If a, b, c are in H.P then $4^{- a}, 4^{- b}, 4^{- c}$ are in

A.P

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G.P

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H.P

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none of these

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Solution

The correct option is D none of these
Solution : $4^{- a}, 4^{- b}, 4^{- c} a r e$

$\frac{1}{4^{a}}, \frac{1}{4^{b}}, \frac{1}{4^{c}}$

as clear not in A.P,H.P

$\frac{1}{4^{a}}, \frac{1}{\frac{2 a c}{4^{a + c}}}, \frac{1}{4^{c}}$

${(\frac{1}{\frac{2 a c}{4^{a + c}}})}^{2} = \frac{1}{\frac{4 a c}{4^{a + c}}}$

$\frac{1}{4^{a}} . \frac{1}{4^{c}} = \frac{1}{4^{a + c}}$

$4^{- a}, 4^{- b}, 4^{- c}$ are also not in G.P.

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