⑴ x²+4x-165=0 x=½(-4±√(16+4×165) =½(-4±√676) =½(-4±26)=-2±13=11,-15 ⑵ ∴2x²+8x-330=2(x²+4x-165)≡2(x+15)(x-11)

2x2+8x-3=0 Two solutions were found :  x =(-8-√88)/4=-2-1/2√ 22 = -4.345  x =(-8+√88)/4=-2+1/2√ 22 = 0.345 Step by step solution : Step  1  :Equation at the end of step  1  : (2x2 + 8x) - 3 = 0 ...

4x2+8x-320 Final result : 4 • (x + 10) • (x - 8) Step by step solution : Step  1  :Equation at the end of step  1  : (22x2 + 8x) - 320 Step  2  : Step  3  :Pulling out like terms :  3.1     Pull ...

x2+8x-38=0 Two solutions were found :  x =(-8-√216)/2=-4-3√ 6 = -11.348  x =(-8+√216)/2=-4+3√ 6 = 3.348 Step by step solution : Step  1  :Trying to factor by splitting the middle term ...

x2+8x-33 Final result : (x + 11) • (x - 3) Step by step solution : Step  1  :Trying to factor by splitting the middle term  1.1     Factoring  x2+8x-33  The first term is,  x2  its coefficient is ...

Solution: \displaystyle{x}=\frac{{3}}{{2}}{\quad\text{or}\quad}{x}=\frac{{1}}{{2}} Explanation: \displaystyle-{4}{x}^{{2}}+{8}{x}-{3}={0}{\quad\text{or}\quad}-{4}{\left({x}^{{2}}-{2}{x}\right)}-{3}={0}{\quad\text{or}\quad}-{4}{\left({x}^{{2}}-{2}{x}+{1}\right)}+{4}-{3}={0}{\quad\text{or}\quad}-{4}{\left({x}-{1}\right)}^{{2}}+{1}={0}{\quad\text{or}\quad}{4}{\left({x}-{1}\right)}^{{2}}={1}{\quad\text{or}\quad}{\left({x}-{1}\right)}^{{2}}=\frac{{1}}{{4}}{\quad\text{or}\quad}{x}-{1}=\pm\frac{{1}}{{2}}{\quad\text{or}\quad}{x}={1}+\frac{{1}}{{2}}=\frac{{3}}{{2}}{\quad\text{or}\quad}{x}={1}-\frac{{1}}{{2}}=\frac{{1}}{{2}}\therefore ...