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A novel routing method for dynamic control in distributed computing power networks 被引量:2
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作者 Lujie Guo Fengxian Guo Mugen Peng 《Digital Communications and Networks》 CSCD 2024年第6期1644-1652,共9页
Driven by diverse intelligent applications,computing capability is moving from the central cloud to the edge of the network in the form of small cloud nodes,forming a distributed computing power network.Tasked with bo... Driven by diverse intelligent applications,computing capability is moving from the central cloud to the edge of the network in the form of small cloud nodes,forming a distributed computing power network.Tasked with both packet transmission and data processing,it requires joint optimization of communications and computing.Considering the diverse requirements of applications,we develop a dynamic control policy of routing to determine both paths and computing nodes in a distributed computing power network.Different from traditional routing protocols,additional metrics related to computing are taken into consideration in the proposed policy.Based on the multi-attribute decision theory and the fuzzy logic theory,we propose two routing selection algorithms,the Fuzzy Logic-Based Routing(FLBR)algorithm and the low-complexity Pairwise Multi-Attribute Decision-Making(l PMADM)algorithm.Simulation results show that the proposed policy could achieve better performance in average processing delay,user satisfaction,and load balancing compared with existing works. 展开更多
关键词 computing power networks ROUTING Fuzzy logic Multi-attribute decision making
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A game incentive mechanism for energy efficient federated learning in computing power networks
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作者 Xiao Lin Ruolin Wu +1 位作者 Haibo Mei Kun Yang 《Digital Communications and Networks》 CSCD 2024年第6期1741-1747,共7页
Computing Power Network(CPN)is emerging as one of the important research interests in beyond 5G(B5G)or 6G.This paper constructs a CPN based on Federated Learning(FL),where all Multi-access Edge Computing(MEC)servers a... Computing Power Network(CPN)is emerging as one of the important research interests in beyond 5G(B5G)or 6G.This paper constructs a CPN based on Federated Learning(FL),where all Multi-access Edge Computing(MEC)servers are linked to a computing power center via wireless links.Through this FL procedure,each MEC server in CPN can independently train the learning models using localized data,thus preserving data privacy.However,it is challenging to motivate MEC servers to participate in the FL process in an efficient way and difficult to ensure energy efficiency for MEC servers.To address these issues,we first introduce an incentive mechanism using the Stackelberg game framework to motivate MEC servers.Afterwards,we formulate a comprehensive algorithm to jointly optimize the communication resource(wireless bandwidth and transmission power)allocations and the computation resource(computation capacity of MEC servers)allocations while ensuring the local accuracy of the training of each MEC server.The numerical data validates that the proposed incentive mechanism and joint optimization algorithm do improve the energy efficiency and performance of the considered CPN. 展开更多
关键词 computing power network Federated learning Energy efficiency Stackelberg game Resource allocation
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FedACT:An adaptive chained training approach for federated learning in computing power networks
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作者 Min Wei Qianying Zhao +4 位作者 Bo Lei Yizhuo Cai Yushun Zhang Xing Zhang Wenbo Wang 《Digital Communications and Networks》 CSCD 2024年第6期1576-1589,共14页
