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I'm working on part of a program which presents a menu of 3 options to the user. I want to allow the user to enter their menu choice (1-3) after which the menu appears again and allows the user to enter another choice and repeats this process for a total of n times which the user also inputs prior to the menu. Obviously the program is just printing the menu 3 times in a row rather than in n separate iterations but I'm not sure how to fix this. Any input is appreciated, thanks.

n = int(input('Please enter the number of iterations:'))
for i in range(0,n):
    print('Enter 1 for choice 1\n')
    print('Enter 2 for choice 2\n')
    print('Enter 3 for choice 3\n')
    choice = int(input('Enter your choice:'))
    if (choice == 1):
        ....
        ....
    else:
        print('Invalid choice')
share|improve this question
up vote 4 down vote accepted

Put your code to handle the choice inside the loop:

n = int(input('Please enter the number of iterations:'))

for i in range(0,n):

    print('Enter 1 for choice 1\n')

    print('Enter 2 for choice 2\n')

    print('Enter 3 for choice 3\n')

    choice = int(input('Enter your choice:'))

    if (choice == 1):

        ....
        ....

    else:
        print('Invalid choice')
share|improve this answer
    
Great, thank you! – user2913067 Feb 25 '14 at 18:12

Indent the following piece of code, 4 spaces to the right:

if (choice == 1):
    ...
    ...
else:
    print('Invalid choice')

But if I may suggest a better implementation of what you are trying to do, then define a function which can handle a non-numeric user input, and in addition, take those prints outside the for loop:

def getUserInput(msg):
    while True:
        print msg
        try:
            return int(input(msg))
        except Exception,error:
            print error

n = getUserInput('Please enter the number of iterations:')

print 'Enter 1 for choice 1'
print 'Enter 2 for choice 2'
print 'Enter 3 for choice 3'

while n > 0:
    choice = getUserInput('Enter your choice:')
    if choice == 1:
        ...
        n -= 1
    elif choice == 2:
        ...
        n -= 1
    elif choice == 3:
        ...
        n -= 1
    else:
        print 'Invalid choice'
share|improve this answer

Just for fun: I've rewritten this to introduce some more advanced ideas (program structure, use of enumerate(), first-class functions, etc).

# assumes Python 3.x
from collections import namedtuple

def get_int(prompt, lo=None, hi=None):
    while True:
        try:
            val = int(input(prompt))
            if (lo is None or lo <= val) and (hi is None or val <= hi):
                return val
        except ValueError:   # input string could not be converted to int
            pass

def do_menu(options):
    print("\nWhich do you want to do?")
    for num,option in enumerate(options, 1):
        print("{num}: {label}".format(num=num, label=option.label))
    prompt = "Please enter the number of your choice (1-{max}): ".format(max=len(options))
    choice = get_int(prompt, 1, len(options)) - 1
    options[choice].fn()    # call the requested function

def kick_goat():
    print("\nBAM! The goat didn't like that.")

def kiss_duck():
    print("\nOOH! The duck liked that a lot!")

def call_moose():
    print("\nYour trombone sounds rusty.")

Option = namedtuple("Option", ["label", "fn"])
options = [
    Option("Kick a goat", kick_goat),
    Option("Kiss a duck", kiss_duck),
    Option("Call a moose", call_moose)
]

def main():
    num = get_int("Please enter the number of iterations: ")
    for i in range(num):
        do_menu(options)

if __name__=="__main__":
    main()
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