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(THIS IS WORK IN PROGRESS) Hello, I am following a Python course called "Code Academy", and I am making a English to PygLatin Translator. When I compile my code I get an error message saying

File "python", line 8
    else:
       ^
SyntaxError: invalid syntax

Any Help will be highly appreciated :), Here is my code.

pyg = 'ay'
original = raw_input('Enter a word:')
if len(original) > 0 and original.isalpha():
    word = original.lower()
first = word[0]
print original
else:
print 'empty'
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2 Answers 2

Your indentation is wrong. These three lines:

first = word[0]

print original

print 'empty'

need to be indented one level:

pyg = 'ay'
original = raw_input('Enter a word:')
if len(original) > 0 and original.isalpha():
    word = original.lower()
    first = word[0]
    print original
else:
    print 'empty'

Remember that indentation is important in Python.

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I'm not sure if this should be the answer or a comment, but your formatting is messed up which may be why you're having issues.

Remember that whitespace is important in Python. It looks like you've unindented partway through your if block, so your else is coming in the middle of nowhere (to the interpreter).

pyg = 'ay'
original = raw_input('Enter a word:')
if len(original) > 0 and original.isalpha():
    word = original.lower() # entered if block
first = word[0] # exited if block
print original
else: # else?? else what, there's no if!!!
print 'empty' # and what's more there's nothing IN the else block, this line is unindented

I'm going to guess at your meaning here, but the interpreter won't. My guess is that you meant to write:

pyg = 'ay'
original = raw_input('Enter a word:')
if len(original) > 0 and original.isalpha():
    # if this condition is true, then do...
    word = original.lower()
    first = word[0]
    print original
else:
    # if that condition up there ISN'T true, do...
    print 'empty'
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