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朗讯智能光网络解决方案——ONNS
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作者 王海帆 《电信科学》 北大核心 2003年第8期79-80,共2页
关键词 智能光网络 onns 朗讯公司 自动交换传送网 ASTN
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朗讯智能光网络系统ONNS
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作者 王海帆 《信息网络》 2003年第8期34-35,共2页
关键词 智能光网络系统 onns 网络架构 光交换机 朗讯科技公司
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Optical neural networks:principles,challenges,and future prospects in computing and astrophotonics
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作者 Xiaoqian Zhang Huan Wang +1 位作者 Qichang An Hongchao Zhao 《Astronomical Techniques and Instruments》 2026年第1期26-42,共17页
The rapid development of optical neural networks(ONNs)has led to the introduction of new research avenues for computing power enhancement.Because of the characteristics of optical signals,which include low power consu... The rapid development of optical neural networks(ONNs)has led to the introduction of new research avenues for computing power enhancement.Because of the characteristics of optical signals,which include low power consumption,low latency,high parallelism,and large bandwidths,optical computing based on neural network architectures is showing promise for processing of spatial signals,temporal signals,and on-chip information.At present,there is a lack of a unified ONN computing architecture,and because of the limitations of the physical characteristics of these networks,different application scenarios have led to proposals of different requirements for the structural design,device selection,integration method,and signal processing method of the network.In this paper,we systematically elaborate on the practical value of ONNs,analyze their computational fundamentals in depth,discuss the challenges faced in computational and astrophotonics applications in detail,and simultaneously emphasize the important position and broad prospects of optical computing in the future information society. 展开更多
关键词 onns ASTRONOMY Artificial intelligence
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新型熔铸炸药3,3′-双(二硝甲基⁃ONN⁃氧化偶氮基)三呋咱(BDNAF)的合成与性能 被引量:2
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作者 张家荣 毕福强 +2 位作者 张俊林 贾思媛 王伯周 《含能材料》 EI CAS CSCD 北大核心 2021年第9期798-802,I0005,共6页
