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Im trying to create a number of lists depending on the number in my header_count. The code below should generate 3 lists but i get a syntax error instead.

header_count = 4
for i in range(1, header_count):
    header_%s = [] % i
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If you're going to generate 3 lists, it's very strange to set header_count to 4. Better to set header_count = 3 and iterate for i in xrange(header_count). –  David Z Mar 18 '11 at 23:10

4 Answers 4

up vote 4 down vote accepted

WTF is this code? This is my interpretation of what you want, I hope I guessed it right (you weren't very clear).

header_count = 4
headers = [[] for i in range(1, header_count)]

Now you can use it like this:

headers[1].append("this goes in the first header")
headers[2].append("this goes in the second header")
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Im trying to create three lists indivually named. So I need header_1, header_2 and header_3 as lists –  Harpal Mar 18 '11 at 22:48
    
Why? That really is a bad practice. This way you use it as header[0], header[1], header[2]. –  nightcracker Mar 18 '11 at 22:50

What you want is to to create a list of lists:

header_count = 4
header = []
for i in range(header_count):
    header[i] = []

In the header variable references a list containing 4 lists. Each list can be accessed as follow:

header[0].append(1)
header[1].append("Hi")
header[2].append(3.14)
header[3].append(True)
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header[0].append(1) is a index exception. –  nightcracker Mar 18 '11 at 22:59
    
This doesn't work, maybe it should be: for i in range(1, header_count): header.append([]) –  Vincenzo Pii Mar 18 '11 at 23:12

What did you mean by header_%s? % is the mod operator, of course you can't assign to an expression involving an operator. It's like writing

a+b = c

You can't assign to a+b, nor can you assign to header_%s.

Did you mean this?

header_lists = [[] for i in range(1,header_count)]
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If you need list names (as it seems from your comment to nightcracker answer), you can use a dictionary of lists:

header_count = 4
listDict = {}
for i in range(1, header_count):
    listDict["header_"+str(i)] = []

Then you can access the dictionary using header_1, header_2, header_3 as keys.

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Please don't encourage bad practices. –  nightcracker Mar 18 '11 at 22:59
    
That's what he seemed to have asked for! One can never know, maybe it was a curiosity even if it's a terrible practice. –  Vincenzo Pii Mar 18 '11 at 23:03
    
A dictionary is the appropriate data structure if the names are dynamically generated and have some information content beyond a simple counter (see the answer to the following question how-can-you-dynamically-create-variables-in-python-via-to-a-while-loop). If the variables names are redundant with a simple count or index, then a list is the appropriate data structure. –  JoshAdel Mar 19 '11 at 0:23

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