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System acceleration prediction model for look up tables-based applications

机译:用于基于查找表的应用程序的系统加速预测模型

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Accelerating a target application is an important part of system design. For a given application, system designers may use several acceleration methods to speed-up critical code segments. These acceleration methods can be at software level (software optimization) or at hardware level using high-performance computing units, like multiprocessor platforms or ASICs. However, the resulting performances may vary from application to application because of their intrinsic characteristics. Among these applications, we focus on a 3-D vision application that reconstructs the 3D shape of a target object from data collected from the scene. This reconstruction is based on specific functions that can be implemented in software on a DSP, or in hardware using look-up tables (LUTs). In this paper, we introduce a new mathematical model that predicts, at system level, the acceleration that can be achieved when using LUTs implemented with different memory technologies. Simulated performance results will be shown for the reconstruction of a 3-D image with an autosynchronized optical camera.
机译:加速目标应用程序是系统设计的重要组成部分。对于给定的应用程序,系统设计人员可以使用几种加速方法来加速关键代码段。这些加速方法可以是软件级(软件优化),也可以是使用高性能计算单元(例如多处理器平台或ASIC)的硬件级。但是,由于其固有的特性,最终的性能可能因应用程序而异。在这些应用程序中,我们专注于3-D视觉应用程序,该应用程序从从场景收集的数据中重建目标对象的3D形状。这种重构基于可以在DSP上的软件或使用查找表(LUT)的硬件中实现的特定功能。在本文中,我们引入了一个新的数学模型,该模型可以在系统级别预测使用通过不同内存技术实现的LUT可以实现的加速。将显示模拟性能结果,用于使用自动同步光学相机重建3D图像。

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