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The Monthly Newsletter of IEEE Vehicular Technology Society—December 2025

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From the IEEE Transactions on Vehicular Technology
Vehicular Channel Estimation with Liquid Neural Networks
Ana Flávia dos Reis, Pedro Márcio Raposo Pereira, Felipe A. P. de Figueiredo, and Rausley A. A. de Souza

Full title—Lightweight and High-Performance Vehicular Channel Estimation with Liquid Neural Networks

Vehicular communication demands precise and efficient channel estimation for robust connectivity. While deep learning techniques, particularly long short-term memory (LSTM) networks, have recently improved channel estimation results by effectively capturing temporal dependencies, their high computational demands pose significant challenges, especially in resource-constrained environments such as Internet of Things devices.

This paper introduces a novel channel estimation approach using liquid neural networks to address these limitations. It specifically focuses on closed-form continuous-depth (CfC) networks optimized through a neural architecture search process to balance performance and complexity. The proposed CfC-based estimator enhances channel tracking accuracy and reduces computational overhead compared to traditional LSTM-based methods.

Full Article: IEEE Transactions on Vehicular Technology, Early Access

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Mobile Radio
ETSI Report on ISAC Use Cases for 6G
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From the IEEE Open Journal of Vehicular Technology
Controlling Autonomous UAVs
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From the IEEE Transactions on Vehicular Technology
Vehicular Channel Estimation with Liquid Neural Networks
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F. Richard Yu

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