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Key concepts

  • A critical point of the function f ( x , y ) is any point ( x 0 , y 0 ) where either f x ( x 0 , y 0 ) = f y ( x 0 , y 0 ) = 0 , or at least one of f x ( x 0 , y 0 ) and f y ( x 0 , y 0 ) do not exist.
  • A saddle point is a point ( x 0 , y 0 ) where f x ( x 0 , y 0 ) = f y ( x 0 , y 0 ) = 0 , but ( x 0 , y 0 ) is neither a maximum nor a minimum at that point.
  • To find extrema of functions of two variables, first find the critical points, then calculate the discriminant and apply the second derivative test.

Key equations

  • Discriminant
    D = f x x ( x 0 , y 0 ) f y y ( x 0 , y 0 ) ( f x y ( x 0 , y 0 ) ) 2

For the following exercises, find all critical points.

f ( x , y ) = 1 + x 2 + y 2

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f ( x , y ) = ( 3 x 2 ) 2 + ( y 4 ) 2

( 2 3 , 4 )

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f ( x , y ) = x 4 + y 4 16 x y

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f ( x , y ) = 15 x 3 3 x y + 15 y 3

( 0 , 0 ) ( 1 15 , 1 15 )

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For the following exercises, find the critical points of the function by using algebraic techniques (completing the square) or by examining the form of the equation. Verify your results using the partial derivatives test.

f ( x , y ) = x 2 + y 2 + 1

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f ( x , y ) = x 2 5 y 2 + 8 x 10 y 13

Maximum at ( 4 , −1 , 8 )

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f ( x , y ) = x 2 + y 2 + 2 x 6 y + 6

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f ( x , y ) = x 2 + y 2 + 1

Relative minimum at ( 0 , 0 , 1 )

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For the following exercises, use the second derivative test to identify any critical points and determine whether each critical point is a maximum, minimum, saddle point, or none of these.

f ( x , y ) = x 3 + 4 x y 2 y 2 + 1

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f ( x , y ) = x 2 y 2

The second derivative test fails. Since x 2 y 2 > 0 for all x and y different from zero, and x 2 y 2 = 0 when either x or y equals zero (or both), then the absolute minimum occurs at ( 0 , 0 ) .

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f ( x , y ) = x 2 6 x + y 2 + 4 y 8

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f ( x , y ) = 2 x y + 3 x + 4 y

f ( −2 , 3 2 ) = −6 is a saddle point.

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f ( x , y ) = 8 x y ( x + y ) + 7

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f ( x , y ) = x 2 + 4 x y + y 2

f ( 0 , 0 ) = 0 ; ( 0 , 0 , 0 ) is a saddle point.

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f ( x , y ) = x 3 + y 3 300 x 75 y 3

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f ( x , y ) = 9 x 4 y 4

f ( 0 , 0 ) = 9 is a local maximum.

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f ( x , y ) = 7 x 2 y + 9 x y 2

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f ( x , y ) = 3 x 2 2 x y + y 2 8 y

Relative minimum located at ( 2 , 6 ) .

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f ( x , y ) = 3 x 2 + 2 x y + y 2

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f ( x , y ) = y 2 + x y + 3 y + 2 x + 3

( 1 , −2 ) is a saddle point.

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f ( x , y ) = x 2 + x y + y 2 3 x

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f ( x , y ) = x 2 + 2 y 2 x 2 y

( 2 , 1 ) and ( −2 , 1 ) are saddle points; ( 0 , 0 ) is a relative minimum.

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f ( x , y ) = x 2 + y e y

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f ( x , y ) = e ( x 2 + y 2 + 2 x )

( −1 , 0 ) is a relative maximum.

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f ( x , y ) = x 2 + x y + y 2 x y + 1

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f ( x , y ) = x 2 + 10 x y + y 2

( 0 , 0 ) is a saddle point.

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f ( x , y ) = x 2 5 y 2 + 10 x 30 y 62

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f ( x , y ) = 120 x + 120 y x y x 2 y 2

The relative maximum is at ( 40 , 40 ) .

