tvl-depot/scratch/deepmind/part_two/find-duplicate-optimize-for-space-beast-mode.py

import unittest


################################################################################
# InterviewCake's solution
################################################################################
def cycle_len(xs, i):
    """
    Returns the length of a cycle that contains no duplicate items.
    """
    result = 1
    checkpt = i
    current = xs[checkpt - 1]

    while current != checkpt:
        current = xs[current - 1]
        result += 1

    return result


def theirs(xs):
    """
    This is InterviewCake's solution.
    """
    i = xs[-1]
    for _ in range(len(xs) - 1):
        i = xs[i - 1]

    cycle_length = cycle_len(xs, i)

    p0 = xs[-1]
    p1 = xs[-1]
    for _ in range(cycle_length):
        p1 = xs[p1 - 1]

    while p0 != p1:
        p0 = xs[p0 - 1]
        p1 = xs[p1 - 1]

    print(p0, p1)

    return p0


################################################################################
# My solution
################################################################################
def mine(xs):
    """
    This is the solution that I came up with, which differs from InterviewCake's
    solution.
    """
    i = xs[-1]
    offset = 1 if len(xs) % 2 == 0 else 2

    for _ in range(len(xs) - offset):
        i = xs[i - 1]

    return i


use_mine = True
find_duplicate = mine if use_mine else theirs


# Tests
class Test(unittest.TestCase):
    def test_just_the_repeated_number(self):
        # len(xs) even
        actual = find_duplicate([1, 1])
        expected = 1
        self.assertEqual(actual, expected)

    def test_short_list(self):
        # len(xs) even
        actual = find_duplicate([1, 2, 3, 2])
        expected = 2
        self.assertEqual(actual, expected)

    def test_medium_list(self):
        # len(xs) even
        actual = find_duplicate([1, 2, 5, 5, 5, 5])
        expected = 5
        self.assertEqual(actual, expected)

    def test_long_list(self):
        # len(xs) odd
        actual = find_duplicate([4, 1, 4, 8, 3, 2, 7, 6, 5])
        expected = 4
        self.assertEqual(actual, expected)

    ############################################################################
    # Additional examples from InterviewCake.com
    ############################################################################
    def test_example_a(self):
        # len(xs) even
        actual = find_duplicate([3, 4, 2, 3, 1, 5])
        expected = 3
        self.assertTrue(actual, expected)

    def test_example_b(self):
        # len(xs) even
        actual = find_duplicate([3, 1, 2, 2])
        expected = 2
        self.assertEqual(actual, expected)

    def test_example_c(self):
        # len(xs) odd BUT multiple duplicates
        actual = find_duplicate([4, 3, 1, 1, 4])
        self.assertTrue(actual in {1, 4})


unittest.main(verbosity=2)
Solve InterviewCake's find duplicate beast mode Write a function to find a duplicate item in a list of numbers. The values are in the range [1, n]; the length of the list is n + 1. The solution should run in linear time and consume constant space. The solution is to construct a graph from the list. Each graph will have a cycle where the last element in the cycle is a duplicate value. See the solution for specific techniques on how to compute the length the cycle without infinitely looping. 2020-03-26 12:55:06 +01:00			`import unittest`


			`################################################################################`
			`# InterviewCake's solution`
			`################################################################################`
			`def cycle_len(xs, i):`
			`"""`
			`Returns the length of a cycle that contains no duplicate items.`
			`"""`
			`result = 1`
			`checkpt = i`
			`current = xs[checkpt - 1]`

			`while current != checkpt:`
			`current = xs[current - 1]`
			`result += 1`

			`return result`


			`def theirs(xs):`
			`"""`
			`This is InterviewCake's solution.`
			`"""`
			`i = xs[-1]`
			`for _ in range(len(xs) - 1):`
			`i = xs[i - 1]`

			`cycle_length = cycle_len(xs, i)`

			`p0 = xs[-1]`
			`p1 = xs[-1]`
			`for _ in range(cycle_length):`
			`p1 = xs[p1 - 1]`

			`while p0 != p1:`
			`p0 = xs[p0 - 1]`
			`p1 = xs[p1 - 1]`

			`print(p0, p1)`

			`return p0`


			`################################################################################`
			`# My solution`
			`################################################################################`
			`def mine(xs):`
			`"""`
			`This is the solution that I came up with, which differs from InterviewCake's`
			`solution.`
			`"""`
			`i = xs[-1]`
			`offset = 1 if len(xs) % 2 == 0 else 2`

			`for _ in range(len(xs) - offset):`
			`i = xs[i - 1]`

			`return i`


			`use_mine = True`
			`find_duplicate = mine if use_mine else theirs`


			`# Tests`
			`class Test(unittest.TestCase):`
			`def test_just_the_repeated_number(self):`
			`# len(xs) even`
			`actual = find_duplicate([1, 1])`
			`expected = 1`
			`self.assertEqual(actual, expected)`

			`def test_short_list(self):`
			`# len(xs) even`
			`actual = find_duplicate([1, 2, 3, 2])`
			`expected = 2`
			`self.assertEqual(actual, expected)`

			`def test_medium_list(self):`
			`# len(xs) even`
			`actual = find_duplicate([1, 2, 5, 5, 5, 5])`
			`expected = 5`
			`self.assertEqual(actual, expected)`

			`def test_long_list(self):`
			`# len(xs) odd`
			`actual = find_duplicate([4, 1, 4, 8, 3, 2, 7, 6, 5])`
			`expected = 4`
			`self.assertEqual(actual, expected)`

			`############################################################################`
			`# Additional examples from InterviewCake.com`
			`############################################################################`
			`def test_example_a(self):`
			`# len(xs) even`
			`actual = find_duplicate([3, 4, 2, 3, 1, 5])`
			`expected = 3`
			`self.assertTrue(actual, expected)`

			`def test_example_b(self):`
			`# len(xs) even`
			`actual = find_duplicate([3, 1, 2, 2])`
			`expected = 2`
			`self.assertEqual(actual, expected)`

			`def test_example_c(self):`
			`# len(xs) odd BUT multiple duplicates`
			`actual = find_duplicate([4, 3, 1, 1, 4])`
			`self.assertTrue(actual in {1, 4})`


			`unittest.main(verbosity=2)`