PROGRAMMING MODEL FOR A BAYESIAN NEUROMORPHIC COMPILER

Described is a system for performing probabilistic computations on mobile platform sensor data. The system translates a Bayesian model representing input mobile platform sensor data to a spiking neuronal network unit that implements the Bayesian model. Using the spiking neuronal network unit, condit...

Ausführliche Beschreibung

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Bibliographische Detailangaben
Hauptverfasser: STEPP, Nigel, D, JAMMALAMADAKA, Aruna
Format: Patent
Sprache:eng ; fre ; ger
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Beschreibung
Zusammenfassung:Described is a system for performing probabilistic computations on mobile platform sensor data. The system translates a Bayesian model representing input mobile platform sensor data to a spiking neuronal network unit that implements the Bayesian model. Using the spiking neuronal network unit, conditional probabilities are computed for the input mobile platform sensor data, where the input mobile platform sensor data is a time series of mobile platform error codes encoded as neuronal spikes. The neuronal spikes are decoded and represent a mobile platform failure mode. The system causes the mobile platform to initiate a mitigation action based on the mobile platform failure mode.