Homework Answers
1)
2)
Temperature anomalies average = 5.86/136
= 0.043088235294118
Standard deviation 
= 0.31472389947
Population size n = 136
Lowest value = -0.5
Highest value = 0.97
range = 1.47
3)
1st decade:
Temperature anomalies average = -0.196
Standard deviation = 0.0764780287984
2nd decade:
Temperature anomalies average = -0.232
Standard deviation = 0.16504544828622
3rd decade:
Temperature anomalies average = -0.286
Standard deviation = 0.14758801517136
4th decade:
Temperature anomalies average = -0.23
Standard deviation = 0.16179548132682
5th decade:
Temperature anomalies average = -0.103
Standard deviation = 0.11757267256184
6th decade:
Temperature anomalies average = -0.061
Standard deviation = 0.13633700076567
7th decade:
Temperature anomalies average = 0.089
Standard deviation = 0.12087183294713
8th decade:
Temperature anomalies average = -0.082
Standard deviation = 0.15725421739619
9th decade:
Temperature anomalies average = 0.004
Standard deviation = 0.12258330500793
10th decade:
Temperature anomalies average = 0.066
Standard deviation = 0.14668181739928
11th decade:
Temperature anomalies average = 0.221
Standard deviation = 0.11892574714221
12th decade:
Temperature anomalies average = 0.348
Standard deviation = 0.16260381299342
13th decade:
Temperature anomalies average = 0.605
Standard deviation = 0.14523926619356
4)
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thanks!
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Pear
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