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用于视觉-触觉联合定位的二维精度和准确性表征

Characterization of 2D precision and accuracy for combined visual-haptic localization.

作者信息

Fischer Madeline, Saetti Umberto, Godfroy-Cooper Martine, Fischer Douglas

机构信息

Department of Mathematics, University of Maryland, College Park, MD, United States.

Department of Aerospace Engineering, University of Maryland, College Park, MD, United States.

出版信息

Front Neurosci. 2025 Mar 12;19:1528601. doi: 10.3389/fnins.2025.1528601. eCollection 2025.

Abstract

This article describes a combined visual and haptic localization experiment that addresses the area of multimodal cueing. The aim of the present investigation was to characterize two-dimensional (2D) localization precision and accuracy of visual, haptic, and combined visual-tactile targets in the peri-personal space, the space around the body in which sensory information is perceived as ecologically relevant. Participants were presented with visual, haptic, or bimodal cues using the body-centered reference frame and were instructed to indicate the corresponding perceived target location in space using a mouse pointer in an open-loop feedback condition. Outcomes of the unimodal (visual and haptic) and bimodal (combined visual-haptic) localization performance were used to assess the nature of the multisensory combination, using a Bayesian integration model. Results of the study revealed that the visual and haptic perceptive fields are characterized differently in terms of localization performance, providing important considerations for the transformation of each sensory modality when combining cues into a unified percept. The results reaffirmed many well known radial characteristics of vision with respect to localization, and identified a nonlinear pattern of haptic localization performance that was largely influenced by the midline of the center of the torso and each side of the cutaneous region. Overall, the lack of improvement in precision for bimodal cueing relative to the best unimodal cueing modality, vision, is in favor of sensory combination rather than optimal integration predicted by the Maximum Likelihood Estimation (MLE) model. Conversely, the hypothesis that accuracy in localizing the bimodal visual-haptic targets would represent a compromise between visual and haptic performance in favor of the most precise modality was rejected. Instead, the bimodal accuracy was found to be equivalent to or to exceed that of the best unimodal condition, vision. The results provide some insight into the structure of the underlying sensorimotor processes employed by the brain and confirm the usefulness of capitalizing on naturally occurring differences between vision and haptic to better understand their interaction and their contribution to multimodal perception These results will help inform the development of future human-machine interfaces implementing haptic feedback mechanisms In the context of pilot performance, haptic localization can have several benefits including enhanced situational awareness, improved spatial orientation, reduced workload, thereby contributing to safer operations. These benefits can be applied to future systems for aircraft handling by helping overcome visual illusions and discrepancies between visual and vestibular sensory channels, especially in degraded visual environments.

摘要

本文描述了一项结合视觉和触觉定位的实验,该实验涉及多模态提示领域。本研究的目的是表征二维(2D)定位精度以及视觉、触觉和视觉 - 触觉组合目标在个人周边空间(身体周围的空间,其中感官信息被视为具有生态相关性)中的准确性。使用以身体为中心的参考框架向参与者呈现视觉、触觉或双峰提示,并指示他们在开环反馈条件下使用鼠标指针在空间中指出相应的感知目标位置。使用贝叶斯整合模型,单模态(视觉和触觉)和双峰(视觉 - 触觉组合)定位性能的结果用于评估多感官组合的性质。研究结果表明,视觉和触觉感知场在定位性能方面具有不同的特征,这为将提示组合成统一感知时每种感官模态的转换提供了重要考虑因素。结果再次证实了视觉在定位方面许多众所周知的径向特征,并确定了触觉定位性能的非线性模式,该模式在很大程度上受躯干中心中线和皮肤区域每一侧的影响。总体而言,相对于最佳单模态提示方式(视觉),双峰提示在精度上缺乏提高,这有利于感官组合而非最大似然估计(MLE)模型预测的最优整合。相反,关于定位双峰视觉 - 触觉目标的准确性将代表视觉和触觉性能之间的折衷,有利于最精确模态的假设被拒绝。相反,发现双峰准确性等同于或超过最佳单模态条件(视觉)的准确性。这些结果为大脑所采用的潜在感觉运动过程的结构提供了一些见解,并证实了利用视觉和触觉之间自然存在的差异来更好地理解它们之间相互作用及其对多模态感知的贡献的有用性。这些结果将有助于为未来实施触觉反馈机制的人机界面的开发提供信息。在飞行员操作的背景下,触觉定位可以带来几个好处,包括增强态势感知、改善空间定向、减轻工作量,从而有助于更安全地操作。这些好处可以应用于未来的飞机操控系统,通过帮助克服视觉错觉以及视觉和前庭感觉通道之间的差异,特别是在退化的视觉环境中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e41/11936952/149fdee53609/fnins-19-1528601-g0001.jpg

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