CVAINov 23, 2024

An adversarial feature learning based semantic communication method for Human 3D Reconstruction

arXiv:2411.15595v2h-index: 6
Originality Incremental advance
AI Analysis

This addresses bandwidth pressure for applications requiring human 3D reconstruction, but appears incremental as it builds on existing semantic communication and reconstruction techniques.

The paper tackles the problem of efficient 3D human reconstruction in bandwidth-limited scenarios by proposing an adversarial feature learning-based semantic communication method (AFLSC), which optimizes data transmission and achieves improved reconstruction quality.

With the widespread application of human body 3D reconstruction technology across various fields, the demands for data transmission and processing efficiency continue to rise, particularly in scenarios where network bandwidth is limited and low latency is required. This paper introduces an Adversarial Feature Learning-based Semantic Communication method (AFLSC) for human body 3D reconstruction, which focuses on extracting and transmitting semantic information crucial for the 3D reconstruction task, thereby significantly optimizing data flow and alleviating bandwidth pressure. At the sender's end, we propose a multitask learning-based feature extraction method to capture the spatial layout, keypoints, posture, and depth information from 2D human images, and design a semantic encoding technique based on adversarial feature learning to encode these feature information into semantic data. We also develop a dynamic compression technique to efficiently transmit this semantic data, greatly enhancing transmission efficiency and reducing latency. At the receiver's end, we design an efficient multi-level semantic feature decoding method to convert semantic data back into key image features. Finally, an improved ViT-diffusion model is employed for 3D reconstruction, producing human body 3D mesh models. Experimental results validate the advantages of our method in terms of data transmission efficiency and reconstruction quality, demonstrating its excellent potential for application in bandwidth-limited environments.

Foundations

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