利用3,4⁃双(3′⁃氨基呋咱⁃4′⁃基)呋咱(BATF)和2,2⁃二甲基⁃5⁃硝基⁃5⁃亚硝基⁃1,3⁃二氧环己烷(DMNNDO)为原料,经氧化偶联、水解、溴化、还原和硝化五步反应首次合成新型含能化合物3,3′⁃双(二硝甲基⁃ONN⁃氧化偶氮基)三呋咱(BDNAF),通过红... 利用3,4⁃双(3′⁃氨基呋咱⁃4′⁃基)呋咱(BATF)和2,2⁃二甲基⁃5⁃硝基⁃5⁃亚硝基⁃1,3⁃二氧环己烷(DMNNDO)为原料,经氧化偶联、水解、溴化、还原和硝化五步反应首次合成新型含能化合物3,3′⁃双(二硝甲基⁃ONN⁃氧化偶氮基)三呋咱(BDNAF),通过红外(IR)、核磁(NMR)和元素分析(EA)对中间体和目标化合物进行结构表征。利用差示扫描量热法(DSC)研究了中间体3,3′⁃双(单硝甲基⁃ONN⁃氧化偶氮基)三呋咱(BNAAF)和目标化合物BDNAF的热行为;采用Gaussian 09程序和Explo 5(v.6.04)预估了BNAAF和BDNAF的物化及爆轰性能。结果表明:BNAAF没有熔点,热分解峰温为106.4℃,理论密度为1.82 g·cm^(-3),爆速为8298 m·s^(-1),爆压为29.0 GPa;BDNAF的熔点为95.4℃,第一分解峰温为170.5℃,理论密度为1.91 g·cm^(-3),爆速为9005 m·s^(-1),爆压为35.9 GPa,可作为一种新型熔铸炸药。 展开更多
关键词 熔铸炸药 二硝甲基⁃ONN⁃氧化偶氮基 BDNAF 合成 性能
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基于地形的大气水汽插值方法比较 被引量:3
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作者 俞晓莹 许文斌 杨亚夫 《中南大学学报(自然科学版)》 EI CAS CSCD 北大核心 2012年第9期3542-3547,共6页
对于分辨率差别较大的MERIS水汽产品与ASAR数据,直接利用ONN地形模型进行大气空间插值对局部地形变化较大的区域插值精度不高。针对这一问题,在基于ONN地形水汽空间插值的基础上,提出应用普通Kriging和von Karman Kriging 2种插值模型... 对于分辨率差别较大的MERIS水汽产品与ASAR数据,直接利用ONN地形模型进行大气空间插值对局部地形变化较大的区域插值精度不高。针对这一问题,在基于ONN地形水汽空间插值的基础上,提出应用普通Kriging和von Karman Kriging 2种插值模型对局部大气进行空间插值。为修正Kriging模型引起的局部过度平滑问题,运用这2种Kriging模型的基础上,提出运用Yamamoto修正的Kriging法对区域大气残差进行空间插值。将全局ONN插值结果与局部大气残差估计值相加,得到区域的大气分布状况。对3种不同的插值方法进行交叉验证比较发现:利用ONN地形模型+基于残差的von Karman Kriging方法空间组合插值方法精度,无论是均方根误差ERMSE、平均绝对误差EMAE、平均相对误差EMRE还是平均相位标准偏差都远低于ONN地形模型+基于残差OK的空间组合插值和简单的ONN地形模型的插值误差,而且ONN地形模型和基于残差的von Karman Kriging的空间组合插值方法能进一步克服ONN+基于残差OK模型的区域平滑问题,更符合大气的空间分布特征。 展开更多
关键词 MERIS水汽产品 ONN模型 vonKarman KRIGING模型 普通克里金法
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实际气体的幂律状态方程 被引量:2
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作者 陈文 梁英杰 《应用数学和力学》 CSCD 北大核心 2017年第2期200-205,共6页
为克服Onnes(昂内斯)气体状态方程参数多的缺点,提出了描述实际气体的幂律状态方程.该模型仅包含两个参数,其中幂律函数的阶数可以为任意实数,刻画了实际气体偏离理想气体的程度.满足幂律状态方程的实际气体称为幂律气体.应用于描述氮气... 为克服Onnes(昂内斯)气体状态方程参数多的缺点,提出了描述实际气体的幂律状态方程.该模型仅包含两个参数,其中幂律函数的阶数可以为任意实数,刻画了实际气体偏离理想气体的程度.满足幂律状态方程的实际气体称为幂律气体.应用于描述氮气(N_2)和四氟甲烷(CF_4)两种实际气体的研究表明,与Onnes气体状态方程相比,幂律气体状态方程可以用较少的参数,准确地描述气体状态方程中压强和体积的幂律关系.此外,温度越低,幂律函数的阶数越小,反映了气体的实际状态越偏离理想气体. 展开更多
关键词 实际气体 幂律状态方程 位力系数 Onnes气体状态方程
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荷兰物理学家卡麦林·昂纳斯及其实验物理学成就
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作者 王冰 《自然科学史研究》 CSCD 1989年第3期230-239,共10页
本文简要记述了荷兰物理学家海克·卡麦林·昂纳斯(HeikeKamerlingh Onnes,1853—1926)的生平和他的实验物理学研究。他尤以研究低温下物质的性质著称于世,在验证范德瓦尔斯气体理论、改进和发展气体液化的实验技术、特别是深... 本文简要记述了荷兰物理学家海克·卡麦林·昂纳斯(HeikeKamerlingh Onnes,1853—1926)的生平和他的实验物理学研究。他尤以研究低温下物质的性质著称于世,在验证范德瓦尔斯气体理论、改进和发展气体液化的实验技术、特别是深入认识低温下的流体和金属的物理性质方面作出了重大贡献。1908年7月10日他最先成功地制备出液态氦,并且在1911年首次发现超导电性。 展开更多
关键词 实验物理学 物理学家 Onnes HK
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Onnes方程位力系数的确定与讨论
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作者 习岗 《大学物理》 北大核心 1989年第3期3-5,共3页
本文在系综理论巨配分函数的基础上,提出求解Onnes方程位力系数的新方法,既简单又严谨的得出与Mayer理论相同的结论,并进一步推出考虑分子三重相互作用时位力系数的形式,同时将结论由单原子分子气体推广到双原子分子气体.
