14

I have list consisting with replacements and I want to do two things:

  1. remove duplicates
  2. remove all elements by a specific criteria, to be exact I want to remove all elements bigger than a certain value.

I figured I can use filter for 2 and than use set to achieve 1 something like

list(set(filter(lambda x:x<C, l)))

is there a better/more pythonic/more efficient way?

  • what about order? – Padraic Cunningham Nov 26 '15 at 18:27
  • what do you mean? – Meni Nov 26 '15 at 18:35
  • I mean the order you encounter elements, sets are unordered so if you want to maintain some order you will be out of luck using a set – Padraic Cunningham Nov 26 '15 at 18:35
  • actually in my case the order doesn't matter – Meni Nov 26 '15 at 19:05
20

Using list comprehension is maybe more "pythonic".

filtered = [x for x in set(lst) if x < C]
  • 1
    but in such comprehension won't the set(lst) be calculated for every x? – Meni Nov 26 '15 at 18:03
  • 4
    @Meni Absolutely not. for x in set(lst) creates an iterator after casting once the list to a set, then the list comprehension iterates trough it and stores values if x < C. – Delgan Nov 26 '15 at 18:05
  • is there a reason to use list comprehension instead of set comprehension? – Meni Nov 26 '15 at 18:34
  • 1
    @Meni I find it makes more sense as the expected output is a list, and I think it is clearer than wrapping a set comprehension with list(). However, it does not make much difference, it is up to you. – Delgan Nov 26 '15 at 18:41
6

The best two ways to do them are filter:

new_list = list(set(filter(lambda x:x<C, l)))

Or set comprehensions (which many would consider more pythonic, and even more efficient):

list({x for x in l if x < C})

But I guess, if you’re familiar with filter, that you can just stick to it.

  • 1
    you can do a set comprehension instead of converting your list comp to a set – R Nar Nov 26 '15 at 18:03
  • Thx I don’t know what I was thinking. – Y2H Nov 26 '15 at 18:05
  • is using set comprehension better than list comprehension if i am going to convert it to a list anyway? – Meni Nov 26 '15 at 18:10
  • It’s definitely shorter and more efficient. In terms of compilation, I’m sure that many people here will pretend like they know which is better, but in the end the difference is literally unnoticeable. – Y2H Nov 26 '15 at 18:12
2

In my opinion the most Pythonic way to filter sets, wheevern possible, is by use set operations (Venn diagrams) :

A = {0, 1, 4, 5, 8}; 
B = {2, 1, 3, 4, 6}; 

print("Union :", A | B) 

print("Intersection :", A & B) 

print("Difference :", A - B) 

print("Symmetric difference :", A ^ B) 

another example when you just want to remove value 5 from set A you just type:

A - {5,}

and as in this question if you need to filter for grater values than C you just type "containment check" operator "in" which in Python code executes sets.contains() magic method (magic method shouldn't be called directly that's why you use "in"):

{x for x in l if x > C}

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