182

I know the URL of an image on Internet.

e.g. http://www.digimouth.com/news/media/2011/09/google-logo.jpg, which contains the logo of Google.

Now, how can I download this image using Python without actually opening the URL in a browser and saving the file manually.

1

17 Answers 17

371

Python 2

Here is a more straightforward way if all you want to do is save it as a file:

import urllib

urllib.urlretrieve("http://www.digimouth.com/news/media/2011/09/google-logo.jpg", "local-filename.jpg")

The second argument is the local path where the file should be saved.

Python 3

As SergO suggested the code below should work with Python 3.

import urllib.request

urllib.request.urlretrieve("http://www.digimouth.com/news/media/2011/09/google-logo.jpg", "local-filename.jpg")
9
  • 64
    A good way to get filename from link is filename = link.split('/')[-1] Jul 5 '12 at 19:20
  • 2
    with urlretrieve I just get a 1KB file with a dict and 404 error text inside.Why? If I enter url into my browser I can get the picture
    – Yebach
    Oct 29 '14 at 12:20
  • 2
    @Yebach: The site you are downloading from may be using cookies, the User-Agent or other headers to determine what content to serve you. These will be different between your browser and Python. Oct 29 '14 at 16:07
  • 32
    Python 3: import urllib.request and urllib.request.urlretrieve(), accordingly.
    – SergO
    Jan 22 '16 at 11:12
  • 1
    How can I know if the the download has succeeded? Feb 24 '16 at 2:30
28
import urllib
resource = urllib.urlopen("http://www.digimouth.com/news/media/2011/09/google-logo.jpg")
output = open("file01.jpg","wb")
output.write(resource.read())
output.close()

file01.jpg will contain your image.

4
  • 3
    You should open the file in binary mode: open("file01.jpg", "wb") Otherwise you may corrupt the image. Nov 27 '11 at 14:57
  • 2
    urllib.urlretrieve can save the image directly. Jul 5 '12 at 19:19
  • doesn't work...
    – Ozan Kurt
    Jun 15 at 16:30
  • This was Python 2. Perhaps you have a newer version of Python? Jun 15 at 18:13
18

I wrote a script that does just this, and it is available on my github for your use.

I utilized BeautifulSoup to allow me to parse any website for images. If you will be doing much web scraping (or intend to use my tool) I suggest you sudo pip install BeautifulSoup. Information on BeautifulSoup is available here.

For convenience here is my code:

from bs4 import BeautifulSoup
from urllib2 import urlopen
import urllib

# use this image scraper from the location that 
#you want to save scraped images to

def make_soup(url):
    html = urlopen(url).read()
    return BeautifulSoup(html)

def get_images(url):
    soup = make_soup(url)
    #this makes a list of bs4 element tags
    images = [img for img in soup.findAll('img')]
    print (str(len(images)) + "images found.")
    print 'Downloading images to current working directory.'
    #compile our unicode list of image links
    image_links = [each.get('src') for each in images]
    for each in image_links:
        filename=each.split('/')[-1]
        urllib.urlretrieve(each, filename)
    return image_links

#a standard call looks like this
#get_images('http://www.wookmark.com')
15

This can be done with requests. Load the page and dump the binary content to a file.

import os
import requests

url = 'https://apod.nasa.gov/apod/image/1701/potw1636aN159_HST_2048.jpg'
page = requests.get(url)

f_ext = os.path.splitext(url)[-1]
f_name = 'img{}'.format(f_ext)
with open(f_name, 'wb') as f:
    f.write(page.content)
2
  • 1
    user headers in requests if getting bad request :)
    – 1UC1F3R616
    Mar 26 '20 at 13:33
  • Also, you likely want to check that page.status_code == 200 before writing the file.
    – idbrii
    Jun 13 at 17:24
10

Python 3

urllib.request — Extensible library for opening URLs

from urllib.error import HTTPError
from urllib.request import urlretrieve

try:
    urlretrieve(image_url, image_local_path)
except FileNotFoundError as err:
    print(err)   # something wrong with local path
except HTTPError as err:
    print(err)  # something wrong with url
6

A solution which works with Python 2 and Python 3:

try:
    from urllib.request import urlretrieve  # Python 3
except ImportError:
    from urllib import urlretrieve  # Python 2

url = "http://www.digimouth.com/news/media/2011/09/google-logo.jpg"
urlretrieve(url, "local-filename.jpg")

or, if the additional requirement of requests is acceptable and if it is a http(s) URL:

def load_requests(source_url, sink_path):
    """
    Load a file from an URL (e.g. http).

