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I am just starting out with Python and decided to try this little project from Python Wiki:

Write a password guessing program to keep track of how many times the user has entered the password wrong. If it is more than 3 times, print You have been denied access. and terminate the program. If the password is correct, print You have successfully logged in. and terminate the program.

Here's my code. It works but it just doesn't feel right with these loop breaks and nested if statements.

# Password Guessing Program
# Python 2.7

count = 0

while count < 3:
    password = raw_input('Please enter a password: ')
    if password != 'SecretPassword':
        count = count + 1;
        print 'You have entered invalid password %i times.' % (count)
        if count == 3:
            print 'Access Denied'
            break
    else:
        print 'Access Granted'
        break
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"Doesn't feel right"? Wat? –  delnan Nov 5 '10 at 22:04

4 Answers 4

up vote 7 down vote accepted

You can replace your while loop with the following function:

def login():
    for i in range(3):
        password = raw_input('Please enter a password: ')
        if password != 'SecretPassword':
            print 'You have entered invalid password {0} times.'.format(i + 1)
        else:
            print 'Access Granted'
            return True
    print 'Access Denied'
    return False

You may also want to consider using the getpass module.

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2  
Really minor nitpicking: That should be .format(i+1). Also, getpass is the way to go for real code but not really needed for a beginner's excercise. –  delnan Nov 5 '10 at 22:08
    
@delnan: +1 Thanks, fixed. –  Mark Byers Nov 5 '10 at 22:10
    
When I run this code I get nothing. How do I "call" this function? –  Twilight Pony Inc. Nov 5 '10 at 22:32
    
@Silence of 2012: Like you would call any other function: login() –  Sasha Chedygov Nov 5 '10 at 22:33
    
Thanks musicfreak! –  Twilight Pony Inc. Nov 5 '10 at 22:34

I'm not against the "imperative" feel of loop/if, but I would separate your "business logic" from your "presentation":

count = 0

# Business logic
# The correct password and the maximum number of tries is placed here
DENIED, VALID, INVALID = range(3)
def verifyPassword(userPassword):
    global count
    count += 1

    if count > 3:
        return DENIED
    elif password == 'SecretPassword':
        return VALID

    return INVALID

# Presentation
# Here you do the IO with the user
check = INVALID
while (check == INVALID):
    password = raw_input('Please enter a password: ')
    check = verifyPassword(password)

    if check == INVALID:
        print 'You have entered invalid password %i times.' % (count)
    elif check == VALID:
        print 'Access Granted'
    else # check == DENIED
        print 'Access Denied'
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I think you want to declare count to be global. –  aaronasterling Nov 6 '10 at 2:11
    
oh yes, sorry about that. –  rsenna Nov 6 '10 at 2:50
granted = False # default condition should be the least dangerous
for count in range(3):
    password = raw_input('Please enter a password: ')
    if password == 'SecretPassword': # no need to test for wrong answer
        granted = True
        break
    print 'You have entered invalid password %i times.' % (count+1) # else

if granted:
    print 'Access Granted'
else:
    print 'Access Denied'
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Quick question, when you do this "for count in range(3):" what is the initial value of count? –  Twilight Pony Inc. Nov 5 '10 at 22:18
    
@Silence of 2012: it is zero, thanks! –  Paulo Scardine Nov 5 '10 at 22:21

You can bring the if statement out of the while loop.

# Password Guessing Program
# Python 2.7

count = 0
access = False

while count < 3 and not access:
    password = raw_input('Please enter a password: ')
    if password != 'SecretPassword':
        count += 1
        print 'You have entered invalid password %i times.' % (count)
    else:
        access = True

if access:
    print 'Access Granted'
else:
    print 'Access Denied'
share|improve this answer
    
I'm not super experienced with python so there maybe some syntax problems. –  thattolleyguy Nov 5 '10 at 22:09
    
Yes indeed it does contain sytnax errors. && is not valid in Python and then it complains that name 'false' is not defined. –  Twilight Pony Inc. Nov 5 '10 at 22:13
    
There's a couple of changes that should fix the syntax (I think). I think the overall logic answers the question by getting rid of the breaks. –  thattolleyguy Nov 5 '10 at 22:27
    
Fixed your syntax for you. :) Nevertheless, I think the concept is easy to grasp regardless of syntax errors. –  Sasha Chedygov Nov 6 '10 at 2:10
    
Thanks! Now I'm going to relearn python.... :) –  thattolleyguy Nov 6 '10 at 17:17

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