关键词 Onnes方程 位力系数 气体
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Functional Neural Networks in Human Brain Organoids
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作者 Longjun Gu Hongwei Cai +3 位作者 Lei Chen Mingxia Gu Jason Tchieu Feng Guo 《Biomedical Engineering Frontiers》 2024年第1期89-98,共10页
Human brain organoids are 3-dimensional brain-like tissues derived from human pluripotent stem cells and hold promising potential for modeling neurological,psychiatric,and developmental disorders.While the molecular a... Human brain organoids are 3-dimensional brain-like tissues derived from human pluripotent stem cells and hold promising potential for modeling neurological,psychiatric,and developmental disorders.While the molecular and cellular aspects of human brain organoids have been intensively studied,their functional properties such as organoid neural networks(ONNs)are largely understudied.Here,we summarize recent research advances in understanding,characterization,and application of functional ONNs in human brain organoids.We first discuss the formation of ONNs and follow up with characterization strategies including microelectrode array(MEA)technology and calcium imaging.Moreover,we highlight recent studies utilizing ONNs to investigate neurological diseases such as Rett syndrome and Alzheimer’s disease.Finally,we provide our perspectives on the future challenges and opportunities for using ONNs in basic research and translational applications. 展开更多
关键词 functional neural networks calcium imaging human brain orga human brain organoids neurological diseases human pluripotent stem cells organoid neural networks onns microelectrode array technology
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AGWO-CNN Classification for Computer-Assisted Diagnosis of Brain Tumors 被引量:3
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作者 T.Jeslin J.Arul Linsely 《Computers, Materials & Continua》 SCIE EI 2022年第4期171-182,共12页
Brain cancer is the premier reason for cancer deaths all over the world.The diagnosis of brain cancer at an initial stage is mediocre,as the radiologist is ineffectual.Different experiments have been conducted and dem... Brain cancer is the premier reason for cancer deaths all over the world.The diagnosis of brain cancer at an initial stage is mediocre,as the radiologist is ineffectual.Different experiments have been conducted and demonstrated clearly that the algorithms for nodule segmentation are unsuccessful.Therefore,the research has consolidated incremental clustering focused on superpixel segmentation as an appropriate optimization approach for the accurate segmentation of pulmonary nodules.The key aim of the research is to refine brain CT images to accurately distinguish tumors and the segmentation of small-scale anomalous nodules in the brain region.In the beginning stage,an anisotropic diffusion filters(ADF)method with un-sharp intensification masking is utilized to eliminate the noise discernment in images.In the following stage,within the improved nodule image sequence,a Superpixel Segmentation Based Iterative Clustering(SSBIC)algorithm is proposed for irregular brain tissue prediction.Subsequently,the brain nodule samples are captured using deep learning methods:Advanced Grey Wolf Optimization(AGWO)with ONN(AGWO-ONN)and Advanced GWO with CNN-based(AGWOCNN).The proposed technique indicates that the sensitivity is increased and the calculation time is decreased.Consequently,the proposed methodology manifests that the advanced Computer-Assisted Diagnosis(CAD)system has outstanding potential for automatic brain tumor diagnosis.The average segmentation time of the nodule slice order is 1.06s,and 97%of AGWO-ONN and 97.6%of AGWO-CNN achieve the best classification reliability. 展开更多
关键词 Advanced GWO with ONN(AGWO-ONN) Advanced GWO with CNN(AGWO-CNN) brain cancer superpixel segmentation based iterative clustering(SSBIC)algorithm
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基于INTERCONNECT的光子神经网络的设计 被引量:1
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作者 程亚玲 刘美玉 王瑾 《电子质量》 2022年第2期50-53,共4页
近年来,代表人工智能(Artificial Intelligence,AI)的神经网络技术正朝着高速低功耗的方向发展。然而,由于电子器件的固有极限,传统电子神经网络功率效率与计算速度难以得到进一步提高。而光子神经网络能够把光电子技术与神经网络模型... 近年来,代表人工智能(Artificial Intelligence,AI)的神经网络技术正朝着高速低功耗的方向发展。然而,由于电子器件的固有极限,传统电子神经网络功率效率与计算速度难以得到进一步提高。而光子神经网络能够把光电子技术与神经网络模型有机地结合,提供了突破这一瓶颈的有效手段。该文介绍了基于INTERCONNECT软件搭建的光子神经网络Gri Net,分析该网络的线性计算结构和非线性激活单元,并实现对手写数字的识别,准确率可以达到90%。不同于以往单纯的数学理论实现,该文利用物理器件搭建了光子神经网络,成果可用于光学神经网络的训练算法开发和光子芯片的高效识别任务,有较强的现实意义。 展开更多
