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I've looked all around Google and its archives. There are several good articles, but none seem to help me out. So I thought I'd come here for a more specific answer.

The Objective: I want to run this code on a website to get all the picture files at once. It'll save a lot of pointing and clicking.

I've got Python 2.3.5 on a Windows 7 x64 machine. It's installed in C:\Python23.

How do I get this script to "go", so to speak?

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WOW. 35k views. Seeing as how this is top result on Google, here's a useful link I found over the years:

http://learnpythonthehardway.org/book/ex1.html

For setup, see exercise 0.

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FYI: I've got zero experience with Python. Any advice would be appreciated.

As requested, here's the code I'm using:

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

Usage:
    python dumpimages.py http://example.com/ [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="C:\asdf\"):
    """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)
        else:
            urlretrieve(urlparse.urlunparse(parsed), outpath)

def _usage():
    print "usage: python dumpimages.py http://example.com [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"):
            _usage()
            sys.exit(-1)
    main(url, out_folder)
share|improve this question
1  
Start with the Python Tutorial: docs.python.org/tutorial/interpreter.html –  Greg Hewgill Feb 29 '12 at 3:16

5 Answers 5

up vote 8 down vote accepted

On windows platform, you have 2 choices:

  1. In a command line terminal, type

    c:\python23\python xxxx.py

  2. Open the python editor IDLE from the menu, and open xxxx.py, then press F5 to run it.

For your posted code, the error is at this line:

def main(url, out_folder="C:\asdf\"):

It should be:

def main(url, out_folder="C:\\asdf\\"):
share|improve this answer
    
I tried the first one, received the following error message: C:\python23\python: can't open file 'dumpImages.py' Then I realized my mistake: C:\python23\"python dumpImages.py" Then I received a syntax error: EOL while scanning single-quoted string. What the heck does that mean? Thanks! –  Mr. C Feb 29 '12 at 3:49
    
It seems your .py file has wrong format. Please post your code. –  ciphor Feb 29 '12 at 3:56
    
I've posted it for you. –  Mr. C Feb 29 '12 at 4:03
    
When I run my helloworld file by option 2 , it works. but when I run another .py file it just shows me the source code.. How to actually make it run ? –  Faizan May 14 '13 at 12:38

Since you seem to be on windows you can do this so python <filename.py>. Check that python's bin folder is in your PATH, or you can do c:\python23\bin\python <filename.py>. Python is an interpretive language and so you need the interpretor to run your file, much like you need java runtime to run a jar file.

share|improve this answer
    
So, from your example above, this should work? C:\Python23\bin\python\dumpImages.py –  Mr. C Feb 29 '12 at 3:22
    
It will be c:\python23\bin\python dumpImages.py. Python.exe is the interpretor and the file name is dumpImages.py –  Gangadhar Feb 29 '12 at 3:28
    
Alright. I've got it as specified. It appears to run... however it runs extremely quickly and has no results. I did do this in the cmd prompt: set path=%path%;C:\python23 So now I can access python via cmd.exe. I guess the problem I have now is it isn't asking for parameters. As far as I can tell, the script takes two parameters: a url and a location on my hdd. Whenever I run ith through the python shell: dumpImages(google.com, C:\asdf) I get an invalid syntax error at the semicolon after http. –  Mr. C Feb 29 '12 at 3:37

use IDLE Editor {You may already have it} it has interactive shell for python and it will show you execution and result.

share|improve this answer

Usually you can double click the .py file in Windows explorer to run it. If this doesn't work, you can create a batch file in the same directory with the following contents:

C:\python23\python YOURSCRIPTNAME.py

Then double click that batch file. Or, you can simply run that line in the command prompt while your working directory is the location of your script.

share|improve this answer
    
Double-clicking on a .py file on Windows will only run it if it's on the System Path. –  Edwin Feb 29 '12 at 23:54

Your command should include the url parameter as stated in the script usage comments. The main function has 2 parameters, url and out (which is set to a default value) C:\python23\python "C:\PathToYourScript\SCRIPT.py" http://yoururl.com "C:\OptionalOutput\"

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