Research article

Evolving robot empathy towards humans with motor disabilities through artificial pain generation

  • Received: 25 September 2017 Accepted: 15 January 2018 Published: 30 January 2018
  • In contact assistive robots, a prolonged physical engagement between robots and humans with motor disabilities due to shoulder injuries, for instance, may at times lead humans to experience pain. In this situation, robots will require sophisticated capabilities, such as the ability to recognize human pain in advance and generate counter-responses as follow up emphatic action. Hence, it is important for robots to acquire an appropriate pain concept that allows them to develop these capabilities. This paper conceptualizes empathy generation through the realization of synthetic pain classes integrated into a robot’s self-awareness framework, and the implementation of fault detection on the robot body serves as a primary source of pain activation. Projection of human shoulder motion into the robot arm motion acts as a fusion process, which is used as a medium to gather information for analyses then to generate corresponding synthetic pain and emphatic responses. An experiment is designed to mirror a human peer’s shoulder motion into an observer robot. The results demonstrate that the fusion takes place accurately whenever unified internal states are achieved, allowing accurate classification of synthetic pain categories and generation of empathy responses in a timely fashion. Future works will consider a pain activation mechanism development.

    Citation: Muh Anshar, Mary-Anne Williams. Evolving robot empathy towards humans with motor disabilities through artificial pain generation[J]. AIMS Neuroscience, 2018, 5(1): 56-73. doi: 10.3934/Neuroscience.2018.1.56

    Related Papers:

  • In contact assistive robots, a prolonged physical engagement between robots and humans with motor disabilities due to shoulder injuries, for instance, may at times lead humans to experience pain. In this situation, robots will require sophisticated capabilities, such as the ability to recognize human pain in advance and generate counter-responses as follow up emphatic action. Hence, it is important for robots to acquire an appropriate pain concept that allows them to develop these capabilities. This paper conceptualizes empathy generation through the realization of synthetic pain classes integrated into a robot’s self-awareness framework, and the implementation of fault detection on the robot body serves as a primary source of pain activation. Projection of human shoulder motion into the robot arm motion acts as a fusion process, which is used as a medium to gather information for analyses then to generate corresponding synthetic pain and emphatic responses. An experiment is designed to mirror a human peer’s shoulder motion into an observer robot. The results demonstrate that the fusion takes place accurately whenever unified internal states are achieved, allowing accurate classification of synthetic pain categories and generation of empathy responses in a timely fashion. Future works will consider a pain activation mechanism development.


