计算机科学
接口(物质)
人机交互
触觉传感器
人工智能
水下
仿生学
感知
适应(眼睛)
触觉知觉
对象(语法)
软机器人
计算机视觉
具身认知
建筑
传感器融合
仿人机器人
灵敏度(控制系统)
夹持器
主动感知
机器视觉
机器人
触觉技术
遥操作
智能决策支持系统
语义学(计算机科学)
透视图(图形)
面子(社会学概念)
能见度
目标检测
作者
Hongyu Chen,Zijian Huang,Yanhao Luo,Yujin Wang,Huasen Wang,Lei Liu,Yu Sun,Yu Hu,Yuchen Lin,Chao Wei,Wenjun Lin,Gantang Su,Ziquan Guo,Jianghui Zheng,Zhiqi Chen,Qingliang Liao,Yuanjin Zheng,Liao Xinqin
标识
DOI:10.1002/adma.202519665
摘要
ABSTRACT Embodied intelligent agents, which represent the future of robotics, demand precise perception and real‐time decision‐making capabilities to achieve natural environmental interactions. However current systems face inherent limitations in unimodal sensing and cross‐modal coordination, which hinder their performance in dynamic contact‐rich operations. Herein, we present a fabric‐based event‐driven tactile interface that features an innovative woven structure with cross‐fiber electrodes. It achieves breakthroughs in sensitivity (246.3 kPa −1 ), pressure detection (>450 kPa), and waterproof robustness. This interface enables millisecond‐level pressure/slip dual‐mode feedback for self‐adaptive grasping, thereby improving the dexterous manipulation of fragile or slippery objects. For underwater scenarios, a bio‐inspired visual–tactile fusion (VTF) architecture leverages tactile perception to compensate for visual limitations, demonstrating a high accuracy of 97.7% in complex tasks, including underwater transparent object manipulation and recognition of similar objects. Event‐driven tactile feedback is merged with visual semantics for decision‐level optimization, thereby enhancing the autonomy and adaptation of humanoid machine intelligence. It creates an innovative closed‐loop cross‐modal perception–decision system that builds a direct link between environmental interaction and autonomous decision‐making for intelligent agent development in open‐world scenarios. The superior performance of the VTF architecture dynamic interaction tasks represents a crucial step toward robotic systems with advanced intelligence.
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