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I do have a filename from wikimedia commons and I want to access the thumbnail-image directly.

Example: Tour_Eiffel_Wikimedia_Commons.jpg

I found a way to get json-data containing the url to the thumbnail I want:

https://en.wikipedia.org/w/api.php?action=query&titles=Image:Tour_Eiffel_Wikimedia_Commons.jpg&prop=imageinfo&iiprop=url&iiurlwidth=200

but I don't want another request. Is there a way to access the thumbnail directly?

3 Answers 3

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If you're okay to rely on the fact the current way of building the URL won't change in the future (which is not guaranteed), then you can do it.

The URL looks like this:

https://upload.wikimedia.org/wikipedia/commons/thumb/a/a8/Tour_Eiffel_Wikimedia_Commons.jpg/200px-Tour_Eiffel_Wikimedia_Commons.jpg

  • The first part is always the same: https://upload.wikimedia.org/wikipedia/commons/thumb
  • The second part is the first character of the MD5 hash of the file name. In this case, the MD5 hash of Tour_Eiffel_Wikimedia_Commons.jpg is a85d416ee427dfaee44b9248229a9cdd, so we get /a.
  • The third part is the first two characters of the MD5 hash from above: /a8.
  • The fourth part is the file name: /Tour_Eiffel_Wikimedia_Commons.jpg
  • The last part is the desired thumbnail width, and the file name again: /200px-Tour_Eiffel_Wikimedia_Commons.jpg
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  • 2
    I love it! Thank you! Nov 13, 2015 at 11:41
  • 1
    @svick thanks for the answer - it got me a long way. On thing though: the md5 hash is calculated after replacing all spaces in the filename with underscores
    – simone
    Mar 12, 2020 at 20:59
  • Just learned that if the image is a .svg you need to add .png to make it work. E.g.: upload.wikimedia.org/wikipedia/commons/thumb/6/65/Ei-map.svg/…
    – loomi
    Oct 13, 2020 at 10:48
1

Solution in Python based on the solution of @svick:

import hashlib
def get_wc_thumb(image, width=300): # image = e.g. from Wikidata, width in pixels
    image = image.replace(' ', '_') # need to replace spaces with underline 
    m = hashlib.md5()
    m.update(image.encode('utf-8'))
    d = m.hexdigest()
    return "https://upload.wikimedia.org/wikipedia/commons/thumb/"+d[0]+'/'+d[0:2]+'/'+image+'/'+str(width)+'px-'+image
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  • For image commons.wikimedia.org/wiki/… I get UnicodeDecodeError: 'ascii' codec can't decode byte 0xe3 in position 0: ordinal not in range(128) at m.update(image.encode('utf-8')). Jan 12, 2021 at 13:30
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In case anyone is doing this query in SPARQL instead of Python: There exists an MD5 function in SPARQL and the whole string manipulation can be implemented in SPARQL too!

  BIND(REPLACE(wikibase:decodeUri(STR(?image)), "http://commons.wikimedia.org/wiki/Special:FilePath/", "") as ?fileName) .
  BIND(REPLACE(?fileName, " ", "_") as ?safeFileName)
  BIND(MD5(?safeFileName) as ?fileNameMD5) .
  BIND(CONCAT("https://upload.wikimedia.org/wikipedia/commons/thumb/", SUBSTR(?fileNameMD5, 1, 1), "/", SUBSTR(?fileNameMD5, 1, 2), "/", ?safeFileName, "/650px-", ?safeFileName) as ?thumb)
 

Run this live query in Wikidata's query service: here, as discussed here: https://discourse-mediawiki.wmflabs.org/t/accessing-a-commons-thumbnail-via-wikidata/499

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  • To have scalable vector graphics (SVG) also work out—and just improving on the given answer—append …svg.png to the ?safeFileName like so REPLACE(?safeFileName, "^(.+[Ss][Vv][Gg])$", "$1.png") Sep 27, 2021 at 15:17

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