Joint Classification and Regression Deep Learning Model for Universal Phase-based Ranging in Multiple Environments
Pantelis Stefanakis, Ming Shen

TL;DR
This paper introduces a neural network-based approach for phase-based ranging that accurately estimates distances across various environments, outperforming traditional methods and demonstrating robustness and potential as a universal solution.
Contribution
A novel 2NN neural network model is proposed for environment classification and distance prediction, significantly improving accuracy in diverse settings.
Findings
2NN model outperforms non-NN methods in RMSE and maximum error
Filtered models show environment misclassification impacts accuracy
Neural networks provide robust, high-accuracy ranging across environments
Abstract
Phase-Based Ranging (PBR) offers several advantages for estimating distances between wirelessly connected devices, including high accuracy over large distances and the removal of the need for antenna arrays at each transceiver. This study investigates the use of Neural Network (NN)-based models for accurate PBR in three distinct environments: Openfield, Office, and Near Buildings, comparing their performance with established non-NN methods. A novel 2NN Model is proposed, integrating two neural networks: one to classify the environment and another to predict distances. Performance was evaluated over 20 trials for each method and dataset using root mean square error (RMSE) and maximum prediction error. Results show that the 2NN Model consistently outperformed other methods, frequently ranking among the top methods in minimizing both RMSE and maximum error. In addition, the 2NN Model…
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Taxonomy
TopicsIndoor and Outdoor Localization Technologies · Millimeter-Wave Propagation and Modeling · Advanced MIMO Systems Optimization
