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Say I have the following list:

my_list = [2, 3, 4, 1, 44, 222, 43, 22]

How can I assign a constant value to all the elements in a sublist without the use of for loop? something like:

my_list[0:5:1] = 1 # Assign 1 to first 5 elements. This code is wrong since list requires an iterator 

Specifically, I would like to assign a constant value to all the elements, starting from an index, i till the end of the list i.e. say

my_list[i:end] = 1 # What I would like to do. The code itself is wrong  

Any suggestions on how to do it in the cleanest way in python?

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1  
If you're doing this a lot, you might find numpy interesting. –  Brendan Long Jul 5 '12 at 19:52
    
@BrendanLong: indeed it is. It's just that I have observed that although numpy is very fast, but the associated overhead of converting list to numpy array can quickly become a bottleneck, specially when I have around 10^8 elements to del with. But maybe I am wrong. your views ? –  R.Bahl Jul 5 '12 at 19:57
    
I definitely wouldn't convert between numpy arrays and lists all the time. Whether it's useful depends on your situation; I just thought it was interesting that Numpy has pretty much exactly the feature you were asking for. –  Brendan Long Jul 5 '12 at 20:13

6 Answers 6

up vote 4 down vote accepted

The following should work:

my_list[i:end] = [1]*(end-i)

Examples:

>>> def test(my_list, i, end):
...     my_list[i:end] = [1]*(end-i)
...     return my_list
>>> test(range(10), 0, 5)
[1, 1, 1, 1, 1, 5, 6, 7, 8, 9]
>>> test(range(10), 5, 10)
[0, 1, 2, 3, 4, 1, 1, 1, 1, 1]
>>> test(range(10), 3, 8)
[0, 1, 2, 1, 1, 1, 1, 1, 8, 9]
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Sometimes a 2-liner is better than a 1-liner.

for i in range(0,5):
    my_list[i] = 0

If you really want to make something obfuscated:

Here's a one-liner which does the job without changing the original array.

new_list = [0 if i in range(0,5) else x for x, i in zip(my_list, xrange(len(my_list)))]

Which would you rather come across in unknown code? Or your own code 6 months later.

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Yep. I'm specifically saying "it's not worth it, this reads well and does the job". –  Joe Jul 5 '12 at 19:52
    
The reason I said without the use of for loop was, my code kind of already has some nested for so I wanted to avoid it. Therefore I was looking for something probably by slicing, but not sure how. But I do get your point –  R.Bahl Jul 5 '12 at 19:55
1  
Why is that a reason to avoid it? Nested for are normal. Code has to be made of something! –  Joe Jul 5 '12 at 19:58
    
@Levon of course, I agree. But there are so many questions on here that have mistaken assumptions, I tend to try and answer the original question unless the OP gives a reason why not in their qu. –  Joe Jul 5 '12 at 19:59
1  
@R.Bahl - all of these answers will involve a for loop somewhere. It's how computers work. The only real way to know is to profile it and measure how different solutions perform, especially with a highly dynamic language like Python. –  Joe Jul 5 '12 at 20:14

One possibility is stuff [0:5] = [1] * 5. However, you should be cautious since this will change the size of the list if you get the number of replacing elements wrong. If you do stuff [0:5] = [1] * 6, you will increase the size of the list (i.e., putting six 1s where there used to be five original values).

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Had to run this myself before I actually believed it would work, but it does. Interesting. –  Brendan Long Jul 5 '12 at 20:16

For going to the end of the list, just omit the end of the slice. Then, you can repeat a list to assign to it:

my_list[i:] = [1] * (len(my_list) - i)
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How about this?

from itertools import repeat

my_list[start:end] = repeat( 1, end - start )
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How are start and end defined? –  octopusgrabbus Jul 6 '12 at 12:25
    
They're just variables defining the range, no different from the usage of i/end in most of the other examples given here, I just thought start/end was a little more consistent and clear than i/end. –  Ingrid Jul 9 '12 at 9:14

Would this work:

my_list = my_list[:i] + [1 for x in xrange(len(my_list) - i)]
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