The distance of the point (3, 2, 7) from ZX- plane is equal to :

The distance of the point (3, 2, 7) from XY-plane is equal to :

The distance of the point (3, 2, 7) from YZ-plane is equal to:

The distance of the point (1, 3, -7) from the plane passing through the point (1, -1, -1) having normal perpendicular to both the lines (x-1)/(1)=(y+2)/(-2)=(z-4)/(3) and (x-2)/(2)=(y+1)/(-1)=(z+7)/(-1) is

Find the coordinates of the foot of the perpendicular and the perpendicular distance of the point P (3, 2, 1) from the plane 2x - y + z + 1 = 0. Find also, the image of the point in the plane.

The distance of the point (2,1,-1) from the plane x-2y+4z=9 is :

Find the distance of the point (3,4,5) from the plane x+y+z=2 measured parallel to the line 2x=y=z .

Find the distance of the point (1,2,3) from the line joining the points (-1,2,5) and (2,3,4).

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:

The distance of the point (2,3,-5) from the plane x+2y-2z-9=0 is ..........