Arithmetic Mean for Grouped Data Using Assumed Mean Method | Class 11 Notes
Written by Neeraj Anand | Published by ANAND TECHNICAL PUBLISHERS
Introduction:
The Assumed Mean Method is a simplified way of calculating the Arithmetic Mean for grouped data, especially useful when dealing with large datasets or complex calculations. This method minimizes computational effort by using a value close to the actual mean as a reference point, reducing the complexity of the arithmetic operations.
For Class 11 students preparing for Board Exams, JEE Mains, and Advanced, mastering this shortcut technique will save time and improve accuracy in problem-solving.
When to Use the Assumed Mean Method:
- When class intervals are large
- When the actual mean is likely to be close to a particular class mark
- To simplify complex calculations and reduce the chances of errors
Table of Contents
Arithmetic Mean for Grouped Data Using Assumed Mean Method
In statistics, the assumed mean method is used to calculate mean or arithmetic mean of a grouped data. If the given data is large, then this method is recommended rather than a direct method for calculating mean. This method helps in reducing the calculations and results in small numerical values. This method depends on estimating the mean and rounding to an easy value to calculate with. Again this value is subtracted from all the sample values. When the samples are converted into equal size ranges or class intervals, a central class is chosen and the computations are performed.
Assumed Mean Method simplifies the calculation of the mean by using an assumed mean (a). The formula for the Assumed Mean Method is:
x̄ = a + ∑ƒidi /∑ƒi
Where,
- a is assumed mean,
- ƒi is frequency of ith class,
- di = xi – a is derivation of ith class,
- ∑ƒi = n is total number of observations
- xi is class mark and is equal to (upper class limit + lower class limit)/2
Steps to Find Mean using Assumed Mean Method
For process for calculating mean by using assumed mean method, are discussed below:
Step 1: For each class interval, we have to calculate the class mark by using the formula,
xi = (upper limit + lower limit)/2
Step 2: Choose an approximate and suitable value of mean, and denote it by “a” .
Step 3: Calculate the deviations using the following formula,
di = (xi – a) for each i
Step 4: Calculate the product by,
(ƒi × di ), for each i
Step 5: Find total frequency
n = ∑ƒi
Step 6: Finally, calculate the mean by using the following formula,
x̄ = a + ∑ ƒidi/∑ƒi
Let’s consider an Example
| Class Interval | 10-25 | 25-40 | 40-55 | 55-70 | 70-85 | 85-100 |
| Number of Students | 2 | 3 | 7 | 6 | 6 | 6 |
Here we can choose either a = 47.5 or 62.5. Now, let first step is to choose a = 47.5.
The second step is to find the difference (di) between each xi and the assumed mean “a”.
The third step is to find the product of di with the corresponding fi.
| Class Interval | Number of students (fi) | Class Mark (xi) | di = xi – 47.5 | fidi |
| 10-25 | 2 | 17.5 | -30 | -60 |
| 25-40 | 3 | 32.5 | -15 | -45 |
| 40-55 | 7 | 47.5 | 0 | 0 |
| 55-70 | 6 | 62.5 | 15 | 90 |
| 70-85 | 6 | 77.5 | 30 | 180 |
| 85-100 | 6 | 92.5 | 45 | 270 |
| Total | Σfi = 30 | Σfidi = 435. |
Hence, the mean of the deviations obtained is,
\(\begin{array}{l}\bar{d}=\frac{\sum f_{i}d_{i}}{\sum f_{i}}\end{array} \)
As, the relationship between \(\begin{array}{l}\bar{d}\end{array} \) and \(\begin{array}{l}\bar{x}\end{array} \) is \(\begin{array}{l}\bar{x}\end{array} \) = a + \(\begin{array}{l}\bar{d}\end{array} \)
We can write,
\(\begin{array}{l}\bar{x}=a+\frac{\sum f_{i}d_{i}}{\sum f_{i}}\end{array} \)
Now, substitute the values of a, Σfi , and Σfidi in the above formula to get the mean,
Therefore, x̄ = 47.5 + (435/30)
x̄ = 47.5 + 14.5
x̄ = 62.
Therefore, the mean of the marks obtained by the class 10 students is 62.
Assumed Mean Method Solved Examples
Example.1 : Find mean using assumed mean method for following data:
| Class Interval | 10 – 20 | 20 – 30 | 30 – 40 | 40 – 50 | 50 – 60 | 60 – 70 |
|---|---|---|---|---|---|---|
| Frequency (f) | 3 | 7 | 12 | 15 | 8 | 5 |
Solution:
Step 1: Calculate mid-point for each class-interval:
| Class Interval | Midpoint (xi) | Frequency (f) |
| 10 – 20 | 15 | 3 |
| 20 – 30 | 25 | 7 |
| 30 – 40 | 35 | 12 |
| 40 – 50 | 45 | 15 |
| 50 – 60 | 55 | 8 |
| 60 – 70 | 65 | 5 |
Step 2: Select a midpoint close to the center of the data. Let’s assume a = 45.
