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I need your help with a small problem.

It there a possibility (in Java or an abstract solution) to transform a arbitrary String into an Integer with the property, that the alphabetically ordering does also work with the Integer?

Example: House < Tree < Zoo in alphabetically order.

I would like to transform those Strings into Integer, so that the ordering is also available. Important is, that the concrete Strings are not known before. That means it should be a unique transformation.

I hope someone can help me.

Regards, Michael

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Why? You can simply use String's compareTo(...) or compareToIgnoreCase(...) methods to sort Strings in a lexicographic order. – Bart Kiers Jul 2 '11 at 13:14
How do you expect the ordering to be different if, say, 'House' and 'Horse' were represented by integers? – IAbstract Jul 2 '11 at 13:15
Normally I would use this methods. But I use an external library for drawing trees. This lib has an compare-method which only use integer as representing the nodes. Therefore I needed this other way. Thanks for your comment :) – Michael Jul 2 '11 at 15:00

1 Answer 1

up vote 2 down vote accepted

No, it's not possible. Let's say you have two strings which represent 1 and 2. You can always make another string which would fit between them alphabetically e.g.

aa  = 1
ab  = 2
aaa = ???

If you know the strings you're dealing with have a maximum length, then this is possible. For example, suppose your string has length <= 3. Take a string abc, and convert each letter to a number, where A = 1, B = 2, ..., Z = 26. If the string is less than 3 characters long, fill in the blanks at the end with zeroes. Then the value is:

(a * 27 * 27) + (b * 27) + c


aa  = 756
ab  = 783
aaa = 757
share|improve this answer
develop a hash based on ASCII integer values and length??? not worth the effort IMO ... as @Bart mentions, the compareTo(...) etc. will sort in lexicographic order - I don't really see how anything else makes sense ... – IAbstract Jul 2 '11 at 13:17
You're right - ASCII values would probably be simpler. And it's also hard to see why you'd want to do this, when compareTo(...) exists. – thomson_matt Jul 2 '11 at 13:24
Thank you for your answer thomson_matt. That's what I was searching for :) Regards, Michael – Michael Jul 2 '11 at 14:58

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