prove that (V^( μ) )_(;μ) =((((√(−g))V^( μ) )


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Question Number 98816 by M±th+et+s last updated on 16/Jun/20

$p r o v e t h a t$ ${(V^{μ})}_{; μ} = \frac{{(\sqrt{- g} V^{μ})}_{; μ}}{\sqrt{- g}}$
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