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4 December, 16:27

How do you simplify i²⁹? (If you can't tell, that's the imaginary number i^29).

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  1. 4 December, 16:30
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    The imaginary number ' i ' is the square root of - 1.

    i = √-1

    i² = - 1

    i³ = - √-1

    i to the 4th power = + 1

    i to the 5th power = √-1

    etc.

    and all the higher powers keep going in the same 4-step cycle.

    What's 29 divided by 4?

    It's 7 with a remainder of 1.

    So 29 with all the 4s thrown away is 1, and ' i ' to the 29th power is

    the same thing as ' i ' to the 1st power = √-1 or just plain ' i '.
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