3x2+3x+5=0 Two solutions were found :  x =(-3-√-51)/6=-1/2-i/6√ 51 = -0.5000-1.1902i  x =(-3+√-51)/6=-1/2+i/6√ 51 = -0.5000+1.1902i Step by step solution : Step  1  :Equation at the end of step ...

Please see the explanation for steps leading to: \displaystyle{x}=-\frac{{3}}{{4}}+\frac{{\sqrt{{{31}}}{i}}}{{4}} and \displaystyle{x}=-\frac{{3}}{{4}}-\frac{{\sqrt{{{31}}}{i}}}{{4}} ...

Hint: The roots of x^2+3x+5 are not real, and if z\in \Bbb C is a root of a polynomial with real coefficients but z is not real, then \bar z is also a root of this polynimial.

3x2-3x+5=0 Two solutions were found :  x =(3-√-51)/6=1/2-i/6√ 51 = 0.5000-1.1902i  x =(3+√-51)/6=1/2+i/6√ 51 = 0.5000+1.1902i Step by step solution : Step  1  :Equation at the end of step  1  : ...

Solution: \displaystyle{x}=-\frac{{1}}{{3}}+\frac{\sqrt{{{14}}}}{{3}}\cdot{i}{\quad\text{or}\quad}{x}=-\frac{{1}}{{3}}-\frac{\sqrt{{{14}}}}{{3}}\cdot{i} Explanation: \displaystyle{3}{x}^{{2}}+{2}{x}+{5}={0}{\quad\text{or}\quad}{3}{\left({x}^{{2}}+\frac{{2}}{{3}}{x}\right)}+{5}={0}{\quad\text{or}\quad}{3}{\left({x}^{{2}}+\frac{{2}}{{3}}{x}+{\left(\frac{{1}}{{3}}\right)}^{{2}}\right)}-\frac{{1}}{{3}}+{5}={0} ...

\displaystyle\Rightarrow{x}={\left\lbrace\frac{{-{3}+\sqrt{{{69}}}}}{{{6}}},\frac{{-{3}-\sqrt{{{69}}}}}{{{6}}}\right\rbrace} Or approximately \displaystyle\Rightarrow{x}\approx{\left\lbrace{0.884},-{1.884}\right\rbrace} ...