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integer-to-english-words.py
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integer-to-english-words.py
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# Time: O(logn) = O(1), n is the value of the integer, which is less than 2^31 - 1
# Space: O(1)
#
# Convert a non-negative integer to its english words representation.
# Given input is guaranteed to be less than 2^31 - 1.
#
# For example,
# 123 -> "One Hundred Twenty Three"
# 12345 -> "Twelve Thousand Three Hundred Forty Five"
# 1234567 -> "One Million Two Hundred Thirty Four Thousand Five Hundred Sixty Seven"
#
# Hint:
#
# 1. Did you see a pattern in dividing the number into chunk of words?
# For example, 123 and 123000.
#
# 2. Group the number by thousands (3 digits). You can write a helper
# function that takes a number less than 1000 and convert just that chunk to words.
#
# 3. There are many edge cases. What are some good test cases?
# Does your code work with input such as 0? Or 1000010?
# (middle chunk is zero and should not be printed out)
#
class Solution(object):
def numberToWords(self, num):
"""
:type num: int
:rtype: str
"""
if num == 0:
return "Zero"
lookup = {0: "Zero", 1:"One", 2: "Two", 3: "Three", 4: "Four", \
5: "Five", 6: "Six", 7: "Seven", 8: "Eight", 9: "Nine", \
10: "Ten", 11: "Eleven", 12: "Twelve", 13: "Thirteen", 14: "Fourteen", \
15: "Fifteen", 16: "Sixteen", 17: "Seventeen", 18: "Eighteen", 19: "Nineteen", \
20: "Twenty", 30: "Thirty", 40: "Forty", 50: "Fifty", 60: "Sixty", \
70: "Seventy", 80: "Eighty", 90: "Ninety"}
unit = ["", "Thousand", "Million", "Billion"]
res, i = [], 0
while num:
cur = num % 1000
if num % 1000:
res.append(self.threeDigits(cur, lookup, unit[i]))
num //= 1000
i += 1
return " ".join(res[::-1])
def threeDigits(self, num, lookup, unit):
res = []
if num / 100:
res = [lookup[num / 100] + " " + "Hundred"]
if num % 100:
res.append(self.twoDigits(num % 100, lookup))
if unit != "":
res.append(unit)
return " ".join(res)
def twoDigits(self, num, lookup):
if num in lookup:
return lookup[num]
return lookup[(num / 10) * 10] + " " + lookup[num % 10]