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Opening a unique text file in Python based on a random number.

I'm using a random number generator to randomly open a text file, however my code will consist of a lot of if statements because I'm rather new and its the only way I know how. But there is a better way, because theres a better way in every programming language, I just need to know what it is. Heres my code:

n = random.randint(1, 3)
    print n
    if (n == 1):
         f = open('E:/1.txt', 'r')

I would obviously have to do this for every random number generated, so how can I...

f = open('E:/' & n & '.txt., 'r')

That obviously doesn't work, but hopefully you get the idea and can give me a hand.

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3 Answers 3

Simply use string formatting:

n = random.randint(1, 3)
f = open('E:/%d.txt' % n, 'r')
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for i in range(3):
    n = random.randint(1,3)
    with open("E:\{0}.txt".format(n),"r") as f:
        #do something
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this didn't work for me. –  user1690054 Sep 21 '12 at 23:35
    
then the file didnt exist ... "r" means open to read so the file must exist or it will raise an error –  Joran Beasley Sep 21 '12 at 23:35

In python you use the str function to convert an integer to a string and the + operator to concatenate strings together.

n = random.randint(1, 3)
f = open('E:/' + str(n) + '.txt', 'r')

It would probably be better to use String Formatting though to get what you're looking for.

n = random.randint(1, 3)
f = open('E:/%s.txt' % n, 'r')
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Thank you this worked perfectly, exactly what I needed. I forgot about string conversion! –  user1690054 Sep 21 '12 at 23:38
    
@user1690054, glad to hear it worked. FYI, its considered 'good behavior' to upvote and/or accept an answer (click the check box on the left), if it helped you. Cheers. –  Chris W. Sep 25 '12 at 1:21

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