11

I'm trying to make a multiple choice survey that allows the user to pick from options 1-x. How can I make it so that if the user enters any characters besides numbers, return something like "That's an invalid answer"

def Survey():
    print('1) Blue')
    print('2) Red')
    print('3) Yellow')
    question = int(input('Out of these options\(1,2,3), which is your favourite?'))
    if question == 1:
        print('Nice!')
    elif question == 2:
        print('Cool')
    elif question == 3:
        print('Awesome!')
    else:
        print('That\'s not an option!')
1
  • 1
    Creae a helper function which tries to convert an input string by int(input_string) to int and on exception of value errror , again take input.
    – user12123215
    Sep 26, 2019 at 8:57

9 Answers 9

26

Your code would become:

def Survey():

    print('1) Blue')
    print('2) Red')
    print('3) Yellow')

    while True:
        try:
            question = int(input('Out of these options\(1,2,3), which is your favourite?'))
            break
        except:
            print("That's not a valid option!")

    if question == 1:
        print('Nice!')
    elif question == 2:
        print('Cool')
    elif question == 3:
        print('Awesome!')
    else:
        print('That\'s not an option!')

The way this works is it makes a loop that will loop infinitely until only numbers are put in. So say I put '1', it would break the loop. But if I put 'Fooey!' the error that WOULD have been raised gets caught by the except statement, and it loops as it hasn't been broken.

0
7

The best way would be to use a helper function which can accept a variable type along with the message to take input.

def _input(message, input_type=str):
    while True:
      try:
        return input_type (input(message))
    except:pass

if __name__ == '__main__':
    _input("Only accepting integer : ", int)
    _input("Only accepting float : ", float)
    _input("Accepting anything as string : ")

So when you want an integer , you can pass it that i only want integer, just in case you can accept floating number you pass the float as a parameter. It will make your code really slim so if you have to take input 10 times , you don't want to write try catch blocks ten times.

0
4
def func():
    choice = "Wrong"
    
    while choice.isdigit()==False :
        choice = input("Enter a number: ")
        
        if choice.isdigit()==False:
            print("Wrongly entered: ")
        else:
            return int(choice)
2

One solution amongst others : use the type function or isinstance function to check if you have an ̀int or a float or some other type

>>> type(1)
<type 'int'>

>>> type(1.5)
<type 'float'>

>>> isinstance(1.5, int)
False

>>> isinstance(1.5, (int, float))
True   
2
  • It does not answer the question specifically. He wants to convert entered str type into int.
    – user12123215
    Sep 26, 2019 at 8:59
  • 1
    @AhsanRoy You are right. I'm not sure why I answered that 5 years ago ! I think I answered to this specific part: "How can I make it so that if the user enters any characters besides numbers, return ..."
    – Cyrille
    Sep 26, 2019 at 15:11
1

I would catch first the ValueError (not integer) exception and check if the answer is acceptable (within 1, 2, 3) or raise another ValueError exception

def survey():
    print('1) Blue')
    print('2) Red')
    print('3) Yellow')

    ans = 0
    while not ans:
        try:
            ans = int(input('Out of these options\(1, 2, 3), which is your favourite?'))
            if ans not in (1, 2, 3):
                raise ValueError
        except ValueError:
            ans = 0
            print("That's not an option!")

    if ans == 1:
        print('Nice!')
    elif ans == 2:
        print('Cool')
    elif ans == 3:
        print('Awesome!')
    return None
1
  • Can be made lot cleaner with a helper function
    – user12123215
    Sep 26, 2019 at 8:59
0

I made a module for cases like this called restricted_input which checks the input in real time. Here, since you only need inputs from 1-3, this would do

from restricted_input import r_input
num = int(r_input("Out of these options\(1,2,3), which is your favourite? ", input_type="nothing", allow="123", maxlength=1))

It uses msvcrt.getch/termios to get non-blocking input, so it checks it in real time and allows only the specified characters.
Note: This will not work in IDLEs like Spyder, Jupyter etc.

0
0
# force user to input a number between 0 - 4 (1,2,3)
def input_int():
    num = ""
    i = 0
    while type(num) is not int:
        # user have 3 chance to try:
        if i > 2:
            print("try later")
            exit(1)
        i += 1
        # input int
        try:
            num = int(input("{} form {} try! please insert int num: ".format(i, 3)))
            # checking number for being upper than zero and lower than 3 (1, 2, 3)
            if 0 > num or num > 3:
                num = ""
                print("That's an invalid answer")
                continue
        # if the input is not a int, user have to input another value
        except ValueError:
            print("That's an invalid answer")
            continue
    # if input for num was valid, return num
    return num
1
  • Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.
    – Community Bot
    Jun 7, 2023 at 22:30
0
from msvcrt import getch

def survey():
    comment = ['Nice!', 'Cool', 'Awesome!']

    while True:        
        print('\n1) Blue', '2) Red', '3) Yellow', sep='\n', end='')
        print('\nOut of these options\(1,2,3), which is your favourite? ', end='')

        try:
            answer = getch().decode()   # input of 1 character
        except UnicodeDecodeError:      # error from del, home, pg up, etc., keys
            continue

        if answer in '123':    
            print(answer, end=' ')  # print the entered char 
            print(comment[int(answer)-1])
            break             
        else:
            print('\nThat\'s not an option! Please, try again...')

survey()

Running on Windows with msvcrt standard lib. If you want to allow a escape way without answering by pressing [ENTER], insert next to the if clause:

elif answer == '\r': break
-1

You can use a module named PyInputPlus.

Installation:

pip install PyInputPlus

You can use this as

def Survey():
    print('1) Blue')
    print('2) Red')
    print('3) Yellow')
    question = int(input('Out of these options\(1,2,3), which is your favourite?'))
    if question == 1:
        print('Nice!')
    elif question == 2:
        print('Cool')
    elif question == 3:
        print('Awesome!')
    else:
        print('That\'s not an option!')

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