14

I want to check a condition against the front of a queue before deciding whether or not to pop. How can I achieve this in python with collections.deque?

list(my_deque)[0]

seems ugly and poor for performance.

  • 2
    that's not necessary to convert to list, since deque supports direct indexing. Also, the "front" of the queue is the last element (i.e., index -1) in the list representation of the deque, not the first one. – GPhilo Feb 6 '18 at 10:08
14

TL;DR: assuming your deque is called d, just inspect d[-1], since the "rightmost" element in a deque is the front (you might want to test before the length of the deque to make sure it's not empty). Taking @asongtoruin's suggestion, use if d: to test whether the deque is empty (it's equivalent to if len(d) == 0:, but more pythonic)

Why not converting to list?

Because deques are indexable and you're testing the front. While a deque has an interface similar to a list, the implementation is optimized for front- and back- operations. Quoting the documentation:

Deques support thread-safe, memory efficient appends and pops from either side of the deque with approximately the same O(1) performance in either direction.

Though list objects support similar operations, they are optimized for fast fixed-length operations and incur O(n) memory movement costs for pop(0) and insert(0, v) operations which change both the size and position of the underlying data representation.

Converting to list might be desirable if you have lots of operations accessing the "middle" of the queue. Again quoting the documentation:

Indexed access is O(1) at both ends but slows to O(n) in the middle. For fast random access, use lists instead.

Conversion to list is O(n), but every subsequent access is O(1).

  • 1
    You should be able to just directly check if the deque is empty without needing to check its length (i.e. if d: rather then if len(d) > 0:) – asongtoruin Feb 6 '18 at 10:08
  • @asongtoruin I read that as an implicit length-test, since the two statements are equivalent, but of course if d: is the more pythonic way to write it. – GPhilo Feb 6 '18 at 10:10
  • 2
    I looked for a duplicate, but couldn't find one. You have my UV! you could add that converting to list is not only ugly but underperformant – Jean-François Fabre Feb 6 '18 at 10:13
  • 1
    I realise I was being pedantic - your answer is correct but I can see how someone might think len was required – asongtoruin Feb 6 '18 at 10:14
  • @asongtoruin your comment was very welcome ;) I chose to keep the wording of the answer generic because I don't know whether the OP has implicit assumptions on the deque, but of course your comment is on-point and I will add it as a note to the answer – GPhilo Feb 6 '18 at 10:16
0

You can simply find the last element using my_deque[-1] or my_deque[len(my_deque)-1] .

0

Here is a simple implementation that allowed me to check the front of the queue before popping (using while and q[0]):

Apply your own condition against q[0], before q.popleft(), below:

testLst = [100,200,-100,400,340]
q=deque(testLst)

while q:
    print(q)
    print('{}{}'.format("length of queue: ", len(q)))
    print('{}{}'.format("head: ", q[0]))
    print()

    q.popleft()

output:

deque([100, 200, -100, 400, 340])
length of queue: 5
head: 100

deque([200, -100, 400, 340])
length of queue: 4
head: 200

deque([-100, 400, 340])
length of queue: 3
head: -100

deque([400, 340])
length of queue: 2
head: 400

deque([340])
length of queue: 1
head: 340

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