    Parameters
    ----------
    source_url : str
        Where to load the file from.
    sink_path : str
        Where the loaded file is stored.
    """
    import requests
    r = requests.get(source_url, stream=True)
    if r.status_code == 200:
        with open(sink_path, 'wb') as f:
            for chunk in r:
                f.write(chunk)
5

I made a script expanding on Yup.'s script. I fixed some things. It will now bypass 403:Forbidden problems. It wont crash when an image fails to be retrieved. It tries to avoid corrupted previews. It gets the right absolute urls. It gives out more information. It can be run with an argument from the command line.

# getem.py
# python2 script to download all images in a given url
# use: python getem.py http://url.where.images.are

from bs4 import BeautifulSoup
import urllib2
import shutil
import requests
from urlparse import urljoin
import sys
import time

def make_soup(url):
    req = urllib2.Request(url, headers={'User-Agent' : "Magic Browser"}) 
    html = urllib2.urlopen(req)
    return BeautifulSoup(html, 'html.parser')

def get_images(url):
    soup = make_soup(url)
    images = [img for img in soup.findAll('img')]
    print (str(len(images)) + " images found.")
    print 'Downloading images to current working directory.'
    image_links = [each.get('src') for each in images]
    for each in image_links:
        try:
            filename = each.strip().split('/')[-1].strip()
            src = urljoin(url, each)
            print 'Getting: ' + filename
            response = requests.get(src, stream=True)
            # delay to avoid corrupted previews
            time.sleep(1)
            with open(filename, 'wb') as out_file:
                shutil.copyfileobj(response.raw, out_file)
        except:
            print '  An error occured. Continuing.'
    print 'Done.'

if __name__ == '__main__':
    url = sys.argv[1]
    get_images(url)
4

Using requests library

import requests
import shutil,os

headers = {
    'user-agent': 'Mozilla/5.0 (Windows NT 10.0; Win64; x64) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/78.0.3904.108 Safari/537.36'
}
currentDir = os.getcwd()
path = os.path.join(currentDir,'Images')#saving images to Images folder

def ImageDl(url):
    attempts = 0
    while attempts < 5:#retry 5 times
        try:
            filename = url.split('/')[-1]
            r = requests.get(url,headers=headers,stream=True,timeout=5)
            if r.status_code == 200:
                with open(os.path.join(path,filename),'wb') as f:
                    r.raw.decode_content = True
                    shutil.copyfileobj(r.raw,f)
            print(filename)
            break
        except Exception as e:
            attempts+=1
            print(e)


ImageDl(url)
1
  • It seems the header is really important in my case, I was getting 403 errors. It worked. May 10 '20 at 14:17
3

This is very short answer.

import urllib
urllib.urlretrieve("http://photogallery.sandesh.com/Picture.aspx?AlubumId=422040", "Abc.jpg")
3

Use a simple python wget module to download the link. Usage below:

import wget
wget.download('http://www.digimouth.com/news/media/2011/09/google-logo.jpg')
2

Version for Python 3

I adjusted the code of @madprops for Python 3

# getem.py
# python2 script to download all images in a given url
# use: python getem.py http://url.where.images.are

from bs4 import BeautifulSoup
import urllib.request
import shutil
import requests
from urllib.parse import urljoin
import sys
import time

def make_soup(url):
    req = urllib.request.Request(url, headers={'User-Agent' : "Magic Browser"}) 
    html = urllib.request.urlopen(req)
    return BeautifulSoup(html, 'html.parser')

def get_images(url):
    soup = make_soup(url)
    images = [img for img in soup.findAll('img')]
    print (str(len(images)) + " images found.")
    print('Downloading images to current working directory.')
    image_links = [each.get('src') for each in images]
    for each in image_links:
        try:
            filename = each.strip().split('/')[-1].strip()
            src = urljoin(url, each)
            print('Getting: ' + filename)
            response = requests.get(src, stream=True)
            # delay to avoid corrupted previews
            time.sleep(1)
            with open(filename, 'wb') as out_file:
                shutil.copyfileobj(response.raw, out_file)
        except:
            print('  An error occured. Continuing.')
    print('Done.')

