52

I am trying to save an image that I created from scratch with PIL

newImg1 = PIL.Image.new('RGB', (512,512))
pixels1 = newImg1.load()

...

for i in range (0,511):
    for j in range (0,511):
       ...
            pixels1[i, 511-j]=(0,0,0)
        ...

newImg1.PIL.save("img1.png")

and I get the following error:

Traceback (most recent call last): File "", line 1, in File "C:\Python27\lib\site-packages\spyderlib\widgets\externalshell\sitecustomize.py", line 523, in runfile execfile(filename, namespace) File "C:\Python27\Lib\site-packages\xy\pyimgmake.py", line 125, in newImg1.PIL.save("img1.png") File "C:\Python27\lib\site-packages\PIL\Image.py", line 512, in getattr raise AttributeError(name) AttributeError: PIL

I need help interpreting this error and how to save the image properly as "img1.png" (I am fine with the image being saved to the default save spot).


UPDATE:

from PIL import Image as pimg
...
newImg1 = pimg.new('RGB', (512,512))
...
newImg1.save("img1.png")

and I get the following error:

... newImg1.save("img1.png") File "C:\Python27\lib\site-packages\PIL\Image.py", line 1439, in save save_handler(self, fp, filename) File "C:\Python27\lib\site-packages\PIL\PngImagePlugin.py", line 572, in _save ImageFile._save(im, _idat(fp, chunk), [("zip", (0,0)+im.size, 0, rawmode)]) File "C:\Python27\lib\site-packages\PIL\ImageFile.py", line 481, in _save e = Image._getencoder(im.mode, e, a, im.encoderconfig) File "C:\Python27\lib\site-packages\PIL\Image.py", line 399, in _getencoder return apply(encoder, (mode,) + args + extra) TypeError: an integer is required

3
  • 3
    remove PIL. from newImg1.PIL.save("img1.png"), and try. Commented Oct 29, 2013 at 6:19
  • Downvoted for the creative usage of new API methods or trying something without having checked any documentation.
    – user2665694
    Commented Oct 29, 2013 at 6:26
  • that was my final attempt... I have updated the post with the error that the above suggestion produces
    – Kyle Grage
    Commented Oct 29, 2013 at 7:01

3 Answers 3

77

PIL isn't an attribute of newImg1 but newImg1 is an instance of PIL.Image so it has a save method, thus the following should work.

newImg1.save("img1.png","PNG")

Note that just calling a file .png doesn't make it one so you need to specify the file format as a second parameter.

try:

type(newImg1)
dir(newImg1)

and

help(newImg1.save)
5
  • Extended answer. Note that the parameter list for save varies with the format. Commented Oct 29, 2013 at 21:36
  • You still left in the .PIL in the save call that was causing the original error. Commented Oct 29, 2013 at 21:40
  • Darn thats what I get for editing under the influence of a general anaesthetic. Commented Oct 30, 2013 at 3:39
  • Thanks for the new answer. Time ran out though, so I actually just passed the PIL into a matplotlib function. For some reason, there was no trouble with saving it this way... I guess whatever works.
    – Kyle Grage
    Commented Oct 30, 2013 at 7:23
  • 2
    The docs now state that the format is determined from the filename, so newImg1.save('img1.png') should work now. Commented Jun 30, 2021 at 16:08
6

As I hate to see questions without a complete answer:

from PIL import Image
newImg1 = Image.new('RGB', (512,512))
for i in range (0,511):
    for j in range (0,511):
        newImg1.putpixel((i,j),(i+j%256,i,j))
newImg1.save("img1.png")

which yields a test pattern.

To use array style addressing on the image instead of putpixel, convert to a numpy array:

import numpy as np
pixels = np.asarray(newImg1)
pixels.shape, pixels.dtype
-> (512, 512, 3), dtype('uint8')
3

Try this:

newImg1 = pimg.as_PIL('RGB', (512,512))
...
newImg1.save('Img1.png')

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