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I'm trying to extract movies metadata (title and year) from their file name.

The name pattern is not standard, but it's not random either, so I'm trying to cover as much cases as I can.
To give you an idea, this are examples of file name:

samples = ['The Movie Title.avi',
           'The Movie Title DVDRIP. Useless.info.avi',
           'The Movie Title [2005].avi',
           'The Movie Title (2005) [Useless.info].avi',
           'The Movie Title 2005 H264 DVDRip Useless-Info.avi',
           'The Movie Title 2005 XviD Useless info.avi',
           'The Movie Title {2005} DVDRIP. UselessInfo.avi',
           'The.Movie.Title.2005.Useless.info.avi',
           '[Useless.info]_The.Movie.Title.2005.Useless.avi']

Anywhere there's UselessInfo it's because what is written there could be anything and can't be use to fetch informations (changes from file to file). Also note that 'The Movie Title' might be something with numbers or non alphabetic charachter, like: The Movie Title 2 - The Return' for example.

The expected output should be a dictionary like:

metadata = {'title': 'The Movie Title', 'year': '2005'}

Right now I'm using a chain of regexp, but I don't know it there's a better way for doing that.

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1  
That's an interesting problem, but some of your steps can destroy the title you're trying to extract. Step 5 would erase numbers from any movie title that starts with a number (eg. "60 Seconds"). –  Maciek Jan 18 '12 at 21:05
    
And I belive you should have bigger set of trash-keywords than just ['dvd', 'DVD'] :) You can try more flexible extension stripping: name = name[:name.rfind('.')] - there are those old *.mpeg extensions. –  Maciek Jan 18 '12 at 21:17
    
@Maciek: That's not true: step 5 removes only non-alphanumeric charachters –  Rik Poggi Jan 19 '12 at 9:45
    
@Rik In comment you've wrote: "I can't see how this could possibly work: I'll have an enormous list of movies to compare with another huge list of movies" . So maybe make separate or just update this problem statement with question just pointing this problem : "I have to move lists. Each move name can be differently formatted. How to compare those lists in smart way (current idea: a set of regexpts)". –  Grzegorz Wierzowiecki Jan 21 '12 at 9:00
    
@RikPoggi I was wondering if you could share the chain of regexp that you used for the samples? –  Siddharth Gupta Apr 19 '13 at 13:55

3 Answers 3

up vote 1 down vote accepted

As you've mentioned in one of comments, the purpose of this "file name processing" into "standardized move title form" is to compare two lists.

With your current approach you can miss a lot of corner cases.

First of all, you need to think carefully what kind of variations do you accept. You've mentioned about different places for "movie" "the" - what about misspellings and case-sensitive ? What about order of words ?

Instead of making your code longer and longer, I'd like recommend you looking for a kind of universal solution.

A few ideas came to my mind - take what you like, mix as you like, heat a little bit and it will be cooked nicely - here we go:

  • LCS : Longest common substring problem, Longest common subsequence problem - useful when:
    • order of words is important.
    • universal, just set how big substring/subsequense has to be as percent of input (max or min or avg or sum of two filenames - your choice)
  • Matching not strings, but sets of words. Thanks to that, you can be resistant to order of words, repetition, and others. As you write in python it's easy to you to make set of sets of words, or map of sets of words. Here are few hints:
    • For each movie - instead of regexp-ing whole string: (1) Split movie filename into words (2) Eliminate: "the", "movie", etc (3) cut-out most important parts ( "walking" - "ing" -> "walk" etc ). (4) put words left into set (5) resulting set is set, that represent movie.
    • For each list: All movies' filenames convert into sets (as above), and all of those sets put into set (now you have set of sets of string - yeah)
    • For list A and B : just do A ^ B or A - B , again - what you need (checkout Python Manual: Sets.
  • If you need later to revert set representing movie into movie filename. During creation of lists A,B you need to create maps MA,MB that will map for you "set of words" into "filename".
  • Again LCS, but now imagine your alphabet are words. If you're not familiar with Formal langages terminology - imagine that your movie name is written with special letters, each letter is exactly one word. Thanks to that you have sequence of words, and you can search for subsequence of words. Now applying LCS will give you "Longest Common Set of Words Preserving Order" in movie title.
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My purpose is to extract (guess) information from filenames, I don't have stored listed to compare my results with, I just use that information with third-part software to retrieve more information. Said so, your suggestions are interesting, in particular I'd have never thought somthing like the second one! Anyway I must be honest and say that those look like too much work to do so I will not implement any of this for now, but it's good to know my options I guess :) –  Rik Poggi Jan 22 '12 at 13:04
    
Maybe you will take use from those tips in future :) –  Grzegorz Wierzowiecki Jan 22 '12 at 18:30
    
I just wanted to show that are many ways of solving such problems, so if you plan to develop such software in future, maybe you will find resources for implementing it :). –  Grzegorz Wierzowiecki Jan 22 '12 at 18:31

Why not downloading a database (perhaps on Wikipedia) with a list of movie names and dates, and then comparing the filenames with this list? There are so many edge cases that it may be more efficient.

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I can't see how this could possibly work: I'll have an enormous list of movies to compare with another huge list of movies (I suspect this will take some time) and since I can't possibly have a list of all movies there will still be room for uncertainty that will lead to an unknown result instead of a partial result. As long as the User will be able to override a bunch of almost-right results a good regexp algorithm seems better to me. –  Rik Poggi Jan 19 '12 at 9:56
    
Ok, I thought that maybe the list of film would be limited. Anyway, here is another possibility: why not using some kind of machine learning algorithm? –  charlax Jan 20 '12 at 6:05
    
@RikPoggi How about some locality sensitive hashing for comparison instead? –  ipavlic Oct 20 '12 at 15:53

This has already been done.Perhaps by you for all we know :p Anyway, http://guessit.readthedocs.org/en/latest/

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