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I'm a newbie to python and still on the process of learning on the go ...

I have a webserver which has list of images to load on a Device Under Test (DUT) ...

Requirement is:

if the image is already present on the server, proceed with loading the image onto the DUT.

if the image is not present on the server , then proceed with the download of the image and then upgrade the DUT.

I have written the following code but I'm quite not happy with the way I have written this, because I have a feeling that it could have been done better using some other method/s

Please suggest the areas where i could have done better and the techniques to do so..

Appreciate your time in reading this email and for your valuable suggestions.

import urllib2

url = 'http://localhost/test'
filename = 'Image60.txt'   # image to Verify

def Image_Upgrade():
    print 'proceeding with Image upgrade !!!'

def Image_Download():
    print 'Proceeding with Image Download !!!'

resp = urllib2.urlopen(url)
flag = False
list_of_files = []
for contents in resp.readlines():
    if 'Image' in contents:
        c=(((contents.split('href='))[-1]).split('>')[0]).strip('"')  # The content output would have html tags. so removing the tags to pick only image name
        if c != filename:
            list_of_files.append(c)
        else:
            Image_Upgrade()
            flag = True
if flag==False:
    Image_Download()

Thanks, Vijay Swaminathan

share|improve this question
2  
belongs on codereview.stackexchange.com –  Wooble Apr 17 '12 at 16:13
    
@Wooble Any reason you didn't vote-to-close? –  agf Apr 17 '12 at 16:35
    
@ Wooble, Sorry I did not get your comment.. can you please eloborate a little more?? –  user596922 Apr 17 '12 at 16:57
    
@user596922: Stack Overflow is for specific programming questions; "How can I improve this code that works" is too board, but is well suited for the Code Review site. –  Wooble Apr 17 '12 at 20:09
    
I just felt that the way I used to get the file names from the http server (in this case split with href etc.,) is ineffective and there should be some other way to get the file names present on the http server. so just wondering if that could be done? –  user596922 Apr 18 '12 at 18:30

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