The solution is \displaystyle{x}\in{\left(-\infty,-{2}\right)}\cup{\left[{0},{4}\right]} Explanation: First, plot the graph graph{(x(4-x))/(x+2) [-18.02, 18.04, -9.01, 9.01]} The function is \displaystyle\frac{{{x}{\left({4}-{x}\right)}}}{{{x}+{2}}}\ge{0} ...

The answer is \displaystyle{x}\in{\left[{4},-{8}{[}\right.} Explanation: Let \displaystyle{f{{\left({x}\right)}}}=\frac{{{4}-{x}}}{{{x}-{8}}} The domain of \displaystyle{f{{\left({x}\right)}}} ...

The solution is \displaystyle{x}\in{]}{2},{3}{]} Explanation: We cannot do crossing over. \displaystyle\frac{{-{x}+{8}}}{{{x}-{2}}}\ge{5} \displaystyle\frac{{{8}-{x}}}{{{x}-{2}}}-{5}\ge{0} ...

The solution is \displaystyle{x}\in{\left(-\infty,{0}\right]}\cup{\left({2},+\infty\right)} Explanation: Let \displaystyle{f{{\left({x}\right)}}}=\frac{{x}}{{{x}-{2}}} Build a sign chart \displaystyle{\left({a}{a}{a}{a}\right)} ...

\displaystyle{\left\lbrace{x}\in{R}{\mid}{0}\le{x}\le{3}\right\rbrace} Explanation: Make a sign chart (y-chart) for the function \displaystyle{y}={\left(-{1}\right)}\frac{{{x}}}{{{x}-{3}}} ...

The answer is \displaystyle{x}\in{\left[{2},{4}{[}\right.} Explanation: Let \displaystyle{f{{\left({x}\right)}}}=\frac{{-{x}+{2}}}{{{x}-{4}}} The domain of \displaystyle{f{{\left({x}\right)}}} ...