3

I made a program where the user enters a number, and the program would count up to that number and display how much time it took. However, whenever I enter letters or decimals (i.e. 0.5), I would get a error. Here is the full error message:

Traceback (most recent call last):
  File "C:\Documents and Settings\Username\Desktop\test6.py", line 5, in <module>
    z = int(z)
ValueError: invalid literal for int() with base 10: 'df'

What can I do to fix this?

Here is the full code:

import time
x = 0
print("This program will count up to a number you choose.")
z = input("Enter a number.\n")
z = int(z)
start_time = time.time()
while x < z:
    x = x + 1
    print(x)
end_time = time.time()
diff = end_time - start_time
print("That took",(diff),"seconds.")

Please help!

  • 2
    What is the expected behavior? What should z contain in the input is "df" or "0.5" instead of a number? – rid Jun 18 '11 at 3:23
8

Well, there really a way to 'fix' this, it is behaving as expected -- you can't case a letter to an int, that doesn't really make sense. Your best bet (and this is a pythonic way of doing things), is to simply write a function with a try... except block:

def get_user_number():
    i = input("Enter a number.\n")
    try:
        # This will return the equivalent of calling 'int' directly, but it
        # will also allow for floats.
        return int(float(i)) 
    except:
        #Tell the user that something went wrong
        print("I didn't recognize {0} as a number".format(i))
        #recursion until you get a real number
        return get_user_number()

You would then replace these lines:

z = input("Enter a number.\n")
z = int(z)

with

z = get_user_number()
| improve this answer | |
  • Why call itself recursively upon failure? That's hideously inefficient. – Jeff Mercado Jun 18 '11 at 3:47
  • @Jeff While Python is not optimized for tail recursion, there has to be at least some trust for the user -- we need to assume that by the second or third time they've been told that they've screwed up, they would get the message. Looking at it, I suppose I could put it in a while True: but to me this reads as more explicit. – cwallenpoole Jun 18 '11 at 3:52
1

Try checking

if string.isdigit(z):

And then executing the rest of the code if it is a digit.

Because you count up in intervals of one, staying with int() should be good, as you don't need a decimal.

EDIT: If you'd like to catch an exception instead as wooble suggests below, here's the code for that:

try: 
    int(z)
    do something
except ValueError:
    do something else
| improve this answer | |
  • 6
    It's more pythonic to just catch the exception. – Wooble Jun 18 '11 at 3:24
  • Also, if you can, you should wait to do something till after the try except block. That way you're less likely to catch some unrelated error. – senderle Jun 18 '11 at 3:34
  • string.isdigit is not Python 3.x compatible – cwallenpoole Jun 18 '11 at 3:40
  • z.isdigit() is Python3 ok. @Wooble not necessarily, don't be dogmatic. What's easier to do in the case - i think 1-line check beats 2-3 line try/catch – Nas Banov May 3 '12 at 10:59

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