Show that the area of the parallelogram formed by the lines `2x-3y+a=0,\ 3x-2y-a=0,\ 2x-3y+3a=0` and` 3x-2y-2a=0\ is(2a^2)/5` sq units

Prove that the area of the parallelogram formed by the lines 3x-4y+a=0,\ 3x-4y+3a=0,\ 4x-3y-a=0 and 4x-3y-2a=0 is (2a^2)/7 sq. units

If the area of the parallelogram formed by the lines 2x - 3y + a = 0 , 3x - 2y - a = 0 , 2x - 3y + 3a = 0 and 3x - 2y - 2a = 0 is 10 square units , then a =

Find the area of the parallelogram formed by the lines 6x^2-5xy-6y^2=0 and 6x^2-5xy-6y^2+x+5y-1=0

Using the method of integration, find the area of the region bounded by the lines : 3x-2y+1=0, 2x+3y-21=0 and x-5y+9=0.

If (alpha,alpha^2) lies inside the triangle formed by the lines 2x+3y-1=0,x+2y-3=0,5x-6y-1=0 , then

Find the area of the region bounded by the curve x y-3x-2y-10=0 , x-axis and the lines x=3,\ x=4.

Using intergration, find the area bounded by the lines : 2x + y = 4, 3x - 2y = 6 and x - 3y + 5 = 0

Using the method of integration find the area of the region bounded by lines: 2x+y = 4, 3x-2y = 6, x-3y+5 = 0

Area of the triangle formed by the lines y=2x, y=3x and y=5 is equal to (in square units) :

Find the equation of the circle circumscribing the quadrilateral formed by the straight lines : x-y = 0, 3x + 2y = 5, x - y = 10 and 2x + 3y = 0 .