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I just started learning Python... I am writing a simple program that will take in integers and keep an unsorted and sorted list. I'm having a problem with the sorted list part... I'm getting an error when comparing the values of elements within the list. Where I get the error is the following line: "if sortedList[sortcount] > sortedList[count]:". I get "TypeError: unorderable types: list() > int()".

Here is part of the code... I'm not sure what is wrong.

numberList = []
sortedList = []
count = 0
sum = 0

....(skip)....

sortcount = 0
sortedList += [ int(userInput) ]
while sortcount < count:
    if sortedList[sortcount] > sortedList[count]:
        sortedList[count] = sortedList[sortcount]
        sortedList[sortcount] = [ int(userInput) ]  
    sortcount+=1
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It'd be helpful to see the code where sortedList is being built. It seems that your list contains a list, which I would think is an error somewhere in your (skip) section. –  Tim Gostony Jan 14 '12 at 21:40
    
An easier way to update the sorted list would be sortedList.append(int(userInput)); sortedList.sort(). –  Sven Marnach Jan 14 '12 at 21:42

2 Answers 2

up vote 5 down vote accepted

where you do:

sortedList[sortcount] = [ int(userInput) ]

you should do:

sortedList[sortcount] = int(userInput)

otherwise you will add a list on that position and give the error you told.

BTW, on the first line before the while loop is better to write

sortedList.append(int(userInput))
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2  
@JoelCornett: no, JBernardo is completely correct. The OP sets the sortcount-th element of sortedList to [int(userInput)], which is a list. There's no "adding a list" here. –  DSM Jan 14 '12 at 22:23
    
My mistake. I was looking at the wrong part of the code :P –  Joel Cornett Jan 14 '12 at 22:38

You should consider using:

sorted(numberList)

to generate your sorted list. Much, much simpler not having to reinvent the wheel.

Example:

>>>unSorted = [3, 4, 1, 5]
>>>unSorted
[3, 4, 1, 5]
>>>sortedList = sorted(unSorted)
>>>sortedList
[1, 3, 4, 5]
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