đặt a=\(\dfrac{1}{135}\),b=\(\dfrac{1}{651}\)
ta có A=(2+a)b-\(\dfrac{3}{105}\)-\(\dfrac{650}{105.651}\)-4ab+\(\dfrac{12}{351}\)
A= (2+a) b-\(\dfrac{3}{105}\)-650.\(\dfrac{1}{105}\).\(\dfrac{1}{651}\)-4ab+12a
A=(2+a) b-\(\dfrac{9}{315}\)-650.\(\dfrac{3}{315}\).\(\dfrac{1}{651}\)-4ab+12a
A=(2+a)-b-9a-650.3a.b-4ab+12a
A=(2+a)b-9a-1950ab-4ab+12a=(2+a)b+3a-1954ab=-1953a+3a+2b
cách 2