Temporal Structure in Haptic Signaling Under a Cooperative Task

Haptic communication between humans plays an important role in society. Although this form of communication is ubiquitous at all levels of society and of human development, little is known about how synchronized coordination of motion between two persons leads to higher-order cognitive functions use...

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Main Authors: Nicolas Thorne, Juliane J. Honisch, Toshiyuki Kondo, Slawomir Nasuto, Yoshikatsu Hayashi
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-11-01
Series:Frontiers in Human Neuroscience
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fnhum.2019.00372/full
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spelling doaj-86d34f4280734729b6af0137d4f6c5462020-11-25T02:04:49ZengFrontiers Media S.A.Frontiers in Human Neuroscience1662-51612019-11-011310.3389/fnhum.2019.00372473924Temporal Structure in Haptic Signaling Under a Cooperative TaskNicolas Thorne0Juliane J. Honisch1Toshiyuki Kondo2Slawomir Nasuto3Yoshikatsu Hayashi4Division of Biomedical Sciences and Biomedical Engineering, School of Biological Sciences, University of Reading, Reading, United KingdomSchool of Psychology and Clinical Language Sciences, University of Reading, Reading, United KingdomDepartment of Computer and Information Sciences, Tokyo University of Agriculture and Technology, Koganei, Tokyo, JapanDivision of Biomedical Sciences and Biomedical Engineering, School of Biological Sciences, University of Reading, Reading, United KingdomDivision of Biomedical Sciences and Biomedical Engineering, School of Biological Sciences, University of Reading, Reading, United KingdomHaptic communication between humans plays an important role in society. Although this form of communication is ubiquitous at all levels of society and of human development, little is known about how synchronized coordination of motion between two persons leads to higher-order cognitive functions used in communication. In this study, we developed a novel experimental paradigm of a coin-collecting task in which participants used their hands to control a rod to jointly collect the coins on the screen. We characterized the haptic interactions between paired participants while they were taking part in a cooperative task. The individual participants first completed this task on their own and then with a randomly assigned partner for the cooperative task. Single participant experiments were used as a baseline to compare results of the paired participants. Forces applied to the rod were translated to four possible haptic states which encode the combination of the haptic interactions. As a next step, pairs of consecutive haptic states were then combined into 16 possible haptic signals which were classified in terms of their temporal patterns using a Tsallis q-exponential function. For paired participants, 80% of the haptic signals could be fit by the Tsallis q-exponential. On the other hand, only 30% of the signals found in the single-participant trials could be fit by the Tsallis q-exponential. This shows a clear difference in the temporal structures of haptic signals when participants are interacting with each other and when they are not. We also found a large difference in the number of haptic signals used by paired participants and singles. Single participants only used 1/4 of the possible haptic signals. Paired participants, on the other hand, used more than half of the possible signals. These results suggest that temporal structures present in haptic communication could be linked to the emergence of language at an evolutionary level.https://www.frontiersin.org/article/10.3389/fnhum.2019.00372/fullhaptic (tactile) perceptionproto-languageTsallis entropyjoint actioncooperative tasklong range correlations
collection DOAJ
language English
format Article
sources DOAJ
author Nicolas Thorne
Juliane J. Honisch
Toshiyuki Kondo
Slawomir Nasuto
Yoshikatsu Hayashi
spellingShingle Nicolas Thorne
Juliane J. Honisch
Toshiyuki Kondo
Slawomir Nasuto
Yoshikatsu Hayashi
Temporal Structure in Haptic Signaling Under a Cooperative Task
Frontiers in Human Neuroscience
haptic (tactile) perception
proto-language
Tsallis entropy
joint action
cooperative task
long range correlations
author_facet Nicolas Thorne
Juliane J. Honisch
Toshiyuki Kondo
Slawomir Nasuto
Yoshikatsu Hayashi
author_sort Nicolas Thorne
title Temporal Structure in Haptic Signaling Under a Cooperative Task
title_short Temporal Structure in Haptic Signaling Under a Cooperative Task
title_full Temporal Structure in Haptic Signaling Under a Cooperative Task
title_fullStr Temporal Structure in Haptic Signaling Under a Cooperative Task
title_full_unstemmed Temporal Structure in Haptic Signaling Under a Cooperative Task
title_sort temporal structure in haptic signaling under a cooperative task
publisher Frontiers Media S.A.
series Frontiers in Human Neuroscience
issn 1662-5161
publishDate 2019-11-01
description Haptic communication between humans plays an important role in society. Although this form of communication is ubiquitous at all levels of society and of human development, little is known about how synchronized coordination of motion between two persons leads to higher-order cognitive functions used in communication. In this study, we developed a novel experimental paradigm of a coin-collecting task in which participants used their hands to control a rod to jointly collect the coins on the screen. We characterized the haptic interactions between paired participants while they were taking part in a cooperative task. The individual participants first completed this task on their own and then with a randomly assigned partner for the cooperative task. Single participant experiments were used as a baseline to compare results of the paired participants. Forces applied to the rod were translated to four possible haptic states which encode the combination of the haptic interactions. As a next step, pairs of consecutive haptic states were then combined into 16 possible haptic signals which were classified in terms of their temporal patterns using a Tsallis q-exponential function. For paired participants, 80% of the haptic signals could be fit by the Tsallis q-exponential. On the other hand, only 30% of the signals found in the single-participant trials could be fit by the Tsallis q-exponential. This shows a clear difference in the temporal structures of haptic signals when participants are interacting with each other and when they are not. We also found a large difference in the number of haptic signals used by paired participants and singles. Single participants only used 1/4 of the possible haptic signals. Paired participants, on the other hand, used more than half of the possible signals. These results suggest that temporal structures present in haptic communication could be linked to the emergence of language at an evolutionary level.
topic haptic (tactile) perception
proto-language
Tsallis entropy
joint action
cooperative task
long range correlations
url https://www.frontiersin.org/article/10.3389/fnhum.2019.00372/full
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