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SDP Relaxation with Randomized Rounding for Energy Disaggregation

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Title: SDP Relaxation with Randomized Rounding for Energy Disaggregation
Authors: Shaloudegi, K
Gyorgy, A
Szepesvari, C
Xu, W
Item Type: Conference Paper
Abstract: We develop a scalable, computationally efficient method for the task of energy disaggregation for home appliance monitoring. In this problem the goal is to estimate the energy consumption of each appliance over time based on the total energy-consumption signal of a household. The current state of the art is to model the problem as inference in factorial HMMs, and use quadratic programming to find an approximate solution to the resulting quadratic integer program. Here we take a more principled approach, better suited to integer programming problems, and find an approximate optimum by combining convex semidefinite relaxations randomized rounding, as well as a scalable ADMM method that exploits the special structure of the resulting semidefinite program. Simulation results both in synthetic and real-world datasets demonstrate the superiority of our method.
Issue Date: 5-Dec-2016
Date of Acceptance: 12-Aug-2016
URI: http://hdl.handle.net/10044/1/42314
Publisher: Neutral Information Processing Systems Foundation, Inc.
Copyright Statement: © 2016 The Authors
Conference Name: The Thirtieth Annual Conference on Neural Information Processing Systems (NIPS)
Publication Status: Accepted
Start Date: 2016-12-05
Finish Date: 2016-12-10
Conference Place: Barcelona
Open Access location: https://arxiv.org/pdf/1610.09491v1
Appears in Collections:Electrical and Electronic Engineering
Faculty of Engineering