Toward Wireless System and Circuit Co-Design for the Internet of Self-Adaptive Things
Diptashree Das, Mohammad Abdi, Minghan Liu, Marvin Onabajo and, Francesco Restuccia

TL;DR
This paper presents a novel end-to-end verification framework for reconfigurable RFICs in IoT devices, integrating system-level wireless performance metrics with detailed circuit-level models to enable adaptive, optimized wireless communication.
Contribution
It introduces a new simulation approach combining wireless channel models with circuit non-idealities for validating and optimizing reconfigurable RFICs in dynamic environments.
Findings
LNA power consumption reduced up to 16x based on system requirements
Framework enables preemptive evaluation of circuit and system designs
Supports adaptive tuning for various communication scenarios
Abstract
The deployment of a growing number of devices in Internet of Things (IoT) networks implies that uninterrupted and seamless adaptation of wireless communication parameters (e.g., carrier frequency, bandwidth and modulation) will become essential. To utilize wireless devices capable of switching several communication parameters requires real-time self-optimizations at the radio frequency integrated circuit (RFIC) level based on system level performance metrics during the processing of complex modulated signals. This article introduces a novel design verification approach for reconfigurable RFICs based on end-to-end wireless system-level performance metrics while operating in a dynamically changing communication environment. In contrast to prior work, this framework includes two modules that simulate a wireless channel and decode waveforms. These are connected to circuit-level modules that…
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Taxonomy
TopicsModular Robots and Swarm Intelligence · Distributed systems and fault tolerance · IoT and Edge/Fog Computing
