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I want to encode an id to unique strings containing numbers and uppercase letters, like this:

40 => A5TY8


41 => Y7HEG

Where the output for 41 is completely different from 40's A5TY9.

How to do this?

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How many ID numbers are you anticipating? Is it feasible to make a list just once, or do you need to be able to generate on the fly? –  Floris Jan 21 '13 at 18:18
I want generate it on the fly. I want 2 functions encode and decode, so it can't be md5 or sha. It can be billions of ids so generating once and using it - it's not the solution. –  mitch Jan 21 '13 at 18:23
Do they have to be unique and short? If so you need some kind of look-up table. –  tadman Jan 21 '13 at 18:31
Not necessarily short. Unique, decodeable –  mitch Jan 21 '13 at 18:32
@Pafjo I did it. And I have: TA => 494 T0 => 495 TD => 496 TW => 497 T3 => 498 T9 => 499 –  mitch Jan 21 '13 at 19:31

1 Answer 1

I wanted to tell you all about digests.. but seeing your comment I think you want something like this

or better yet a more generic

you can also encode it with Base64 which is reverisble

note that you might want to use urlsafe_encode64 so you won't have /n and stuff in there

so you can do something like

require "base64"

original = 41

converted = Base64.urlsafe_encode64("41")
converted_for_display ='^A-Za-z0-9', '')
# => "NDE"

reversed = Base64.urlsafe_decode64(converted)

you can also encrypt the number which should make it unique and reversible, but slower and with more hassle but you can pick whatever key you want

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Thank you, but solution numbers with base are similar, NDE, NDA. The most interesting is using integer-obfuscator and then use base. –  mitch Jan 21 '13 at 18:50
ALPHABET = "ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789".split("").shuffle.join def bijective_encode(i) return ALPHABET[0] if i == 0 s = '' base = ALPHABET.length while i > 0 s << ALPHABET[i.modulo(base)] i /= base end s.reverse end def bijective_decode(s) i = 0 base = ALPHABET.length s.each_char { |c| i = i * base + ALPHABET.index(c) } i end $salt = 1369136 def decode(id) (bijective_decode(id) >> 18) - $salt end def encode(id) bijective_encode((id+$salt) << 18) end I can't "Answer your question" but this is the best solution for me. –  mitch Jan 24 '13 at 10:47

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