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If ๐‘ข = ๐‘ฅ2 tanโˆ’1 ๐‘ฆ๐‘ฅ โˆ’ ๐‘ฆ2 tanโˆ’1 ๐‘ฅ๐‘ฆ show that ๐œ•2๐‘ข๐œ•๐‘ฅ๐œ•๐‘ฆ = ๐‘ฅ2โˆ’๐‘ฆ2๐‘ฅ2+๐‘ฆ2 and ๐œ•2๐‘ข๐œ•๐‘ฅ๐œ•๐‘ฆ = ๐œ•2๐‘ข๐œ•๐‘ฆ๐œ•๐‘ฅ.

Question

If ๐‘ข = ๐‘ฅ2 tanโˆ’1 ๐‘ฆ๐‘ฅ โˆ’ ๐‘ฆ2 tanโˆ’1 ๐‘ฅ๐‘ฆ show that ๐œ•2๐‘ข๐œ•๐‘ฅ๐œ•๐‘ฆ = ๐‘ฅ2โˆ’๐‘ฆ2๐‘ฅ2+๐‘ฆ2 and ๐œ•2๐‘ข๐œ•๐‘ฅ๐œ•๐‘ฆ = ๐œ•2๐‘ข๐œ•๐‘ฆ๐œ•๐‘ฅ.

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Solution

To solve this problem, we need to use the rules of differentiation.

First, let's find the first order partial derivatives of u with respect to x and y.

๐œ•๐‘ข/๐œ•๐‘ฅ = 2x tan^(-1)(y/x) - y/(1+(y/x)^2) - 2y tan^(-1)(x/y) + x/(1+(x/y)^2)

๐œ•๐‘ข/๐œ•๐‘ฆ = x^2/(1+(y/x)^2) - 2y tan^(-1)(x/y) - x/(1+(x/y)^2) + 2x tan^(-1)(y/x)

Now, let's find the second order partial derivatives.

๐œ•^2๐‘ข/๐œ•๐‘ฅ๐œ•๐‘ฆ = ๐œ•/๐œ•๐‘ฆ [2x tan^(-1)(y/x) - y/(1+(y/x)^2) - 2y tan^(-1)(x/y) + x/(1+(x/y)^2)]

After simplifying, we get ๐œ•^2๐‘ข/๐œ•๐‘ฅ๐œ•๐‘ฆ = (x^2 - y^2) / (x^2 + y^2)

Similarly,

๐œ•^2๐‘ข/๐œ•๐‘ฆ๐œ•๐‘ฅ = ๐œ•/๐œ•๐‘ฅ [x^2/(1+(y/x)^2) - 2y tan^(-1)(x/y) - x/(1+(x/y)^2) + 2x tan^(-1)(y/x)]

After simplifying, we get ๐œ•^2๐‘ข/๐œ•๐‘ฆ๐œ•๐‘ฅ = (x^2 - y^2) / (x^2 + y^2)

Therefore, ๐œ•^2๐‘ข/๐œ•๐‘ฅ๐œ•๐‘ฆ = ๐œ•^2๐‘ข/๐œ•๐‘ฆ๐œ•๐‘ฅ = (x^2 - y^2) / (x^2 + y^2) as required.

This problem has been solved

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