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MCIII Algebra 3.32

 
 
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Re: MCIII Algebra 3.32
WangDr. Kevin - 2024年01月31日 Wednesday 01:20
 

It is mathematically invalid to use the same variable to represent two different things. At the very least, it is confusing.  So let's assume you meant $X=\sqrt[3]{(x+1)^2}$ and $Y=\sqrt[3]{(x-1)^2}$.  After squaring, you got $(X-16Y)(X-Y)=0$.  So $X=16Y$ and $X=Y$.  The squaring part usually brings in extraneous roots.  Here, $X=Y$ produces a solution $x=0$, and it is easy to see it is wrong in the original equation.  The problem was introduced when you wrote $(x^2-1)^{1/3}$ as $\sqrt{XY}$.  The only thing you could safely write in this place is $|x^2-1|^{1/3}$ as $\sqrt{XY}$.  So you are possibly representing a negative number with a positive expression.

This also happens when you solve $X=16Y$.  The only chance that this has no problem is when $x+1$ and $x-1$ have the same sign.  So, at the time of changing variables, it is safer to say $a = \sqrt[3]{x+1}$, $b = \sqrt[3]{x-1}$, and the equation becomes $a^2 + 4b^2 = 5ab$.  You don't need to write the radical for square roots, and thus you don't have to worry about the value being nonnegative.

Another way to make a change of variable is to divide the whole equation by $\sqrt[3]{(x-1)^2}$ (first verify that $x=1$ is not a root, or it is a root and we put it aside).  Then the equation becomes $\sqrt[3]{\left(\dfrac{x+1}{x-1}\right)} + 4 = 5\sqrt[3]{\dfrac{x+1}{x-1}}$, and use the change of variables: $z=\sqrt[3]{\dfrac{x+1}{x-1}}$, so the equation becomes $z^2 + 4 = 5z$, and go from there.

The actual solution is $x=\dfrac{65}{63}$.