NTRES 101 Biological Statistics Lab Salamanders - PowerPoint PPT Presentation

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NTRES 101 Biological Statistics Lab Salamanders

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... Statistics Lab. Salamanders. Topics: Random Sampling ... NTRES 101 Salamander Statistics Workshop. Scientific Method. Make observations. Form a hypothesis ... – PowerPoint PPT presentation

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Title: NTRES 101 Biological Statistics Lab Salamanders


1
NTRES 101Biological Statistics LabSalamanders 
  • Topics
  • Random Sampling
  • Data Visualization
  • Summary Statistics
  • Statistical Analysis

2
Website
  • http//www.dnr.cornell.edu/pjs31/quantitativepopul
    ation.htm
  • NTRES 101 Salamander Statistics Workshop

3
Scientific Method
  • Make observations
  • Form a hypothesis
  • Make predictions
  • Test the hypothesis
  • Build understanding
  • Form judgment
  • Take action

Shoals Marine Laboratory
4
Statistical Methods
  • Provide a logical objective structure for
    addressing questions that are inherently
    uncertain.

5
Splus
  • A statistical computing environment
  • An Introduction to S and Splus
  • Spector, 1994
  • Modern Applied Statistics with S, 4th Ed
  • Venables and Ripley, 2002

6
(No Transcript)
7
Leaves Data
  • leaves.txt
  • 132 points, leaf length mm
  • 61
  • 75
  • 79
  • 68
  • 79
  • 66
  • 73
  • 52
  • 72

8
Histogram (number of leaves per 10 mm category)
9
Population Mean
10
Population Variance
11
Population Standard Deviation
12
Population Parameters
  • Mean
  • Variance
  • Standard deviation

13
Normal Distribution
14
Normal Curve (Using Population Mean and
Variance)
15
A Random Sample
  • A subset of the population taken in such a way
    that each sample unit was equally likely to get
    selected
  • Population
  • All leaves
  • Sample unit
  • One leaf
  • Random Sample
  • Set of leaves randomly chosen

16
Key Statistics
  • Mean
  • Variance
  • Standard deviation
  • Median
  • Mode
  • Quantiles

17
Mean
Population
Sample
18
Variance
Population
Sample
19
Standard Deviation
Population
Sample
20
Population ? Sample
  • my.samplelt-sample(leaves,50)
  • mean(my.sample)
  • 68.78
  • stdev(my.sample)
  • 13.202
  • median(my.sample)
  • 70
  • mean(leaves)
  • 67.977
  • stdev(leaves)
  • 13.666
  • median(leaves)
  • 68

21
Compare Variances
  • var(leaves)
  • 1 188.2056
  • Population variance
  • sum(((leaves-mean(leaves))2))/length(leaves)
  • 1 186.7798
  • Sample variance
  • sum(((leaves-mean(leaves))2))/(length(leaves)-1)
  • 1 188.2056

22
Properties of Sample
  • Sample Mean
  • Sample Variance
  • Sample Standard Deviation
  • Variation of an observation
  • Standard Error
  • Variation of the mean

23
Distribution of Leaf Sample Means
24
Normal Distribution
x lt- seq(-3,3,by0.2) y lt- dnorm(x)
plot(x,y,typel)
25
Normal Distribution
  • Good for characterizing
  • Sums
  • Averages
  • Proportions

26
Trout Lengths (mm)
27
Two Measures of Variation
28
Trout 1
Trout 2
29
But is there a difference?
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