Gujarat Board Textbook Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3

Gujarat Board Statistics Class 11 GSEB Solutions Chapter 4 Measures of Dispersion Ex 4.3 Textbook Exercise Questions and Answers.

Gujarat Board Textbook Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3

Question 1.
The measurements of height (in centimeters) of 10 soldiers are given below:
GSEB Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3 1
Find the mean deviation of the heights of the soldiers.
Answer:
Here, n = 10

Height (in cm)	\| x – x̄ \| x̄ = 167.4
160	7.4
175	7.6
158	9.4
165	2.4
170	2.6
166	1.4
173	5.6
176	8.6
163	4.4
168	0.6
Σx = 1674	Σ \|x – x̄\| = 50.0

GSEB Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3 2

Question 2.
The distribution of number of ball bearings used in machines of a factory is given below. Calculate the mean deviation and coefficient of mean deviation of number of ball bearings per machine.
GSEB Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3 3
Answer:

Mean:
x̄ = $\frac{\Sigma f x}{n}=\frac{160}{20}$ = 8 ball bearing

Mean deviation of numbers of ball bearing:
MD = $\frac{\Sigma f|x-\bar{x}|}{n}$
= $\frac{56}{20}$ = 28 ball bearing

Coefficient Mean deviation of ball bearing:
Coefficient of mean deviation = $\frac{\mathrm{MD}}{\bar{x}}$
= $\frac{2.8}{8}$ = 0.35

Question 3.
Find the mean deviation and the coefficient of mean deviation of the distribution of talk time (in minutes) per call.
GSEB Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3 5
Answer:

Coefficient of Mean deviation of talk time : Coefficient of Mean deviation = $\frac{\mathrm{MD}}{\bar{x}}=\frac{3.33}{7.3}$ = 0.46

Question 4.
Find the mean deviation and coefficient of mean deviation of number of TV sets using the following frequency distribution of TV sets sold in last 16 months in a town:
GSEB Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3 8
Answer:

Mean:
x̄ = $\frac{\Sigma f x}{n}=\frac{960}{16}$ = 60 TV sets

Mean deviation of monthly sales of TV sets:
MD = $\frac{\Sigma f|x-\bar{x}|}{n}=\frac{240}{16}$ = 15 TV sets

Coefficient of Mean deviation of monthly sales of TV sets:
Coefficient of mean deviation = $\frac{M D}{\bar{x}}=\frac{15}{60}$ = 0.25

Question 5.
There are 50 boxes containing different number of units of an item in a factory. Find the mean deviation of number of units per box using the following distribution of the units:
GSEB Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3 11
Answer:

Mean:
x̄ = $\frac{\Sigma f x}{n}=\frac{1670}{50}$ = 33.4 units

Mean deviation of number of units per box:
MD = $\frac{\Sigma f|x-\bar{x}|}{n}=\frac{659.2}{50}$ = 13.18 units

Gujarat Board Textbook Solutions Class 11 Statistics Chapter 4 Measures of Dispersion Ex 4.3