The Laplace transform L{e^(-t^2)} exists, but without finding it solve the initial-value problem y''+y=e^(-t^2),y(0)=0,y'(0)=0

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Answered question

2021-09-14

The Laplace transform L{et2} exists, but without finding it solve the initial-value problem y+y=et2,y(0)=0,y(0)=0

Answer & Explanation

Nathanael Webber

Nathanael Webber

Skilled2021-09-15Added 117 answers

y+y=et2.y(0)=y(0)=0
(s2Y(s)sy(0)y(0))+Y(s)=L(et2)
(s2+1)Y(s)=L(et2)
Y(s)=L(et2)(s2+1)
Y(s)=(L(et2)(1s2+1))
y(t)=et2sint

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