The answer is \displaystyle-\infty{<}{x}\le-{4} or \displaystyle{1}{<}{x}{<}+\infty \displaystyle{x}\in{]}-\infty,-{4}{]}\cup{]}{1},+\infty{[} in interval notation Explanation: We solve ...

See a solution process below: Explanation: First, multiply each segment of the system of inequalities by \displaystyle{\left({5}\right)} to eliminate the fraction while keeping the system ...

The answer is \displaystyle{x}\in{]}-\infty,-\frac{{5}}{{3}}{]}\cup{]}{3},+\infty{[} Explanation: Let \displaystyle{f{{\left({x}\right)}}}=\frac{{{3}{x}+{5}}}{{{6}-{2}{x}}} The domain of \displaystyle{f{{\left({x}\right)}}} ...

There’s another way to handle a problem of this sort, and it involves less inequality-juggling. You take advantage of the fact that a rational function such as (x+2)/(3-x) can change sign only at ...

The solution is \displaystyle{x}\in{]}-\infty,-{4}{]}\cup{]}{3},+\infty{[} Explanation: We solve this inequality with a sign chart Let \displaystyle{f{{\left({x}\right)}}}=\frac{{{x}+{4}}}{{{x}-{3}}} ...

See the entire solution process below: Explanation: When solving systems of inequalities all operations perform on the system must be performed against each segment of the system: First, multiply the ...