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I can't figure out why when I enter the word 'fish' for original its printing vowel.

#Begin program

original = raw_input('Enter a word:')

if len(original) > 0 and original.isalpha():
    word = original.lower() #make sure original is lowercase
    first = word[0]
    if first == 'a' or 'e':
        print "vowel"
    else:
        print "consonant"
else:
    print 'empty'
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marked as duplicate by Rohit Jain, thegrinner, Zero Piraeus, Sukrit Kalra, Kevin Jul 30 '13 at 18:00

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

4 Answers 4

if first == 'a' or 'e'

Change it to

if first == 'a' or first == 'e':

Or

if first in ('a', 'e'):

Your if statement is evaluating to True since you are doing a boolean OR with a True value ('e').

Non empty strings in Python evaluate to True.

>>> bool('')
False
>>> bool('a')
True

Hence, your code gets evaluated as

if (first == 'a') or True:

which is always evaluated to True and hence the if statement is executed.

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Your if condition is wrong. Specifically,

if first == 'a' or 'e':

won't work. It needs to be

if first == 'a' or first == 'e':

The original statement evaluates like this:

if (first == 'a') or ('e'):

if (False) or (True):

Here's an explanation of truth values in Python. Note that characters evaluate as true.

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It's because if first == 'a' or 'e': is being treated like if (first == 'a') or ('e'):

Since 'e' is truthy, the or is returning true

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To avoid such situations and to make your code more clear, write

if first in ('a', 'e'):
    ...

or

if first in 'ae':
    ...
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