Question

Find the area above the curve starting from 0 to 1 on x-axis of y=1/(2x+1)^2

Answer 1

integral dx/(ax+b)^2 = -1/[ a(ax+b) ]

so
integral = -1/ [ 2(2x+1)] = -(1/2)/(2x+1)
when 1
= -(1/2)(3) = -3/2
when 0
= -1/2
-3/2 + 1/2 = -1