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Can anyone help as to why my while loop isn't working? It's forcing the user to select either 1, 2 or 3, and not letting them proceed, however regardless of whether you put in 1, 2 or 3, it always says that you've entered a different number, and so says "Please choose level 1, 2 or 3"

level = input("Enter your level by typing 1, 2 or 3\n")
int(level)

levelSelect = 1
while levelSelect == 1:
   if level != int(1) or level != 2 or level != 3:
      level = input("Please choose level 1, 2 or 3\n")
      int(level)
   else:
      print("You have selected level", level)
      levelSelect = 0
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2  
As another side note, int(1) is always able to be replaced by 1. –  mgilson Jan 9 '13 at 12:47
    
...Unless you've done something silly like rebind the name int. –  Karl Knechtel Jan 9 '13 at 13:15
    
You need to change your "or" to "and" in your if statement. It will always fail because level can't be 1 2 and 3. –  Triton Man Jan 9 '13 at 15:33

4 Answers 4

up vote 4 down vote accepted

The line int(level) doesn't do what you think it does. It creates an integer from a string and returns it. It does not operate in place. Because of this, when you get to your if statement, you're comparing a string to integers which is always unequal.

You probably want:

level = int(level)

As a side note, the condition could also be written using the in operator:

if level in (1,2,3):
   print("level is ...")
else:
   print("pick again!")
   #other code ...
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See mgilson's answer regarding assign level as an integer but your logic in deciding if the 'level' is legitimate is also wrong.

Change:

if level != int(1) or level != 2 or level != 3:

for:

if level not in (1,2,3)
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1  
Why do you say that logic is wrong? -- The style isn't ideal, but I don't think I see a problem with the logic. –  mgilson Jan 9 '13 at 12:45
1  
Sorry, yeah I was wrong to use wrong. –  Jdog Jan 9 '13 at 12:49

mgilson has indicated the core problem here, however I will make a suggestion to improve your code.

while True:
    level = input('Enter level: ')
    if level not in ('1','2','3'):
        print('Try again!\n')
    else:
        print('You chose level ', level)
        break
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I think this is what you want (props to with Inbar Rose)

def get_level():
    while True:
        level = int(input("Enter your level by typing 1, 2 or 3\n"))
            if level in [1, 2, 3]:
                return level
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1  
why not put the whole thing into the while loop? pastebin.com/ArVpMNwF : def choose_level(): while True: level = int(input("Enter your level by typing 1, 2 or 3\n")) if level in [1, 2, 3]: return level –  Inbar Rose Jan 9 '13 at 13:06

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