Federated Learning(FL)is a novel distributed machine learning methodology that addresses large-scale parallel computing challenges while safeguarding data security.However,the traditional FL model in communication sce... Federated Learning(FL)is a novel distributed machine learning methodology that addresses large-scale parallel computing challenges while safeguarding data security.However,the traditional FL model in communication scenarios,whether for uplink or downlink communications,may give rise to several network problems,such as bandwidth occupation,additional network latency,and bandwidth fragmentation.In this paper,we propose an adaptive chained training approach(Fed ACT)for FL in computing power networks.First,a Computation-driven Clustering Strategy(CCS)is designed.The server clusters clients by task processing delays to minimize waiting delays at the central server.Second,we propose a Genetic-Algorithm-based Sorting(GAS)method to optimize the order of clients participating in training.Finally,based on the table lookup and forwarding rules of the Segment Routing over IPv6(SRv6)protocol,the sorting results of GAS are written into the SRv6 packet header,to control the order in which clients participate in model training.We conduct extensive experiments on two datasets of CIFAR-10 and MNIST,and the results demonstrate that the proposed algorithm offers improved accuracy,diminished communication costs,and reduced network delays. 展开更多
关键词 computing power network(CPN) Federated learning(FL) Segment routing IPv6(SRv6) Communication overheads Model accuracy
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Computing Power Network:The Architecture of Convergence of Computing and Networking towards 6G Requirement 被引量:57
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作者 Xiongyan Tang Chang Cao +4 位作者 Youxiang Wang Shuai Zhang Ying Liu Mingxuan Li Tao He 《China Communications》 SCIE CSCD 2021年第2期175-185,共11页
In 6G era,service forms in which computing power acts as the core will be ubiquitous in the network.At the same time,the collaboration among edge computing,cloud computing and network is needed to support edge computi... In 6G era,service forms in which computing power acts as the core will be ubiquitous in the network.At the same time,the collaboration among edge computing,cloud computing and network is needed to support edge computing service with strong demand for computing power,so as to realize the optimization of resource utilization.Based on this,the article discusses the research background,key techniques and main application scenarios of computing power network.Through the demonstration,it can be concluded that the technical solution of computing power network can effectively meet the multi-level deployment and flexible scheduling needs of the future 6G business for computing,storage and network,and adapt to the integration needs of computing power and network in various scenarios,such as user oriented,government enterprise oriented,computing power open and so on. 展开更多
关键词 6G edge computing cloud computing convergence of cloud and network computing power network
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Computing Power Network:A Survey 被引量:24
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作者 Sun Yukun Lei Bo +4 位作者 Liu Junlin Huang Haonan Zhang Xing Peng Jing Wang Wenbo 《China Communications》 SCIE CSCD 2024年第9期109-145,共37页
With the rapid development of cloud computing,edge computing,and smart devices,computing power resources indicate a trend of ubiquitous deployment.The traditional network architecture cannot efficiently leverage these... With the rapid development of cloud computing,edge computing,and smart devices,computing power resources indicate a trend of ubiquitous deployment.The traditional network architecture cannot efficiently leverage these distributed computing power resources due to computing power island effect.To overcome these problems and improve network efficiency,a new network computing paradigm is proposed,i.e.,Computing Power Network(CPN).Computing power network can connect ubiquitous and heterogenous computing power resources through networking to realize computing power scheduling flexibly.In this survey,we make an exhaustive review on the state-of-the-art research efforts on computing power network.We first give an overview of computing power network,including definition,architecture,and advantages.Next,a comprehensive elaboration of issues on computing power modeling,information awareness and announcement,resource allocation,network forwarding,computing power transaction platform and resource orchestration platform is presented.The computing power network testbed is built and evaluated.The applications and use cases in computing power network are discussed.Then,the key enabling technologies for computing power network are introduced.Finally,open challenges and future research directions are presented as well. 展开更多
