Use Lagrange multipliers to find the maximum and minimum values of f(x, y) = x + 8y subject to the constraint x^2 + y^2 = 4 if such values exist. Round your answers to three dec…

Question

asked Oct 11, 2021 191k views

1 Answer

Farhad Maleki · Answer 1 · 2021-10-17T12:16:16+0000

The Lagrangian is

$L(x,y,\lambda)=x+8y+\lambda(x^2+y^2-4)$

It has critical points where the first order derivatives vanish:

$L_x=1+2\lambda x=0\implies\lambda=-\frac1{2x}$

$L_y=8+2\lambda y=0\implies\lambda=-\frac4y$

$L_\lambda=x^2+y^2-4=0$

From the first two equations we get

$-\frac1{2x}=-\frac4y\implies y=8x$

Then

$x^2+y^2=65x^2=4\implies x=\pm\frac2{√(65)}\implies y=\pm(16)/(√(65))$

At these critical points, we have

$f\left(\frac2{√(65)},(16)/(√(65))\right)=2√(65)\approx16.125$ (maximum)

$f\left(-\frac2{√(65)},-(16)/(√(65))\right)=-2√(65)\approx-16.125$ (minimum)