I feel thatI have most of it, but the end is a bit challenging.

Question

Need some help. Thank you

even.py

import random

start = 5
def even_odd(num):
    while start:
      random.randit(1, 99)
    if num % 2 == 0:
      print("{} is even").format(random.randit())
    elif num % 2 != 0:
      print("{} is odd").format(random.randit())
    else:
      return not num % 2
      start -= 1

     # If % 2 is 0, the number is even.
    # Since 0 is falsey, we have to invert it with not.

Answer 1 · 2016-02-09T14:57:27Z

February 9, 2016 2:57pm

Your loop is a little off. Your function is already made for you so put your while loop after it. Also, replace your elif with else and remove the return statement from the loop. Here's my solution:

import random

start = 5

def even_odd(num):
    # If % 2 is 0, the number is even.
    # Since 0 is falsey, we have to invert it with not.
    return not num % 2
while start > 0:
  num1 = random.randint(1, 99)
  if even_odd(num1):
    print('{} is even'.format(num1))
  else:
    print('{} is odd'.format(num1))
  start -= 1

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Makan Fofana

Makan Fofana

I feel thatI have most of it, but the end is a bit challenging.

1 Answer

Tim Powell

Tim Powell

Chris Freeman

Chris Freeman

Tim Powell

Tim Powell

Makan Fofana

Makan Fofana

Tim Powell

Tim Powell