ottertune/server/analysis/ddpg/ou_process.py

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#
# OtterTune - ou_process.py
#
# Copyright (c) 2017-18, Carnegie Mellon University Database Group
#
# from: https://github.com/KqSMea8/CDBTune
# Zhang, Ji, et al. "An end-to-end automatic cloud database tuning system using
# deep reinforcement learning." Proceedings of the 2019 International Conference
# on Management of Data. ACM, 2019
import numpy as np
class OUProcess(object):
def __init__(self, n_actions, theta=0.15, mu=0, sigma=0.1, ):
self.n_actions = n_actions
self.theta = theta
self.mu = mu
self.sigma = sigma
self.current_value = np.ones(self.n_actions) * self.mu
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def reset(self, sigma=0, theta=0):
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self.current_value = np.ones(self.n_actions) * self.mu
if sigma != 0:
self.sigma = sigma
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if theta != 0:
self.theta = theta
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def noise(self):
x = self.current_value
dx = self.theta * (self.mu - x) + self.sigma * np.random.randn(len(x))
self.current_value = x + dx
return self.current_value