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Question

If dydxy=y2(sinx+cosx) with y(0)=1, then the value of y(π) is

A
eπ
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B
eπ
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C
eπ
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D
eπ
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Solution

The correct option is A eπ
dydxy=y2(sinx+cosx)
1y2dydx1y=sinx+cosx
Let 1y=t1y2dydx=dtdx

Now, dtdx+t=sinx+cosx
I.F. =ex
tex=ex(sinx+cosx) dx
1yex=exsinx+C
If x=0, then y=1
C=1
Hence, the equation of curve is
exy=exsinx1
If x=π, then
eπy=1
y=eπ

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