关键词 computing power modeling computing power network computing power scheduling information awareness network forwarding
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Efficient Digital Twin Placement for Blockchain-Empowered Wireless Computing Power Network
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作者 Wei Wu Liang Yu +2 位作者 Liping Yang Yadong Zhang Peng Wang 《Computers, Materials & Continua》 SCIE EI 2024年第7期587-603,共17页
As an open network architecture,Wireless Computing PowerNetworks(WCPN)pose newchallenges for achieving efficient and secure resource management in networks,because of issues such as insecure communication channels and... As an open network architecture,Wireless Computing PowerNetworks(WCPN)pose newchallenges for achieving efficient and secure resource management in networks,because of issues such as insecure communication channels and untrusted device terminals.Blockchain,as a shared,immutable distributed ledger,provides a secure resource management solution for WCPN.However,integrating blockchain into WCPN faces challenges like device heterogeneity,monitoring communication states,and dynamic network nature.Whereas Digital Twins(DT)can accurately maintain digital models of physical entities through real-time data updates and self-learning,enabling continuous optimization of WCPN,improving synchronization performance,ensuring real-time accuracy,and supporting smooth operation of WCPN services.In this paper,we propose a DT for blockchain-empowered WCPN architecture that guarantees real-time data transmission between physical entities and digital models.We adopt an enumeration-based optimal placement algorithm(EOPA)and an improved simulated annealing-based near-optimal placement algorithm(ISAPA)to achieve minimum average DT synchronization latency under the constraint of DT error.Numerical results show that the proposed solution in this paper outperforms benchmarks in terms of average synchronization latency. 展开更多
关键词 Wireless computing power network blockchain digital twin placement minimum synchronization latency
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Heterogeneous resource allocation with latency guarantee for computing power network
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作者 Ailing Zhong Dapeng Wu +1 位作者 Boran Yang Ruyan Wang 《Digital Communications and Networks》 2026年第1期25-37,共13页
Computing Power Network(CPN)is a new paradigm that integrates communication,computing,and storage resources to provide services for tasks.However,tasks composed of non-independent subtasks have a preference for the re... Computing Power Network(CPN)is a new paradigm that integrates communication,computing,and storage resources to provide services for tasks.However,tasks composed of non-independent subtasks have a preference for the resources required at each stage,which increases the difficulty of heterogeneous resource allocation and reduces the latency performance of CPN services.Motivated by this,this paper jointly optimizes the full-service cycle of tasks,including transmission,task partitioning,and offloading.First,the transmission bandwidth is dynamically configured based on delay sensitivity of tasks.Second,with the real-time information from edge resource clusters and state resource clusters in the network,the optimal partitioning for a computation task is derived.Third,personalized resource allocation schemes are customized for computation and storage tasks respectively.Finally,the impact of resource parameter configuration on the latency violation probability of CPN is revealed.Moreover,compared with the benchmark schemes,our proposed scheme reduces the network latency violation probability by up to 1.17×in the same network setting. 展开更多
