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Multi-sensor Data Fusion Using the Influence Model
Cambridge, Massachusetts, U.S.A April 03-April 05
DOI Bookmark: http://doi.ieeecomputersociety.org/10.1109/BSN.2006.41International Workshop on Wearable an ...
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Wen Dong, MIT Media Laboratory
Alex Pentland, MIT Media Laboratory
System robustness against individual sensor failures is an important concern in multi-sensor networks. Unfortunately, the complexity of using the remaining sensors to interpolate missing sensor data grows exponentially due to the "curse of dimensionality". In this paper we demonstrate that the influence model, our novel formulation for combining evidence from multiple interactive dynamic processes, can efficiently interpolate missing data and can achieve greater accuracy by modeling the structure of multi-sensor interaction.
Citation:
Wen Dong, Alex Pentland, "Multi-sensor Data Fusion Using the Influence Model," bsn, pp.72-75, International Workshop on Wearable and Implantable Body Sensor Networks (BSN'06), 2006
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