Your error is in the line where you say that ... (x - 1)(x^2 + x + 1) = -2 leads to x - 1 = -2.... This is not true. In general, ab = -2 does not imply that a or b are in the set \{1, 2, -1, -2\} ...

27x3+1=0 Three solutions were found :  x =(3-√-27)/18=(1-i√ 3 )/6= 0.1667-0.2887i  x =(3+√-27)/18=(1+i√ 3 )/6= 0.1667+0.2887i  x = -1/3 = -0.333 Step by step solution : Step  1  :Equation at ...

64x3+1=0 Three solutions were found :  x =(4-√-48)/32=(1-i√ 3 )/8= 0.1250-0.2165i  x =(4+√-48)/32=(1+i√ 3 )/8= 0.1250+0.2165i  x = -1/4 = -0.250 Step by step solution : Step  1  :Equation at ...

\displaystyle{\left({5}{x}+{2}\right)}{\left({5}{x}-{2}\right)}{\quad\text{or}\quad}{\left({5}{x}-{2}\right)}{\left({5}{x}+{2}\right)} Both are correct answers :) Explanation: Since \displaystyle{a}^{{2}}-{b}^{{2}}={\left({a}+{b}\right)}{\left({a}-{b}\right)}{\quad\text{or}\quad}{\left({a}+{b}\right)}{\left({a}-{b}\right)} ...

Nghi N. May 28, 2015 Use the identity: \displaystyle{a}^{{3}}+{b}^{{3}}={\left({a}+{b}\right)}{\left({a}^{{2}}-{a}{b}+{b}^{{2}}\right)} \displaystyle{27}{x}^{{3}}+{1}^{{3}}={\left({3}{x}+{1}\right)}{\left({9}{x}^{{2}}-{3}{x}+{1}\right)}

I will give three answers to three different questions. Can someone explain where I went wrong? The complete rule for the argument of a complex number z=x+i\,y is not simply \theta=\tan^{-1} \frac{y}{x} ...