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Is it possible to define a recursive list comprehension in Python?

Possibly a simplistic example, but something along the lines of:

nums = [1, 1, 2, 2, 3, 3, 4, 4]
willThisWork = [x for x in nums if x not in self] # self being the current comprehension

Is anything like this possible?

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3  
If order is not an issue, list(set(num)). Otherwise, check unique_everseen in docs.python.org/library/itertools.html. –  KennyTM Apr 14 '10 at 15:05
    
leaky abstraction alert. comprehensions shouldn't be thought of as loops, in my opinion, even though they may be implemented as loops in cpython .. –  wim Apr 16 '13 at 3:49
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6 Answers

up vote 21 down vote accepted

No, there's no (documented, solid, stable, ...;-) way to refer to "the current comprehension". You could just use a loop:

res = []
for x in nums:
  if x not in res:
    res.append(x)

of course this is very costly (O(N squared)), so you can optimize it with an auxiliary set (I'm assuming that keeping the order of items in res congruent to that of the items in nums, otherwise set(nums) would do you;-)...:

res = []
aux = set()
for x in nums:
  if x not in aux:
    res.append(x)
    aux.add(x)

this is enormously faster for very long lists (O(N) instead of N squared).

Edit: in Python 2.5 or 2.6, vars()['_[1]'] might actually work in the role you want for self (for a non-nested listcomp)... which is why I qualified my statement by clarifying there's no documented, solid, stable way to access "the list being built up" -- that peculiar, undocumented "name" '_[1]' (deliberately chosen not to be a valid identifier;-) is the apex of "implementation artifacts" and any code relying on it deserves to be put out of its misery;-).

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The set operations make it O(n log(n)), I'm pretty sure. –  dash-tom-bang Apr 14 '10 at 16:30
2  
@dash-tom-bang sets in Python aren't implemented as red-black trees (like in STL), but use hashes instead as far as I know so it will be O(N). –  Justin Peel Apr 14 '10 at 18:38
1  
@Justin is correct -- python sets and dicts are well-optimized hashes, with O(1) amortized cost for adding items and O(1) cost for lookups. –  Alex Martelli Apr 15 '10 at 0:38
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no. it won't work, there is no self to refer to while list comprehension is being executed.

And the main reason of course is that list comprehensions where not designed for this use.

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Not sure if this is what you want, but you can write nested list comprehensions:

xs = [[i for i in range(1,10) if i % j == 0] for j in range(2,5)]
assert xs == [[2, 4, 6, 8], [3, 6, 9], [4, 8]]

From your code example, you seem to want to simply eliminate duplicates, which you can do with sets:

xs = sorted(set([1, 1, 2, 2, 3, 3, 4, 4]))
assert xs == [1, 2, 3, 4]
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No.

But it looks like you are trying to make a list of the unique elements in nums.

You could use a set:

unique_items = set(nums)

Note that items in nums need to be hashable.

You can also do the following. Which is a close as I can get to your original idea. But this is not as efficient as creating a set.

unique_items = []
for i in nums:
    if i not in unique_items:
        unique_items.append(i)
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Do this:

nums = [1, 1, 2, 2, 3, 3, 4, 4]
set_of_nums = set(nums)
unique_num_list = list(set_of_nums)

or even this:

unique_num_list = sorted(set_of_nums)
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The list comprehensions are unnecessary. unique_num_list = list(set_of_nums). sorted(set_of_nums) returns a list. –  PreludeAndFugue Apr 15 '10 at 9:19
    
@PreludeAndFugue: good points. I'll change the code. –  hughdbrown Apr 15 '10 at 21:51
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Actually you can! This example with an explanation hopefully will illustrate how.

define recursive example to get a number only when it is 5 or more and if it isn't, increment it and call the 'check' function again. Repeat this process until it reaches 5 at which point return 5.

print [ (lambda f,v: v >= 5 and v or f(f,v+1))(lambda g,i: i >= 5 and i or g(g,i+1),i) for i in [1,2,3,4,5,6] ]

result:

[5, 5, 5, 5, 5, 6]
>>> 

essentially the two anonymous functions interact in this way:

let f(g,x) = {  
                 expression, terminal condition
                 g(g,x), non-terminal condition
             }

let g(f,x) = {  
                 expression, terminal condition
                 f(f,x), non-terminal condition
             }

make g,f the 'same' function except that in one or both add a clause where the parameter is modified so as to cause the terminal condition to be reached and then go f(g,x) in this way g becomes a copy of f making it like:

f(g,x) = {  
                 expression, terminal condition
                 {
                    expression, terminal condition,
                    g(g,x), non-terminal codition
                 }, non-terminal condition
             }

You need to do this because you can't access the the anonymous function itself upon being executed.

i.e

(lambda f,v: somehow call the function again inside itself )(_,_)

so in this example let A = the first function and B the second. We call A passing B as f and i as v. Now as B is essentially a copy of A and it's a parameter that has been passed you can now call B which is like calling A.

This generates the factorials in a list

print [ (lambda f,v: v == 0 and 1 or v*f(f,v-1))(lambda g,i: i == 0 and 1 or i*g(g,i-1),i) for i in [1,2,3,5,6,7] ]

[1, 2, 6, 120, 720, 5040]
>>> 
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