Publication | Closed Access
Architecting for Causal Intelligence at Nanoscale
30
Citations
17
References
2015
Year
Artificial IntelligenceEngineeringMachine LearningComputer ArchitectureIntelligent SystemsCausal InferencePhysic Aware Machine LearningUnconventional ComputingEmbedded Machine LearningPublic HealthCausal ModelComputer EngineeringCausal IntelligenceComputer ScienceCausal ReasoningAutomated ReasoningCausalityMachine-learning FrameworksBrain-like ComputingPhysical Equivalence
Conventional Von Neumann microprocessors are inefficient for supporting machine intelligence due to layers of abstraction, limiting the feasibility of machine-learning frameworks in critical applications. A new approach for architecting intelligent systems, using physical equivalence and leveraging emerging nanotechnology, can pave the way to machine intelligence everywhere.
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