Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I am having a list of file names created using dirs = os.listdir(dir/path).

Also I am exporting a data set from a csv file. stocks = csv.reader(open('config.csv', 'rb'))

Sample stock data:

fileName1,url1

fileName2,url2

What I need to do is get the each url for each file in the dirs list in a python script. Thanks in advance.

share|improve this question
    
What do you mean by get each url? Are you going to make a web request? – aIKid Jan 24 '14 at 9:47
    
Ok, so you want all entries from 'stocks' where the fileName appears in 'dirs'? – EarlGrey Jan 24 '14 at 9:48
up vote 7 down vote accepted

Pytho provides a built-in function for this, zip:

for dir, stock, in zip(dirs, stocks)

Demo:

>>> a = ["cat", "dogs"]
>>> b = ["http://cat-service.com", "http://dogs-care.com"]
>>> for animal, site in zip(a, b):
    print(animal, site)


cat http://cat-service.com
dogs http://dogs-care.com

See, It's not hard, right? Python makes our life easier! :)

Alternative: If performance really matters, use itertools.izip.

Update

Turns out the answer above is not what the OP was asking. Well, same as Steve, I'd use a dictionary for this:

stock_dict = dict(stock)
urls = [stock_dict.get(file, "Not found") for file in dirs]

Demo:

We assume there are 3 files in the directory, two of them are listed.

>>> stock = [("fileName1","url1"), ("fileName2","url2")]
>>> stock_dict = dict(stock)
>>> dirs = ["fileName1", "fileName2", "fileName3"]
>>> urls = [stock_dict.get(file, "Not found") for file in dirs]
>>> urls
['url1', 'url2', 'Not found']

Hope this helps!

share|improve this answer
    
I don't think it's what @Yasitha wanted. At least your code doesn't work right if theres fileName1, fileName3 but not fileName2 in the path. – EarlGrey Jan 24 '14 at 9:45
    
Thanks for the answer. What I am looking for is get the url when the file name match with name in the stock data. Eg: Lets assume there is a record called "file1" in the dirs and I want to Iterate through the stocks and if there is a record for file1 get the url. Need to do this for all elements in dirs. – Yasitha Jan 24 '14 at 9:51
    
@Yasitha Please see my latest edit. – aIKid Jan 24 '14 at 10:29

Assuming everything fits in memory:

stockslookup = dict(stocks)
urls = [stockslookup[filename] for filename in dirs]

Note that the filename has to be exactly the same string, so you might want to use os.path.abspath on both (or os.path.normpath).

share|improve this answer
    
That's a nice way to do it. I was thinking about something with list comprehension, but this is way smarter! – EarlGrey Jan 24 '14 at 9:55
1  
@EarlGrey: if both lists were sorted then you could do a merge-like operation that's O(n+m) time and O(1)-ish memory (ish becomes actually if you assume a fixed upper limit on filename length in the file...). But assuming you have the memory budget, dict is the "obvious" way to look up anything :-) – Steve Jessop Jan 24 '14 at 9:57
    
I'm actually a bit confused about what the OP is asking. – aIKid Jan 24 '14 at 10:03
    
@alKid: I think the "sample stock data" in the question is the contents of config.csv, and the request is to look up each filename in the file to get its corresponding url. But obviously if I'm wrong then my code is wrong :-) – Steve Jessop Jan 24 '14 at 10:07

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.