Answer : Distance of plane from a given point =0.408
Explanation:
Since the equation of plane is x-y+2z-2=0
and the given point is (1,2,1)
And we know the formula of distance of plane from a point
i.e.
D= [tex]\mid\frac{Ax_{1}+By_1+Cz_1-D}{\sqrt{A^2+B^2+C^2}}\mid[/tex]
where A,B,C are the coefficient of x, y, z respectively ,
and [tex](x_1,y_1,z_1)[/tex] are the given points .
So,
[tex]\mid\frac{1.1+(-1).2+1.2-2}{\sqrt{1+1+4}}\mid[/tex]
= [tex]\mid\frac{1-2+2-2}{\sqrt6}\mid[/tex]
= [tex]\mid\frac{-1}{\sqrt6}\mid[/tex]
= [tex]\frac{1}{\sqrt6}[/tex]
Now by using calculator we can find the value of √6 i.e. 2.449 upto three decimal places.
∴ Distance = 0.408
