tvl-depot/users/wpcarro/scratch/facebook/move-zeroes-to-end.py

from collections import deque

def move_zeroes_to_end_quadratic(xs):
    """
    This solution is suboptimal. It runs in quadratic time, and it uses constant
    space.
    """
    i = 0
    while i < len(xs) - 1:
        if xs[i] == 0:
            j = i + 1
            while j < len(xs) and xs[j] == 0:
                j += 1
            if j >= len(xs):
                break
            xs[i], xs[j] = xs[j], xs[i]
        i += 1

def move_zeroes_to_end_linear(xs):
    """
    This solution is clever. It runs in linear time proportionate to the number
    of elements in `xs`, and has linear space proportionate to the number of
    consecutive zeroes in `xs`.
    """
    q = deque()
    for i in range(len(xs)):
        if xs[i] == 0:
            q.append(i)
        else:
            if q:
                j = q.popleft()
                xs[i], xs[j] = xs[j], xs[i]
                q.append(i)

def move_zeroes_to_end_linear_constant_space(xs):
    """
    This is the optimal solution. It runs in linear time and uses constant
    space.
    """
    i = 0
    for j in range(len(xs)):
        if xs[j] != 0:
            xs[i], xs[j] = xs[j], xs[i]
            i += 1


################################################################################
# Tests
################################################################################

xss = [
    [1, 2, 0, 3, 4, 0, 0, 5, 0],
    [0, 1, 2, 0, 3, 4],
    [0, 0],
]

f = move_zeroes_to_end_linear_constant_space

for xs in xss:
    print(xs)
    f(xs)
    print(xs)
Add another solution to the "move zeroes to end" problem Support the optimally performance solution of which I'm aware. 2020-11-16 18:13:03 +01:00			`from collections import deque`
Solve "Move Zeroes to End" Write a function to modify an array of integers in-place such that all of the zeroes in the array are at the end, and the order of the other integers is not changed. 2020-11-15 14:51:46 +01:00
Add another solution to the "move zeroes to end" problem Support the optimally performance solution of which I'm aware. 2020-11-16 18:13:03 +01:00			`def move_zeroes_to_end_quadratic(xs):`
			`"""`
			`This solution is suboptimal. It runs in quadratic time, and it uses constant`
			`space.`
			`"""`
Solve "Move Zeroes to End" Write a function to modify an array of integers in-place such that all of the zeroes in the array are at the end, and the order of the other integers is not changed. 2020-11-15 14:51:46 +01:00			`i = 0`
			`while i < len(xs) - 1:`
			`if xs[i] == 0:`
			`j = i + 1`
			`while j < len(xs) and xs[j] == 0:`
			`j += 1`
			`if j >= len(xs):`
			`break`
			`xs[i], xs[j] = xs[j], xs[i]`
			`i += 1`
Add another solution to the "move zeroes to end" problem Support the optimally performance solution of which I'm aware. 2020-11-16 18:13:03 +01:00
			`def move_zeroes_to_end_linear(xs):`
			`"""`
			`This solution is clever. It runs in linear time proportionate to the number`
			of elements in `xs`, and has linear space proportionate to the number of
			consecutive zeroes in `xs`.
			`"""`
			`q = deque()`
			`for i in range(len(xs)):`
			`if xs[i] == 0:`
			`q.append(i)`
			`else:`
			`if q:`
			`j = q.popleft()`
			`xs[i], xs[j] = xs[j], xs[i]`
			`q.append(i)`

			`def move_zeroes_to_end_linear_constant_space(xs):`
			`"""`
			`This is the optimal solution. It runs in linear time and uses constant`
			`space.`
			`"""`
			`i = 0`
			`for j in range(len(xs)):`
			`if xs[j] != 0:`
			`xs[i], xs[j] = xs[j], xs[i]`
			`i += 1`


			`################################################################################`
			`# Tests`
			`################################################################################`

			`xss = [`
			`[1, 2, 0, 3, 4, 0, 0, 5, 0],`
			`[0, 1, 2, 0, 3, 4],`
			`[0, 0],`
			`]`

			`f = move_zeroes_to_end_linear_constant_space`

			`for xs in xss:`
			`print(xs)`
			`f(xs)`
			`print(xs)`