Step 3: For each class interval, calculate the deviation from the assumed mean using di = (xi – a) for each i.
Step 4: Multiply each deviation by the corresponding frequency.
| Class Interval | Midpoint (xi) | Frequency (fi) | Deviation (di) | fi × di |
|---|---|---|---|---|
| 10 – 20 | 15 | 3 | 15 – 45 = -30 | 3 × (-30) = -90 |
| 20 – 30 | 25 | 7 | 25 – 45 = -20 | 7 × (20) = -140 |
| 30 – 40 | 35 | 12 | 35 – 45 = -10 | 12 × (-10) = -120 |
| 40 – 50 | 45 | 15 | 45 – 45 = 0 | 15 × 0 =0 |
| 50 – 60 | 55 | 8 | 55 – 45 = 10 | 8 × 10 =80 |
| 60 – 70 | 65 | 5 | 65 – 45 = 20 | 5 × 20 = 100 |
| ∑ƒi = 50 | ∑ƒidi = -170 |
Step 5: Calculate the mean using formula: x̄ = a + ∑ ƒidi/∑ƒi
x̄ = 45 + (-170)/50
⇒ x̄ = 45 – 3.4 = 41.6
Thus, mean of given dataset is 41.6.
Example 2: The following table gives information about the marks obtained by 110 students in an examination.
| Class | 0-10 | 10-20 | 20-30 | 30-40 | 40-50 |
| Frequency | 12 | 28 | 32 | 25 | 13 |
Find the mean marks of the students using the assumed mean method.
Solution:
| Class (CI) | Frequency (fi) | Class mark (xi) | di = xi – a | fidi |
| 0-10 | 12 | 5 | 5 – 25 = – 20 | -240 |
| 10-20 | 28 | 15 | 15 – 25 = – 10 | -280 |
| 20-30 | 32 | 25 = a | 25-25 = 0 | 0 |
| 30-40 | 25 | 35 | 35-25 = 10 | 250 |
| 40-50 | 13 | 45 | 45-25 = 20 | 260 |
| Total | Σfi =110 | Σfidi = -10 |
Assumed mean = a = 25
Mean of the data: x̄ = a + ∑ ƒidi/∑ƒi
= 25 + (-10/ 110)
= 25 -( 1/11)
= (275-1)/11
= 274/11
=24.9
Hence, the mean marks of the students are 24.9.
Example 3: The table below gives information about the percentage distribution of female employees in a company of various branches and a number of departments.
| Percentage of female employees | Number of departments |
| 5-15 | 1 |
| 15-25 | 2 |
| 25-35 | 4 |
| 35-45 | 4 |
| 45-55 | 7 |
| 55-65 | 11 |
| 65-75 | 6 |
Find the mean percentage of female employees by the assumed mean method.
Solution:
| Percentage of female employees (CI) | Number of departments (fi) | Class mark (xi) | di = xi – a | fidi |
| 5-15 | 1 | 10 | -30 | -30 |
| 15-25 | 2 | 20 | -20 | -40 |
| 25-35 | 4 | 30 | -10 | -40 |
| 35-45 | 4 | 40 = a | 0 | 0 |
| 45-55 | 7 | 50 | 10 | 70 |
| 55-65 | 11 | 60 | 20 | 220 |
| 65-75 | 6 | 70 | 30 | 180 |
| Total | Σfi =35 | Σfidi = 360 |
Assumed mean = a = 40
Mean = a+ (Σfidi /Σfi)
=40+ (360/35)
= 40+(72/7)
= 40 + 10.28
=50.28 (approx)
Hence, the mean percentage of female employees is 50.28.
Example 4: The following table gives information about the marks obtained by 120 students in an examination.
| Class | 0-10 | 10-20 | 20-30 | 30-40 | 40-50 |
|---|---|---|---|---|---|
| Frequency | 14 | 30 | 34 | 27 | 15 |
Find the mean marks of the students using the assumed mean method.
Solution:
Let assume mean of the given data be 25 i.e., a = 25.
| Class | Frequency | Class mark (xi) | di = (xi – a) | ƒidi |
|---|---|---|---|---|
| 0-10 | 14 | 5 | 5 – 25 = -20 | -280 |
| 10-20 | 30 | 15 | 15 – 25 = -10 | -300 |
| 20-30 | 34 | 25 = a | 25 – 25 = 0 | 0 |
| 30-40 | 27 | 35 | 35 – 25 = 10 | 270 |
| 40-50 | 15 | 45 | 45 – 25 = 20 | 300 |
| ∑ƒi = 120 | ∑ƒidi = -10 |
The formula for mean,
x̄ = a + ∑ƒidi/∑ƒi
⇒ x̄ = 25 + (-10/120)
⇒ x̄ = 25 – 1/12
⇒ x̄ = (300-1)/12
⇒ x̄ = 299/12
⇒ x̄ = 24.91
Therefore, the mean marks of the students are 24.91 .
