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def answer(): 
    if True:
        ans = raw_input('Enter y/n:')

        if ans != "y" and ans != "n":
            print "Try again"
            answer()
        elif ans == "n":
            return False
        elif ans == "y":
            return True
if answer():
    print "It's working!, you entered Y"
else:
    print "You entered N"

When I execute this code, I press Enter several times or enter wrong letters, then I enter y, I always get "You entered N" instead of "It's working!, you entered Y" .

I can't figure out what's the problem, please help me.

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1  
Why the if true on line 2? –  VoronoiPotato Sep 27 '13 at 14:43

2 Answers 2

up vote 9 down vote accepted

You are discarding the return value of your function in the if block. You should change it to:

if ans != "y" and ans != "n":
    print "Try again"
    return answer()

If you don't return the value, your function will return None, which will be evaluated as False on the outer if. Also, there is no need of if True: inside your function.

P.S: Please avoid using recursion for this task. You can easily do this with a while loop, which iterates till the user doesn't pass correct input, and breaks as soon as succeeds. Also, give user a certain number of attempts to pass correct inputs, to avoid infinite loop.

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I don't think recursion and user input are a good combination: you could blow the stack. I'd use while True: instead. (I know you're just solving the user's problem in context, of course.) –  DSM Sep 27 '13 at 14:56
    
Thanks, I know now where the problem is coming form (a lot of None, shows up when I replaced return answer() by print answer() ). I'll try to fix it. –  Salah Sep 27 '13 at 14:58
    
@DSM. Of course you are right. Generally, it should be prefered to give user a certain number of maximum tries to give correct input, to avoid blowing of stack. –  Rohit Jain Sep 27 '13 at 14:59
    
@Salah. Printing the result will also not work. Because you are again not returning the return value of the function to the function lower on the stack, which invoked it. –  Rohit Jain Sep 27 '13 at 15:00
    
@Salah. Maintain a count variable accross function calls. You can pass it as parameter. Start with 0. And then for each invocation, increment it and pass - count += 1 \n answer(count). And then before the invocation of function, check the value of count. If count >= maxAttempt, then return False. –  Rohit Jain Sep 27 '13 at 15:13

You don't really need recursion in this case, just use an infinite loop and don't return if the answer is not "y" or "n":

def answer(): 
    while True:
        ans = raw_input('Enter y/n:')
        if not ans or ans not in "yn":
            print "Try again"
        else:
            return ans == "y"  # This is more succinct

if answer():
    print "It's working!, you entered Y"
else:
    print "You entered N"
share|improve this answer
1  
The problem with one, it doesn't handle the case of hitting "enter" without entering a value, which equal to None, and it will return "You entered N" –  Salah Sep 27 '13 at 15:02
    
You're right, I edited the function to take that into account :-) –  jbaiter Sep 27 '13 at 15:05

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