    加载中
    [1] Anshar M, Williams MA (2016) Evolving synthetic pain into an adaptive self-awareness framework for robots.Bion Inspired Cognit Archit 16: 8-18.
    [2] Helal A, Mokhtari M, Abdulrazak B (2008) The engineering handbook of smart technology for Aging, Disability, and Independence.Wiley Online Library .
    [3] Scassellati B (2002) Theory of mind for a humanoid robot.Auton Robots 12: 13-24.
    [4] Takeno J (2012) Creation of a conscious robot: Mirror image cognition and self-awareness.Pan Stanford Publishing .
    [5] Husserl E (1999) The essential husserl: Basic writings in transcendental phenomenology.Stud Cont Thought 54: 177-179.
    [6] Terrence F, Illah N, Dautenhahn K (2003) A survey of socially inter-active robots.Rob Auton Syst J 42: 143-166.
    [7] Feil-Seifer D, Matari MJ (2005) Defining socially assistive robotics.Int Conf Rehabil Rob 2005: 465-468.
    [8] Michel P, Gold K, Scassellati B (2004) Motion-based robotic self-recognition.IEEE/RSJ Int Conf Intell Robots Syst 3: 2763-2768.
    [9] Novianto R, Williams MA (2009) The role of attention in robot self-awareness.Ro-man-the IEEE Int Symp Robot Hum Interact Commun 175: 1047-1053.
    [10] Gorbenko A, Popov V, Sheka A (2012) Robot self-awareness: Exploration of internal states.Appl Math Sci 2012: 675-688.
    [11] Agha-Mohammad AA, Ure NK, How JP, et al. (2014) Health aware stochastic planning for persistent package delivery missions using quadrotors.EEE/RSJ Int Conf Intell Robots Syst 2014: 3389-3396.
    [12] Birlo M, Tapus A (2011) The crucial role of robot self-awareness in HRI.Acm/IEEE Int Conf Human-robot Interact 2011: 115-116.
    [13] Bongard J, Zykov V, Lipson H (2006) Resilient machines through continuous self-modeling.Sci 314: 1118-1121.
    [14] Marier JS, Rabbath CA, Lechevin N (2013) Health-aware coverage control with application to a team of small UAVs.IEEE Trans Control Syst Technol 21: 1719-1730.
    [15] Zagal JC, Lipson H (2009) Self-reflection in evolutionary robotics: Resilient adaptation with a minimum of physical exploration.Conference Companion Genet Evolution Comput Conference: Late Break Paper 2009: 2179-2188.
    [16] Lewis M (1991) Ways of knowing: Objective self-awareness or consciousness.Biochem Rev 11: 231-243.
    [17] Banissy MJ, Kanai R, Walsh V, et al. (2012) Inter-individual differences in empathy are reflected in human brain structure.NeuroImage 62: 2034-2039.
    [18] Cuff BMP, Brown SJ, Taylor L, et al. (2014) Empathy: A review of the concept.Emotion Rev 8: 144-153.
    [19] Goubert L, Craig KD, Vervoort T, et al. (2005) Facing others in pain: The effects of empathy.Pain 118: 285-288.
    [20] Jackson PL, Rainville P, Decety J (2006) To what extent do we share the pain of others? Insight from the neural bases of pain empathy.Pain 125: 5-9.
    [21] Lamm C, Decety J, Singer T (2011) Meta-analytic evidence for common and distinct neural networks associated with directly experienced pain and empathy for pain.NeuroImage 54: 2492-2502.
    [22] Loggia ML, Mogil JS, Bushnell MC (2008) Empathy hurts: Compassion for another increases both sensory and affective components of pain perception.Pain 136: 168-176.
    [23] Singer T, Seymour B, O'Doherty J, et al. (2004) Empathy for pain involves the affective but not sensory components of pain.Sci 303: 1157-1162.
    [24] Meng J, Jackson T, Chen H, et al. (2013) Pain perception in the self and observation of others: An ERP investigation.NeuroImage 72: 164-173.
    [25] Woolf CJ (2010) What is this thing called pain?J Clin Invest 120: 3742-3744.
    [26] Mann WC (2005) Smart Technology for Aging, Disability and Independence: The State of the Science.Wiley-Interscience 26: 75-77.
    [27] Harold A, Gerald-Jay S, Sussman J (1985) Structure and interpretation of computer programs MIT Press; McGraw-Hill, 1167.
    [28] Baumgartner R, Gottlob G, Flesca S (2001) Visual Web Information Extraction with Lixto.Int Conf on Vldb 2001: 119-128.
    [29] Brachman RJ, Schmolze JG (1985) An overview of the KL-ONE Knowledge Representation System.Cognit Sci 9: 171-216.
    [30] Gottlob G (1992) Complexity Results for Nonmonotonic Logics.J Logic Comput 2: 397-425.
    [31] Gottlob G, Leone L, Scarcello F (2002) Hypertree decompositions and tractable queries.Computer Syst Sci 64: 579-627.
    [32] Levesque HJ (1984) Foundations of a functional approach to knowledge representation.Artif Intell 23: 155-212.
    [33] Levesque HJ (1984) A Logic of Implicit and Explicit Belief.Natl Conf Artif Intell Austin 1984: 198-202.
    [34] Nebel B (2011) On the compilability and expressive power of propositional planning formalisms.J Art Intell Res 12: 271-315.
  • Reader Comments
  • © 2018 the Author(s), licensee AIMS Press. This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0)
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Metrics

Article views(4810) PDF downloads(990) Cited by(1)

Article outline

Figures and Tables

Figures(11)  /  Tables(8)

Other Articles By Authors

/

DownLoad:  Full-Size Img  PowerPoint
Return
Return

Catalog