The distance of the plane `2x - 3y + 6z + 14 = 0` from the point (0, 2, 1) equals :

The distance of the plane 2x-3y-6z+14=0 from point (3, 2, 0) is :

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

The distance of the plane 2x+3y-6z+14=0 from point (3, 0, 1) is :

Write the distance of the plane 2x-y+2z+1=0 from the origin.

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

Find the distance of the plane x-3y+2z-8=0 from the origin.

Distance of the plane 2x-3y+4z=6 from the origin is.:

Change to normal form the plane 2x-3y+6z+4=0

Find the equation of the plane through the intersection of the planes 3x-y+2z-4=0 and x+y+z-2 = 0 and the point (2, 2, 1).।

The distance between the planes 3x + 2y - 6z - 18 = 0 and 3x + 2y - 6z + 10 = 0 is