DocumentCode :
118035
Title :
Human activity recognition in the context of industrial human-robot interaction
Author :
Roitberg, Alina ; Perzylo, Alexander ; Somani, Nikhil ; Giuliani, Manuel ; Rickert, Markus ; Knoll, Alois
Author_Institution :
Tech. Univ. Munchen, Garching, Germany
fYear :
2014
fDate :
9-12 Dec. 2014
Firstpage :
1
Lastpage :
10
Abstract :
Human activity recognition is crucial for intuitive cooperation between humans and robots. We present an approach for activity recognition for applications in the context of human-robot interaction in industrial settings. The approach is based on spatial and temporal features derived from skeletal data of human workers performing assembly tasks. These features were used to train a machine learning framework, which classifies discrete time frames with Random Forests and subsequently models temporal dependencies between the resulting states with a Hidden Markov Model. We considered the following three groups of activities: Movement, Gestures, and Object handling. A dataset has been collected which is comprised of 24 recordings of several human workers performing such activities in a human-robot interaction environment, as typically seen at small and medium-sized enterprises. The evaluation shows that the approach achieves a recognition accuracy of up to 88% for some activities and an average accuracy of 73%.
Keywords :
feature extraction; human-robot interaction; image classification; image colour analysis; industrial robots; learning (artificial intelligence); object recognition; robot vision; discrete time frame classification; gesture activity; human activity recognition; human-robot cooperation; industrial human-robot interaction context; machine learning framework; movement activity; object handling activity; random forests; small-and-medium sized enterprise; spatial feature; temporal feature; Context; Hidden Markov models; Joints; Sensors; Service robots;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Asia-Pacific Signal and Information Processing Association, 2014 Annual Summit and Conference (APSIPA)
Conference_Location :
Siem Reap
Type :
conf
DOI :
10.1109/APSIPA.2014.7041588
Filename :
7041588
Link To Document :
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