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प्रश्न
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Yoga is an ancient practice which is a form of meditation and exercise. By practising yoga, we not even make our body healthy but also achieve inner peace and calmness. The International Yoga Day is celebrated on the 21st of June every year since 2015.
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| Age Group | 15 – 25 | 25 – 35 | 35 – 45 | 45 –55 | 55 –65 | 65 –75 | 75 – 85 |
| Number of People |
8 | 10 | 15 | 25 | 40 | 24 | 18 |
Based on the above, find the following:
- Find the median age of people enrolled for the camp.
- If x more people of the age group 65 – 75 had enrolled for the camp, the mean age would have been 58. Find the value of x.
उत्तर
a.
| Age Group | No. of People (f) |
c.f. |
| 15 – 25 | 8 | 8 |
| 25 – 35 | 10 | 18 |
| 35 – 45 | 15 | 33 |
| 45 – 55 | 25 | 58 |
| 55 – 65 | 40 | 98 |
| 65 – 75 | 24 | 122 |
| 75 – 85 | 18 | 140 |
| `sum"f"` = 140 |
Here, N = `sum"f"` = 140
So, `"N"/2` = 70
Therefore, median class = 55 – 65
Lower limit of median class, l = 55
Cass size, h = 10
Cumulative frequency of preceding class, c.f. = 58
Frequency of median class, f = 40
∴ Median = `"l" + (("N"/2 - "c.f."))/"f" xx "h"`
= `55 + ((70 - 58)/40) xx 10`
= `55 + 12/4`
= 55 + 3
= 58
Thus, the median age of people enrolled for the camp is 58.
b.
| Age Group |
Mid point (xi) |
Frequency (fi) |
fixi |
| 15 – 25 | 20 | 8 | 160 |
| 25 – 35 | 30 | 10 | 300 |
| 35 – 45 | 40 | 15 | 600 |
| 45 – 55 | 50 | 25 | 1250 |
| 55 – 65 | 60 | 40 | 2400 |
| 65 – 75 | 70 | 24 + x | 1680 + 70x |
| 75 – 85 | 80 | 18 | 1440 |
| `sum"f"_"i"` = 140 + x | `sum"f"_"i""x"_"i"` = 7830 + 70x |
Mean = `(sum"f"_"i""x"_"i")/(sum"f"_"i")`
⇒ 58 = `(7830 + 70"x")/(140 + "x")`
⇒ 58(140 + x) = 7830 + 70x
⇒ 8120 + 58x = 7830 + 70x
⇒ 12x = 290
⇒ x = 24.16 ∼ 24 ...(Approx)
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संबंधित प्रश्न
For a certain frequency distribution, the values of Assumed mean (A) = 1300, `sumf_id_i` = 900 and `sumfi` = 100. Find the value of mean (`barx`) .
The following is the distribution of the size of certain farms from a taluka (tehasil):
| Size of Farms (in acres) |
Number of Farms |
| 5 – 15 | 7 |
| 15 – 25 | 12 |
| 25 – 35 | 17 |
| 35 – 45 | 25 |
| 45 – 55 | 31 |
| 55 – 65 | 5 |
| 65 – 75 | 3 |
Find median size of farms.
The following table gives the frequency distribution of married women by age at marriage:
| Age (in years) | Frequency |
| 15-19 | 53 |
| 20-24 | 140 |
| 25-29 | 98 |
| 30-34 | 32 |
| 35-39 | 12 |
| 40-44 | 9 |
| 45-49 | 5 |
| 50-54 | 3 |
| 55-59 | 3 |
| 60 and above | 2 |
Calculate the median and interpret the results.
Compute the median for the following data:
| Marks | No. of students |
| Less than 10 | 0 |
| Less than 30 | 10 |
| Less than 50 | 25 |
| Less than 70 | 43 |
| Less than 90 | 65 |
| Less than 110 | 87 |
| Less than 130 | 96 |
| Less than 150 | 100 |
The marks obtained by 19 students of a class are given below:
27, 36, 22, 31, 25, 26, 33, 24, 37, 32, 29, 28, 36, 35, 27, 26, 32, 35 and 28.
Find:
- Median
- Lower quartile
- Upper quartile
- Inter-quartile range
Calculate the median from the following data:
| Height(in cm) | 135 - 140 | 140 - 145 | 145 - 150 | 150 - 155 | 155 - 160 | 160 - 165 | 165 - 170 | 170 - 175 |
| Frequency | 6 | 10 | 18 | 22 | 20 | 15 | 6 | 3 |
Find a certain frequency distribution, the value of mean and mode are 54.6 and 54 respectively. Find the value of median.
Find the median of the following distribution:
| Marks | 0 – 10 | 10 –20 | 20 – 30 | 30 – 40 | 40 – 50 | 50 – 60 |
| Number of students | 5 | 8 | 20 | 15 | 7 | 5 |
Find the median of the following frequency distribution:
| Class: | 0 – 20 | 20 – 40 | 40 – 60 | 60 – 80 | 80 – 100 |
| Frequency: | 6 | 8 | 5 | 9 | 7 |
Consider the following frequency distribution:
| Class | 0 – 6 | 6 – 12 | 12 – 18 | 18 – 24 | 24 – 30 |
| Frequency | 12 | 10 | 15 | 8 | 11 |
The median class is:
