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प्रश्न
α, β are zeroes of the polynomial p(x) = 3x2 – 6x – 5. Find the value of `1/α^2 + 1/β^2`.
योग
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उत्तर
For p(x) = 3x2 – 6x – 5
a = 3, b = –6, c = –5
The relationship between zeroes and coefficients of a quadratic polynomial ax2 + bx + c is:
Sum of zeroes `(α + β) = - b/a`
`α + β = - (-6)/3 = 2`
Product of zeroes `(αβ) = c/a`
`αβ = (-5)/3`
Now, find α2 + β2:
`α^2 + β^2 = (2)^2 - 2 ((-5)/3)`
= `4 + 10/3`
= `(12 + 10)/3`
= `22/3`
Now, calculate the required expression:
`1/α^2 + 1/β^2 = (α^2 + β^2)/(αβ)^2`
= `(22/3)/(- 5/3)^2`
= `(22/3)/(25/9)`
= `22/3 xx 9/25`
= `(22 xx 3)/25`
= `66/25`
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