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Created January 6, 2014 09:40
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Evaluation Metrics
# !/usr/bin/python
# -*- coding: utf-8 -*-
import math
def prf(tlist, plist, n):
'''
cal the (precision, recall, f-score)
rlist:real values list
plist:predicted values list
n:compare first n values
'''
if not (tlist and plist):
return .0, .0, .0
tset = set(tlist)
pset = set(plist[:n])
m = float(len(pset.intersection(tset)))
precision = m/len(pset)
recall = m/len(tset)
fscore = 2*precision*recall/(precision+recall+0.1)
return precision, recall, fscore
def ap(tlist, plist, n):
'''
cal the average precision
rlist:real values list
plist:predicted values list
n:compare first n values
'''
if not (tlist and plist):
return .0, .0, .0
apval = .0
last_recall = .0
for i in range(n+1)[1:]:
if i>len(plist):
break
precision, recall, _ = prf(tlist, plist, i)
apval += precision*(recall-last_recall)
last_recall = recall
return apval
def ndcg(tlist, plist, n):
'''
cal the ndcg value
rlist:real values list
plist:predicted values list
n:compare first n values
'''
if not (tlist and plist):
return .0, .0, .0
wdict = {}
for i in range(len(tlist)):
wdict[tlist[i]] = 1.0/(i+1.0)
ndcg = .0; ndcgopt = .0
for i in range(len(plist[:n])):
if plist[i] in wdict:
w = wdict[plist[i]]
else:
w = 1.0/len(tlist)
ndcg += (pow(2, w)-1)/math.log(i+2, 2)
ndcgopt += (pow(2, 1.0/(i+1.0))-1)/math.log(i+2, 2)
return ndcg / ndcgopt
if __name__ == '__main__':
tlist = [1,2,3,4, 5]
plist = [4,1, 2,5,3]
for n in [1,2,3,4, 5]:
print '\n', n
print prf(tlist, plist, n)
print ap(tlist, plist, n)
print ndcg(tlist, plist, n)
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