Publication | Closed Access
On learning-based methods for design-space exploration with high-level synthesis
185
Citations
16
References
2013
Year
Unknown Venue
Artificial IntelligenceEngineeringMachine LearningAccelerated DesignHls ToolsLearning-based MethodsOptimal Experimental DesignComputer-aided DesignSocial SciencesGenerative DesignSystems EngineeringModeling And SimulationEngineering Design ProcessDesign Space ExplorationDesignTransductive Experimental DesignComputer ScienceArchitectural DesignComputational ScienceDse ProblemDesign Thinking
This paper makes several contributions to address the challenge of supervising HLS tools for design space exploration (DSE). We present a study on the application of learning-based methods for the DSE problem, and propose a learning model for HLS that is superior to the best models described in the literature. In order to speedup the convergence of the DSE process, we leverage transductive experimental design, a technique that we introduce for the first time to the CAD community. Finally, we consider a practical variant of the DSE problem, and present a solution based on randomized selection with strong theory guarantee.
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