Publication | Closed Access
DianNao
1.3K
Citations
46
References
2014
Year
Unknown Venue
Deep Neural NetworksMachine-learning AlgorithmsMachine LearningData ScienceMachine-learning TasksEngineeringHardware AccelerationHardware AlgorithmComputer EngineeringComputer ArchitectureNeural Architecture SearchDomain-specific AcceleratorEmbedded Machine LearningParallel ProgrammingComputer ScienceParallel ComputingDeep LearningMachine-learning Accelerator
Machine-Learning tasks are becoming pervasive in a broad range of domains, and in a broad range of systems (from embedded systems to data centers). At the same time, a small set of machine-learning algorithms (especially Convolutional and Deep Neural Networks, i.e., CNNs and DNNs) are proving to be state-of-the-art across many applications. As architectures evolve towards heterogeneous multi-cores composed of a mix of cores and accelerators, a machine-learning accelerator can achieve the rare combination of efficiency (due to the small number of target algorithms) and broad application scope.
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