Balancing Long Lifetime and Satisfying Fairness in WBAN Using a Constrained Markov Decision Process
Author(s) -
Yingqi Yin,
Fengye Hu,
Ling Cen,
Yu Du,
Lu Wang
Publication year - 2015
Publication title -
international journal of antennas and propagation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.282
H-Index - 37
eISSN - 1687-5877
pISSN - 1687-5869
DOI - 10.1155/2015/657854
Subject(s) - computer science , markov decision process , body area network , fading , scheduling (production processes) , wireless sensor network , markov process , overhead (engineering) , computer network , partially observable markov decision process , wireless , wireless network , mathematical optimization , distributed computing , channel (broadcasting) , markov chain , markov model , telecommunications , statistics , mathematics , machine learning , operating system
As an important part of the Internet of Things (IOT) and the special case of device-to-device (D2D) communication, wireless body area network (WBAN) gradually becomes the focus of attention. Since WBAN is a body-centered network, the energy of sensor nodes is strictly restrained since they are supplied by battery with limited power. In each data collection, only one sensor node is scheduled to transmit its measurements directly to the access point (AP) through the fading channel. We formulate the problem of dynamically choosing which sensor should communicate with the AP to maximize network lifetime under the constraint of fairness as a constrained markov decision process (CMDP). The optimal lifetime and optimal policy are obtained by Bellman equation in dynamic programming. The proposed algorithm defines the limiting performance in WBAN lifetime under different degrees of fairness constraints. Due to the defect of large implementation overhead in acquiring global channel state information (CSI), we put forward a distributed scheduling algorithm that adopts local CSI, which saves the network overhead and simplifies the algorithm. It was demonstrated via simulation that this scheduling algorithm can allocate time slot reasonably under different channel conditions to balance the performances of network lifetime and fairness
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