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I'm having problems trying to do the following if condition in python:

for i in range(int(3)):
    Array[i] = [int(List[i][0])]

if Array[0] == 1:
    #other code...

Where Array = {ndarray:(3,)} [list([1]) list([2]) list([3]) and List = {list:3}[array([3. , 0.64]), array([2. , 0.67]), array([1. , 0.82])

I think I might have problems with the if-condition because of the type of elements inside of Array, but I can't figure out how to convert them into integers.

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  • 2
    And what are those problems?
    – Sayse
    Oct 27, 2021 at 20:41
  • The first loop sets elements of Array equal to an integer wrapped in a list. So shouldn't the if condition be if Array[0] == [1]? Oct 27, 2021 at 20:46
  • I don't really get a warning, but when I debug I see that when the if condition is respected the debugger ignores it and exits the cycle Oct 27, 2021 at 20:47
  • Is Array a list? What's {ndarray:(3,)}?
    – Samwise
    Oct 27, 2021 at 20:48
  • Omg yes you are right!! putting the brackets around the "1" resolves the problem! Oct 27, 2021 at 20:51

1 Answer 1

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You're wrapping each individual int value in a list, which makes Array a list of lists rather than a list of ints. Change your code to:

Array = [int(item[0]) for item in List]

if Array[0] == 1:
    # other code ...

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