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This code asks user for choice of 1 or 2. If 1, then blahblah; if 2 then blahblah. If neither, then repeat until 1 or 2 is entered. Program does not accept 1 or 2, instead going straight to 'else' and repeating input question to enter 1 or 2.

def optionType ():         # pick option

#pdb.set_trace()

    option = ''
    print ('Which slice option do you want, even slice (1) or leftover(2)? ')
    input (option)

    if option == '1':
        evenSlice()        #includes decimal

    elif option == '2':
        leftoverSlice()    #omits decimal

    else:
        print('Enter either 1 or 2.')
        optionType()

Thanks for your help.

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2  
Step one: print option. Step two: look at what's printed (in this case, option wasn't assigned the input which becomes fairly obvious using this basic method of debugging). Posting on SO should be step 42 or something :p –  keyser Jan 23 '13 at 16:09
    
Are you using Python 2 or 3? –  Burhan Khalid Jan 23 '13 at 16:16
    
@BurhanKhalid: I would guess 3 based on the print('Enter... statement (though that doesn't guarantee anything) –  David Robinson Jan 23 '13 at 16:16
    
Yeah, because it would work just fine in 2.x as well. –  Burhan Khalid Jan 23 '13 at 16:17
    
@BurhanKhalid: judging by the other questions asked by this user so far, it's Python 3. –  Martijn Pieters Jan 23 '13 at 16:17

2 Answers 2

You need to store the return value of the input() function:

option = input('Which slice option do you want, even slice (1) or leftover(2)? ')

The function argument is the text you want to display, not the variable you want to receive the user input.

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Well, that's step one, but the if still won't work because he'll end up comparing a string to an int. –  Burhan Khalid Jan 23 '13 at 16:14
    
@BurhanKhalid -- Not in python3.x (which based on the parens with print is a valid possibility) –  mgilson Jan 23 '13 at 16:15
    
@BurhanKhalid: Only in Python 2. In Python 3 it's a string.. –  Martijn Pieters Jan 23 '13 at 16:15
    
Is that so...darn, thought I had you there Maritjn :P –  Burhan Khalid Jan 23 '13 at 16:16
  1. you need to store the option

    option = input('Which slice option do you want? even slice (1) or leftover(2)?')

And if you are on Python2 ( but not Python3 ) :

  1. when you do that, if someone passes in 1, it will be an int, not a string.

    if option == 1:

  2. so input will cause an error if a letter is typed in [ http://docs.python.org/2/library/functions.html#input ] , you probably want raw_input

    option = raw_input('Which slice option do you want? even slice (1) or leftover(2)?')

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1  
raw_input is Python 2 only. The OP appears to be using Python 3, where input() returns a string, always. –  Martijn Pieters Jan 23 '13 at 16:15
    
i didn't know that about python3. thanks! impossible to tell what the OP is using though. –  Jonathan Vanasco Jan 23 '13 at 16:23
1  
Well, looking at the other questions the OP asked, where a python version is given it's Python 3. –  Martijn Pieters Jan 23 '13 at 16:30

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