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I have a lot of files which are named poorly

videoofmegoingtoschool.avi

is there a library or some algorithm out there that will separate it properly ?

video of me going to school.avi
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You must be one of the few people who hasn't adopted the brilliant idea of spaces in file names. – pavium Jan 5 '10 at 4:50
2  
pavium: personally I tokenise my filenames in the following form: silkys THE FINAL FRONTIER video.avi. (giggles at his hilarious joke). – Noon Silk Jan 5 '10 at 4:58
    
I don't actually like spaces in filenames, but I concede this is one time they would have been useful. – pavium Jan 5 '10 at 5:20
    

I don't think there's anything out there. I could envision a program that uses a dictionary of words and selects the shortest word that matches left to right and then if it cannot find a second word it fails back to search for the next largest word and so on. (backtracking if necessary) However this could come up with false positives and negatives. Sounds like a fun problem to tackle!

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if said problem is tackled, it should be done in a nice abstract fashion so that we have an api to work with if we want to do something OTHER than parse filenames. – mechko Jan 5 '10 at 5:05

This has been discussed several times before here on SO, unfortunately I can only find one link now.

EDIT - More Links:

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I suspect not. It's even an interesting problem to solve, because you must determine the most 'likely' way to split, and splitting at certain points will affect future splits. A fun project for someone in their spare time, but in the real world, you'll need to do it manually :)

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In Linux you may have: /usr/share/dict/american-english


You can try creating a word 1 letter at a time (from the left), then seeing if it exists as a whole in that dict file. Then save that token as a separate word.

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assuming you have a dictionary, and t(str) means that str is a valid word or group of words,
t(str) = sum_over_i(t(str[0,i]) && t(str[i+1, length])
that is, to check if a groupofwords forms a valid group-of-words, add a space after the first letter and see if you can still form words with both halves; if that doesn't work, try after the second letter, then the third...

with dynamic programming, this can be done in O(n^2) time!

[Edit] People don't like my answer. Perhaps some pseudo-code.

function IsValidString(x)
    if(x is one letter, not 'a' or 'i')
        return false
    if(x is a dictionary word)
        return true
    for i from 0 to x.length-2
        if( IsValidString(x[0,i]) and IsValidString(x[i+1, x.length-1]) )
            return true
    return false

Here, IsValidString returns true if there is a way to break up the string into individual, valid words, and false otherwise. It is not hard to see how you could keep track of which values of i (space placement) made the string valid.

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oh yeah t(str) is immediately true if str is in the dictionary, and false if str is one-letter long and not 'a' or 'i' – BlueRaja - Danny Pflughoeft Jan 5 '10 at 5:01

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