sec $(π - θ)$ = -sec $θ$

True

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False

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Solution

The correct option is A
True

Let θ be an angle in the standard position in the I quadrant.

Let its terminal sides cut the circle with center 0 and radius r. Let A (x, y) and A'(x', y') be the point of intersection of the terminal side of angles θ and π-θ respectively with the circle. Let B & B' be the projection of A and A' respectively in the x - axis.

Angle AOB' = $π - θ$ , Angle AOB = $θ$

In $△$ OAB & $△$ OA'B'

OA = OA'(radius of circle)

$∠ O B A$ = $∠ O B^{'} A^{'}$ = $90^{0}$

$∠ A^{'} O B$ = $∠ A O B$ = $θ$

So, OAB $≅$ $△$ OA'B'

X' = -x, Y'=y

sec $(π - θ$ ) = $\frac{r}{x^{'}}$ = $\frac{r}{- x}$ = -sec $θ$

sec $(π - θ$ ) = -sec $θ$

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