Python programming problem: user login, locked after three opportunities

#include_ 2022-05-14 14:35:14 阅读数:278

pythonprogrammingproblemuserlogin

Subject requirements :
Give users three chances to enter user name and password , Requirements are as follows :‪‬‪‬‪‬‪‬‪‬‮‬‫‬‫‬‪‬‪‬‪‬‪‬‪‬‮‬‪‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‮‬‪‬‪‬‪‬‪‬‪‬‮‬‭‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‭‬‫‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‪‬‮‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‭‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‫‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‫‬

1 If you enter the first line, enter the user name as ‘123’, The password entered on the second line is ‘123’, Output ‘ Login successful !’, Exit procedure ;‪‬‪‬‪‬‪‬‪‬‮‬‫‬‫‬‪‬‪‬‪‬‪‬‪‬‮‬‪‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‮‬‪‬‪‬‪‬‪‬‪‬‮‬‭‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‭‬‫‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‪‬‪‬‪‬‪‬‪‬‪‬‮‬‪‬‮‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‭‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‫‬‪‬‪‬‪‬‪‬‪‬‮‬‫‬‫‬

2 If the input is wrong , Prompt “ Wrong user name or password ”, After three mistakes , Exit procedure

count = 0
while count < 3:
inpa = input(' Please enter a user name ')
inpb = input(' Please input a password ')
if inpa == '123' and inpb == '123':
print(' Login successful ,')
break
else:
print(' Wrong user name or password ')
count = count + 1
print(count)

版权声明:本文为[#include_]所创,转载请带上原文链接,感谢。 https://pythonmana.com/2022/134/202205141340281578.html