1 Answer

Huantao · Answer 1 · 2023-05-01T08:30:39+0000

First, recall that given the equation

The solutions are given by

$x=\frac{-b\pm\sqrt[]{b^2-4ac}}{2a}$

where the sign in the middle means that we get one root by taking a plus sign and we get the other root by taking a minus sign.

In our case, we have a=1, b=-6 and c=-41. So the solutions of this equation are given by

$x=\frac{-(-6)\pm\sqrt[]{(-6)^2-4(-41)}}{2}=\frac{6\pm\sqrt[]{36+164}}{2}=\frac{6\pm\sqrt[]{200}}{2}$

Note that

$\sqrt[]{200}=\sqrt[]{100\cdot2}=\sqrt[]{100}\cdot\sqrt[]{2}=10\sqrt[]{2}$

Then

$x=\frac{6\pm10\sqrt[]{2}}{2}=3\pm5\sqrt[]{2}$

taking sqrt(2) as 1.4142, we get

$x=3+5\cdot\sqrt[]{2}=10.071\approx10$

and

$x=3-5\sqrt[]{2}=-4.071\approx-4$

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