Detailed steps (using "try") clear solution for Index Power by gamer995 - python coding challenges

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Detailed steps (using "try") solution in Clear category for Index Power by gamer995

def index_power(array: list, n: int) -> int:
    """
        Find Nth power of the element with index N.
    """
    try:
        return array[n] ** n
    except IndexError:
        return -1

if __name__ == '__main__':
    print('Example:')
    print(index_power([1, 2, 3, 4], 2))
    
    #These "asserts" using only for self-checking and not necessary for auto-testing
    assert index_power([1, 2, 3, 4], 2) == 9, "Square"
    assert index_power([1, 3, 10, 100], 3) == 1000000, "Cube"
    assert index_power([0, 1], 0) == 1, "Zero power"
    assert index_power([1, 2], 3) == -1, "IndexError"
    print("Coding complete? Click 'Check' to review your tests and earn cool rewards!")

Aug. 5, 2021

Comments:

jsg-inet on Nov. 24, 2021, 9:17 a.m.
<p>Simple and effective!</p>

gamer995 on Nov. 27, 2021, 10:21 a.m.
<p>huge thanks to you!</p>

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