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What are the possible values of x in 8x^2+4x=-1
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What are the possible values of x in 8x^2+4x=-1

User Reiko
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1 Answer

3 votes

Answer:


x1=-0.25(+)(0.25i)


x2=-0.25(-)(0.25i)

Explanation:

we have


8x^(2)+4x=-1

Factor the leading coefficient


8(x^(2)+0.5x)=-1

Complete the square. Remember to balance the equation by adding the same constants to each side.


8(x^(2)+0.5x+1/16)=-1+1/2


8(x^(2)+0.5x+1/16)=-1/2


(x^(2)+0.5x+1/16)=-1/16

Rewrite as perfect squares


(x+0.25)^(2)=-1/16

remember that


i=√(-1)


(x+0.25)=(+/-)(0.25i)


x=-0.25(+/-)(0.25i)


x1=-0.25(+)(0.25i)


x2=-0.25(-)(0.25i)

User Maxie
by
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