Optimization II So far you have learned how to find the relative and absolute etrema of a function. This is an important concept because of how it can be applied to real life situations. In many situations you will be looking to either minimize or maimize a quantity; whether it is time, cost, units produced, volume, etc. Probably the most used application of etrema in the business world is to minimize costs or to maimize revenue and profits. In most of the cases, these application problems will be in the form of a word problem. Therefore, here are some helpful steps in solving these problems. 1. Read through the entire problem carefully before attempting to solve it.. Once you have read the problem, identify the information that is given and what you are being asked to find. 3. Sketching a diagram of the problem can sometimes help to visualize what needs to be done and the equation to be used. 4. Choose a variable to represent your unknown quantity. 5. Use the relationship between the known and unknown quantities to develop the function to be minimized or maimized. Be sure to locate any domain restrictions, it they eist. 6. Find the critical numbers of the function. 7. Find the etrema for the function. Now lets look at a few eamples of the applications of etrema. Eample 1: Find two nonnegative numbers and y for which + y 150, such that y is maimized. Solution: Step 1: Identify given information and what needs to be determined. We are given that and y are nonnegative numbers (therefore 0 and y 0) and that their sum is 150 ( + y 150). We are asked to find the values of and y that maimize the equation y. To do this, we will assign a variable to this equation, such as M y. Gerald Manahan SLAC, San Antonio College, 008 1
Eample 1 (Continued): Step : Epress the function to be maimized with only a single variable and determine the domain of the function To maimize the equation M y, we want to rewrite it so that it contains only a single variable (either or y). To do this, we will use the given equation of + y 150 and solve it for either or y. + y 150 y 150 Now we can substitute this into the equation M y M y (150 ) 150 3 Determine the domain of the function Since & y are nonnegative numbers M 0 150 3 0 (150 ) 0 0 or 150 0 0 150 150 Therefore, the domain is 0 150 Step 3: Find the critical numbers of the function First find the derivative M 150 3 M 300 3 M 300 3 0 300 3 ( ) 0 3 100 3 0 100 0 0 100 Gerald Manahan SLAC, San Antonio College, 008
Eample 1 (Continued): Both numbers (0 and 100) are within our restricted domain (0 150) so both are valid critical numbers. Step 4: Determine the maimum value of the function Evaluate the function M 150 3 at the critical numbers (0 & 100) and endpoints (0 & 150) of the domain. If 0 M 150 3 150(0) (0) 3 0 If 100 M 150 3 150(100) (100) 3 1,500,000 1,000,000 500,000 If 150 M 150 3 150(150) (150) 3 3,375,000 3,375,000 0 The maimum value is 500,000, which occurs when 100. So now we can find y. (Remember the problem asked you to find the values for and y) y 150 150 100 50 The solution that maimizes the equation M y is 100 and y 50. Gerald Manahan SLAC, San Antonio College, 008 3
Eample : A new communicable disease is spreading in a Teas city. It is estimated that t days after the disease is first observed the percent of the population infected can be approimated by the formula () p t 0t t for 0 t 0. a) After how many days is the percent of the population infected a maimum? b) What is the maimum percent of the population infected? Solution: Step 1: Identify given information and what needs to be determined. Given information: t number of days after disease is first observed () p t 0t t formula for approimating population infected 0 t 0 is the domain restriction for the formula What needs to be determined: The value of t that will maimize the function p(t) and the maimum percent of the population infected. Step : Epress the function to be maimized with only a single variable and determine the domain of the function. Since we were already given the formula in terms of just a single variable (t) and the domain (0 t 0) we can proceed to the net step. Gerald Manahan SLAC, San Antonio College, 008 4
Eample (Continued): Step 3: Find the critical numbers of the function First we must find the derivative of p(t). If we split the function into two separate fractions before finding the derivative we can reduce the function to a power function and avoid having to use the quotient rule. 0t t p() t 0 3 1 4 t t 0 1 p t 3 60t 4t 3 60t 4t 3 () ( 3t ) ( 4t ) Find where the derivative is zero or undefined Since the denominator is a constant number () it will never be equal to zero and therefore the derivative will never be undefined. So our only critical numbers will come from when the numerator is equal to zero. 3 60t 4t 0 ( t) 4t 15 0 4 0 15 0 t t t 0 t 15 t 0 t 15 Both of these numbers are within our restricted domain 0 t 0 so they are both valid critical numbers. Gerald Manahan SLAC, San Antonio College, 008 5
