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प्रश्न
Triangle PQR is an isosceles right triangle, right angled at Q. Find the value of sec2 P + cosec2 R.
योग
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उत्तर
Given: Triangle PQR is an isosceles right triangle, right angled at Q, so PQ = QR.
In a right isosceles triangle with right angle at Q, the two acute angles are equal and sum to 90°, so ∠P = ∠R = 45°.
sec2 P + cosec2 R = sec2(45°) + cosec2(45°).
Using `sec = 1/cos` and `"cosec" = 1/sin`.
cos 45° = sin 45° = `sqrt(2)/2`, so `sec 45^circ = sqrt(2)` and `"cosec" 45^circ = sqrt(2)`.
`sec^2(45^circ) = (sqrt(2))^2 = 2` and `"cosec"^2(45^circ) = (sqrt(2))^2 = 2`.
Therefore, sec2 P + cosec2 R = 2 + 2 = 4.
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