我一直在努力解决欧拉17问题并且遇到了一些麻烦。该问题的定义是:
如果数字1到5用文字写出:一,二,三,四,五,那么总共有3 + 3 + 5 + 4 + 4 = 19个字母。
如果所有1到1000(一千)的数字都用文字写出来,会用多少个字母?
注意:不要计算空格或连字符。例如,342(三百四十二)包含23个字母,115(一百一十五)包含20个字母。在写出数字时使用“和”符合英国的用法。
我是用Python编写的,即使经过三到四次代码,我仍然看不出问题所在。它很长(我刚刚开始学习python,我之前从未编写过代码),但我基本上只是定义了不同的函数,这些函数占用了不同的位数,并计算了每个函数的字母数。我最终得到了21254,看起来实际答案是21124,所以我完全取消了130.任何帮助都将受到赞赏。
# create dict mapping numbers to their
# lengths in English
maps = {}
maps[0] = 0
maps[1] = 3
maps[2] = 3
maps[3] = 5
maps[4] = 4
maps[5] = 4
maps[6] = 3
maps[7] = 5
maps[8] = 5
maps[9] = 4
maps[10] = 3
maps[11] = 6
maps['and'] = 3
maps['teen'] = 4
maps[20] = 6
maps[30] = 6
maps[40] = 5
maps[50] = 5
maps[60] = 6
maps[70] = 7
maps[80] = 6
maps[90] = 6
maps[100] = 7
maps[1000] = 8
# create a list of numbers 1-1000
def int_to_list(number):
s = str(number)
c = []
for digit in s:
a = int(digit)
c.append(a)
return c # turn a number into a list of its digits
def list_to_int(numList):
s = map(str, numList)
s = ''.join(s)
s = int(s)
return s
L = []
for i in range(1,1001,1):
L.append(i)
def one_digit(n):
q = maps[n]
return q
def eleven(n):
q = maps[11]
return q
def teen(n):
digits = int_to_list(n)
q = maps[digits[1]] + maps['teen']
return q
def two_digit(n):
digits = int_to_list(n)
first = digits[0]
first = first*10
second = digits[1]
q = maps[first] + one_digit(second)
return q
def three_digit(n):
digits = int_to_list(n)
first = digits[0]
second = digits[1]
third = digits[2]
# first digit length
f = maps[first]+maps[100]
if second == 1 and third == 1:
s = maps['and'] + maps[11]
elif second == 1 and third != 1:
s = digits[1:]
s = list_to_int(s)
s = maps['and'] + teen(s)
elif second == 0 and third == 0:
s = maps[0]
elif second == 0 and third != 0:
s = maps['and'] + maps[third]
else:
s = digits[1:]
s = list_to_int(s)
s = maps['and'] + two_digit(s)
q = f + s
return q
def thousand(n):
q = maps[1000]
return q
# generate a list of all the lengths of numbers
lengths = []
for i in L:
if i < 11:
n = one_digit(i)
lengths.append(n)
elif i == 11:
n = eleven(i)
lengths.append(n)
elif i > 11 and i < 20:
n = teen(i)
lengths.append(n)
elif i > 20 and i < 100:
n = two_digit(i)
lengths.append(n)
elif i >= 100 and i < 1000:
n = three_digit(i)
lengths.append(n)
elif i == 1000:
n = thousand(i)
lengths.append(n)
else:
pass
# since "eighteen" has eight letters (not 9), subtract 10
sum = sum(lengths) - 10
print "Your number is: ", sum
答案 0 :(得分:9)
您的代码充满了错误:
这是错误的:
maps[60] = 6
对错误的贡献:+100(因为它影响60到69,160到169,......,960到969)。
几个青少年错了:
>>> teen(12)
7
>>> teen(13)
9
>>> teen(15)
8
>>> teen(18)
9
对错误的贡献:+40(因为它影响12,13,......,112,113,...,918)
任何数量的形式x10:
>>> three_digit(110)
17
对错误的贡献:9(因为110,210,... 910)
不计算数字20(您考虑i < 20和i > 20但不考虑i == 20。)
对错误的贡献:-6
数字1000用英文写成“一千”,但是:
>>> thousand(1000)
8
对错误的贡献:-3
你在结尾处减去10,试图弥补其中一个错误。
对错误的贡献:-10
总错误:100 + 40 + 9 - 6 - 3 - 10 = 130。
通过尝试直接使用字母计数,您确实很难检查自己的工作。再一次在“一百零一”中有多少封信?它是17,还是16?如果您采用了这样的策略,那么测试您的工作会更容易:
unit_names = """zero one two three four five six seven eight nine ten
eleven twelve thirteen fourteen fifteen sixteen seventeen
eighteen nineteen""".split()
tens_names = """zero ten twenty thirty forty fifty sixty seventy eighty
ninety""".split()
def english(n):
"Return the English name for n, from 0 to 999999."
if n >= 1000:
thous = english(n // 1000) + " thousand"
n = n % 1000
if n == 0:
return thous
elif n < 100:
return thous + " and " + english(n)
else:
return thous + ", " + english(n)
elif n >= 100:
huns = unit_names[n // 100] + " hundred"
n = n % 100
if n == 0:
return huns
else:
return huns + " and " + english(n)
elif n >= 20:
tens = tens_names[n // 10]
n = n % 10
if n == 0:
return tens
else:
return tens + "-" + english(n)
else:
return unit_names[n]
def letter_count(s):
"Return the number of letters in the string s."
import re
return len(re.findall(r'[a-zA-Z]', s))
def euler17():
return sum(letter_count(english(i)) for i in range(1, 1001))
使用这种方法可以更轻松地检查结果:
>>> english(967)
'nine hundred and sixty-seven'