Embodied learning of a generative neural model for biological motion perception and inference

被引:14
作者
Schrodt, Fabian [1 ]
Layher, Georg [2 ]
Neumann, Heiko [2 ]
Butz, Martin V. [1 ]
机构
[1] Univ Tubingen, Dept Comp Sci, Cognit Modeling, D-72070 Tubingen, Germany
[2] Univ Ulm, Inst Neural Informat Proc, D-89069 Ulm, Germany
关键词
biological motion; correspondence problem; predictive coding; active inference; perspective-taking; embodiment; mirror neurons; neural networks; SUPERIOR TEMPORAL SULCUS; MIRROR NEURONS; MENTAL ROTATION; PERSPECTIVE-TAKING; VISUAL-PERCEPTION; SPATIAL ABILITIES; POLYSENSORY AREA; MACAQUE MONKEY; IMITATION; RECOGNITION;
D O I
10.3389/fncom.2015.00079
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Although an action observation network and mirror neurons for understanding the actions and intentions of others have been under deep, interdisciplinary consideration over recent years, it remains largely unknown how the brain manages to map visually perceived biological motion of others onto its own motor system. This paper shows how such a mapping may be established, even if the biologically motion is visually perceived from a new vantage point. We introduce a learning artificial neural network model and evaluate it on full body motion tracking recordings. The model implements an embodied, predictive inference approach. It first learns to correlate and segment multimodal sensory streams of own bodily motion. In doing so, it becomes able to anticipate motion progression, to complete missing modal information, and to self-generate learned motion sequences. When biological motion of another person is observed, this self-knowledge is utilized to recognize similar motion patterns and predict their progress. Due to the relative encodings, the model shows strong robustness in recognition despite observing rather large varieties of body morphology and posture dynamics. By additionally equipping the model with the capability to rotate its visual frame of reference, it is able to deduce the visual perspective onto the observed person, establishing full consistency to the embodied self-motion encodings by means of active inference. In further support of its neuro-cognitive plausibility, we also model typical bistable perceptions when crucial depth information is missing. In sum, the introduced neural model proposes a solution to the problem of how the human brain may establish correspondence between observed bodily motion and its own motor system, thus offering a mechanism that supports the development of mirror neurons.
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页数:20
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