Title :
Optimizing Energy Consumption in Terahertz Band Nanonetworks
Author :
Mohrehkesh, Shahram ; Weigle, Michele C.
Author_Institution :
Dept. of Comput. Sci., Old Dominion Univ., Norfolk, VA, USA
Abstract :
In this paper, we develop a technique for achieving the maximum utilization of harvested energy in perpetual wireless nanonetworks, where nanonodes communicate in the THz frequency band. Because of their nano-scale sizes, nanonodes cannot store large amounts of energy. Compounding the problem, the arrival of energy is not constant, but follows a stochastic process. Therefore, an optimum design for the consumption of this limited amount of energy is required. We model the problem as a Markov decision process, where we include the energy for both reception and transmission of packets. We analyze the performance of the energy harvesting and consumption processes for very low energy harvesting rates and small energy storage capacity. We compare the performance of the optimal policy with intuitive energy consumption policies. Next, since solving an optimized problem of this sort is too compute-intensive for nanonodes with limited resources, we propose a light-weight heuristic method that can perform close to optimal. Simulation results show that our heuristic model and the optimal model can serve as a framework for the design of nanonodes that operate in low rate stochastic energy harvesting conditions with limited energy storage.
Keywords :
Markov processes; energy consumption; energy harvesting; energy storage; nanotechnology; Markov decision process; THz frequency band; consumption processes; energy consumption; energy harvesting; energy storage capacity; harvested energy utilization; heuristic model; light-weight heuristic method; nanonodes; perpetual wireless nanonetworks; stochastic process; terahertz band nanonetworks; Energy consumption; Energy harvesting; Energy states; Energy storage; Molecular communication; Nanobioscience; Nanoscale devices; Stochastic processes; Nanonetworks; energy consumption; energy harvesting; nanonetworks; optimization; terahertz;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2014.2367668