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I am writing a scraper that downloads all the image files from a HTML page and saves them to a specific folder. all the images are the part of the HTML page.

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And what is the question? – Toon Krijthe Nov 2 '08 at 21:34
"How can I %s" % title – Federico A. Ramponi Nov 2 '08 at 21:36

6 Answers 6

up vote 63 down vote accepted

Here is some code to download all the images from the supplied URL, and save them in the specified output folder. You can modify it to your own needs.

    Downloads all the images on the supplied URL, and saves them to the
    specified output file ("/test/" by default)

    python [output]

from BeautifulSoup import BeautifulSoup as bs
import urlparse
from urllib2 import urlopen
from urllib import urlretrieve
import os
import sys

def main(url, out_folder="/test/"):
    """Downloads all the images at 'url' to /test/"""
    soup = bs(urlopen(url))
    parsed = list(urlparse.urlparse(url))

    for image in soup.findAll("img"):
        print "Image: %(src)s" % image
        filename = image["src"].split("/")[-1]
        parsed[2] = image["src"]
        outpath = os.path.join(out_folder, filename)
        if image["src"].lower().startswith("http"):
            urlretrieve(image["src"], outpath)
            urlretrieve(urlparse.urlunparse(parsed), outpath)

def _usage():
    print "usage: python [outpath]"

if __name__ == "__main__":
    url = sys.argv[-1]
    out_folder = "/test/"
    if not url.lower().startswith("http"):
        out_folder = sys.argv[-1]
        url = sys.argv[-2]
        if not url.lower().startswith("http"):
    main(url, out_folder)

Edit: You can specify the output folder now.

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open(..).write(urlopen(..) could be replaced by urllib.urlretrieve() – J.F. Sebastian Nov 3 '08 at 12:48
Thanks for pointing that out. Edited code to reflect. – Ryan Ginstrom Nov 3 '08 at 22:23
Your code fails if image locations are specified relative to the HTML document. Can you please include the fix provided by unutbu in case someone uses your script in the future? – Niklas B. Dec 28 '11 at 20:51
@NiklasB. I encountered the same problem. I ended up just using regexp to find all images links, which is more reliable than Beautifulsoup in my opinion. – foresightyj Mar 2 '13 at 8:12

If the request need an authorization refer to this one:

r_img = requests.get(img_url, auth=(username, password)) 
f = open('000000.jpg','wb') 
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Ryan's solution is good, but fails if the image source URLs are absolute URLs or anything that doesn't give a good result when simply concatenated to the main page URL. urljoin recognizes absolute vs. relative URLs, so replace the loop in the middle with:

for image in soup.findAll("img"):
    print "Image: %(src)s" % image
    image_url = urlparse.urljoin(url, image['src'])
    filename = image["src"].split("/")[-1]
    outpath = os.path.join(out_folder, filename)
    urlretrieve(image_url, outpath)
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+1 for urlparse.urljoin() – Serge S. May 2 '12 at 12:32

And this is function for download one image:

def download_photo(self, img_url, filename):
    file_path = "%s%s" % (DOWNLOADED_IMAGE_PATH, filename)
    downloaded_image = file(file_path, "wb")

    image_on_web = urllib.urlopen(img_url)
    while True:
        buf =
        if len(buf) == 0:

    return file_path
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works fine for me when removing the while loop (not its content!) – Ron Aug 15 '12 at 13:10

Use htmllib to extract all img tags (override do_img), then use urllib2 to download all the images.

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This assumes non-broken html, which Beautiful Soup can cope with. – Ali Afshar Nov 2 '08 at 21:51
On the other hand, this is using only standard library modules. – tzot Nov 2 '08 at 22:57

You have to download the page and parse html document, find your image with regex and download it.. You can use urllib2 for downloading and Beautiful Soup for parsing html file.

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