Publication | Closed Access
Hardware accelerated convolutional neural networks for synthetic vision systems
232
Citations
9
References
2010
Year
Unknown Venue
Convolutional Neural NetworkEngineeringHardware AlgorithmImage AnalysisPattern RecognitionAsic ImplementationVision RecognitionScalable Hardware ArchitectureSynthetic Image GenerationMachine VisionModular Vision EngineObject DetectionComputer EngineeringComputer ScienceDeep LearningNeural Architecture SearchComputer VisionCellular Neural NetworkConvolutional Neural Networks
In this paper we present a scalable hardware architecture to implement large-scale convolutional neural networks and state-of-the-art multi-layered artificial vision systems. This system is fully digital and is a modular vision engine with the goal of performing real-time detection, recognition and segmentation of mega-pixel images. We present a performance comparison between a software, FPGA and ASIC implementation that shows a speed up in custom hardware implementations.
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