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Re: 3x-1=[square_root]8x^2-4x+9[/square_root] [#permalink]
why we need to to this step called extraneous root.
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Re: 3x-1=[square_root]8x^2-4x+9[/square_root] [#permalink]
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void wrote:
why we need to to this step called extraneous root.

you have two solutions that are 4 and -2

If you plug -2 you get in the end -7=sqrt of 49 which is impossible. the square root of 49 is seven not minus seven

Therefore, -2 is the extraneous root or the root that is impossible to have

extraneous= a fancy name to say that the root does not count

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Re: 3x-1=[square_root]8x^2-4x+9[/square_root] [#permalink]
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