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Heya !!
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p(x) = (2x⁴-9x³+5x²+3x-1)
Since, (2+√3) and (2–√3) are zeroes of given polynimial.
x = 2+√3 or x = 2–√3
=> (x–2–√3) (x–2+√3) = 0
=> [(x–2)–√3] [(x–2)+√3] = 0
We know that, a²–b² = (a+b)(a–b)
(x–2)² – (√3)²
=> x²+4–4x–3
=> x²–4x+1
So, x²–4x+1 is a factor of given polynomial.
Refer to the attachment for Division.
Now, (2x⁴-9x³+5x²+3x-1) = (2+√3)(2–√3)(2x²–x–1)
=> (2x²+2x–x–1) = 0
=> 2x(x+1) –(x+1) =0
=> (2x–1) (x+1) = 0
=> x = 1/2 or x = – 1
Thus, the zeroes of polynomial (2x⁴-9x³+5x²+3x-1) are (2+√3), (2–√3), 1/2 and – 1
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Hope my ans.'s satisfactory.☺
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p(x) = (2x⁴-9x³+5x²+3x-1)
Since, (2+√3) and (2–√3) are zeroes of given polynimial.
x = 2+√3 or x = 2–√3
=> (x–2–√3) (x–2+√3) = 0
=> [(x–2)–√3] [(x–2)+√3] = 0
We know that, a²–b² = (a+b)(a–b)
(x–2)² – (√3)²
=> x²+4–4x–3
=> x²–4x+1
So, x²–4x+1 is a factor of given polynomial.
Refer to the attachment for Division.
Now, (2x⁴-9x³+5x²+3x-1) = (2+√3)(2–√3)(2x²–x–1)
=> (2x²+2x–x–1) = 0
=> 2x(x+1) –(x+1) =0
=> (2x–1) (x+1) = 0
=> x = 1/2 or x = – 1
Thus, the zeroes of polynomial (2x⁴-9x³+5x²+3x-1) are (2+√3), (2–√3), 1/2 and – 1
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Hope my ans.'s satisfactory.☺
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