关键词 光子神经网络(ONN) 马赫曾德尔干涉仪(MZI) INTERCONNECT
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Analysis of Marine Pollution of Ports and Jetties in Rivers State, Nigeria
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作者 Samson Nitonye Ofanson Uyi 《Open Journal of Marine Science》 2018年第1期114-135,共22页
Ports and jetties complex operations come with various forms of pollutions. The analysis of marine pollution from ports becomes very necessary and complicated due to the various types of pollution, sources, effects an... Ports and jetties complex operations come with various forms of pollutions. The analysis of marine pollution from ports becomes very necessary and complicated due to the various types of pollution, sources, effects and different characteristics. The sources of environmental pollution other than ships and from industrial activities in port and jetties were critically looked at and analyzed. A complete review of the environmental pollution in ports and the tools to assess and minimize such negative environmental impact are analyzed. The instrument of questionnaires was employed and distributed among two seaports and one jetty;Onne, Okrika and Port Harcourt to collect respondents’ opinions on effects, sources and causes of marine pollution. The chi-square test for independence was used with 180 respondents from Onne port, Port Harcourt port and Okrika jetty. Water sample was collected from Onne seaport and pollution contents such as total petroleum hydrocarbon (TPH), bio-chemical oxygen demand (BOD), turbidity, pH and salinity were tested in the laboratory. The result shows that Onne water had a salinity level of 20,790 (mg/l) which under the salinity range of water is considered saline, a turbidity level of 4.00 (NTU) which was considered average comparing with a 5.00 (NTU) bench mark, BOD5 level of 0.48 (mg/l) which was considered pristine because most pristine seawater will have BOD below 1 (mg/l), pH level of 7.77 which falls under the range of sea water being alkaline (7.2 - 8.4), TPH level of 2.98 (mg/l) since all conditions of sampling and sample preservations were observed and the value is less than the DPR limit (10 mg/l). It was concluded that the activities in Onne port are within the acceptable limits. It was also observed from the questionnaire that a larger population of respondents in Onne, Okrika and Port Harcourt ports where conscious of the sources and effects of environmental pollution from their respective ports. 展开更多
关键词 POLLUTION Ports SHIPS SALINITY Sea Water Onne Okrika PORT Harcourt
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H.K.Onnes对超导性的发现
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作者 Oubo.,RB 王世德 《科学(中文版)》 1997年第7期46-51,共6页
关键词 超导性 温度 超导体 Onnes
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Sn^(Ⅳ)and Zr^(Ⅳ)Compounds of a C_(3)-Symmetric Ligand with Amine[ONN]and[ONNO]Coordination Sites
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作者 Carolina von EBen Iris M.Oppel 《International Journal of Organic Chemistry》 2017年第4期325-335,共11页
This contribution describes the synthesis and structural characterization of a triaminoguanidinium (TAG)-based ligand [H6(OMe)3Limin]BF4 (1) containing imine bonds (Limin) and its reduction with a dimethylamino borane... This contribution describes the synthesis and structural characterization of a triaminoguanidinium (TAG)-based ligand [H6(OMe)3Limin]BF4 (1) containing imine bonds (Limin) and its reduction with a dimethylamino borane complex to the corresponding amine compound (Lamin)[H9(OMe)3Lamin]OTs (2). In solution, both ligands are C3-symmetric but crystal structures show the great influence of the reduction on the molecular structure. We show that the planar imine ligand is converted to a highly flexible compound which has nine potential coordination sites, three phenoxy and six amine donors, for binding metal ions. First solid state structures of 1:1 (metal:ligand) coordination compounds with SnIV and ZrIV are presented. SnIV exhibits an octahedral coordination sphere and is bound in a facial [ONN] coordination pocket. ZrIV is pentagonal bipyramidal coordinated and the ligand stabilizes this with its’ [ONNO] binding sites. 展开更多
关键词 Reduction Triaminoguanidinium [ONN]/[ONNO]Binding Pockets Sn^(Ⅳ)Complex Zr^(Ⅳ)Complex
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Brain-like training of a pre-sensor optical neural network with a backpropagation-free algorithm 被引量:1
