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Problem: The manager of a fish market speculates that the number of requests for salmon on any given day is a random variable $X$ with the probability function

$f(x)=\begin{cases} \frac14,&\text{if }x=0\\\\ \frac12,&\text{if }x=1\\\\ \frac14,&\text{if }x=2\;. \end{cases}$

There is a profit of $\$2$ on each salmon he sells and a loss of $\$1$ on each salmon he does not sell. Assuming that each salmon can be sold only on the day it is up for sale, that each request is for a single salmon, and that the managers's speculation is correct, find the number of salmons the market should have per day to maximize profit.

Attempt at a solution: So, what I think this is saying is that there is a $.25$ chance that no salmon will be requested, a $.50$ chance that $1$ salmon will be requested, and a $.25$ chance that $2$ salmon will be requested. This adds up to $1$, so it makes sense. In the second part, it states that each request is for a single salmon, but each the probability function of that only gives $.50$ (not sure if this is right)

Anyway, I attempt trial and error. So if we start with $10$ salmon, then he sells only $5$, and the other $5$ go to waste. So he loses $\$5$. If he starts with $8$ salmon, he loses $\$4$ ($8 *.5 *2 - 8*.5 * \$1$), gives us $4$... Continue this to $0$, he loses none, but has no salmon.

I'm lost

I think I need help modeling and solving , thanks in advance

2 Answers 2

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The statement that each request is for a single salmon just means that no customer ever asks for more than one salmon at a time. Since $f(0)+f(1)+f(2)=1$, the demand on any given day is always $0,1$, or $2$; there is no chance that he will sell more than two salmon, so he certainly should not order more than two. This is a small enough problem that we can easily tabulate the possible outcomes:

$\begin{array}{c} \qquad\qquad\qquad\qquad\qquad\text{Orders:}\\ \begin{array}{rc|ccc} &&0&1&2\\ \hline &0&0&-1&-2\\ \text{Gets Requests For:}&1&0&2&1\\ &2&0&2&4 \end{array} \end{array}$

Now we calculate the expected profit for each of his three possible orders. (Well, okay: technically an order of $10$ salmon is possible, but we know that he loses money on it, so we rule it out.)

Clearly he is certain to have a profit of $\$0$ if he orders $0 salmon.

If he orders 1$ salmon, his expected profit is $\frac14(-1)+\frac12\cdot2+\frac14\cdot2=\$2.25$.

And if he orders $2$ salmon, his expected profit is $\frac14(-2)+\frac12\cdot1+\frac14\cdot4=\$1$.

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    Awesome, thanks!!!!2012-05-01
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What is the range of salmon he can sell? It appears from the question that x can only equal 0, 1, or 2.

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    haha nice! Got it! Thank you!!!!! :)2012-05-01