A consensus forecastis the average of a large number of individual analysts’ forecasts. Suppose the individual forecasts fora pa

Question

3 years ago

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A consensus forecastis the average of a large number of individual analysts’ forecasts. Suppose the individual forecasts fora pa

rticular interest rate are normally distributed with a mean of 5.0 percent and a standard deviation of 1.2 percent Asingle analyst is randomly selected. Find the probability that his/ her forecast isa At least 3.5 percentb At most 6 percentc Between 3.5 percent and 6 percent

Mathematics

1 answer:

Crank · Answer 1 · 2022-07-26T17:13:11+03:00

Answer:

a) $P(X\geq 3.5)=P(\frac{X-\mu}{\sigma}\geq \frac{3.5-\mu}{\sigma})=P(Z\geq \frac{3.5-5.0}{1.2})=P(Z\geq -1.25)$

And we can find this probability using the z table or excel

$P(Z \geq$

b) $P(X\leq 6.0)=P(\frac{X-\mu}{\sigma}\leq \frac{6.0-\mu}{\sigma})=P(Z\leq \frac{6.0-5.0}{1.2})=P(Z\leq 0.833)$

And we can find this probability using the z table or excel:

$P(Z \leq$

c) $P(3.5$

And we can find this probability on this way:

$P(-1.25$

And in order to find these probabilities we can find tables for the normal standard distribution, excel or a calculator.

$P(-1.25$

Step-by-step explanation:

Previous concepts

Normal distribution, is a "probability distribution that is symmetric about the mean, showing that data near the mean are more frequent in occurrence than data far from the mean".

The Z-score is "a numerical measurement used in statistics of a value's relationship to the mean (average) of a group of values, measured in terms of standard deviations from the mean".

Part a

Let X the random variable that represent the interest rate of a population, and for this case we know the distribution for X is given by:

$X \sim N(5.0,1.2)$