Without using a calculator prove whether 1728 is a perfect cube

asked Nov 11, 2023 75.8k views

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$^3\sqrt[]{1728}^{}^{}^{}$
$^3\sqrt[]{(2\cdot2\cdot2)(2\cdot2\cdot2)(3\cdot3\cdot3)}$

Since the prime factors of 1728 can be grouped into triples of equal factors, it is a perfect cube.

NinaNa answered Nov 15, 2023

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