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different-ways-to-add-parentheses.py
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different-ways-to-add-parentheses.py
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# Time: O(n * 4^n / n^(3/2)) ~= n * Catalan numbers = n * (C(2n, n) - C(2n, n - 1)),
# due to the size of the results is Catalan numbers,
# and every way of evaluation is the length of the string,
# so the time complexity is at most n * Catalan numbers.
# Space: O(n * 4^n / n^(3/2)), the cache size of lookup is at most n * Catalan numbers.
#
# Given a string of numbers and operators, return all possible
# results from computing all the different possible ways to
# group numbers and operators. The valid operators are +, - and *.
#
#
# Example 1
# Input: "2-1-1".
#
# ((2-1)-1) = 0
# (2-(1-1)) = 2
# Output: [0, 2]
#
#
# Example 2
# Input: "2*3-4*5"
#
# (2*(3-(4*5))) = -34
# ((2*3)-(4*5)) = -14
# ((2*(3-4))*5) = -10
# (2*((3-4)*5)) = -10
# (((2*3)-4)*5) = 10
# Output: [-34, -14, -10, -10, 10]
#
import operator
import re
class Solution:
# @param {string} input
# @return {integer[]}
def diffWaysToCompute(self, input):
tokens = re.split('(\D)', input)
nums = map(int, tokens[::2])
ops = map({'+': operator.add, '-': operator.sub, '*': operator.mul}.get, tokens[1::2])
lookup = [[None for _ in xrange(len(nums))] for _ in xrange(len(nums))]
def diffWaysToComputeRecu(left, right):
if left == right:
return [nums[left]]
if lookup[left][right]:
return lookup[left][right]
lookup[left][right] = [ops[i](x, y)
for i in xrange(left, right)
for x in diffWaysToComputeRecu(left, i)
for y in diffWaysToComputeRecu(i + 1, right)]
return lookup[left][right]
return diffWaysToComputeRecu(0, len(nums) - 1)
class Solution2:
# @param {string} input
# @return {integer[]}
def diffWaysToCompute(self, input):
lookup = [[None for _ in xrange(len(input) + 1)] for _ in xrange(len(input) + 1)]
ops = {'+': operator.add, '-': operator.sub, '*': operator.mul}
def diffWaysToComputeRecu(left, right):
if lookup[left][right]:
return lookup[left][right]
result = []
for i in xrange(left, right):
if input[i] in ops:
for x in diffWaysToComputeRecu(left, i):
for y in diffWaysToComputeRecu(i + 1, right):
result.append(ops[input[i]](x, y))
if not result:
result = [int(input[left:right])]
lookup[left][right] = result
return lookup[left][right]
return diffWaysToComputeRecu(0, len(input))