The solution is \displaystyle{x}\in{\left(-{1},{2}\right]} Explanation: Let \displaystyle{f{{\left({x}\right)}}}=\frac{{{x}-{2}}}{{{x}+{1}}} We build a sign chart \displaystyle{\left({a}{a}{a}{a}\right)} ...

Note that if we have \frac{a}{b} \leq 1, this means that if b>0, then a \leq b and if b<0, then a \geq b. So you will need to split this into cases. First note that you can multiply without ...

Hitesh C Nimbalkar Jul 11, 2017 HI given equation, \displaystyle\frac{{-{x}-{3}}}{{{x}+{2}}} <=0 thus ,to solve this question we need to get the denominator term \displaystyle{\left({x}+{2}\right)} ...

Inequality notation: \displaystyle{x}\le{2} Interval notation: \displaystyle{\left(-\infty,{2}\right]} Explanation: \displaystyle\frac{{{x}-{2}}}{{{x}+{4}}}\le{0} Multiply both sides ...

The answer is \displaystyle={x}\in{]}-\frac{{4}}{{3}},{2}{]} Explanation: Let \displaystyle{f{{\left({x}\right)}}}=\frac{{{4}-{2}{x}}}{{{3}{x}+{4}}} The domain of \displaystyle{f{{\left({x}\right)}}} ...

Inequality: \displaystyle{x}\le-{12} and \displaystyle-{2}{<}{x}{<}{3} Interval: \displaystyle{\left(-\infty,-{12}\right]} and \displaystyle{\left(-{2},{3}\right)} Explanation: Step ...