Specific Solution to Differential EquationSolve x(x−1)2g″(x)+(x−1)g′(x)−xg(x)=x−1x,x≥1.I already know the general solutions to this asg(x)=c1P(x)+c2Q(x)+gs(x).Here, P(x)=xPα2(2x−1),Q(x)=xQα2(2x−1),α=5−12P and Q are the associated Legendre functions and gs(x) is a special solution to this equation. I also know that the special solution can be determined by an integralgs(x)=2Q(x)∫P(x)x3dx−2P(x)∫Q(x)x3dx.Can anyone help me find a particular solution to this equation?

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Malia Booth · Accepted Answer

Step 1By letting&amp;nbsp;gs(x)=f1(x)+1x−1, you can get:x(x−1)f1&amp;nbsp;″−(2x−1)f1′+f1=−1x.If you let&amp;nbsp;f1=a1x+f2, then:x(x−1)f2&amp;nbsp;″−(2x−1)f2′+f2=−1+5a1x+3a1x2.We set&amp;nbsp;a1=−15&amp;nbsp;to discard the first term. Then we do&amp;nbsp;f2=a2x2+f3:x(x−1)f3&amp;nbsp;″−(2x−1)f3′+f3=−35+11a2x2+8a2x3.We set&amp;nbsp;a2=−355. And so on. In general, we find a recursive relation:a1=−15,&amp;nbsp;an+1=ann(n+2)n2+5n+5.Step 2You can solve this recursive relation using raising factorials:an=-151(n-1)3(n-1)(1+r1)(n-1)(1+r2)(n-1)=-(n-1)!(n+1)!10Γ(r1+1)Γ(r2+1)Γ(r1+n)Γ(r2+n),where&amp;nbsp;r1,2=125±5&amp;nbsp;are roots of&amp;nbsp;n2+5n+5=0. First terms of&amp;nbsp;f1(x)&amp;nbsp;are:f1(x)=−15x−355x2−241045x3−726061x4−1728248501x5+o(x−5)

Specific Solution to Differential Equation Solve \(\displaystyle{x}{\left({x}-{1}\right)}^{{2}}{g}{''}{\left({x}\right)}+{\left({x}-{1}\right)}{g}'{\left({x}\right)}-{x}{g{{\left({x}\right)}}}={\frac{{{x}-{1}}}{{{x}}}},\qquad{x}\geq{1}.\) I already

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