User:Mjaskowski

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Name: Maciej Jaśkowski

E-mail address maciej.jaskowski on gmail account

I live in Poland => CE time


Why is it you are interested in machine translation?

Why is it that they are interested in the Apertium project?

Which of the published tasks are you interested in?

"Accent and diacritic restoration"



Reasons why Google and Apertium should sponsor it

A description of how and who it will benefit in society

Understanding of the problem

We are to write an application (in C++) which takes as input text (a result of deformatter) and outputs a text in UTF-8 with diacritics restored, the superblanks leaving untouched.

pipeline As such the application can be introduced into the Apertium pipeline between deformatter and the morphological analyser. Changes to apertium-header.sh script are therefore necessary; we need to introduce a new switch including the application into pipeline.

details In fact we are to write 3 applications performing the same task [1] (LL, LL2, FS). The first two being dictionary and word based and the latter letter based. The dictionary based algorithms are generally better. The biggest disadvantage is that they can't provide an answer for a word never seen in the dictionary and they work only if the dictionary is big enough.

evaluation Once they are all implemented we should perform automatic performance tests in order to choose the best combination of the three and build on top of them a metapplication (CMB) combining them in the best possible way for a language given.

Thanks to the work of Kevin Scannell we have already a Perl script which does the work for us. A drawback of his script is that it's... a script. We can, however, modify it a bit in such a way, that it doesn't unicodifies but only measures the performance given the original (utf-8) file of an input (ascii) file and the output produced by our application.

Finally, one should check if the app improves MT. To this end we will use apertium-eval-translator tool to measure Word Error Rate (WER).

Some ideas and remarks

texts partially deprived of diacritics
In real world applications it might very well be that the input file is only partially deprived of diacritics. We could ascify the file completely before processing but it seems to be important to take advantage of the diacritics given.

The assumption that the diacritics given are the right ones seem plausible; instead of ascifying the file, we can employ a lazy approach and (roughly speaking) ascify only if we can't find any other solution for a word (in a context) given.

ideas to improve LL
Although Kevin Scannell is not sure if my proposition will give us any improvement, I am keen to check the impact of applying Word Sense Disambiguation methods to LL algorithm. Of course the algorithm might work only if we have a dictionary big enough (which is also the case for ordinary LL and LL2)

investigating occuring errors
It is tempting for me to look in detail on the output of each and every of the algorithms to figure out what kind of errors are made. E.g. for the LL and LL2 algorithms one can foresee such kind of errors: 0. a word is misspelled 1. the ascified word is spelled correctly but it has never occured in the dictionary 2. two or more unicodification of an ascified word occur in the dictionary in the same context

the last two propositions are rather "low priority". To be done if time


A detailed work plan

Time Line:
Community Bonding Period
Week 1: April 27 - May 2

Week 2: May 3 - May 9

Week 3: May 10 - May 16

Week 4: May 17 - May 23


Coding Period
Week 5: May 24 - May 30

Week 6: May 31 - June 6

Week 7: June 7 - June 13

Week 8: June 14 - June 20

Deliverable:

Week 9: June 21 - June 27

Week 10: June 28 - July 24

Week 11: July 5 - July 11

Week 12: July 12 - July 18 (Mid-term Evaluation)

Deliverable:

Week 13: July 19 - July 25

Week 14: July 26 - August 1

Week 15: August 2 - August 8

Week 16: August 9 - August 16

Final Evaluation: August 9 - August 16



List your skills and give evidence of your qualifications