Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

How does a T9 dictionary work? What is the data structure behind it. If we type '4663' we get 'good' when we press down button we get 'gone' then 'home' etc...

EDIT: If the user types in 46 then it should show 'go' and when pressed down arrow should show 'gone' etc...

share|improve this question

5 Answers 5

It can be implemented in several ways, one of them is Trie. The route is represented by the digits and the nodes point to collection of words.

It can be implemented using nested hash tables as well, the key of the hash table is a letter and on every digit the algorithm calculates all possible routes (O(3^n) routes).

share|improve this answer
    
+1 for mentioning Trie. –  Jack Apr 4 '10 at 13:48
1  
Could you detail a bit the nested hash tables solution? I don't understand why a nested hash table is better than a simple hash table on the entire word (using for example a multimap) which would still be O(3^n) average case. –  Wernight Feb 10 '11 at 19:22
    
+1 for Trie, which to me is an acceptable and elegant solution. –  eeerahul Jan 12 '12 at 10:21

4663

translates to

{G,H,I}{M,N,O}{M,N,O}{D,E,F}

T9 works by filtering the possibilities down sequentially starting with the first possible letters. So the first step in your example will be to filter the dictionary list to all words beginning with G, H, or I. Next step, take that list and filter the second letters by M, N, O. And so on...

share|improve this answer
    
Thanks for elaborate description. This clears my doubt. –  bibbsey Jul 28 '13 at 11:40

I think that T9 is using a bit-map-based Trie. On the first level there is a 32-bit (I assume they expanded to 32) word where each bit represents a letter. All letters that are valid as start letters for a word have their bit set.

In the next level there is one 32-bit map for each of those bits that were set in the previous level. In these maps each bit is set if the corresponding letter is valid as a second letter in a word, with the starting letter decided by the first level.

The structure then continues. Using one-bit-per-letter makes a very efficient storage. The addressing scheme however must be challenging. There might also be some kind of optimization using the above schema for short words while using something else for longer words.

share|improve this answer

I guess, as those before that T9 uses a trie, where the links are represented by a bitmap (1 bit per letter). This is called a succinct data structure, as Steve Hanov explains very nicely:

http://stevehanov.ca/blog/index.php?id=120

share|improve this answer

I'd probably do it by starting with a dictionary, then (for each word) push the word onto a list keyed by the numbers that could form the word.

Then, you'll probably need to sort the resulting lists in some fashion, so more likely words appear before less likely words (if you have the space, I'd also include a small area for a counter, so we can incrementally re-sort these OR simply mov ethe last used to the front of the suggestion list, so we, over time, tend towards giving the user a better answer).

That way, when you have 4663 as an input, you can quite simply retrieve the relevant linked list wit ha roughly O(1) hash table lookup.

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.