How do you find a quadratic polynomial with integer coefficients which has $x=3/5+-sqrt29/5$ as its real zeros?

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How do you find a quadratic polynomial with integer coefficients which has $x=3/5+-sqrt29/5$ as its real zeros?

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Answer 1 · 2017-09-21T13:20:11

$5x^2-6x-4$

Explanation:

$"given the zeros ( roots) of a quadratic "x=a,x=b$

$"then the factors are "(x-a),(x-b)$

$"and the quadratic is the product of the factors"$

$rArrp(x)=(x-a)(x-b)$

$"here the roots are "x=3/5+sqrt29/5" and "x=3/5-sqrt29/5$

$rArr"factors "(x-(3/5+sqrt29/5)),(x-(3/5-sqrt29/5))$

$rArrp(x)=(x-3/5-sqrt29/5)(x-3/5+sqrt29/5)$

$color(white)(rArrp(x))=(x-3/5)^2-(sqrt29/5)^2$

$color(white)(rArrp(x))=x^2-6/5x+9/25-29/25$

$color(white)(rArrp(x))=x^2-6/5x-4/5to(xx5)$

$color(white)(rArrp(x))=5x^2-6x-4$

Answer 2 · 2017-09-21T17:23:26

$5x^2-6x-4=0$

Explanation:

if $alpha " & "beta" are the roots of a quadratic equation"$

the equation can be written as

$x^2-(alpha+beta)x+alphabeta=0$

we have

$alpha=3/5+sqrt29/5$

$beta=3/5-sqrt29/5$

$alpha+beta=3/5+cancel(sqrt29/5)+3/5-cancel(sqrt29/5)$

$alpha+beta=6/5$

$alphabeta=(3/5+sqrt29/5)(3/5-sqrt29/5)$

$=9/25-29/25=-20/25=-4/5$

$:.x^2-(alpha+beta)x+alphabeta$

becomes

$x^2-6/5x-4/5=0$

$=>5x^2-6x-4=0$

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How do you find a quadratic polynomial with integer coefficients which has $x=3/5+-sqrt29/5$ as its real zeros?

2 Answers

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Humanities

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How do you find a quadratic polynomial with integer coefficients which has x=3/5+-sqrt29/5x=3/5+-sqrt29/5 as its real zeros?

2 Answers

Explanation:

Explanation:

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How do you find a quadratic polynomial with integer coefficients which has $x=3/5+-sqrt29/5$ as its real zeros?