Publication | Closed Access
Capuchin
128
Citations
19
References
2020
Year
Unknown Venue
Artificial IntelligenceConvolutional Neural NetworkDeep Neural NetworksGpu Global MemoryMachine LearningEngineeringMachine Learning ModelSparse Neural NetworkComputer EngineeringComputer ArchitectureMemory RequirementComputer ScienceDeep LearningNeural Architecture SearchModel Compression
In recent years, deep learning has gained unprecedented success in various domains, the key of the success is the larger and deeper deep neural networks (DNNs) that achieved very high accuracy. On the other side, since GPU global memory is a scarce resource, large models also pose a significant challenge due to memory requirement in the training process. This restriction limits the DNN architecture exploration flexibility.
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