if __name__ == '__main__':
    get_images('http://www.wookmark.com')
2

Late answer, but for python>=3.6 you can use dload, i.e.:

import dload
dload.save("http://www.digimouth.com/news/media/2011/09/google-logo.jpg")

if you need the image as bytes, use:

img_bytes = dload.bytes("http://www.digimouth.com/news/media/2011/09/google-logo.jpg")

install using pip3 install dload

2

Something fresh for Python 3 using Requests:

Comments in the code. Ready to use function.


import requests
from os import path

def get_image(image_url):
    """
    Get image based on url.
    :return: Image name if everything OK, False otherwise
    """
    image_name = path.split(image_url)[1]
    try:
        image = requests.get(image_url)
    except OSError:  # Little too wide, but work OK, no additional imports needed. Catch all conection problems
        return False
    if image.status_code == 200:  # we could have retrieved error page
        base_dir = path.join(path.dirname(path.realpath(__file__)), "images") # Use your own path or "" to use current working directory. Folder must exist.
        with open(path.join(base_dir, image_name), "wb") as f:
            f.write(image.content)
        return image_name

get_image("https://apod.nasddfda.gov/apod/image/2003/S106_Mishra_1947.jpg")

1

If you don't already have the url for the image, you could scrape it with gazpacho:

from gazpacho import Soup
base_url = "http://books.toscrape.com"

soup = Soup.get(base_url)
links = [img.attrs["src"] for img in soup.find("img")]

And then download the asset with urllib as mentioned:

from pathlib import Path
from urllib.request import urlretrieve as download

directory = "images"
Path(directory).mkdir(exist_ok=True)

link = links[0]
name = link.split("/")[-1]

download(f"{base_url}/{link}", f"{directory}/{name}")
0
# import the required libraries from Python
import pathlib,urllib.request 

# Using pathlib, specify where the image is to be saved
downloads_path = str(pathlib.Path.home() / "Downloads")

# Form a full image path by joining the path to the 
# images' new name

picture_path  = os.path.join(downloads_path, "new-image.png")

# "/home/User/Downloads/new-image.png"

# Using "urlretrieve()" from urllib.request save the image 
urllib.request.urlretrieve("//example.com/image.png", picture_path)

# urlretrieve() takes in 2 arguments
# 1. The URL of the image to be downloaded
# 2. The image new name after download. By default, the image is saved
#    inside your current working directory
-1

Download Image file, with avoiding all possible error:

import requests
import validators
from urllib.request import Request, urlopen
from urllib.error import URLError, HTTPError


def is_downloadable(url):
  valid=validators. url(url)
  if valid==False:
    return False
  req = Request(url)
  try:
    response = urlopen(req)
  except HTTPError as e:
    return False
  except URLError as e:
    return False
  else:
    return True



for i in range(len(File_data)):   #File data Contain list of address for image 
                                                      #file
  url = File_data[i][1]
  try:
    if (is_downloadable(url)):
      try:
        r = requests.get(url, allow_redirects=True)
        if url.find('/'):
          fname = url.rsplit('/', 1)[1]
          fname = pth+File_data[i][0]+"$"+fname #Destination to save 
                                                   #image file
          open(fname, 'wb').write(r.content)
      except Exception as e:
        print(e)
  except Exception as e:
    print(e)
1
  • Fun fact: the status can change between calling the downloadable function and actually downloading the file, making this exercise somewhat pointless May 5 at 21:33
-2
img_data=requests.get('https://apod.nasa.gov/apod/image/1701/potw1636aN159_HST_2048.jpg')

with open(str('file_name.jpg', 'wb') as handler:
    handler.write(img_data)
2
  • 4
    Welcome to Stack Overflow! While you may have solved this user's problem, code-only answers are not very helpful to users who come to this question in the future. Please edit your answer to explain why your code solves the original problem.
    – Joe C
    Jan 28 '17 at 17:06
  • 1
    TypeError: a bytes-like object is required, not 'Response'. It must be handler.write(img_data.content) Mar 17 '18 at 22:53

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