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Oduvanchick [21]
3 years ago
14

An equation was created for the line of best fit from actual enrollment data. It was used to predict the dance studio enrollment

values shown in the table below:
Enrollment Month
January February March April May June
Actual 500 400 550 13 16 14
Predicted 8 15 15 12 17 15
Residual 4 −1 −1 1 −1 −1
Analyze the data. Determine whether the equation that produced the predicted values represents a good line of best fit.
No, the equation is not a good fit because the sum of the residuals is a large number.
No, the equation is not a good fit because the residuals are all far from zero.
Yes, the equation is a good fit because the residuals are all far from zero.
Yes, the equation is a good fit because the sum of the residuals is a small number.
Mathematics
1 answer:
stealth61 [152]3 years ago
6 0

Answer:  First option is correct.

Step-by-step explanation:

Enrollment month   Actual   Predicted   Residual

January                   500           8                4

February                 400           15              -1

March                     550            15              -1

April                         13              12              -1

May                         16              17              -1

June                        14              15              -1

Since we know that

Residual value = Actual value - Predicted value

Sum of residuals is given by

4-1-1+1-1-1=1

since we can see that sum of residual is more than 0.

So, it can't be a good fit .

Hence, No, the equation is not a good fit because the sum of the residuals is a large number.

Therefore, First option is correct.

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Answer:

(b)

V_2 = \frac{\pi}{4} [ \frac{(2r)^2h}{3}] or V_2 = \frac{1}{3}\pi r^2h

Step-by-step explanation:

Given

Ratio = \frac{\pi}{4}

See attachment for complete question

Required

Determine the volume of the cone

The volume of a square pyramid is:

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From the attachment, the base dimension of the square pyramid is 2r.

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The volume becomes;

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To calculate the volume of the cone, we simply multiply the given ratio and the volume of the prism.

So, we have:

V_2  = Ratio * V

V_2 = \frac{\pi}{4} [ \frac{(2r)^2h}{3}]

V_2 = \frac{\pi}{4} * \frac{(2r)^2h}{3}

Open bracket;

V_2 = \frac{\pi}{4} * \frac{4r^2h}{3}

Cancel out 4

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The above can be written as:

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V_2 = \frac{\pi}{4} [ \frac{(2r)^2h}{3}]

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