本文实例讲述了python实现的简单算术游戏。分享给大家供大家参考。具体实现方法如下:
#!/usr/bin/env python
from operator import add, sub
from random import randint, choice
ops = {‘+’: add, ‘-‘:sub}
#定义一个字典
maxtries = 2
def doprob():
op = choice(‘+-‘)
#用choice从’+-‘中随意选择操作符
nums = [randint(1,10) for i in range(2)]
#用randint(1,10)随机生成一个1到10的数,随机两次使用range(2)
nums.sort(reverse=true)
#按升序排序
ans = ops[op](*nums)
#利用函数
pr = ‘%d %s %d = ‘ % (nums[0], op, nums[1])
oops = 0
#oops用来计算failure测试,当三次时自动给出答案
while true:
try:
if int(raw_input(pr)) == ans:
print ‘correct’
break
if oops == maxtries:
print ‘answer\n %s%d’ % (pr, ans)
break
else:
print ‘incorrect… try again’
oops += 1
except (keyboardinterrupt, eoferror, valueerror):
print ‘invalid ipnut… try again’
def main():
while true:
doprob()
try:
opt = raw_input(‘again? [y]’).lower()
if opt and opt[0] == ‘n’:
break
except (keyboardinterrupt, eoferror):
break
if __name__ == ‘__main__’:
main()
运行结果如下:
8 – 1 = 7
correct
again? [y]y
7 – 1 = 6
correct
again? [y]y
9 + 4 = 0
incorrect… try again
9 + 4 =
希望本文所述对大家的python程序设计有所帮助。