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प्रश्न
If xy = ex – y prove that `dy/dx = logx/((log(xe))^2` and hence find its value at x = e.
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उत्तर
Given, xy = ex – y
Taking log of both sides:
log (xy) = log(ex – y)
y × log x = (x – y) log e ....(As log (ab) = b ⋅ log a)
y × log x = (x − y) ...(Since log e = 1)
Differentiating both sides w.r.t. x.
`(d(y xx log x))/dx = (d(x - y))/dx`
Using the product rule:
As (uv)' = u'v + v'u
`(d(y))/dx * log x + (d(log x))/dx * y = (d(x))/dx - (d(y))/dx`
`(dy)/dx log x + 1/x * y = 1 - (dy)/dx`
`(dy)/dx log x + y/x = 1 - dy/dx`
`(dy)/dx log x + dy/dx = 1 - y/x`
`dy/dx (log x + 1) = ((x - y)/x)`
Since y = log = (x − y)
y log x + y = x
x = y log x + y
x = y(1 + log x)
`dy/dx (log x + 1) = (y(1 + log x) - y)/(y(1 + log x))`
`dy/dx (log x + 1) = (y + y log x - y)/(y(1 + log x))`
`dy/dx (log x + 1) = (y log x)/(y(1 + log x))`
`dy/dx (log x + 1) = (log x )/(1 + log x)`
`dy/dx = (log x)/(1 + log x)^2`
Putting log e = 1
`dy/dx = (log x)/(log e + log x)^2`
Using log A + log B = log (AB)
`dy/dx = (log x)/(log (xe))^2`
Hence proved.
Now, we need to find the value of `dy/dx` at x = e.
Putting x = e in `dy/dx`:
`dy/dx = (log e)/(log (e xx e))^2`
`dy/dx = (log e)/(log (e^2))^2`
Using log An = n × log A
`dy/dx = (log e)/(2 xx log e)^2`
Putting log e = 1
`dy/dx = 1/(2 xx 1)^2`
`dy/dx = 1/2^2`
`dy/dx = 1/4`