Example 5: A group of students surveyed as a part of their environmental awareness
| Number of plants | 0 – 2 | 2 – 4 | 4 – 6 | 6 – 8 | 8 – 10 | 10 – 12 | 12 – 14 |
| Number of houses | 1 | 2 | 2 | 4 | 3 | 2 | 6 |
The program in which they collected the following data of plants in 20 homes in a area. Find the mean number of plants per household using the assumed mean method.
Solution:
| No. of Plants | No. of houses/ Frequency (ƒi) | Class mark (xi) | di = (xi – a) | ƒidi |
|---|---|---|---|---|
| 0-2 | 1 | 1 | -6 | -6 |
| 2-4 | 2 | 3 | -4 | -8 |
| 4-6 | 2 | 5 | -2 | -4 |
| 6-8 | 4 | 7 = a | 0 | 0 |
| 8-10 | 3 | 9 | 2 | 6 |
| 10-12 | 2 | 11 | 4 | 8 |
| 12-14 | 6 | 13 | 6 | 36 |
| ∑ ƒi = 20 | ∑ƒidi = 32 |
x̄ = a+ (Σƒidi /Σƒi)
⇒ x̄ = 7+(32/20)
⇒ x̄ = 7+(8/5)
⇒ x̄ = 8.6
∴ Mean number of plants per household = 8.6
Practice Questions on Assumed Mean Method
Problem 1: The following table contains information on the grades received by 160 students in an examination. Find the mean marks of the students using the assumed mean method.
| Class | 0-20 | 20-40 | 40-60 | 60-80 | 80-100 |
|---|---|---|---|---|---|
| Frequency | 20 | 30 | 45 | 35 | 30 |
Problem 2: Find the mean of the following data using the assumed mean method formula.
| Marks | Number of students |
|---|---|
| 0-10 | 5 |
| 10-20 | 3 |
| 20-30 | 4 |
| 30-40 | 3 |
| 40-50 | 3 |
| 50-60 | 4 |
| 60-70 | 7 |
| 70-80 | 9 |
| 80-90 | 7 |
Problem 3: Find the arithmetic mean using the assumed-mean method:
| Class interval | 100-120 | 120-140 | 140-160 | 160-180 | 180-200 |
|---|---|---|---|---|---|
| Frequency | 20 | 30 | 15 | 10 | 5 |
Problem 4: The following table contains, distribution of daily wages of 60 worker of a factory.
| Daily Wages | 100-120 | 120-140 | 140-160 | 160-180 | 180-200 |
|---|---|---|---|---|---|
| Number of Workers | 15 | 12 | 10 | 13 | 10 |
Find the mean daily wages of the workers of the factory by using an appropriate method.
Problem 5: Find the mean of the following data using assumed mean method.
| Class Interval | Frequency |
|---|---|
| 0-10 | 8 |
| 10-20 | 12 |
| 20-30 | 10 |
| 30-40 | 12 |
Problem 6: Find the mean of the following data by assumed mean method.
| CI | 20 – 60 | 60 – 100 | 100 – 150 | 150 – 250 | 250 – 350 | 350 – 4507 |
| f | 7 | 5 | 16 | 12 | 2 | 3 |
Problem 7: The given distribution shows the number of runs scored by some top batsmen of the world in one-day international cricket matches.
| Runs scored | Number of batsmen |
| 3000 – 4000 | 4 |
| 4000 – 5000 | 18 |
| 5000 – 6000 | 9 |
| 6000 – 7000 | 7 |
| 7000 – 8000 | 6 |
| 8000 – 9000 | 3 |
| 9000 – 10000 | 1 |
| 10000 – 11000 | 1 |
Find the mean of the data.
Problem.8: Find the mean of the following data using the assumed mean method formula.
| Marks | Number of students |
| 0 – 10 | 5 |
| 10 – 20 | 3 |
| 20 – 30 | 4 |
| 30 – 40 | 3 |
| 40 – 50 | 3 |
| 50 – 60 | 4 |
| 60 – 70 | 7 |
| 70 – 80 | 9 |
| 80 – 90 | 7 |
| 90 – 100 | 8 |
FAQS
Q1
What are the three methods used to find the mean of grouped data?
The three methods used to find the mean of the grouped data are:
Direct method
Assumed mean method
Step deviation method
Q2
What is meant by class-mark?
The classmark is also called the midpoint of the class intervals, which can be found by taking the average of its upper-class limit and lower-class limit.
Class Mark = (upper class limit + lower class limit)/2
Q3
Can we get the same mean value for both the grouped and ungrouped data?
The mean value of grouped data slightly differs from the ungrouped data because of the midpoint assumption.
Q4
How to choose the value of “a” in the assumed mean method?
In the assumed mean method, the value of “a” can be chosen which lies in the centre of x1, x2, . . ., xn.
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