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| A Biquadratic Polynomial Problem (Posted on 2006-11-20) |
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Determine analytically if two of the roots of x4+12x-5=0 add up to 2.
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Submitted by K Sengupta
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Rating: 3.0000 (2 votes)
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Solution:
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Let x_1, x_2, x_3 and x_4 be the roots of the polynomial. Writing Vieta’s relations in terms of s = x_1+x_2; t = x_3+x_4; p=x_1*x_2 and q = x_3*x_4, we obtain:
s+t = 0; p+q+st = 0; pt+qs = -12; pq =5
Substituting t=-s into the second and the third equalities, we obtain:
p+q = s^2; -q+p = -12/s
The above simultaneous equations yield:
p = (s^2 + 12/s)/2; q = (s^2 - 12/s)/2
From pq =-5, it follows that:
(s^2 + 12/s)(s^2 - 12/s)/4 = -5
Or, s^6 +20*s^2 – 144 =0
Hence, s = x_1+x_2 is a root of the polynomial:
L(x) = x^6 + 20*s^2 -144
Using similar arguments, we deduce that its other five roots are x_1+x_3, x_1+x_4, x_2+x_3, x_2+x_4 and x_3+x_4.
Now, P(2) = 64 + 20*4 -144 = 0
Consequently, it follows that two of four roots of the polynomial:
x4+12x -5 indeed add up to 2.
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