1

This question already has an answer here:

I am working my way through Python for Everyone and I am stuck at this junction. To my eye I have stated that the ValueError is only to be raised if 'num' is anything other than a integer. However when I run the code the error is raised everytime regardless of input. Can anyone nudge me in the right direction?

Extensively googled but I'm not entirely too sure what specifically I should google for...

largest = None
smallest = None
while True:
    try:
        num = input("Enter a number: ")
        if num != int : raise ValueError
        elif num == "done" : break
    except ValueError:
        print("Error. Please enter an integer or type 'done' to run the program.")
        quit()


print("Maximum", largest)
print("Minimum", smallest)

The code always raises ValueError even when the input is an integer.

marked as duplicate by mkrieger1, Code-Apprentice, Patrick Artner python Jun 8 at 15:22

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  • 1
    input() always returns a string – anky_91 Jun 8 at 15:15
  • It is probably a string. – Jeppe Jun 8 at 15:15
  • 1
    Even if it were an integer, it would still be different from the type int. – mkrieger1 Jun 8 at 15:16
  • You probably meant if not isinstance(num, int), but that will also always be true, because input always returns a string. – chepner Jun 8 at 15:16
  • num != int is an equality comparison, not a type check. – Code-Apprentice Jun 8 at 15:20
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This line checks if the inputted string is literally equal to the builtin type int:

if num != int : raise ValueError

 

Other problem is that the input() function always returns a string. So if you want to raise a ValueError when the user inputs anything but a number, simply do:

inputted = input("Enter a number: ")
num = int(inputted)  # raises ValueError when cannot be converted to int
2

If you want to check if the string entered can be converted into an int, just try it:

while True:
    num = input("Enter a number: ")
    if num == "done":
        break
    try:
        num = int(num)
    except ValueError:
        continue

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