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作者 ZHENG HUANG CONGHE WANG +4 位作者 CAIHUA ZHANG WANXIN SHI SHUKAI WU SIGANG YANG HONGWEI CHEN 《Photonics Research》 2025年第4期915-923,共9页
Deep learning has rapidly advanced amidst the proliferation of large models,leading to challenges in computational resources and power consumption.Optical neural networks(ONNs)offer a solution by shifting computation ... Deep learning has rapidly advanced amidst the proliferation of large models,leading to challenges in computational resources and power consumption.Optical neural networks(ONNs)offer a solution by shifting computation to optics,thereby leveraging the benefits of low power consumption,low latency,and high parallelism.The current training paradigm for ONNs primarily relies on backpropagation(BP).However,the reliance is incompatible with potential unknown processes within the system,which necessitates detailed knowledge and precise mathematical modeling of the optical process.In this paper,we present a pre-sensor multilayer ONN with nonlinear activation,utilizing a forward-forward algorithm to directly train both optical and digital parameters,which replaces the traditional backward pass with an additional forward pass.Our proposed nonlinear optical system demonstrates significant improvements in image classification accuracy,achieving a maximum enhancement of 9.0%.It also validates the efficacy of training parameters in the presence of unknown nonlinear components in the optical system.The proposed training method addresses the limitations of BP,paving the way for applications with a broader range of physical transformations in ONNs. 展开更多
关键词 neural networks onns offer shifting computation deep learning backpropagation free image classification detailed kn optical neural networks forward forward algorithm
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Optical neural networks based on perovskite solar cells
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作者 KAICHENG ZHANG JONATHON HARWELL +2 位作者 DAVIDE PIERANGELI CLAUDIO CONTI ANDREA DI FALCO 《Photonics Research》 2025年第2期382-386,共5页
Optical neural networks(ONNs)are a class of emerging computing platforms that leverage the properties of light to perform ultra-fast computations with ultra-low energy consumption.ONNs often use CCD cameras as the out... Optical neural networks(ONNs)are a class of emerging computing platforms that leverage the properties of light to perform ultra-fast computations with ultra-low energy consumption.ONNs often use CCD cameras as the output layer.In this work,we propose the use of perovskite solar cells as a promising alternative to imaging cameras in ONN designs.Solar cells are ubiquitous,versatile,highly customizable,and can be fabricated quickly in laboratories.Their large acquisition area and outstanding efficiency enable them to generate output signals with a large dynamic range without the need for amplification.Here we have experimentally demonstrated the feasibility of using perovskite solar cells for capturing ONN output states,as well as the capability of single-layer random ONNs to achieve excellent performance even with a very limited number of pixels.Our results show that the solar-cell-based ONN setup consistently outperforms the same setup with CCD cameras of the same resolution.These findings highlight the potential of solar-cell-based ONNs as an ideal choice for automated and battery-free edge-computing applications. 展开更多
关键词 imaging cameras class emerging computing platforms edge computing ccd cameras optical neural networks onns optical neural networks CCD cameras perovskite solar cells
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High-speed and versatile ONN through parametric-based nonlinear computation
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作者 XIN DONG YUANJIA WANG +2 位作者 XIAOXIAO WEN Yi ZHOU KENNETH K.Y.WONG 《Photonics Research》 2025年第6期1647-1653,共7页
