3
data = ['cat', 'dog', 'None', 'Turtle', 'None']
new_data = []
for item in data:
    if item == 'None':
        new_data.append(data.index(item))
print new_data

>> [2,2]

How do I go about getting to this store new data as [2,4]? This is what I want. Thank you!

6

Use enumerate() while looping. This will track both, the current item and its index:

[index for index, x in enumerate(data) if x == "None"]
2
for idx, item in enumerate(data):
    if item == 'None':
        new_data.append(idx)

better yet, just use a list comprehension as in Sven's answer

1

Try:

In [1]: data = ['cat', 'dog', 'None', 'Turtle', 'None']

In [2]: [i for i,val in enumerate(data) if val == 'None']
Out[2]: [2, 4]
1

data.index(item) only returns the position of first occurance of the item in your list. You could simply do this:

for i in range(0,len(data)):
  if data[i] == 'None':
    new_data.append(i)

this should give you the required output

OR

check out Sven's answer

5
  • why is my python spitting out [2, 2] when i do this your way ^?
    – phales15
    Oct 28 '11 at 10:35
  • @aaronphalen it should give [2,4]. It does for me.
    – unni
    Oct 28 '11 at 10:39
  • @unni I agree, but got some odd reasons my python is spitting out [2,2]. I have tried opening a new shell and I get the same thing. What could be the issue?
    – phales15
    Oct 28 '11 at 10:41
  • @aaronphalen i'm not sure. I think you should go with Sven's answer though. As Tim pointed out thats more Pythonic
    – unni
    Oct 28 '11 at 10:47
  • @SvenMarnach: oops, you're right. I just double-checked it; lookup indeed is O(1). Thanks for setting me straight on this. Oct 28 '11 at 11:16

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