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| 93a6d8683f | |||
| bd93399700 | |||
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| 16327adb58 |
3
.gitignore
vendored
3
.gitignore
vendored
@@ -1,2 +1,5 @@
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*~
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*.log
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flycheck_*.py
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\#*#
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test.pdf
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@@ -1,3 +1,5 @@
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# ad-calc
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Tools to help calculating values for Axiomatic Design analysis
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Tools to help calculating values for Axiomatic Design analysis
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`infocalc.py` calculates information content based upon a csv file or statistical parameters and upper/lower limits
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15
infocalc.py
15
infocalc.py
@@ -11,7 +11,8 @@ from pathlib import PurePath##https://docs.python.org/3/library/pathlib.html#mod
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import numpy as np
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import matplotlib
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import matplotlib.pyplot as plt
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from scipy.stats import norm
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from scipy.stats import norm,t
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import scipy.stats
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import pandas as pd
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#Main program loop
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@@ -96,25 +97,23 @@ if args.mode == "DATA":
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data = np.array(pd.read_csv(inpath)[args.column])
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mean = data.mean()
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stddev = data.std(ddof=1)
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# Delta Degrees of Freedom: ddof=0 for population, ddof=1 for sample std dev
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samplesize = len(data)
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elif args.mode == "SIM":
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mean = args.mean
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stddev = args.stddev
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samplesize = args.samplesize
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# time to deal with the bounds
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df = samplesize - 1
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# Delta Degrees of Freedom: ddof=0 for population, ddof=1 for sample std dev
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prob = 0
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if args.upperbound and args.lowerbound:
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prob = norm.cdf(args.upperbound, mean, stddev) - norm.cdf(args.lowerbound, mean, stddev)
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prob = t.cdf(df,args.upperbound, mean, stddev) - t.cdf(df,args.lowerbound, mean, stddev)
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elif args.upperbound:
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prob = norm.cdf(args.upperbound, mean, stddev)
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prob = t.cdf(df,args.upperbound, mean, stddev)
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elif args.lowerbound:
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prob = 1 - norm.cdf(args.lowerbound, mean, stddev)
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prob = 1 - t.cdf(df,args.lowerbound, mean, stddev)
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else:
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prob = 1# no bounds set!
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##TODO!!!!
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#print("probability: %f", prob)
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info = -np.emath.log2(prob)
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#print("information content: %f bits", info)
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