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I am having data as

data = ​set(['https://a.com/', 'https://b.com'])

I want output to be like

​set(['https://a.com/', 'https://b.com', 'http://a.com/', 'http://b.com'])

i just want to append same url with http as well as https.
Note : I want to do this with minimum line(need to be 1 line). I tried

>>>out = set([i.replace('https', 'http') for i in m] + [i for i in m])
>>>set(['https://abccakes.dbmonline.net/grappelli/bookmark/get/?path=/admin/', 'https://abccakes.dbmonline.net/admin/', 'http://abccakes.dbmonline.net/grappelli/bookmark/get/?path=/admin/', 'http://abccakes.dbmonline.net/admin/'])

It is working fine but i do not want to use replace .i want to replace https with http as element of list.

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3  
Then specify that as your problem; you want to handle URLs with https elsewhere in them. You can limit the number of replacements with the str.replace() function, for example. –  Martijn Pieters Jan 8 '14 at 10:58
1  
@PrashantGaur You can pass an optional count to str.replace. –  Ashwini Chaudhary Jan 8 '14 at 10:59
2  
If you really want to do it properly, use the urlparse module to parse out URLs into their constituent parts. –  Martijn Pieters Jan 8 '14 at 11:00
1  
@PrashantGaur how about replace('https:', 'http:') ? –  zhangxaochen Jan 8 '14 at 11:03
1  
@djangoman If you're looking for a faster solution, then use set.union. Check my solution. –  Ashwini Chaudhary Jan 8 '14 at 12:14

2 Answers 2

If you want a faster solution here, then it's better to use set.union or set.update if you want to update the original set itself.

In [16]: data = set('https://{}.com'.format(''.join(random.choice(letters) for _ in range(10))) f
or _ in xrange(10**5))                                                                           

In [17]: %timeit set([i.replace('https', 'http', 1) for i in data] + [i for i in data])          
10 loops, best of 3: 252 ms per loop

In [18]: %timeit data.union(x.replace('https', 'http', 1) for x in data)                         
1 loops, best of 3: 176 ms per loop

In [19]: %timeit from itertools import chain; set(chain.from_iterable([x, x.replace('https', 'htt
p', 1)] for x in data))                                                                          
10 loops, best of 3: 190 ms per loop    
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out = set([re.sub(r'^https:', 'http:', i) for i in m] + [i for i in m])
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