X / N =
| Data | Array |
| 45 | 56 |
| 49 | 49 |
| 42 | 45 |
| 56 | 42 |
| 41 | 42 |
| 36 | 41 |
| 34 | 41 |
| 38 | 41 |
| 41 | 41 |
| 40 | 40 |
| 42 | 40 |
| 41 | 39 |
| 39 | 39 |
| 38 | 38 |
| 40 | 38 |
| 39 | 36 |
| 36 | 36 |
| 41 | 34 |
| Mean = | X / N = | 738 / 18 = | 41.0 |
| 34 | 36 | 36 | 38 | 38 | 39 | 39 | 40 | 40 | 41 | 41 | 41 | 41 | 42 | 42 | 45 | 49 | 56 |
The median is 40.5 . The two middle scores are 40 and 41. By adding these two numbers together and dividing by 2, I find the median = 40.5. Half of the scores fall above this number and half fall below.
Mode is equal to 41. It occurs 4 times; all other scores occur only 3 times or less
Bailey's mean score for the months of June and July is 41 (only 5 above par). Over half of Bailey's games had a score above 40.5 and half had a score below 40.5. Her most common golf score was a 41.
No. The data is not skewed. The mean and median are almost identical, only a half-stroke difference.