1

Im trying to read a file's format so I can correctly assign a new name to it and write it to disk, but when the Image.open() is on the image, I cannot write the image to disk. So for example :

This works:

>>>file = open('708864.jpg')
>>> open('lala.jpeg', 'w').write(file.read())

But, this doesn't

>>>import Image
>>>im = Image.open('708864.jpg')
>>> im.format
>>> open('lala.jpeg', 'w').write(file.read())

It creates a corrupted file (lala.jpeg) which is unable to be opened by any software. I'm suspecting the culprit is the Image.open(). And after trying to locate an Image.close() statement, I was unable to find one. How would you "close" this image, so I can still write it to disk?

4
  • 1
    is not easier just rename file?
    – mrok
    Commented Jul 31, 2012 at 22:54
  • Where does file in the second script come from? Also, if you're just trying to save the image, can't you call im.save('lala.jpeg')? Commented Jul 31, 2012 at 23:02
  • @SamMussmann oh wow, never knew about that function. That makes everything so much easier. Thanks!
    – Wiz
    Commented Jul 31, 2012 at 23:44
  • Glad to help! I've added an answer with im.save as well as a link to further documentation so you can find other fun things. :-) Commented Jul 31, 2012 at 23:48

3 Answers 3

1

As suggested in my comment, im.save('lala.jpg') is the way to go.

For all the other fun methods on an Image object, you can look at the documentation.

0

Some workaround, it is just idea:

import Image
import StringIO

file = open('/home/mrok/1.jpg')
output = StringIO.StringIO(file.read())

im = Image.open('/home/mrok/1.jpg')
im.format

open('/home/mrok/2.jpg', 'w').write(output.getvalue())
output.close()
0

As said in a comment, I ended up using a function I never knew about before, Image.save() , which quickly solves my problem.

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