关键词 Latency violation probability Subtask dependencies Resource allocation computing power network
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Toward edge-computing-enabled collision-free scheduling management for autonomous vehicles at unsignalized intersections
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作者 Ziyi Lu Tianxiong Wu +4 位作者 Jinshan Su Yunting Xu Bo Qian Tianqi Zhang Haibo Zhou 《Digital Communications and Networks》 CSCD 2024年第6期1600-1610,共11页
With the support of Vehicle-to-Everything(V2X)technology and computing power networks,the existing intersection traffic order is expected to benefit from efficiency improvements and energy savings by new schemes such ... With the support of Vehicle-to-Everything(V2X)technology and computing power networks,the existing intersection traffic order is expected to benefit from efficiency improvements and energy savings by new schemes such as de-signalization.How to effectively manage autonomous vehicles for traffic control with high throughput at unsignalized intersections while ensuring safety has been a research hotspot.This paper proposes a collision-free autonomous vehicle scheduling framework based on edge-cloud computing power networks for unsignalized intersections where the lanes entering the intersections are undirectional,and designs an efficient communication system and protocol.First,by analyzing the collision point occupation time,this paper formulates an absolute value programming problem.Second,this problem is solved with low complexity by the Edge Intelligence Optimal Entry Time(EI-OET)algorithm based on edge-cloud computing power support.Then,the communication system and protocol are designed for the proposed scheduling scheme to realize efficient and low-latency vehicular communications.Finally,simulation experiments compare the proposed scheduling framework with directional and traditional traffic light scheduling mechanisms,and the experimental results demonstrate its high efficiency,low latency,and low complexity. 展开更多
关键词 Unsignalized intersection Automatic vehicle scheduling Edge computing Communication protocol computing power network
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Research on the Practical Strategy of 5G Mobile Communication Technology in Power Communication
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作者 Wanshen Peng 《Journal of Electronic Research and Application》 2025年第3期119-124,共6页
With the acceleration of the intelligent transformation of power systems,the requirements for communication technology are increasingly stringent.The application of 5G mobile communication technology in power communic... With the acceleration of the intelligent transformation of power systems,the requirements for communication technology are increasingly stringent.The application of 5G mobile communication technology in power communication is analyzed.In this study,5G technology features,application principles,and practical strategies are discussed,and methods such as network slicing,customized deployment,edge computing collaborative application,communication equipment integration and upgrading,and multi-technology collaboration and complementation are proposed.It aims to effectively improve the efficiency,reliability,and security of power communication,solve the problem that traditional communication technology is difficult to meet the diversified needs of power business,and achieve the effect of optimizing the power communication network and supporting the intelligent development of the power system. 展开更多
关键词 5G mobile communication technology Electric power communication network slicing Edge computing Multi-technology collaboration
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区域协调发展下建设全国一体化算力网的理论逻辑与实践路径
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作者 王欣亮 李想 于冰 《西北大学学报(哲学社会科学版)》 北大核心 2026年第1期55-68,共14页