Neural networks(NNs),especially electronic-based NNs,have been rapidly developed in the past few decades.However,the electronic-based NNs rely more on highly advanced and heavy power-consuming hardware,facing its bott... Neural networks(NNs),especially electronic-based NNs,have been rapidly developed in the past few decades.However,the electronic-based NNs rely more on highly advanced and heavy power-consuming hardware,facing its bottleneck due to the slowdown of Moore's law.Optical neural networks(ONNs),in which NNs are realized via optical components with information carried by photons at the speed of light,are drawing more attention nowadays.Despite the advantages of higher processing speed and lower system power consumption,one major challenge is to realize reliable and reusable algorithms in physical approaches,particularly nonlinear functions,for higher accuracy.In this paper,a versatile parametric-process-based ONN is demonstrated with its adaptable nonlinear computation realized using the highly nonlinear fiber(HNLF).With the specially designed modelocked laser(MLL)and dispersive Fourier transform(DFT)algorithm,the overall computation frame rate can reach up to 40 MHz.Compared to ONNs using only linear computations,this system is able to improve the classification accuracies from 81.8%to 88.8%for the MNIST-digit dataset,and from 80.3%to 97.6%for the Vowel spoken audio dataset,without any hardware modifications. 展开更多
关键词 photonic computing nonlinear functions high speed computation parametric based nonlinear computation neural networks onns neural networks nns especially optical neural networks classification accuracy
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End-to-end all-optical nonlinear activator enabled by a Brillouin fiber amplifier
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作者 CAIHONG TENG QIHAO SUN +4 位作者 SHENGKUN CHEN YIXUAN HUANG LINGJIE ZHANG AOBO REN JIANG WU 《Photonics Research》 2025年第8期2145-2158,共14页
The rapid growth of deep learning applications has sparked a revolution in computing paradigms,with optical neural networks(ONNs)emerging as a promising platform for achieving ultra-high computing power and energy eff... The rapid growth of deep learning applications has sparked a revolution in computing paradigms,with optical neural networks(ONNs)emerging as a promising platform for achieving ultra-high computing power and energy efficiency.Despite great progress in analog optical computing,the lack of scalable optical nonlinearities and losses in photonic devices pose considerable challenges for power levels,energy efficiency,and signal latency.Here,we report an end-to-end all-optical nonlinear activator that utilizes the energy conversion of Brillouin scattering to perform efficient nonlinear processing.The activator exhibits an ultra-low activation threshold(24 nW),a wide transmission bandwidth(over 40 GHz),strong robustness,and high energy transfer efficiency.These advantages provide a feasible solution to overcome the existing bottlenecks in ONNs.As a proof-of-concept,a series of tasks is designed to validate the capability of the proposed activator as an activation unit for ONNs.Simulations show that the experiment-based nonlinear model outperforms classical activation functions in classification(97.64%accuracy for MNIST and 87.84%for Fashion-MNIST)and regression(with a symbol error rate as low as 0%)tasks.This work provides valuable insights into the innovative design of all-optical neural networks. 展开更多
关键词 deep learning analog optical computingthe Brillouin fiber amplifier optical neural networks onns emerging all optical nonlinear activator optical neural networks revolution computing paradigmswith photonic devices
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Synthesis, Characterization and Antimicrobial Activity of Oxovanadium(IV) Complexes of Schiff Base Hydrazones Containing Quinoxaline Moiety
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作者 Lakshmi, P. V. Anantha Satyanarayana, T. Reddy, P. Saritha 《Chinese Journal of Chemistry》 SCIE CAS CSCD 2012年第4期935-940,共6页
The oxovanadium(IV) complexes of the Schiff base hydrazones, synthesized from 3-hydrazinoquinoxaline-2- one (HQO) with salicylaldehyde (HSHQO), o-hydroxyacetophenone (HHAHQO), dehydroacetic acid (HDHAHQO) an... The oxovanadium(IV) complexes of the Schiff base hydrazones, synthesized from 3-hydrazinoquinoxaline-2- one (HQO) with salicylaldehyde (HSHQO), o-hydroxyacetophenone (HHAHQO), dehydroacetic acid (HDHAHQO) and o-nitrobenzaldehyde (NBHQO) were synthesized and characterized on the basis of analytical, conductance, magnetic moment, infrared, NMR, ESR and electronic spectral data. The ligands HSHQO, HDHAHQO behaved as monobasic tridentate ONN donors through phenolic oxygen, azomethine nitrogens. The ligand HAHQO acted as a monobasic bidentate ON donor through the phenolic oxygen, azomethine (free) nitrogen and the ligand NBHQO acted as neutral bidentate ON donor through oxygen of the nitro group and azomethine (free) nitrogen. 展开更多
关键词 oxovanadium(IV) HYDRAZONES ONN donor ON donor
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