Practice Problems: Measures of Variability - Answer

Bailey has been playing golf on the weekends for the past three years. Recently, she started keeping track of her recorded scores. Her scores for June and July at her favorite 9-hole (par 36) golf course are provided below.

X X²

56 3136

49 2401

45 2025

42 1764

42 1764

41 1681

41 1681

41 1681

41 1681

40 1600

40 1600

39 1521

39 1521

38 1444

38 1444

36 1296

36 1296

34 1156

738 30692

Standard Deviation

S = 18 (30692) - 738²

18 (18-1)

S = 5.0526638

Variance

The variance is 25.529412. The standard deviation is 5.0526638. The variance is the square of the standard deviation. 5.0526638 squared is equal to 25.529412.

S² = 25.529412

Range

The range is 22. The high score is 56; the low score is 34. 56 - 34 = 22.

Range = 22

What does this information tell you about the variability in Bailey's golf game?

Bailey's golf game appears to be fairly consistent (at least by my standards in relation to my golf game). She is somewhat consistently within 5 strokes of her mean performance.

Back to Practice Problems: Measures of Variability

X	X²
56	3136
49	2401
45	2025
42	1764
42	1764
41	1681
41	1681
41	1681
41	1681
40	1600
40	1600
39	1521
39	1521
38	1444
38	1444
36	1296
36	1296
34	1156
738	30692