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प्रश्न
If one zero of the polynomial (a2 + 9)x2 + 13x + 6a is the reciprocal of the other, find the value of a.
योग
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उत्तर
Given: Let the zeros be α and `1/α` for the polynomial (a2 + 9)x2 + 13x + 6a.
Step-wise calculation:
1. Product of zeros = `α xx (1/α) = 1`.
2. But product of zeros = `("Constant term")/("Coefficient of" x^2)`
= `(6a)/(a^2 + 9)`
3. Therefore, `(6a)/(a^2 + 9) = 1`
⇒ 6a = a2 + 9
4. Rearranging: a2 – 6a + 9 = 0
⇒ (a – 3)2 = 0
⇒ a = 3
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