Literature DB >> 26656575

Anticipating Human Activities Using Object Affordances for Reactive Robotic Response.

Hema S Koppula, Ashutosh Saxena.   

Abstract

An important aspect of human perception is anticipation, which we use extensively in our day-to-day activities when interacting with other humans as well as with our surroundings. Anticipating which activities will a human do next (and how) can enable an assistive robot to plan ahead for reactive responses. Furthermore, anticipation can even improve the detection accuracy of past activities. The challenge, however, is two-fold: We need to capture the rich context for modeling the activities and object affordances, and we need to anticipate the distribution over a large space of future human activities. In this work, we represent each possible future using an anticipatory temporal conditional random field (ATCRF) that models the rich spatial-temporal relations through object affordances. We then consider each ATCRF as a particle and represent the distribution over the potential futures using a set of particles. In extensive evaluation on CAD-120 human activity RGB-D dataset, we first show that anticipation improves the state-of-the-art detection results. We then show that for new subjects (not seen in the training set), we obtain an activity anticipation accuracy (defined as whether one of top three predictions actually happened) of 84.1, 74.4 and 62.2 percent for an anticipation time of 1, 3 and 10 seconds respectively. Finally, we also show a robot using our algorithm for performing a few reactive responses.

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Year:  2016        PMID: 26656575     DOI: 10.1109/TPAMI.2015.2430335

Source DB:  PubMed          Journal:  IEEE Trans Pattern Anal Mach Intell        ISSN: 0098-5589            Impact factor:   6.226


  11 in total

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2.  Analyzing the effects of human-aware motion planning on close-proximity human-robot collaboration.

Authors:  Przemyslaw A Lasota; Julie A Shah
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3.  A Robust Screen-Free Brain-Computer Interface for Robotic Object Selection.

Authors:  Henrich Kolkhorst; Joseline Veit; Wolfram Burgard; Michael Tangermann
Journal:  Front Robot AI       Date:  2020-03-31

4.  Imitating by Generating: Deep Generative Models for Imitation of Interactive Tasks.

Authors:  Judith Bütepage; Ali Ghadirzadeh; Özge Öztimur Karadaǧ; Mårten Björkman; Danica Kragic
Journal:  Front Robot AI       Date:  2020-04-16

5.  A Hybrid Framework for Understanding and Predicting Human Reaching Motions.

Authors:  Ozgur S Oguz; Zhehua Zhou; Dirk Wollherr
Journal:  Front Robot AI       Date:  2018-03-27

6.  Learning Activity Predictors from Sensor Data: Algorithms, Evaluation, and Applications.

Authors:  Bryan Minor; Janardhan Rao Doppa; Diane J Cook
Journal:  IEEE Trans Knowl Data Eng       Date:  2017-09-11       Impact factor: 6.977

7.  An Online Continuous Human Action Recognition Algorithm Based on the Kinect Sensor.

Authors:  Guangming Zhu; Liang Zhang; Peiyi Shen; Juan Song
Journal:  Sensors (Basel)       Date:  2016-01-28       Impact factor: 3.576

8.  Knowing me, knowing you: theory of mind in AI.

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Journal:  Psychol Med       Date:  2020-05-07       Impact factor: 7.723

Review 9.  Hardware for Recognition of Human Activities: A Review of Smart Home and AAL Related Technologies.

Authors:  Andres Sanchez-Comas; Kåre Synnes; Josef Hallberg
Journal:  Sensors (Basel)       Date:  2020-07-29       Impact factor: 3.576

10.  Human activity recognition in artificial intelligence framework: a narrative review.

Authors:  Neha Gupta; Suneet K Gupta; Rajesh K Pathak; Vanita Jain; Parisa Rashidi; Jasjit S Suri
Journal:  Artif Intell Rev       Date:  2022-01-18       Impact factor: 9.588

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