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First of all, let me just say I'm extremely new to Python, or any sorts of programming for that matter. Also, I wasn't sure what to put as the title,sorry. So I have this csv file opened, then I stripped and split the commas, then just to check, I printed it out and it gave me like this (just some example numbers):

['1','2','3','4']
['5','6','7','8']
['9','10','11','12']

I was wondering if there is a way I could index the rows instead of columns, like if I try to print my_list[0] it would give me 1 5 9

instead of ['1','2','3','4']. My actual problem is that I need to convert the csv data into a row of tuples WITH the elements turned to integers and be able to choose any of the rows for further processing.

I'm not familiar with a lot of the modules I've seen on this site..I'd like a really basic coding help if possible.(although it is inefficient at times)

Thank you!

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stranac looks right. check this out for clarification if you need some. docs.python.org/release/3.1.5/tutorial/datastructures.html. welcome to python –  Sheena Oct 22 '12 at 7:36
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2 Answers

up vote 1 down vote accepted

This answer follows your comments for the answer provided by stranac and tries to create a my_list as you wanted

my_list = []
with open('Test.csv', 'r') as csvfile:
    for lines in csvfile:
        temp_lines = lines.strip().split(',')
        my_list.append(temp_lines)

print(my_list)

However I would suggest that you make use of csv module already available in python. You can see a basic example here

You can do something like this:

import csv
my_list = []
with open('Test.csv') as csvfile:
    spamreader = csv.reader(csvfile)
    for row in spamreader:
        my_list.append(row)
print(my_list)
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Oh hold on, how do I get [1,2,3,4] instead of ['1','5','9']? –  user1632262 Oct 22 '12 at 9:38
    
once you get my_list, then print(mylist[0]) –  Pulimon Oct 22 '12 at 9:39
1  
my_list is basically a list of list (<<insert inception jokes here>>). SO the first element of my_list (which is accessed through my_list[0] will be a list which will hold the values [1,2,3,4]. The second element my_list[1] will be the list [5,6,7,8] and so on –  Pulimon Oct 22 '12 at 9:41
    
I mean, I need to change all the elements of the lists into integers. sigh I'm asking too much. –  user1632262 Oct 22 '12 at 9:43
    
you can modify the solution given by stranac slightly. It will look like this my_list = [[int(x) for x in row] for row in my_list] –  Pulimon Oct 22 '12 at 9:52
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You can use a rather simple list comprehension to convert your list to a format you want(after getting the list from the csv), using zip(*my_list) to transpose it:

>>> my_list = [['1','2','3','4'],
...            ['5','6','7','8'],
...            ['9','10','11','12']]
>>> [[int(x) for x in row] for row in zip(*my_list)]
[[1, 5, 9], [2, 6, 10], [3, 7, 11], [4, 8, 12]]
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Hmm how do I make a nested list from the stripped/split lines? Because they're not exactly 'next' to each other if you get what I mean. –  user1632262 Oct 22 '12 at 9:02
    
Oh, I assumed you were using the csv module, which would give you an object you can use like a list of lists. If you need to create the list of lists manually, you could just append each line's results to the list. –  stranac Oct 22 '12 at 9:11
    
I did something like: my_list = [],for x in file_open, x = x.strip().split(','), then end_list = my_list.append(x) but it gave me 'None'. But I'll try the csv reader. –  user1632262 Oct 22 '12 at 9:20
    
Actually, that should have been just my_list.append(x), and then you would use my_list. end_list is not needed at all. But using the csv module is a much better and simpler method. –  stranac Oct 22 '12 at 9:39
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