Head Tracking of Auditory, Visual, and Audio-Visual Targets

被引:5
|
作者
Leung, Johahn [1 ]
Wei, Vincent [1 ]
Burgess, Martin [1 ]
Carlile, Simon [1 ]
机构
[1] Univ Sydney, Sch Med Sci, Auditory Neurosci Lab, Sydney, NSW 2006, Australia
来源
基金
澳大利亚研究理事会;
关键词
auditory perception; motion perception; tracking; localization; SOUND LOCALIZATION; INTEGRATION; SPACE; PURSUIT; MOTION; TURNS;
D O I
10.3389/fnins.2015.00493
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The ability to actively follow a moving auditory target with our heads remains unexplored even though it is a common behavioral response. Previous studies of auditory motion perception have focused on the condition where the subjects are passive. The current study examined head tracking behavior to a moving auditory target along a horizontal 100 degrees arc in the frontal hemisphere, with velocities ranging from 20 to 110 degrees/s. By integrating high fidelity virtual auditory space with a high-speed visual presentation we compared tracking responses of auditory targets against visual only and audio-visual "bisensory" stimuli. Three metrics were measured-onset, RMS, and gain error. The results showed that tracking accuracy (RMS error) varied linearly with target velocity, with a significantly higher rate in audition. Also, when the target moved faster than 80 degrees/s, onset and RMS error were significantly worst in audition the other modalities while responses in the visual and bisensory conditions were statistically identical for all metrics measured. Lastly, audio-visual facilitation was not observed when tracking bisensory targets.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Modeling head tracking of visual targets
    Chen, KJ
    Keshner, EA
    Peterson, BW
    Hain, TC
    [J]. JOURNAL OF VESTIBULAR RESEARCH-EQUILIBRIUM & ORIENTATION, 2002, 12 (01): : 25 - 33
  • [42] AUDIO-VISUAL FOR THE PATIENT
    STUTTLE, FL
    [J]. JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1959, 41 (07): : 1362 - 1362
  • [43] The Audio-Visual Reader
    不详
    [J]. JOURNAL OF EDUCATIONAL RESEARCH, 1955, 48 (07): : 552 - 553
  • [44] Bimodal audio-visual training enhances auditory adaptation process
    Kawase, Tetsuaki
    Sakamoto, Shuichi
    Hori, Yoko
    Maki, Atsuko
    Suzuki, Yoiti
    Kobayashi, Toshimitsu
    [J]. NEUROREPORT, 2009, 20 (14) : 1231 - 1234
  • [45] Perceptual thresholds of audio-visual spatial coherence for a variety of audio-visual objects
    Stenzel, Hanne
    Jackson, Philip J. B.
    [J]. 2018 AES INTERNATIONAL CONFERENCE ON AUDIO FOR VIRTUAL AND AUGMENTED REALITY, 2018,
  • [46] An audio-visual speech recognition system for testing new audio-visual databases
    Pao, Tsang-Long
    Liao, Wen-Yuan
    [J]. VISAPP 2006: PROCEEDINGS OF THE FIRST INTERNATIONAL CONFERENCE ON COMPUTER VISION THEORY AND APPLICATIONS, VOL 2, 2006, : 192 - +
  • [47] Audio-visual event detection based on mining of semantic audio-visual labels
    Goh, KS
    Miyahara, K
    Radhakrishan, R
    Xiong, ZY
    Divakaran, A
    [J]. STORAGE AND RETRIEVAL METHODS AND APPLICATIONS FOR MULTIMEDIA 2004, 2004, 5307 : 292 - 299
  • [48] Transfer of Audio-Visual Temporal Training to Temporal and Spatial Audio-Visual Tasks
    Suerig, Ralf
    Bottari, Davide
    Roeder, Brigitte
    [J]. MULTISENSORY RESEARCH, 2018, 31 (06) : 556 - 578
  • [49] LEARNING CONTEXTUALLY FUSED AUDIO-VISUAL REPRESENTATIONS FOR AUDIO-VISUAL SPEECH RECOGNITION
    Zhang, Zi-Qiang
    Zhang, Jie
    Zhang, Jian-Shu
    Wu, Ming-Hui
    Fang, Xin
    Dai, Li-Rong
    [J]. 2022 IEEE INTERNATIONAL CONFERENCE ON IMAGE PROCESSING, ICIP, 2022, : 1346 - 1350
  • [50] Audio-Visual Causality and Stimulus Reliability Affect Audio-Visual Synchrony Perception
    Li, Shao
    Ding, Qi
    Yuan, Yichen
    Yue, Zhenzhu
    [J]. FRONTIERS IN PSYCHOLOGY, 2021, 12