Proving Zx + Zy = 0 using Chain Rule

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Homework Statement


If Z= F(x-y), show that Zx + Zy = 0


Homework Equations





The Attempt at a Solution


Suppose I let Q = x-y. Then, by chain rule,

Fx(Q) * 1 + Fy(Q) * -1. By identity, this statement must hold for all values x,y. In particular, it must hold for x=y. By x=y,

Fy(Q) * 1 + Fy(Q) * -1 = 0.

Is this legitimate?
 
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I'm not sure what you mean by Fx(Q) * 1 + Fy(Q) * -1. Are you differentiating F(Q) with respect to x and to y?
 
F is just a real-valued function, it only has one derivative.

if Q(x,y) = x-y, then Q has 2 partials, Qx and Qy.

using the chain rule we get:

Zx = F'(Q)Qx

your turn.
 

Thread 'Prove that the integral is equal to ##\pi^2/8##'

Prove $$\int\limits_0^{\sqrt2/4}\frac{1}{\sqrt{x-x^2}}\arcsin\sqrt{\frac{(x-1)\left(x-1+x\sqrt{9-16x}\right)}{1-2x}} \, \mathrm dx = \frac{\pi^2}{8}.$$ Let $$I = \int\limits_0^{\sqrt 2 / 4}\frac{1}{\sqrt{x-x^2}}\arcsin\sqrt{\frac{(x-1)\left(x-1+x\sqrt{9-16x}\right)}{1-2x}} \, \mathrm dx. \tag{1}$$ The representation integral of ##\arcsin## is $$\arcsin u = \int\limits_{0}^{1} \frac{\mathrm dt}{\sqrt{1-t^2}}, \qquad 0 \leqslant u \leqslant 1.$$ Plugging identity above into ##(1)## with ##u...
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