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count-numbers-with-unique-digits.py
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count-numbers-with-unique-digits.py
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# Time: O(n)
# Space: O(1)
# Given an integer n, count all numbers with unique digits, x, where 0 <= x <= 10n.
#
# Example:
# Given n = 2, return 91. (The answer should be the total numbers in the range of 0 <= x <= 100,
# excluding [11,22,33,44,55,66,77,88,99,100])
#
# Hint:
# 1. A direct way is to use the backtracking approach.
# 2. Backtracking should contains three states which are (the current number,
# number of steps to get that number and a bitmask which represent which
# number is marked as visited so far in the current number).
# Start with state (0,0,0) and count all valid number till we reach
# number of steps equals to 10n.
# 3. This problem can also be solved using a dynamic programming approach and
# some knowledge of combinatorics.
# 4. Let f(k) = count of numbers with unique digits with length equals k.
# 5. f(1) = 10, ..., f(k) = 9 * 9 * 8 * ... (9 - k + 2)
# [The first factor is 9 because a number cannot start with 0].
class Solution(object):
def countNumbersWithUniqueDigits(self, n):
"""
:type n: int
:rtype: int
"""
if n == 0:
return 1
count, fk = 10, 9
for k in xrange(2, n+1):
fk *= 10 - (k-1)
count += fk
return count