Optimal Power Control and Rate Adaptation for Ultra-Reliable M2M Control Applications
Bakhtiyar Farayev, Yalcin Sadi, Sinem Coleri Ergen

TL;DR
This paper addresses optimizing power control and rate adaptation in ultra-reliable M2M control applications by formulating a discrete rate model, proposing an optimal polynomial-time algorithm, and demonstrating its effectiveness through simulations.
Contribution
It introduces a novel polynomial-time algorithm for joint power control and rate adaptation under a discrete rate model, improving scheduling efficiency in ultra-reliable M2M systems.
Findings
The proposed algorithm is proven to be optimal.
Simulation results show near-optimal performance.
The discrete rate model enhances realism over Shannon's capacity model.
Abstract
The main challenge of ultra-reliable machine-to-machine (M2M) control applications is to meet the stringent timing and reliability requirements of control systems, despite the adverse properties of wireless communication for delay and packet errors, and limited battery resources of the sensor nodes. Since the transmission delay and energy consumption of a sensor node are determined by the transmission power and rate of that sensor node and the concurrently transmitting nodes, the transmission schedule should be optimized jointly with the transmission power and rate of the sensor nodes. Previously, it has been shown that the optimization of power control and rate adaptation for each node subset can be separately formulated, solved and then used in the scheduling algorithm in the optimal solution of the joint optimization of power control, rate adaptation and scheduling problem. However,…
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