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Can somebody please help me with the if statement and arrays. So for example I type in 0001 in the array "1" is [3]. I'm trying to get it to print "working" if 1 is typed on array [3].

This code should explain it more:

original = raw_input("Type is your input? ")
original_as_array = list(original)
print original_as_array
print original[3]

if (original[3] == 1):
    print "working"
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3 Answers 3

up vote 5 down vote accepted

This is because you are comparing an int with a single character (type str). Change your if-statement to:

if (original[3] == "1"):
    print "working"

and it will work.

Your input from the key consists of characters ('0001'), so your comparison has to take that into account.

E.g.,

type(original[3])
str

type(1)
int
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2  
thanks so much!!!!! –  codeX Jun 17 '12 at 13:32

Firstly, strings are already arrays so you do not need to convert them into lists. In Python a string doesn't compare equal to an integer, so you should be comparing to '1' instead. Lastly, the if statement looks better without the brackets :D

>>> original = raw_input("Type is your input? ")
Type is your input? 0001
>>> if original[3] == '1':
        print "working"


working
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Your problem is that you are checking an int against a str, which will be False. See this interactive session:

>>> original = raw_input("Type is your input? ")
Type is your input? 0001
>>> original_as_array = list(original)
>>> print original_as_array
['0', '0', '0', '1']
>>> print original[3]
1
>>> if original[3] == 1:
...     print "working"
... 
>>> print type(original[3])
<type 'str'>
>>> if original[3] == '1':
...     print "working"
... 
working
>>>
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