Find the distance of the point `(-6,0,0)` from the plane `2x-3y+6z = 2`.

Find the distance of the point (3,-2,1) from the plane 2x -y+2z +3=0

Find the distance of the point (3,-2,1) from the plane 2x-y+2z+3=0.

Find the distance of the point (-1, 1) from the line 12 (x + 6) = 5 (y - 2) .

If the distance of the point P (1,-2, 1) from the plane x + 2y - 2z = alpha where alpha > 0, is 5, then the foot of the perpendicular from P to the plane is :

Find the distance of a point (2,5,-3) from the plane . vec(r) (6 hat(i) - 3 hat(j) + 2 hat(k)) = 4

Find the distance of a point (2,5,-7) from the plane vecr.(6hati-3hatj+2hatk)=4

Find the distance of the plane 2x-3y+4z-6= 0 from the origin

The distance of the point (3,8,2) from the line (x-1)/2 = (y-3)/4 = (z-2)/3 measured parallel to the plane 3x+2y-2z +15 = 0 is