cs.AI updates on arXiv.org 07月22日 12:44
PerspectiveNet: Multi-View Perception for Dynamic Scene Understanding
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本文提出 PerspectiveNet,一种用于多视角视觉描述生成的轻量高效模型,通过结合视觉编码器、紧凑连接模块和大型语言模型,实现跨视角的长描述生成。

arXiv:2410.16824v2 Announce Type: replace-cross Abstract: Generating detailed descriptions from multiple cameras and viewpoints is challenging due to the complex and inconsistent nature of visual data. In this paper, we introduce PerspectiveNet, a lightweight yet efficient model for generating long descriptions across multiple camera views. Our approach utilizes a vision encoder, a compact connector module to convert visual features into a fixed-size tensor, and large language models (LLMs) to harness the strong natural language generation capabilities of LLMs. The connector module is designed with three main goals: mapping visual features onto LLM embeddings, emphasizing key information needed for description generation, and producing a fixed-size feature matrix. Additionally, we augment our solution with a secondary task, the correct frame sequence detection, enabling the model to search for the correct sequence of frames to generate descriptions. Finally, we integrate the connector module, the secondary task, the LLM, and a visual feature extraction model into a single architecture, which is trained for the Traffic Safety Description and Analysis task. This task requires generating detailed, fine-grained descriptions of events from multiple cameras and viewpoints. The resulting model is lightweight, ensuring efficient training and inference, while remaining highly effective.

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多视角视觉描述 模型生成 视角网
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