Eample (Continued): Step 4: Determine the maimum value of the function Evaluate the function at the critical numbers (0 & 15) and the endpoints (0 & 0) of the domain. If 0 If 15 If 0 () p t p p p ( 0) () p t ( 15) 0t t ( ) ( ) 0 0 0 0 0 () p t ( 0) 0t t 0( 15) ( 15) 67500 5065 16875 16.875 0t t 0( 0) ( 0) 160000 160000 0 0 Gerald Manahan SLAC, San Antonio College, 008 6
Eample (Continued): The maimum value is 16.875 when 15. Therefore, the infection of the population will reach its maimum percentage of 16.875% after 15 days Eample 3: The total profit (in tens of dollars) from the sale of hundred boes of candy is given by P() - 3 + 11 18. Solution: a) Find the number of boes of candy that should be sold in order to produce maimum profit. b) Find the maimum profit. Step 1: Identify given information and what needs to be determined. Given information: boes of candy sold (in hundreds) P() - 3 + 11 18 is the profit equation 0 ( is the number of boes sold and must be a nonnegative number since it is impossible to sell a negative amount of boes) What needs to be determined: The number of boes () that must be sold to maimize the profit function and the maimum profit P(). Step : Epress the function to be maimized with only a single variable and determine the domain of the function We are given the function for the profit is already but we are not given the domain. To find the domain, we will factor the given equation to find the zeros. P() - 3 + 11 18 P() -( 11 + 18) P() -( )( 9) - 0 or 0 or 9 0 0 9 Gerald Manahan SLAC, San Antonio College, 008 7
Eample 3 (Continued): Since we want to maimize the profit we want to determine where it is positive. The only positive intervals for the profit function are 0 and 9. However, since we cannot sell a negative number of boes cannot be less than zero so our domain would be 9. Step 3: Find the critical numbers of the function First, find the derivative of P() ( ) ( ) 3 P + 10 1 3 + 0 1 P Now set the derivative equal to zero and solve for. ( ) P 3 + 0 1 0 3 + 0 1 0 3 + 6 ( )( 3+ 0 6 0 3 6 3 ) The only number in our domain is 6. We would ignore /3 as a possible critical number for the absolute maimum. Gerald Manahan SLAC, San Antonio College, 008 8
Eample 3 (Continued): Step 4: Determine the maimum value of the function If If 6 If 9 3 ( ) + 11 18 3 ( ) ( ) + 11( ) 18( ) P P ( ) 8+ 44 36 0 3 P + 10 1 3 P( 6) ( 6) + 10( 6) 1( 6) 16 + 360 7 7 ( ) 3 P + 11 18 3 P( 9) ( 9) + 11( 9) 18( 9) 79 + 891 16 0 The largest value we get for the profit is 7 when is 6. Since the profit is in tens of dollars and is the boes sold in hundreds, the maimum profit will be $70 when 600 boes are sold. Gerald Manahan SLAC, San Antonio College, 008 9
Eample 4: A manufacturing company needs to design an open-topped bo with a square base. The bo must have a volume of 3 in 3. Find the dimensions of the bo that can be built with the minimum amount of materials. Solution: Step 1: Identify given information and what needs to be determined. Given information: The bo does not have a top and the base is a square The volume of the bo must be 3 in 3 What needs to be determined: The dimensions (l, w, h) that will minimize the amount of materials (surface area) need Visual representation: Step : Epress the function to be minimized with only a single variable and determine the domain of the function Our goal is to minimize the material used so we want to minimize the surface area of the bo. By looking at the collapsed view of the bo we can see that the surface area will be made up of the square base and the four sides. Since the base is a square the length and width must be the same. We will let the length/width and y the height of the bo. Surface area of base: l * w * Gerald Manahan SLAC, San Antonio College, 008 10
Eample 4 (Continued): Surface area of side: l * h * y y Total surface area surface area of base + 4(surface area of side) A + 4y Now we must rewrite this equation so that it has only one variable. To do this, we will use the equation for the volume of a bo and the given volume. V l* w* h 3 * * y 3 y 3 y Substitute the epression for y into our area equation. 3 + 18 A + A 4 The only restriction on is that it must be greater than zero ( > 0). Step 3: Find the critical numbers of the function First, find the derivative 18 A + A + 18 1 A 18 18 A Gerald Manahan SLAC, San Antonio College, 008 11
Eample 4 (Continued): Find the critical numbers 18 A 3 18 3 18 3 18 0 0 3 18 0 3 64 4 Step 4: Determine the minimum value of the function If 4 18 A + 18 ( 4) + 4 16 + 3 48 3 y 3 4 3 16 In order to minimize the surface area of the bo the length and width should be 4 in and the height should be in. Gerald Manahan SLAC, San Antonio College, 008 1