Evaluate the following integrals : (i) int(x^(2)-4)/((x^(2)+1)(x^(2)+2)(x^(2)+3))dx (ii) int(1)/((x+1)(x^(2)+1)^(2))dx (iii) int(1)/(x^(3)(x^(2)+1)^(2))dx

Evaluate the following integrals : (i) int(x^(2)-4)/((x^(2)+1)(x^(2)+

1.	Evaluate the following integrals : (i) int(x^(2)-4)/((x^(2)+1)(x^(2)+2)(x^(2)+3))dx (ii) int(1)/((x+1)(x^(2)+1)^(2))dx (iii) int(1)/(x^(3)(x^(2)+1)^(2))dx
Answer» Solution :`(i)` We have, `(x^(2)-4)/((x^(2)+1)(x^(2)+2)(x^(2)+3))=(A)/(x^(2)+1)+(B)/(x^(2)+2)+(C)/(x^(2)+3)` `implies(t-4)/((t+1)(t+2)(t+3))=(A)/(t+1)+(B)/(t+2)+(C)/(t+3)`, for `=x^(2)` `impliesA=(-5)/(2)`, `B=+6`, `C=(-7)/(2)` `implies(x^(2)-4)/((x^(2)+1)(x^(2)+2)(x^(2)+3))=(-5)/(2)(1)/(x^(2)+1)+(6)/(x^(2)+2)-(7)/(2)(1)/(x^(2)+3)` `impliesint(x^(2)-4)/((x^(2)+1)(x^(2)+2)(x^(2)+3))dx=(-5)/(2)tan^(-1)x+(6)/(sqrt(2))tan^(-1)((x)/(sqrt(2)))-(7)/(2)(1)/(sqrt(3))tan^(-1)((x)/(sqrt(3)))+C` `=(-5)/(2)tan^(-1)x+3sqrt(2)tan^(-1)((x)/(sqrt(2)))-(7)/(2sqrt(3))tan^(-1)((x)/(sqrt(3)))+C` `(ii)` We have `(1)/((x+1)(x^(2)+1)^(2))=(A)/(x+1)+(Bx+C)/(x^(2)+1)+(px+Q)/((x^(2)+1)^(2))` `implies1=A(x^(2)+1)^(2)+(Bx+C)(x^(2)+1)(x+1)+(px+q)(x+1)`. Equating the coefficients of `x^(4)`, `x^(3)`, `x^(2)`, `x` and constant term from both sides, we GET `A+B=0`, `B+C=0`, `2A+B+C+p=0`, `B+C+p+q=0` and `A+C+q=0` `impliesA=(1)/(4)`, `B=-(1)/(4)`, `C=(1)/(4)`, `p=-(1)/(2)`, `q=(1)/(2)` Thus `int(1)/((x+1)(x^(2)+1)^(2))dx=(1)/(4)int(1)/(x+1)dx-(1)/(4)int(x-1)/(x^(2)+1)dx-(1)/(2)int(x-1)/((x^(2)+1)^(2))dx` `=(1)/(4)ln\|x+1\|-(1)/(8)int(2x)/(x^(2)+1)dx+(1)/(4)int(1)/(x^(2)+1)dx-(1)/(4)int(2x)/((x^(2)+1)^(2))dx+(1)/(2)(dx)/((x^(2)+1)^(2))` `=(1)/(4)ln\|x+1\|-(1)/(8)ln(x^(2)+1)+(1)/(4)tan^(-1)x+(1)/(4)(1)/((x^(2)+1))+(1)/(2)int(1)/((x^(2)+1)^(2))dx` Now `int(1)/((x^(2)+1)^(2))dx=int(sec^(2)theta)/(sec^(4)theta)d theta` [Putting `(x=tantheta)` so that `dx=sec^(2)theta d theta`] `=int(1+cos2theta)/(2)d theta=(1)/(2)[theta+(sin2theta)/(2)]` `=(1)/(2)(theta+sinthetacostheta)=(1)/(2)[tan^(-1)x+(x)/(x^(2)+1)]` Hence `int(1)/((x+1)(x^(2)+1)^(2))dx=(1)/(4)ln\|x+1\|-(1)/(8)ln(x^(2)+1)+(1)/(2)tan^(-1)x+(x+1)/(4(x^(2)+))+C` , `C` is constant of integration. `(III)` We have, `int(1)/(x^(3)(x^(2)+1)^(2))dx=(1)/(2)int(2x)/(x^(4)(x^(2)+1)^(2))dx` Let US put `x^(2)+1=t` `2xdx=dt` `x^(2)=t-1` `=(1)/(2)int(dt)/(t^(2)(t-1)^(2))` Now `(1)/(t^(2)(t-1)^(2))=(p)/(t-1)+(q)/((t-1)^(2))+(r )/(t)+(s)/(t^(2))` `implies1=p(t-1)t^(2)+qt^(2)+rt(t-1)^(2)+s(t-1)^(2)` whence `p=-2`, `q=1`, `r=2`, `s=1` Thus `intint(1)/(x^(3)(x^(2)+1)^(2))dx=(1)/(2)[int(-2)/(t-1)dt+int(1)/((t-1)^(2))dt+int(2)/(t)dt+int(1)/(t^(2))dt]` `=-ln\|t-1\|+ln\|t\|-(1)/(2(t-1))-(1)/(2t)+C` `=ln\|(x^(2)+1)/(x^(2))\|-(1)/(2x^(2))-(1)/(2(x^(2)+1))+C `

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Evaluate the following integrals : (i) int(x^(2)-4)/((x^(2)+1)(x^(2)+2)(x^(2)+3))dx (ii) int(1)/((x+1)(x^(2)+1)^(2))dx (iii) int(1)/(x^(3)(x^(2)+1)^(2))dx

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