By substitution. Explanation: If \displaystyle{x} is close to \displaystyle{3} , the \displaystyle{x}+{3} is close to \displaystyle{6} and \displaystyle{2}{x}^{{2}}+{2}{x}+{1} is ...

2x2+x-1/4=0 Two solutions were found :  x =(-4-√48)/16=(-1-√ 3 )/4= -0.683  x =(-4+√48)/16=(-1+√ 3 )/4= 0.183 Step by step solution : Step  1  : 1 Simplify — 4 Equation at the end of step  1  : ...

\displaystyle{x}=\frac{{1}}{{4}}\ \text{ or }\ -\frac{{5}}{{4}} Explanation: rearrange as follows \displaystyle{x}^{{2}}+{x}=\frac{{9}}{{16}}-\frac{{1}}{{4}} \displaystyle{x}^{{2}}+{x}=\frac{{5}}{{16}} ...

\displaystyle\frac{{{5}\pm\sqrt{{26}}}}{{4}} Explanation: Divide by -2: \displaystyle{x}^{{2}}-\frac{{{5}{x}}}{{2}}-\frac{{1}}{{16}}={0} \displaystyle{x}^{{2}}-\frac{{{5}{x}}}{{2}}+\frac{{25}}{{16}}=\frac{{1}}{{16}}+\frac{{25}}{{16}}=\frac{{26}}{{16}} ...

Note that r=\left(\frac{x+1}{2}\right)^2. We have \left(\frac{x+1}{2}\right)^2\lt 1 if and only if -1\lt \frac{x+1}{2}\lt 1. The right-hand inequality holds if and only if x\lt 1. The ...

Your initial x value is 0.5>0 so the range of x values where your solution is valid is x>0. If you are looking for a continuous solution, then you have to stop there since you can't jump past ...