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#!/usr/bin/env julia | |
# straight translation of some python code. | |
# python code (using pypy) takes less than 1 second/iteration (core i7 imac) | |
# After removing globals and typing code, julia code takes same time as pypy code. | |
# Example pairs.csv file: https://dl.dropboxusercontent.com/u/68676/pairs.zip | |
function cdf(x::Float64) | |
s = x | |
t = 0.0 | |
b = x | |
q = x*x | |
i = 1.0 | |
while s != t | |
t = s | |
i += 2.0 | |
b *= q / i | |
s = t + b | |
end | |
return .5+s*exp(-.5*q-.91893853320467274178) | |
end | |
function pdf(x::Float64) | |
return exp(-x*x/2.0)/sqrt(2.0*pi) | |
end | |
function update(iters::Int64, pair_comparisons::Array{(Int64,Int64),1}, mu::Array{Float64,1}, sigma2::Array{Float64,1}, initial_sigma::Float64) | |
beta = initial_sigma/2.0 | |
gamma = initial_sigma/300.0 # 30 is a better value than 300 | |
epsilon = 0.08 | |
beta2 = beta*beta | |
gamma2 = gamma*gamma | |
for iter in 1:iters | |
println("Doing iter:", iter) | |
for (winner_name, loser_name) in pair_comparisons | |
# print "winner:", winner_name | |
muw, sigmaw2 = mu[winner_name], sigma2[winner_name] | |
mul, sigmal2 = mu[loser_name ], sigma2[loser_name ] | |
# calculate new stats for these two competitors | |
c = (2.0*beta2 + sigmaw2 + sigmal2) ^ (-0.5) | |
t = (muw - mul) * c | |
e = epsilon * c | |
Vwinte = pdf(t - e) / cdf(t - e) | |
# Vwinte = norm.pdf(t - e) / norm.cdf(t - e) | |
Wwintecc = (Vwinte * (Vwinte + t - e)) * (c*c) | |
sigmaw2_new = (sigmaw2 * (1.0 - sigmaw2 * Wwintecc ) + gamma2) | |
sigmal2_new = (sigmal2 * (1.0 - sigmal2 * Wwintecc ) + gamma2) | |
muw_new = (muw + sigmaw2 * c * Vwinte) | |
mul_new = (mul - sigmal2 * c * Vwinte) | |
# update the stats for these two competitors | |
mu[winner_name] = muw_new | |
mu[loser_name ] = mul_new | |
sigma2[winner_name] = sigmaw2_new | |
sigma2[loser_name ] = sigmal2_new | |
end # pair comparisons | |
end # iters | |
end | |
function get_sorted_competitors(mu::Array{Float64,1}, sigma2::Array{Float64,1}) | |
out = [(mu-3.0*(sigma2 ^ 0.5), name, mu, sigma2 ^ 0.5) for (name, (mu, sigma2)) in enumerate(zip(mu, sigma2))] | |
sort!(out, rev=true) | |
return out | |
end | |
function main() | |
initial_mu = 200.0 | |
initial_sigma = initial_mu/5.0 | |
sigma_factor = 3.0 | |
initial_sigma = initial_mu / float(sigma_factor) | |
tic() | |
all_data = readcsv("pairs.csv") | |
toc() | |
pair_comparisons = (Int64,Int64)[] | |
maxnum = 0 | |
for i in 2:size(all_data, 1) | |
A = int(all_data[i, 1]) | |
B = int(all_data[i, 2]) | |
if A > maxnum | |
maxnum = A | |
end | |
if B > maxnum | |
maxnum = B | |
end | |
push!(pair_comparisons, (A, B)) | |
end | |
# Create initial stats | |
mu = ones(maxnum) * initial_mu | |
sigma2 = ones(maxnum) * initial_sigma ^ 2 | |
# Just checking types | |
println(typeof(mu)) | |
println(typeof(pair_comparisons)) | |
# Do the actual work | |
tic() | |
update(50, pair_comparisons, mu, sigma2, initial_sigma) | |
toc() | |
#Profile.print() | |
# Get the list of competitors in sorted order | |
out = get_sorted_competitors(mu, sigma2) | |
# Pull out a test subject who should be near the top of the rankings | |
for (i, (mulower, name, mu, sigma2)) in enumerate(out) | |
if name == 3672 | |
println("FOUND:", i) | |
end | |
end | |
end | |
main() |
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