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f ( x , y ) = 2 x 2 + 2 x y + y 2 + 2 x 3

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f ( x , y ) = x 2 + x 3 x y + y 3 5

( 1 4 , 1 2 ) is a saddle point and ( 1 , 1 ) is the relative minimum.

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f ( x , y ) = 2 x y e x 2 y 2

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For the following exercises, determine the extreme values and the saddle points. Use a CAS to graph the function.

[T] f ( x , y ) = y e x e y

A saddle point is located at ( 0 , 0 ) .
A complicated graph that starts near (1, 1, 1), and decreases significantly along the x and y axes, so much so along the y axis that it is cut off. The rest of the graph stays near 0.

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[T] f ( x , y ) = x sin ( y )

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[T] f ( x , y ) = sin ( x ) sin ( y ) , x ( 0 , 2 π ) , y ( 0 , 2 π )

There is a saddle point at ( π , π ) , local maxima at ( π 2 , π 2 ) and ( 3 π 2 , 3 π 2 ) , and local minima at ( π 2 , 3 π 2 ) and ( 3 π 2 , π 2 ) .
A series of hills and holes alternating through a space with amplitude 1.

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Find the absolute extrema of the given function on the indicated closed and bounded set R .

f ( x , y ) = x y x 3 y ; R is the triangular region with vertices ( 0 , 0 ) , ( 0 , 4 ) , and ( 5 , 0 ) .

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Find the absolute maximum and minimum values of f ( x , y ) = x 2 + y 2 2 y + 1 on the region R = { ( x , y ) | x 2 + y 2 4 } .

( 0 , 1 , 0 ) is the absolute minimum and ( 0 , −2 , 9 ) is the absolute maximum.

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f ( x , y ) = x 3 3 x y y 3 on R = { ( x , y ) : −2 x 2 , −2 y 2 }

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f ( x , y ) = −2 y x 2 + y 2 + 1 on R = { ( x , y ) : x 2 + y 2 4 }

There is an absolute minimum at ( 0 , 1 , −1 ) and an absolute maximum at ( 0 , −1 , 1 ) .

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Find three positive numbers the sum of which is 27 , such that the sum of their squares is as small as possible.

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Find the points on the surface x 2 y z = 5 that are closest to the origin.

( 5 , 0 , 0 ) , ( 5 , 0 , 0 )

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Find the maximum volume of a rectangular box with three faces in the coordinate planes and a vertex in the first octant on the line x + y + z = 1 .

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The sum of the length and the girth (perimeter of a cross-section) of a package carried by a delivery service cannot exceed 108 in. Find the dimensions of the rectangular package of largest volume that can be sent.

18 by 36 by 18 in .

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A cardboard box without a lid is to be made with a volume of 4 ft 3 . Find the dimensions of the box that requires the least amount of cardboard.

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Find the point on the surface f ( x , y ) = x 2 + y 2 + 10 nearest the plane x + 2 y z = 0 . Identify the point on the plane.

( 47 24 , 47 12 , 235 24 )

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Find the point in the plane 2 x y + 2 z = 16 that is closest to the origin.

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A company manufactures two types of athletic shoes: jogging shoes and cross-trainers. The total revenue from x units of jogging shoes and y units of cross-trainers is given by R ( x , y ) = −5 x 2 8 y 2 2 x y + 42 x + 102 y , where x and y are in thousands of units. Find the values of x and y to maximize the total revenue.

x = 3 and y = 6

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A shipping company handles rectangular boxes provided the sum of the length, width, and height of the box does not exceed 96 in. Find the dimensions of the box that meets this condition and has the largest volume.

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Find the maximum volume of a cylindrical soda can such that the sum of its height and circumference is 120 cm.

V = 64,000 π 20 , 372 cm 3

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Practice Key Terms 3

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Source:  OpenStax, Calculus volume 3. OpenStax CNX. Feb 05, 2016 Download for free at http://legacy.cnx.org/content/col11966/1.2
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