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Multicore SIMD ASIP for Next-Generation Sequencing and Alignment Biochip Platforms

机译:适用于下一代测序和比对生物芯片平台的多核SIMD ASIP

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Targeting the development of new biochip platforms capable of autonomously sequencing and aligning biological sequences, a new multicore processing structure is proposed in this manuscript. This multicore structure makes use of a shared memory model and multiple instantiations of a novel application-specific instruction-set processor (ASIP) to simultaneously exploit both fine and coarse-grained parallelism and to achieve high performance levels at low-power consumption. The proposed ASIP is built by extending the instruction set architecture of a synthesizable processor, including both general and special-purpose single-instruction multiple-data instructions. This allows an efficient exploitation of fine-grained parallelism on the alignment of biological sequences, achieving over speedup when compared with sequential algorithmic implementations. The complete system was prototyped on different field-programmable gate array platforms and synthesized with a 90-nm CMOS process technology. Experimental results demonstrate that the multicore structure scales almost linearly with the number of instantiated cores, achieving performances similar to a quad-core Intel Core i7 3820 processor, while using less energy.
机译:针对能够自主测序和比对生物序列的新型生物芯片平台的发展,本文提出了一种新的多核处理结构。这种多核结构利用共享内存模型和新颖的特定于应用程序的指令集处理器(ASIP)的多个实例化来同时利用细粒度和粗粒度并行性,并以低功耗实现高性能。通过扩展可综合处理器的指令集体系结构(包括通用和专用单指令多数据指令)来构建提出的ASIP。与顺序算法实现相比,这可以有效利用生物序列比对中的细粒度并行性,从而实现了超速运行。完整的系统在不同的现场可编程门阵列平台上进行了原型设计,并采用90纳米CMOS工艺技术进行了合成。实验结果表明,多核结构几乎与实例化核的数量成线性比例关系,从而实现了与四核Intel Core i7 3820处理器相似的性能,同时能耗更低。

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