For each real number x such that $- 1 < x < 1, l e t A (x) b e t h e m a t r i x (1 - x)^{- 1} [\begin{matrix} 1 & - x - x & 1 \end{matrix}] a n d z = \frac{x + y}{1 + x y} T h e n,$

A (z) = A (x) + A (y)

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A (z) = A (x) + [A (y)]^{- 1}

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A (z) = A (x) A (y)

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A (z) = A (x) - A (y)

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Solution

The correct option is C $A (z) = A (x) A (y)$
$A (z) = A (\frac{x + y}{1 + x y}) = [\frac{1 + x y}{(1 - x) (1 - y)}] ⎡ ⎢ ⎣ \begin{matrix} 1 & - (\frac{x + y}{1 + x y}) - (\frac{x + y}{1 + x y}) & 1 \end{matrix} ⎤ ⎥ ⎦$
$∴ A (x) . A (y) = A (z)$

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