I'm using flask for my application. I'd like to send an image (dynamically generated by PIL) to client without saving on disk.

Any idea how to do this ?

  • 1
    Flask doesn't seem to have solid support for streaming binary data that you can't generate with a Python generator. You'll probably have to buffer the image in memory and sent that. – millimoose Oct 25 '11 at 0:46
up vote 19 down vote accepted

First, you can save the image to a tempfile and remove the local file (if you have one):

from tempfile import NamedTemporaryFile
from shutil import copyfileobj
from os import remove

tempFileObj = NamedTemporaryFile(mode='w+b',suffix='jpg')
pilImage = open('/tmp/myfile.jpg','rb')
copyfileobj(pilImage,tempFileObj)
pilImage.close()
remove('/tmp/myfile.jpg')
tempFileObj.seek(0,0)

Second, set the temp file to the response (as per this stackoverflow question):

from flask import send_file

@app.route('/path')
def view_method():
    response = send_file(tempFileObj, as_attachment=True, attachment_filename='myfile.jpg')
    return response
  • Doesn't work anymore: TypeError: 'file' object is not callable – letmaik Apr 24 '14 at 6:50
  • @neo - Thanks, updated to send_file – Adam Morris May 1 '14 at 20:25
  • Which is the dynamically created file over here? – user1953366 Nov 5 '17 at 22:00
  • @user1953366 - in this example, the file being created is myfile.jpg, but I would seriously check out mr-mr's answer below, as it is much more efficient without the need to create a temporary file. – Adam Morris Nov 6 '17 at 14:57
  • temp files are also written to disk? how is this the accepted response? – Dan Erez Aug 22 at 12:37

Here's a version without any temp files and the like (see here):

def serve_pil_image(pil_img):
    img_io = StringIO()
    pil_img.save(img_io, 'JPEG', quality=70)
    img_io.seek(0)
    return send_file(img_io, mimetype='image/jpeg')

To use in your code simply do

@app.route('some/route/')
def serve_img():
    img = Image.new('RGB', ...)
    return serve_pil_image(img)
  • 9
    This is a far superior answer to the accepted response. – jrs Feb 27 '13 at 4:32
  • 1
    Means you have to be able to hold the whole image in memory at once though, right? Might be an issue with huge images or other types of downloads. – Eli Aug 8 '13 at 3:42
  • 4
    How do I insert it into the template I am returning? – scottydelta Nov 16 '14 at 11:06
  • 3
    Python3 requires using ByteIO: fadeit.dk/blog/post/python3-flask-pil-in-memory-image – ozooner Apr 30 '15 at 15:14
  • 1
    Use on the side of caution. Some wsgi implementations require a fileno() method for sendfile, and StringIO objects has no fileno() method. – Kenneth Nov 27 '15 at 2:36

I was also struggling in the same situation. Finally, I have found its solution using a WSGI application, which is an acceptable object for "make_response" as its argument.

from Flask import make_response

@app.route('/some/url/to/photo')
def local_photo():
    print('executing local_photo...')
    with open('test.jpg', 'rb') as image_file:
        def wsgi_app(environ, start_response):
            start_response('200 OK', [('Content-type', 'image/jpeg')])
            return image_file.read()
        return make_response(wsgi_app)

Please replace "opening image" operations with appropriate PIL operations.

  • This works beautifully :) – cybertoast Dec 2 '11 at 17:29

It turns out that flask provides a solution (rtm to myself!):

from flask import abort, send_file
try:
    return send_file(image_file)
except:
    abort(404)

Mr. Mr. did an excellent job indeed. I had to use BytesIO() instead of StringIO().

def serve_pil_image(pil_img):
    img_io = BytesIO()
    pil_img.save(img_io, 'JPEG', quality=70)
    img_io.seek(0)
    return send_file(img_io, mimetype='image/jpeg')

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