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Published on: December 15, 2023
A Critical Review of Deep Learning-Based Multi-Sensor Fusion Techniques
Benedict Marsh1, Abdul Hamid Sadka1, Hamid Bahai2
1Institute of Digital Futures, Brunel University London, Kingston Ln, Uxbridge UB8 3PH, UK.
Abstract:
In this review, we provide a detailed coverage of multi-sensor fusion techniques that use RGB stereo images and a sparse LiDAR-projected depth map as input data to output a dense depth map prediction. We cover state-of-the-art fusion techniques which, in recent years, have been deep learning-based methods that are end-to-end trainable. We then conduct a comparative evaluation of the state-of-the-art techniques and provide a detailed analysis of their strengths and limitations as well as the applications they are best suited for.

