WAEC - Mathematics (1999 - No. 16) | ExamPlay

WAEC - Mathematics (1999 - No. 16)

Given that \(81\times 2^{2n-2} = K, find \sqrt{K}\)

\(4.5\times 2^{n}\)

\(4.5\times 2^{2n}\)

\(9\times 2^{n-1}\)

\(9\times 2^{2n}\)

Explanation

\(K = 81 \times 2^{2n - 2}\)

\(\sqrt{K} = \sqrt{81 \times 2^{2n - 2}}\)

= \(9 \times 2^{n - 1}\)

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