberately left the comments out; it's not that complicated a piece of code, so you should be able to figure out what it's doing. Try adding lots of var_dump calls to see what variables are being set, and take it from there. –  andrewsi May 18 '12 at 14:38
    
Some of us are not looking to implement this, but would still like to understand how this works. Please post comments for our sake... –  josephtikva1 Jun 26 '12 at 22:06
    
Well, since you ask nicely.... –  andrewsi Jun 26 '12 at 23:53
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I can't quite follow what your code is doing; but if you want a simple anagram checker, the pseudocode would be something like:

get array of letters in my anagram
for each word in the dictionary
    get array of letters in this word
    for each letter in my anagram
        is this letter also in the word?
            if no, move on to the next word
    if we get here, it's an anagram

There are a couple of extra things you can do - you can make sure that both the anagram and the dictionary word are the same length (if they're not, they can't be anagrams); and you'll also need to figure out how to deal with letters that occur multiple times in the dictionary word but only once in the anagram word (the above code would report 'aa' as an anagram of 'a', for example)

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I'm sorry i think i put you guys in the middle of the trouble. From the start, there is a form for the users to input an arbitrary word, that explains why there is a $_POST there. @andrewsi I think your pseudo code has something wrong isn't it? Because you have to split the string user inputted, then join them back to compare, because maybe in the $dict just got something 1 letter only, like "a", "e",etc... –  khiemnn May 17 '12 at 15:40
    
Why do you need to join the string back together to compare them? The logic above will split both the search word and the dictionary words into arrays, and compare the contents of each array; it doesn't matter if the dictionary words is one letter - you'll end up with an array that just has one item in it. –  andrewsi May 17 '12 at 15:44
    
I have to split because of this : for example, my dictionary above contains 'hat' and 'e', and the string user inputs is 'hatedes'. The main goal is to print out the anagram matched with the dict, so this time it will print out 'hat' 'e' and 'des' because the dict contains it. If you compare the contents of each array, how if the array the user inputs is longer than the array of the dictionary? –  khiemnn May 17 '12 at 16:44
    
It doesn't matter how long the arrays are; you just need to check to make sure that the contents of the one match the contents of the other. So if the dictionary word is 'a', and the word entered is 'aardvark', you'd match because the a is there. It doesn't matter what the other letters in the word are. –  andrewsi May 17 '12 at 16:56
    
I didn't say anything about sorting - did you mean that for someone else? –  andrewsi May 17 '12 at 16:59
show 6 more comments

I am having trouble understanding your question, your explanation of your code and the code itself. Do you want to check whether an arbitrary word is an anagram of some word in the dictionary?

That's pretty simple - make an array of 26 integers. Go through the input word in lowercase, increase array[letter - 'a'] (or whatever the php equivalent is) by 1 for each letter.

Then go through the dictionary and for each word generate array_dict in the same way, and check for i = 0...25 if array[i] == array_dict[i]. If they are all the same, the words are anagrams. Set array_dict back to zeros after each word, of course.

Another approach would be to sort the letters in the strings, and simply compare the sorted strings. This one is good if you are allowed to modify/preprocess the dictionary - you keep your dictionary pre-sorted, and then just sort the input word and compare it to the dictionary words. The optimal solution would probably be to create an (in C# terms, I don't know php sorry)

Dictionary<string, List<string>>

and preprocess your dictionary by sorting each word, looking it up in the dictionary, if the list doesn't exist create it, and in either case add the word to the list. Then when the user inputs the word, you can sort it and return dictionary[sortedword] as the result - all anagrams found in basically constant time (nlogn on input string length, but constant on dictionary size).

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$dictionary = array("kayak");

$anagram = "kayak";

$anagramSorted = sortString($anagram);


foreach ($dictionary as $word)
{
    $wordSorted = sortString($word);
    if ($wordSorted == $anagramSorted)
    {
       echo 'true';
    }
}

function sortString($s)
{
    $chars = array();
    $length = strlen($s);
    for ($i=0;$i<$length;$i++)
    {
       $chars[] = $s[$i];
    }
    sort($chars);

    return implode("",$chars);
}
share|improve this answer
    
Thanks gunnx, but i have this to wonder about. For example my dictionary have the word 'hat', then you sort it, it become 'aht', the string the user inputs is 'ath'. So if you sort both of them, they match! But have a look, the word the user inputted does not match the dict (ath and hat). –  khiemnn May 17 '12 at 16:47
    
You sort the input word too, as shown in the code $anagramSorted –  gunnx May 17 '12 at 18:28
    
If you sort both the inputted string and the word in the dict, It's totally changed! Like my example above I can give you more : the dict has 'good', the user inputs 'doog', If you sort both, they totally match. But the inputted string does not match and it's not in the dict. –  khiemnn May 18 '12 at 2:46
    
sorry not sure what you mean but I see you've accepted an answer so hope it works for you. –  gunnx May 18 '12 at 21:30
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Try the string shuffle function?

str_shuffle ( string $str )

Here is some psuedocode:

Get random string from array
store string copy (Not shuffled)
string shuffle another copy
echo shuffled string
get users guess
parse guess (Remove illegal characters)
if parsed guess = string
    reward
else
    ?let user try again?
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