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प्रश्न
If y = Aemx + Benx, show that `(d^2y)/dx^2 - (m+ n) (dy)/dx + mny = 0`.
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उत्तर
Given, y = Aemx + Benx ...(1)
Differentiating both sides with respect to x,
`dy/dx = A d/dx e^(mx) + B d/dx e^(nx)`
= `A e^(mx) d/dx (mx) + B e^(nx) d/dx (nx)`
= Amemx + Bnenx ...(2)
Differentiating both sides again with respect to x,
`(d^2 y)/dx^2 = Amd/dx e^(mx) + Bn d/dx e^(nx)`
= Am2emx + Bn2enx ...(3)
Left side = `(d^2 y)/dx^2 - (m + n) dy/dx + mny`
= Am2emx + Bn2enx − (m + n) × (Amemx + Bnenx) + mn (Aemx + Benx) ...[Substituting the value (1), (2) and (3)]
= Aemx [m2 − m(m + n) + mn] + Benx [n2 − n (m + n) + mn]
= Aemx [m2 − m2 − mn + mn] + Benx [n2 − mn − n2 + mn]
= Aemx × 0 + Benx × 0
= 0 = Right side
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