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Solve for x (complex solution)
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±20,±10,±5,±4,±2,±1
By Rational Root Theorem, all rational roots of a polynomial are in the form \frac{p}{q}, where p divides the constant term -20 and q divides the leading coefficient 1. List all candidates \frac{p}{q}.
x=2
Find one such root by trying out all the integer values, starting from the smallest by absolute value. If no integer roots are found, try out fractions.
x^{2}-2x+10=0
By Factor theorem, x-k is a factor of the polynomial for each root k. Divide x^{3}-4x^{2}+14x-20 by x-2 to get x^{2}-2x+10. Solve the equation where the result equals to 0.
x=\frac{-\left(-2\right)±\sqrt{\left(-2\right)^{2}-4\times 1\times 10}}{2}
All equations of the form ax^{2}+bx+c=0 can be solved using the quadratic formula: \frac{-b±\sqrt{b^{2}-4ac}}{2a}. Substitute 1 for a, -2 for b, and 10 for c in the quadratic formula.
x=\frac{2±\sqrt{-36}}{2}
Do the calculations.
x=1-3i x=1+3i
Solve the equation x^{2}-2x+10=0 when ± is plus and when ± is minus.
x=2 x=1-3i x=1+3i
List all found solutions.
±20,±10,±5,±4,±2,±1
By Rational Root Theorem, all rational roots of a polynomial are in the form \frac{p}{q}, where p divides the constant term -20 and q divides the leading coefficient 1. List all candidates \frac{p}{q}.
x=2
Find one such root by trying out all the integer values, starting from the smallest by absolute value. If no integer roots are found, try out fractions.
x^{2}-2x+10=0
By Factor theorem, x-k is a factor of the polynomial for each root k. Divide x^{3}-4x^{2}+14x-20 by x-2 to get x^{2}-2x+10. Solve the equation where the result equals to 0.
x=\frac{-\left(-2\right)±\sqrt{\left(-2\right)^{2}-4\times 1\times 10}}{2}
All equations of the form ax^{2}+bx+c=0 can be solved using the quadratic formula: \frac{-b±\sqrt{b^{2}-4ac}}{2a}. Substitute 1 for a, -2 for b, and 10 for c in the quadratic formula.
x=\frac{2±\sqrt{-36}}{2}
Do the calculations.
x\in \emptyset
Since the square root of a negative number is not defined in the real field, there are no solutions.
x=2
List all found solutions.