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Optimized parallel architecture of evolutionary neural network for mass spectrometry data processing
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作者 Amin Jarrah Bashar Haddad +1 位作者 Mohammad A.Al-Jarrah Muhammad Bassam Obeidat 《International Journal of Modeling, Simulation, and Scientific Computing》 EI 2017年第1期231-257,共27页
Evolutionary neural network(ENN)shows high performance in function optimization and in finding approximately global optima from searching large and complex spaces.It is one of the most efficient and adaptive optimizat... Evolutionary neural network(ENN)shows high performance in function optimization and in finding approximately global optima from searching large and complex spaces.It is one of the most efficient and adaptive optimization techniques used widely to provide candidate solutions that lead to the fitness of the problem.ENN has the extraordinary ability to search the global and learning the approximate optimal solution regardless of the gradient information of the error functions.However,ENN requires high computation and processing which requires parallel processing platforms such as field programmable gate arrays(FPGAs)and graphic processing units(GPUs)to achieve a good performance.This work involves different new implementations of ENN by exploring and adopting different techniques and opportunities for parallel processing.Different versions of ENN algorithm have also been implemented and parallelized on FPGAs platform for low latency by exploiting the parallelism and pipelining approaches.Real data form mass spectrometry data(MSD)application was tested to examine and verify our implementations.This is a very important and extensive computation application which needs to search and find the optimal features(peaks)in MSD in order to distinguish cancer patients from control patients.ENN algorithm is also implemented and parallelized on single core and GPU platforms for comparison purposes.The computation time of our optimized algorithm on FPGA and GPU has been improved by a factor of 6.75 and 6,respectively. 展开更多
关键词 genetic algorithm neural networks evolutionary neural network fieldprogrammable gate array(FPGA) graphic processing unit(GPU) parallel architecture optimization techniques
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并行进化BP神经网络 被引量:1
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作者 王洪燕 杨敬安 《合肥工业大学学报(自然科学版)》 CAS CSCD 1999年第3期21-25,共5页
基于并行进化种族间的协作和竞争机制,给出了CPCA算法。新算法的进化操作更符合自然选择机制,在动态增加新种族的同时,亦动态删除老化、竞争力弱的种族。该算法用来进化BP网,经实验证明能有效地提高解的质量,并降低进化时间。
关键词 遗传算法 并行处理 cpca BP神经网络 并行进化
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