Decentralized Hypothesis Testing in Energy Harvesting Wireless Sensor Networks
arXiv:1605.03316 · doi:10.1109/TSP.2017.2716909
Abstract
We consider the problem of decentralized hypothesis testing in a network of energy harvesting sensors, where sensors make noisy observations of a phenomenon and send quantized information about the phenomenon towards a fusion center. The fusion center makes a decision about the present hypothesis using the aggregate received data during a time interval. We explicitly consider a scenario under which the messages are sent through parallel access channels towards the fusion center. To avoid limited lifetime issues, we assume each sensor is capable of harvesting all the energy it needs for the communication from the environment. Each sensor has an energy buffer (battery) to save its harvested energy for use in other time intervals. Our key contribution is to formulate the problem of decentralized detection in a sensor network with energy harvesting devices. Our analysis is based on a queuing-theoretic model for the battery and we propose a sensor decision design method by considering long term energy management at the sensors. We show how the performance of the system changes for different battery capacities. We then numerically show how our findings can be used in the design of sensor networks with energy harvesting sensors.
IEEE Transactions on Signal Processing
References in corpus (4)
- Energy Harvesting Wireless Communications: A Review of Recent Advances
- Optimal Adaptive Random Multiaccess in Energy Harvesting Wireless Sensor Networks
- Optimality of Received Energy in Decision Fusion over Rayleigh Fading Diversity MAC with Non-Identical Sensors
- Optimality of Rate Balancing in Wireless Sensor Networks
Cited by in corpus (4)
- Optimal distributed composite testing in high-dimensional Gaussian models with 1-bit communication
- Adaptive Transmission for Distributed Detection in Energy Harvesting Wireless Sensor Networks
- Byzantine-Resilient Distributed Hypothesis Testing With Time-Varying Network Topology
- Optimal Local Thresholds for Distributed Detection in Energy Harvesting Wireless Sensor Networks