Answer to Question #304320 in Differential Equations for Chromate

Given, "z = yf(x) + xg(y)."

Differentiating partially with respect to "x" and "y" respectively, we get

"\\begin{aligned}\np &= \\dfrac{\\partial z}{\\partial x} = yf'(x)+g(y) \\qquad (1)\\\\\nq &= \\dfrac{\\partial z}{\\partial y} = f(x)+xg'(y) \\qquad (2)\\\\ \n\\end{aligned}"

Differentiating equation (1) with respect to y, we get

"s= \\dfrac{\\partial^{2} z}{\\partial y \\partial x} = f'(x) + g'(y) \\qquad(3)"

Multiplying equation (1) by x, Multiplying equation (2) by y, and adding we get

"\\begin{aligned}\nxp +yq &= xyf'(x)+xg(y) + yf(x)+xyg'(y) \\\\\n&= xy(f'(x)+g'(y)) + yf(x)+xg(y)\\\\\n&= xys+z \\qquad(\\text{Using equation (3) and}~ z = yf(x) + xg(y))\\\\\n\\therefore z &=xp + yq - xys \n\\end{aligned}"

which is the required partial differential equation.