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How may Wiktionary's API be used to determine whether or not a word exists?

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closed as off-topic by animuson Jan 26 '14 at 7:09

This question appears to be off-topic. The users who voted to close gave this specific reason:

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Voting to reopen as this is not about finding a tool (which is off topic), it is now about using a tool (thus is on topic). After @Dave's edits that is clear –  Oxinabox Jul 13 at 23:57
    
@Oxinabox: It's hardly a programming tool, though, is it? It's an API for a totally non-programming tool. Besides, RTFM frankly –  Lightness Races in Orbit Jul 14 at 0:26
    
@LightnessRacesinOrbit I'll have to disagree. You yourself said it, it's an API for a totally nonprogramming tool. The question is about the API. API = Application Programming Interface. Thus about programming. (In other matters, see: meta.stackexchange.com/questions/23628/…) –  Oxinabox Jul 14 at 0:31
    
@Oxinabox: Thanks for the lecture, but this question is old enough that I doubt the OP will care. Plus, I was not telling the OP to RTFM, but was using the term as a shortcut for explaining to you why this question is off-topic: it's a "read the documentation for me and let me know what you find" question. We're not here for that. –  Lightness Races in Orbit Jul 14 at 0:32
    
I just figured, since you are using that abbreviation, my might not have seen the guidance against using it (to the OP). Manuals tend to be awfully written compared to SO answers. I would not be surprised if the wiktionary API manual was aweful too. In anycase, The close reason is at best incorrect now. I care not whether the OP cares about the question. It no longer belongs to them. –  Oxinabox Jul 14 at 0:38

5 Answers 5

up vote 37 down vote accepted

The Wiktionary API can be used to query whether or not a word exists.

Examples for existing and non-existing pages:

http://en.wiktionary.org/w/api.php?action=query&titles=test http://en.wiktionary.org/w/api.php?action=query&titles=testx

The first link provides examples on other types of formats that might be easier to parse.

To retrieve the word's data in a small XHTML format (should more than existence be required), request the printable version of the page:

http://en.wiktionary.org/w/index.php?title=test&printable=yes http://en.wiktionary.org/w/index.php?title=testx&printable=yes

These can then be parsed with any standard XML parser.

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3  
Thanks; the API itself is not what I was hoping for but the link you provided is what I was looking for. –  Armentage May 14 '10 at 2:19
    
Now it accepts additional format parameter for other than xml output like so : en.wiktionary.org/w/… –  nane Jun 28 at 18:07

There are a few caveats in just checking that Wiktionary has a page with the name you are looking for:

Caveat #1: All Wiktionaries including the English Wiktionary actually have the goal of including every word in every language, so if you simply use above API call you will know that the word you are asking about is a word in at least one language, but not necessarily English: http://en.wiktionary.org/w/api.php?action=query&titles=dicare

Caveat #2: Perhaps a redirect exists from one word to another word. It might be from an alternative spelling, but it might be from an error of some kind. The API call above will not differentiate between a redirect and an article: http://en.wiktionary.org/w/api.php?action=query&titles=profilemetry

Caveat #3: Some Wiktionaries including the English Wiktionary include "common misspellings": http://en.wiktionary.org/w/api.php?action=query&titles=fourty

If these are not included in what you want, you will have to load and parse the wikitext itself, which is not a trivial task.

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What I really wanted to do was take a full dump of the data on one of the non-English Wikitionary sites, and then turn the contents into something I could use locally. It seems silly now, but I was hoping that I could request the list of all words, and then pull down their defitions/translations one at a time as needed. –  Armentage Dec 5 '10 at 17:51
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The fix to Caveat #2 is simple: add &prop=info to the query and check the response for redirect attribute. –  svick Apr 30 '12 at 11:17
    
@svick: Yes it's true #2 is easier to circumvent when using the API but these basic caveats also cover trying to parse the Wiktionary data dump files, even though this question doesn't ask about that approach. –  hippietrail Apr 30 '12 at 11:26

You can download a dump of Wikitionary data. There's more information in the FAQ. For your purposes, the definitions dump is probably a better choice than the xml dump.

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Those dump files are massive, and it's unclear which ones to download (all of them?). Probably not what most people are looking for it they just want to programmatically lookup a handful of words. –  Cerin Jun 14 '12 at 18:25
    
I explain which file to download - i.e. the definitions dump (the directory from my link is just different versions of the same file), and yes, if you programmatically want to look up words this is ideal. If you can guarantee the program will be executed only online, there are other options, but nevertheless I'm answering this part of the original question: "Alternatively, is there any way I can pull down the dictionary data that backs a Wiktionary?" –  kybernetikos Jun 19 '12 at 20:18

To keep it really simple, extract the words from the dump like that:

bzcat pages-articles.xml.bz2 | grep '<title>[^[:space:][:punct:]]*</title>' | sed 's:.*<title>\(.*\)</title>.*:\1:' > words
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how do I get a copy of pages-articles.xml.bz2? –  Armentage Apr 10 '12 at 13:27
    
It's just a generic name I used to describe the dumps of the form LANGwiktionary-DATE-pages-articles.xml.bz2 . Go to link, then click LANGwiktionary (LANG e.g. 'en', 'de'...). –  benroth Apr 11 '12 at 7:52

You might want to try JWKTL out. I just found out about it ;)

http://en.wikipedia.org/wiki/Ubiquitous_Knowledge_Processing_Lab#Wiktionary_API

http://www.ukp.tu-darmstadt.de/software/jwktl/

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The citation that you refer to is broken. Here is a link to the JWKTL page ukp.tu-darmstadt.de/software/jwktl. It's not really what I believe the OP is looking for though. –  djskinner Jan 14 '13 at 14:41

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