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I'm pinging an API which is giving me the path to an image. I am then opening/reading that image and saving it to a database on s3.

The problem is that rather than storing the actual image, it's storing just the words Raw Content. What am I doing wrong?

Here's my relevant code. Basically I store the path to the file in the field coverart and the function store_in_s3_partpic returns the path to the file. This function also obviously loads the content to S3.

pic = partpics['url']
# CACHING
img_url = pic
name = urlparse(img_url).path.split('/')[-1]
#wrap your file content??
content = ContentFile(urllib2.urlopen(img_url).read())
unipart.coverart = store_in_s3_partpic(name, content)

Am I doing anything wrong here that would cause me to just see 'Raw Content'?

Here's my store_in_s3_partpic code:

def store_in_s3_partpic(name, content):
    print "STORING PARTPIC"
    conn = S3Connection(settings.AWS_ACCESS_KEY_ID, settings.AWS_SECRET_ACCESS_KEY)
    pathtofile = "partpics/%s" % (name)
    b = conn.create_bucket('mybucket')
    mime = mimetypes.guess_type(name)[0]
    k = Key(b)
    k.key = "/media/partpics/%s" % (name)
    k.set_metadata("Content-Type", mime)
    k.set_contents_from_string(content)
    k.set_acl("public-read")
    return pathtofile
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What is the raw content of urllib2.urlopen(img_url).read()? –  Marcin Nov 5 '12 at 13:46
    
Uhh.. how do I find that out? Sorry I'm kind of a newbie. –  user1328021 Nov 5 '12 at 13:50
    
I did a print content statement and it says Raw Content also. –  user1328021 Nov 5 '12 at 13:59
    
I strongly suggest that you (a) examine the url; and (b) check it out in a browser. –  Marcin Nov 5 '12 at 17:49
    
Thanks @marcin I did and indeed I can open it. –  user1328021 Nov 5 '12 at 19:01

1 Answer 1

I have no idea why but I changed the file open command to this and it all works now:

        `content = urllib2.urlopen(img_url).read()`
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