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My code is not allowing me to break out of the infinite loop, and therefore exit the program. Here is my code:

while True:
        print("\n1. Surname\n2. D.O.B\n3. Quit")
        try:
            select = int(input("Please select an option: "))
            if select == 1:
                surnameSearch()
            elif select == 2:
                DOB_search(BkRdr)
            elif search == 3:
                break
        except:
            print("That was an incorrect option, please try again:")

Here is what the input/output looks like:

1. Surname
2. D.O.B
3. Quit
Please select an option: 3
That was an incorrect option, please try agan:

1. Surname
2. D.O.B
3. Quit
Please select an option: 
share|improve this question
1  
You are performing a try...except... operation without choosing what Exceptions to catch. This will stop you from manually exiting the program too (with a KeyboardInterrupt). You should never have a general except clause. – Ffisegydd Apr 17 '14 at 14:40
2  
change search to select. Voting to close as typo. – Alex Thornton Apr 17 '14 at 14:41
    
Note: I have updated my answer. Please see the suggestion – sshashank124 Apr 17 '14 at 14:42
up vote 3 down vote accepted

It should be select not search:

while True:
    print("\n1. Surname\n2. D.O.B\n3. Quit")
    try:
        select = int(input("Please select an option: "))
        if select == 1:
            surnameSearch()
        elif select == 2:
            DOB_search(BkRdr)
        elif select == 3:
            break
    except:
        print("That was an incorrect option, please try again:")

Also, I suggest you use an else statement instead of a generic except clause as follows:

while True:
    print("\n1. Surname\n2. D.O.B\n3. Quit")
    try:
        select = int(input("Please select an option: "))
    except ValueError:
        print("Not a valid input")
    else:
        if select == 1:
            surnameSearch()
        elif select == 2:
            DOB_search(BkRdr)
        elif select == 3:
            break
        else:
            print("That was an incorrect option, please try again:")
share|improve this answer
1  
It is still worth covering the input with a try, in case they enter something that can't be made an int - I would suggest putting the rest in the else block of that try. – jonrsharpe Apr 17 '14 at 14:44
    
@jonrsharpe, I'm not sure what you mean by the else block. Can you please explain? Please go ahead and append to my answer if you wish and are willing to. Thank you. – sshashank124 Apr 17 '14 at 14:46
    
I have edited your answer to demonstrate – jonrsharpe Apr 17 '14 at 14:48
    
@jonrsharpe, Ah I see. Thank you very much. – sshashank124 Apr 17 '14 at 14:49

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