How to find the particular the solution for this differential equation x y &#x2032

landdenaw

landdenaw

Answered question

2022-06-24

How to find the particular the solution for this differential equation x y ( x ) y ( x ) ( 1 + x 2 ) = x 2 2 first i solved it as homogenous differential equation as follows x y ( x ) y ( x ) ( 1 + x 2 ) = 0 thrn i got y ( x ) = c e x 2 2 x

Answer & Explanation

Govorei9b

Govorei9b

Beginner2022-06-25Added 21 answers

Let
y ( x ) + P ( x ) y ( x ) = Q ( x )
then
y ( x ) = 1 μ ( x ) ( μ ( x ) Q ( x ) d x + c )
where
μ ( x ) = exp ( P ( x ) d x )
we have
y ( x ) ( 1 + x 2 ) x y ( x ) = x 2
μ ( x ) = exp ( 1 + x 2 x d x ) = 1 x e x 2 2
y ( x ) = x e x 2 2 ( 1 2 e x 2 2 d x + c )

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