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I'd like to create an image using PIL and be able to email it without having to save it to disk.

This is what works, but involves saving to disk:

from email.mime.image import MIMEImage
from email.mime.multipart import MIMEMultipart

msg = MIMEMultipart()

im = Image.new("RGB", (200, 200))

with open("tempimg.jpg", "w") as f:
    im.save(f, "JPEG")

with open("tempimg.jpg", 'rb') as f:
    img = MIMEImage(f.read())

msg.attach(img)

Now I'd like to be able to do something like:

import StringIO

tempimg = StringIO.StringIO()
tempimg.write(im.tostring())
img = MIMEImage(tempimage.getvalue(), "JPG")
msg.attach(img)

, which doesn't work. I've found some discussion in Spanish that looks like it addresses the same question, with no solution except a pointer at StringIO.

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1 Answer 1

up vote 7 down vote accepted

im.tostring returns raw image data but you need to pass whole image file data to MIMEImage, so use StringIO module to save the image to memory and use that data:

from email.mime.image import MIMEImage
from email.mime.multipart import MIMEMultipart
from PIL import Image
import cStringIO

msg = MIMEMultipart()

im = Image.new("RGB", (200, 200))
memf = cStringIO.StringIO()
im.save(memf, "JPEG")
img = MIMEImage(memf.getvalue())

msg.attach(img)
share|improve this answer
    
Thanks, that works! I had already tried something with Im.save(), but I guess messed up with the arguments. –  user1103852 Dec 18 '11 at 13:24

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