426,768 views
1 vote
1 vote
Many businesses know that most consumers associate price with quality (i.e. if it costs more it mustbe of a higher quality). An actuary at a cosmetics manufacture determined that the profit made theprice charged for lipstick at a particular retail outlet could be modeled by:V(p) =-0.5^3 + 12p^2 - 17p, where p is the price in dollarsV(p) =- 17p, where p is the price in dollars and V(p) is the amount earned by theretail store selling just the lipstick in a month.How much should the store charge to maximize its profit?

User Ali Elzoheiry
by
2.9k points

1 Answer

15 votes
15 votes

Given:


V(p)=-0.5p^3+12p^2-17p

Take the derivative with respect to p,


\begin{gathered} (dV)/(dp)=(d)/(dp)(-0.5p^3+12p^2-17p) \\ =-(d)/(dp)(0.5p^3)+(d)/(dp)(12p^2)-(d)/(dp)(17p) \\ =-1.5p^2+24p-17 \end{gathered}

Now set the derivative equal to zero,


\begin{gathered} (dV)/(dp)=0 \\ -1.5p^2+24p-17=0 \\ p=\frac{-b\pm\sqrt[]{b^2-4ac}}{2a},a=-1.5,b=24,c=-17 \\ p=\frac{-24\pm\sqrt[]{24^2-4(-1.5)(-17)}}{2(-1.5)} \\ p=\frac{-24\pm\sqrt[]{474}}{-3} \\ p=\frac{-24+\sqrt[]{474}}{-3},p=\frac{-24-\sqrt[]{474}}{-3} \\ p=\frac{24-\sqrt[]{474}}{3},p=\frac{24+\sqrt[]{474}}{3} \\ p=0.7428,p=15.2572 \end{gathered}

Now, take second derivative of the function,


\begin{gathered} V^(\doubleprime)(p)=(d)/(dp)(-1.5p^2+24p-17) \\ =-3p+24 \\ V^(\doubleprime)(0.7428)=-3(0.7428)+24=21.7716>0 \\ V^(\doubleprime)(15.2572)=-3(15.2572)+24=-21.7716<0 \end{gathered}

As the second derivative is less than 0 when p=15.2572 that is maximum profit.

So, the price charge to maximize its profit is p=15.2572 ( approximated)

User Sandeep Rana
by
3.3k points