Sni*_*gie 7 python datetime if-statement python-3.x try-except
我是 python 的新手,我即将制作这个新程序,它会问你生日。我做了一些 try/except 子句来避免人们以字符串或高数字输入信息。我希望我的程序找出输入的信息最终是否等于日期。如果是,我希望将其打印出来,如果没有,我希望它找出用户输入的哪一部分是错误的。因此,我在最后一个 except 子句中创建了一些 if 子句,其想法是错误将等于一条消息。
我想知道是否有可能让程序将消息与错误进行匹配,以找出具体的错误并找出输入的哪一部分是错误的。
我的代码如下所示:
try:
print(datetime.date(int(birthYear), int(birthMonth), int(birthDay)))
except TypeError:
if ValueError == "ValueError: month must be in 1..12":
print("Month " + str(birthMonth) + " is out of range. The month must be a number in 1...12")
if ValueError == "ValueError: year " + str(birthYear) + " is out of range":
print("Year " + str(birthMonth) + " is out of range. The year must be a number in " + str(datetime.MINYEAR) + "..." + str(datetime.MAXYEAR))
if ValueError == "ValueError: day is out of range for month":
print("Day " + str(birthDay) + " is out of range. The day must be a number in 1..." + str(calendar.monthrange(birthYear, birthMonth)))
你很接近。诀窍是使用ValueError as e字符串并将其与str(e). 使用if/elif而不是重复if语句也是一种很好的做法。
这是一个工作示例:
import calendar, datetime
try:
print(datetime.date(int(birthYear), int(birthMonth), int(birthDay)))
except ValueError as e:
if str(e) == 'month must be in 1..12':
print('Month ' + str(birthMonth) + ' is out of range. The month must be a number in 1...12')
elif str(e) == 'year {0} is out of range'.format(birthYear):
print('Year ' + str(birthMonth) + ' is out of range. The year must be a number in ' + str(datetime.MINYEAR) + '...' + str(datetime.MAXYEAR))
elif str(e) == 'day is out of range for month':
print('Day ' + str(birthDay) + ' is out of range. The day must be a number in 1...' + str(calendar.monthrange(birthYear, birthMonth)))