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Question

The value of 3/21|xsinπx| dx=kπ+1πm, then k+m=

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Solution

I=3/21|xsinπx| dxI=01(x)(sinπx) dx +10xsinπx dx +3/21x(sinπx) dxI=11xsinπx dx3/21xsinπx dx
I1=11xsinπx dx (1)I1=210xsinπx dxI1=210(1x)sinπx dx (2)
Adding (1) and (2),
I1=10sinπx dxI1=[cosπxπ]10I1=2π
I2=3/21xsinπx dxI2=[xcosπxπ]3/21+3/21cosπxπ dxI2=1π+[sinπxπ2]3/21I2=1π1π2
Therefore,
I=2π+1π+1π2I=kπ+1πm=3π+1π2k+m=5

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