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Design of Programmable Analog Calculation Unit by Implementing Support Vector Regression for Approximate Computing

机译:通过实现支持向量回归进行近似计算的可编程模拟计算单元设计

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In this work, we design a programmable analog calculation unit (ACU) for approximately computing arbitrary functions with two operands. By implementing an efficient scheme of support vector regression, the target functions are retrieved by very large scale integrated circuits in one clock cycle with only 600 transistors. A set of dynamically tunable analog circuits are designed for generating various features of Gaussian kernel functions. By mixing these kernel functions, any specific complex function is computed by the regression. The ACU is designed and simulated in a standard CMOS technology for proof-of-concept. From the circuit simulation results, the proposed ACU calculates all the target functions with the average error less than 1.7%. The performances over energy, flexibility, and hardware efficiency of the proposed ACU are superior to a basic four-bit digital arithmetic logic unit and look-up table based architectures. The robustness against temperature and process variations is also presented with acceptable fluctuations on calculating results. To conveniently integrate the proposed ACUs into ordinary digital systems, we also design the compact memory circuits, which offer dual-mode (analog and binary) data storage/access.
机译:在这项工作中,我们设计了一个可编程模拟计算单元(ACU),用于近似地计算具有两个操作数的任意函数。通过实施一种支持向量回归的有效方案,目标函数可以在一个时钟周期内由只有600个晶体管的超大型集成电路检索。设计了一组动态可调的模拟电路,用于生成高斯内核函数的各种功能。通过混合这些内核函数,可以通过回归来计算任何特定的复杂函数。 ACU采用标准CMOS技术进行设计和仿真,以进行概念验证。根据电路仿真结果,拟议的ACU计算所有目标函数,平均误差小于1.7%。所提出的ACU在能量,灵活性和硬件效率方面的性能优于基本的四位数字算术逻辑单元和基于查找表的体系结构。在计算结果上,还可以接受对温度和过程变化的鲁棒性以及可接受的波动。为了方便地将拟议的ACU集成到普通数字系统中,我们还设计了紧凑型存储电路,该电路提供双模式(模拟和二进制)数据存储/访问。

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