arXiv:2502.18041cs.CVcs.RO2025-02中稿 · ICLR被引 50

构建开放平台OpenFly,解决户外飞行视觉语言导航数据缺失问题

Openfly: A comprehensive platform for aerial vision-language navigation

  • 集成多种渲染引擎与3D高斯泼溅技术,实现真实感环境模拟
  • 自动生成10万条飞行轨迹数据,覆盖18个场景的高空导航任务
  • 提出关键帧感知模型,适合研究无人机导航与多模态智能体

视觉语言导航(VLN)旨在结合语言指令与视觉线索引导智能体,是具身AI的关键方向。室内VLN已得到广泛研究,而室外空中视角的VLN仍缺乏探索,主要因空域广阔导致数据采集困难,进而缺少基准。为此,我们提出OpenFly平台,包含多种渲染引擎、灵活工具链及大规模空中VLN基准。首先,融合Unreal Engine、GTA V、Google Earth和3D高斯泼溅(3D GS)等技术,支持真实到仿真渲染,提升环境真实感。其次,开发高度自动化工具链,实现点云获取、语义分割、飞行路径生成与指令合成。第三,基于该工具链构建涵盖18个场景、10万条轨迹的大规模数据集,覆盖不同高度与长度。此外,提出OpenFly-Agent,一种关注飞行关键帧的视觉语言导航模型。通过大量实验验证,展示了平台与模型的优越性。工具链、数据集与代码将开源。

原文摘要 · Abstract (English)

Vision-Language Navigation (VLN) aims to guide agents by leveraging language instructions and visual cues, playing a pivotal role in embodied AI. Indoor VLN has been extensively studied, whereas outdoor aerial VLN remains underexplored. The potential reason is that outdoor aerial view encompasses vast areas, making data collection more challenging, which results in a lack of benchmarks. To address this problem, we propose OpenFly, a platform comprising various rendering engines, a versatile toolchain, and a large-scale benchmark for aerial VLN. Firstly, we integrate diverse rendering engines and advanced techniques for environment simulation, including Unreal Engine, GTA V, Google Earth, and 3D Gaussian Splatting (3D GS). Particularly, 3D GS supports real-to-sim rendering, further enhancing the realism of our environments. Secondly, we develop a highly automated toolchain for aerial VLN data collection, streamlining point cloud acquisition, scene semantic segmentation, flight trajectory creation, and instruction generation. Thirdly, based on the toolchain, we construct a large-scale aerial VLN dataset with 100k trajectories, covering diverse heights and lengths across 18 scenes. Moreover, we propose OpenFly-Agent, a keyframe-aware VLN model emphasizing key observations during flight. For benchmarking, extensive experiments and analyses are conducted, evaluating several recent VLN methods and showcasing the superiority of our OpenFly platform and agent. The toolchain, dataset, and codes will be open-sourced.

视觉语言导航无人机具身AI3D生成

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