Fast and Efficient 6-DoF Grasp Estimation With Segment Anything Model in Cluttered Scenes

计算机视觉 人工智能 计算机科学 抓住 对象(语法) 估计 特征(语言学) 分割 模式识别(心理学) 噪音(视频) 图像分割 钥匙(锁)
作者
Sheng Yu,Di‐Hua Zhai,Yuanqing Xia
出处
期刊:IEEE-ASME Transactions on Mechatronics [Institute of Electrical and Electronics Engineers]
卷期号:: 1-11
标识
DOI:10.1109/tmech.2026.3687717
摘要

The task of executing object grasping in unstructured and cluttered environments is a significant challenge. Despite the development of various 6-DoF grasping methods to tackle this issue, rapid grasping objects from arbitrary viewpoints remains difficult. In this article, we introduce a zero-shot 6-DoF grasp pose estimation method for unstructured cluttered scenes, named FS-Grasp. Initially, we leverage the zero-shot capabilities of the segment anything model to perform object segmentation in cluttered scenes, thereby obtaining point clouds of unknown objects. Next, we design a zero-shot 6-DoF grasp pose prediction algorithm based on these object point clouds, enabling the detection of grasp poses for unknown objects in cluttered environments. In FS-Grasp, we introduce a multiscale, multiangle graspable region search algorithm that integrates transformers to conduct a comprehensive search for graspable poses. We conduct grasping tests across various datasets, and our experimental results demonstrate that the proposed FS-Grasp can be effectively applied to most zero-shot grasping tasks. Furthermore, we apply FS-Grasp in diverse human–robot interaction scenarios, establishing an autonomous robot grasping framework based on visual language large models, which successfully performs the grasping and placement of multiple unknown objects, showcasing considerable practical application value.

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