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Using PYTHON 3. I want to create a new list (floating numbers) inside a LOOP, without to change list's name, which will cut all the negative or zero elements, eventually changing its length. Who is the fastest way to do that? I have been lost trying to do the last days...

(UPDATE)

an example:

import math

l= [0.]*10

for i in range(1,10):

l[i] = math.sin(i)

l = [x for  x in l if x > 0]

print(i, l[i])

still is not working...

share|improve this question
    
I think you need to state your problem better because "still not working" is not very useful. Beside, if you create a list with 10 elements, remove some of them during the filtering and then still try to access the 10th element, yes, that's "not going to work". –  multani Jan 13 '13 at 5:23

4 Answers 4

One way I can give you:

new_list = [x for x in yourlist if not x <= 0 ] 

I tried like:

>>> yourlist = [1, -2 , 0 , 3.9 , 4 , -5.8, -3.0 ]
>>> new_list = [x for x in yourlist if not x <= 0 ] 
>>> print new_list
[1, 3.9, 4]

EDIT:

Second method:

L = [1, -2 , 0 , 3.9 , 4 , -5.8, -3.0 ]
out = []
for i in L[:]:
 if i > 0:
  out.append(i)

print out

EDIT2:
As you commented to my answer, may be you need this:
Third way:

L = [1, -2 , 0 , 3.9 , 4 , -5.8, -3.0 ]
for obj in L[:]:
 if obj <= 0:
  del L[L.index(obj)]

print L 

EDIT3 Error in your (UPDATED) code

In your code:

import math
l= [0.]*10

for i in range(1,10):
 l[i] = math.sin(i)

l = [x for  x in l if x > 0]
print(i, l[i])  

You got IndexError at this print(i, l[i]) line. because after for-loop value of i becomes 9. and before print statement you delete some elements from list l = [x for x in l if x > 0] so size of list l shrieked to less then < value of i. and in print(i, l[i]) you are trying to index at ith location that is wrong!

What do you want? If you want to print last element in list do like this:

print(i, l[len(l)-1])
share|improve this answer
    
Why not x <= 0 instead of x > 0, is it faster? –  user1632861 Jan 12 '13 at 19:15
    
I need the name of the list inside the LOOP to not change, any idea? –  user1972847 Jan 12 '13 at 19:41
    
Check here its a good link: effbot.org/zone/python-list.htm ,,,It may be possible give me some time. –  Grijesh Chauhan Jan 12 '13 at 19:45
    
@user1972847 check my third answer, let me know If you need something else I am enjoying learning Python :) –  Grijesh Chauhan Jan 12 '13 at 19:52
    
the EDIT2 is working as itself , BUT unfortunately I am inside a LOOP, and I get the error: IndexError: list index out of range ... I have an example in the beginning ... –  user1972847 Jan 12 '13 at 20:03
my_list = [i for i in my_list if i>0]
share|improve this answer

There are two ways to easily filter elements from an iterable:

output = [i for i in input if i > 0]

or:

output = filter(lambda i: i > 0, input)

Note that [filter(function, iterable)][1] returns an iterator, so just do something like output = list(output) if you need a list object.

share|improve this answer
    
thank you all! ... but because I am inside a LOOP, the name of the list must be not change!, so I if: ListNew=[i for i in ListOld if i > 0] please, what I should to? ListNew=ListOld? this is not working... I am bit confused... –  user1972847 Jan 12 '13 at 19:13

Suppose we have a list l = [-2, -1.4, 0, 1, 2.2, 3]

First method is to simply use list comprehension, and set the name of the list to refer to the new list created.

l = [i for i in l if i > 0]

An other method would be to loop through a copy of the list, and remove elements being smaller than or equal to 0:

for i in l[:]:
    if i <= 0:
        l.remove(i)

Either way the result is [1, 2.2, 3]


EDIT to your update:

import math
l = []
for i in range(1, 10):
    v = math.sin(i)
    if v > 0:
        l.append(i)

for v in l:
    print(v)

Will leave out all the numbers with 0 or negative sin, resulting into:

0.841470984808
0.909297426826
0.14112000806
0.656986598719
0.989358246623
0.412118485242

EDIT2 if you also need the original number, I'd use dictionary:

import math
d = {}
for i in range(1, 10):
    v = math.sin(i)
    if v > 0:
        d[i] = v

for k in d:
    print(k, d[k])

Or tuples:

import math
l = []
for i in range(1, 10):
    v = math.sin(i)
    if v > 0:
        l.append((i, v))

for t in l:
    print(t[0], t[1])

This will result into:

1 0.8414709848078965
2 0.9092974268256817
3 0.1411200080598672
7 0.6569865987187891
8 0.9893582466233818
9 0.4121184852417566
share|improve this answer
    
both method dont work... I get an error in the next line ... maybe is the loop... I cant understand –  user1972847 Jan 12 '13 at 19:30
    
Check my edit, I think that's what you're trying to achieve with your code. You don't need two for loops for this. –  user1632861 Jan 12 '13 at 20:21
    
look.. the example that I wrote is inside another LOOP. v defined as [0]*10 .. but after this filter the length will be decreased. Your code works perfectly inside this small loop, but when you leave from that I need the value of v with the its new length (10->6) cause i have time variable and looping a lot of times... maybe i need to define after your code the new length of v? –  user1972847 Jan 13 '13 at 0:12
    
v is just a value of an element inside the list l, so the length of l changes from 9 to 6. But you don't need the length of the list to be able to loop through it. I separated the printing action into an other loop so you can see how it works, check my EDIT again and also take a look at EDIT2. If it's still not enough for you, we really need to see more of your code to be able to understand your program better. –  user1632861 Jan 13 '13 at 10:19
    
Mahi, I really appreciate your help, your EDIT2 code and your explanation significant helped... I will apply this idea in my code tomorrow and I will let you know. Thanks for your time and effort that you gave to help me. ( do you have any email for see the code? if I need more help, or I have to post it ? ) –  user1972847 Jan 14 '13 at 9:21

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