1 Answer

Crowhill · Answer 1 · 2023-03-18T05:46:52+0000

We have the expression:

The restricted values of y are those values that make the denominator 0. This is the same as solving the equation:

This term can be factorized as:

$\begin{gathered} y^2+y-12=(y+4)(y-3) \\ \Rightarrow(y+4)(y-3)=0 \end{gathered}$

This is true for y = -4 and y = 3. So the restricted values for y are:

$y\\e\mleft\lbrace-4,3\mright\rbrace$

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