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37 votes
37 votes
Demanding Dwight now wants FIVE solutions to the following equation. Can you provide him with five solutions? (x – 10)(2x + 6)(x2 – 36)(x2 + 10) ( 10x + 20) = 0 Do you think there might be a sixth solution?

User John Sorensen
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1 Answer

18 votes
18 votes

The given expression is-


(x-10)(2x+6)(x^2-36)(x^2+10)(10x+20)=0

This expression shows five factors. Using the zero-product property we can find all five solutions.


\begin{gathered} x-10=0\rightarrow x=10 \\ 2x+6=0\rightarrow2x=-6\rightarrow x=-3 \\ x^2-36=0\rightarrow x^2=36\rightarrow x=\pm6 \\ x^2+10=0\rightarrow x^2=-10\rightarrow x=\sqrt[]{-10} \\ 10x+20=0\rightarrow10x=-20\rightarrow x=-(20)/(10)=-2 \end{gathered}

Therefore, there are 4 real solutions and one imaginary solution, respectively, they are 10, -3, 6 and -6, -2, and the square root of negative 10.

User Nedvajz
by
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