在进一步优化生产力布局、推进区域协调发展的目标下,以生态系统理论为基础,建构“空间-权力-治理”三重嬗变逻辑,探索全国一体化算力网驱动区域协调发展的理论关系及可行路径。首先,沿空间逻辑,探索一体化算力网对数据要素集聚形态和... 在进一步优化生产力布局、推进区域协调发展的目标下,以生态系统理论为基础,建构“空间-权力-治理”三重嬗变逻辑,探索全国一体化算力网驱动区域协调发展的理论关系及可行路径。首先,沿空间逻辑,探索一体化算力网对数据要素集聚形态和劳动力、资本要素流动形态的变革机制,以夯实协调发展资源支撑;沿权力逻辑,阐明一体化算力网重构区域发展权和收益权的内在机理,以激发协调发展主体动力;沿治理逻辑,揭示一体化算力网弥合区际治理技术、规则与环境差异的关键路径,以优化区域协同治理环境。其次,剖析一体化算力网在平衡资源禀赋、调节收益结构及推动制度协同过程中的实践困境。最后,提出:应加强一体化算力网标准与网络建设,缩小算力资源禀赋相对差异;构建激励相容的算力考核体系,保障协调主体可持续动力;增强顶层协调权威与规则约束力,为算力资源的高效调度提供刚性保障等,强化一体化算力网对区域协调发展驱动效应。这一结论不仅深化生态系统理论在解释区域协调发展中的理论价值,更呼应了党中央长期以来对区域协调发展问题的关注以及二十届四中全会关于“推进全国一体化算力网”会议精神。 展开更多
关键词 党的二十届四中全会 区域协调发展 生态系统理论 全国一体化算力网 生产力布局
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基于OSU技术的政企OTN网络演进策略研究
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作者 曹丽 蒋东君 张春玲 《通信与信息技术》 2026年第1期101-105,136,共6页
针对传统政企OTN网络存在的映射层级复杂、带宽利用率低、运维效率不足等问题,提出基于OSU(光业务单元)技术的演进策略。通过对比OSU与传统OTN、SDH技术特性,明确OSU在超低时延(降幅达30%~50%)、弹性带宽(2.6Mbit/s颗粒度灵活调整)、超... 针对传统政企OTN网络存在的映射层级复杂、带宽利用率低、运维效率不足等问题,提出基于OSU(光业务单元)技术的演进策略。通过对比OSU与传统OTN、SDH技术特性,明确OSU在超低时延(降幅达30%~50%)、弹性带宽(2.6Mbit/s颗粒度灵活调整)、超大连接数(单ODU4支持4000条业务)等方面的技术优势。结合政企网络分层特性,设计分阶段演进路径与“Underlay+Overlay”混合部署模式,并融合SDN/NFV技术实现动态资源调度与智能化运维。研究创新性体现在:提出面向算力网络的适应性优化架构,结合量子加密技术保障安全性,并通过多规模场景下的差异化策略降低改造成本。研究成果为政企OTN网络向OSU平滑演进提供了系统性解决方案,已通过某城域现网验证,初期投资节省近30%,时延稳定在2ms以内,具备大规模推广价值。 展开更多
关键词 OSU 政企OTN网络 演进模式 SDN/NFV 算力网络
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计及量测终端通信延迟的主动配电网准实时无功-电压控制
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作者 穆煜 徐俊俊 +2 位作者 张腾飞 张卉琳 吴巨爱 《电力自动化设备》 北大核心 2026年第3期85-92,共8页
大量分布式电源及智能量测终端接入配电网引发的数据与通信量增加,导致传统集中式电压控制响应迟滞,加剧电压波动。为此,提出一种计及终端通信延迟的主动配电网准实时无功-电压控制方法。基于网络拓扑映射部署边缘节点,利用边缘计算对... 大量分布式电源及智能量测终端接入配电网引发的数据与通信量增加,导致传统集中式电压控制响应迟滞,加剧电压波动。为此,提出一种计及终端通信延迟的主动配电网准实时无功-电压控制方法。基于网络拓扑映射部署边缘节点,利用边缘计算对配电网潮流进行前推回代分析,完成功率流、电压及线损的局部计算与分布式管理。在准实时监测光伏节点电压的基础上,协同光伏构建基于边缘节点的下垂式电压控制策略。针对通信延迟带来的控制步长异步问题,引入改进的一致性算法实现数据同步。算例仿真结果表明,所提方法在指令响应时效方面具有一定优势,能够有效解决光伏接入引发的节点电压波动问题,提升主动配电网运行与调控的稳定性与可靠性。 展开更多
关键词 主动配电网 分布式光伏 电压控制 通信延迟 边缘计算 无功优化
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面向算力网络的端网协同RDMA拥塞控制
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作者 刘亚萍 严定宇 +3 位作者 方滨兴 许名广 张硕 杨智凯 《通信学报》 北大核心 2026年第2期109-124,共16页
为解决远程直接内存访问(RDMA)技术跨域互联场景下的长控制回路及混合流量拥塞问题,提出了一种面向算力网络的拥塞控制方法WRCC。采用基于输入速率的公平速率计算策略,由交换机精确计算拥塞队列的端口公平速率。结合近源交换机双控制回... 为解决远程直接内存访问(RDMA)技术跨域互联场景下的长控制回路及混合流量拥塞问题,提出了一种面向算力网络的拥塞控制方法WRCC。采用基于输入速率的公平速率计算策略,由交换机精确计算拥塞队列的端口公平速率。结合近源交换机双控制回路与带内网络遥测技术,实现端网协同的速率控制,快速响应拥塞。仿真实验表明,与现有商用方法相比,WRCC能将平均流完成时间降低8%~47%,还能将尾流完成时间降低10%~70%。原型系统测试表明,与英伟达CX7相比,WRCC将短距离场景下尾时延降低7%~49%。在640 km长距离场景下,WRCC将平均时延降低2%~7%,尾时延降低45%~49%,平均吞吐量提升26%~90%。 展开更多
关键词 拥塞控制 远程直接内存访问 算力网络 端网协同
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适应算力需求的承载网络架构研究
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作者 张纬卿 《邮电设计技术》 2026年第2期50-55,共6页
简要归纳了算力业务的典型场景,通过分析算力驱动的业务核心要素变化趋势,从网络拓扑、组网灵活性、网络容量、网络无损性能、智能调度能力等方面论述了面向算力的承载网络演进策略。在此基础上,提出了算力网络整体架构模型、算力承载... 简要归纳了算力业务的典型场景,通过分析算力驱动的业务核心要素变化趋势,从网络拓扑、组网灵活性、网络容量、网络无损性能、智能调度能力等方面论述了面向算力的承载网络演进策略。在此基础上,提出了算力网络整体架构模型、算力承载网络的架构组成及关键技术。 展开更多
关键词 算力承载网络 算力路由 确定性网络 400G 细粒度OTN SRv6
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数字经济时代我国算力资源结构优化及发展策略探究
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作者 刘江华 宋涛 +1 位作者 余江南 谈鑫 《数字化转型》 2026年第2期82-92,共11页
算力作为数字经济时代的核心生产要素,其资源结构的合理性与优化程度,直接决定了对经济社会高质量发展的支撑效能。本研究以算力资源结构优化为核心,系统性地分析了我国算力资源的发展现状、区域特征,并从行业、规模、场景三个维度解析... 算力作为数字经济时代的核心生产要素,其资源结构的合理性与优化程度,直接决定了对经济社会高质量发展的支撑效能。本研究以算力资源结构优化为核心,系统性地分析了我国算力资源的发展现状、区域特征,并从行业、规模、场景三个维度解析需求驱动逻辑,深入剖析了算力支撑经济社会高质量发展的关键效能瓶颈,创造性地构建了“算力类型协同—区域布局优化—核心技术突破—绿色低碳升级—生态体系完善”的五维协同优化体系,形成了“结构—技术—模式—生态”四位一体的闭环优化路径,实现了从局部优化到系统升级的跨越。本研究旨在为我国算力资源从规模扩张向结构提质转型提供理论支撑与实践参考,助力构建普惠易用、绿色安全、协同高效的全国一体化算力网,为数字经济高质量发展奠定基础。 展开更多
关键词 数字经济 算力资源 结构优化 全国一体化算力网
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算力互联网安全风险与治理路径研究
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作者 王睿宁 孔松 +1 位作者 吴倩琳 韩非 《信息通信技术与政策》 2026年第2期10-17,共8页
算力互联网作为“云、网、边、端”一体化的新型基础设施,也是数字经济高质量发展的底层支撑,其逻辑集中、物理分散、资源异构的特性打破了传统安全边界,衍生出复杂风险。从算力互联网三层架构出发,系统梳理各类安全痛点,总结归纳风险体... 算力互联网作为“云、网、边、端”一体化的新型基础设施,也是数字经济高质量发展的底层支撑,其逻辑集中、物理分散、资源异构的特性打破了传统安全边界,衍生出复杂风险。从算力互联网三层架构出发,系统梳理各类安全痛点,总结归纳风险体系;结合可信计算、可靠运行、人工智能安全赋能等核心理念,构建算力互联网安全可信框架,并提出针对性治理路径。以期为算力互联网安全实践提供理论参考,为构建全国一体化算力网筑牢安全根基。 展开更多
关键词 算力互联网 算力网络 风险治理 安全可信
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基于动态时延感知的广域分布式算力调度技术研究
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作者 林观康 邓伟正 +3 位作者 沈增涛 杨任 桑柳 赵伟博 《信息通信技术与政策》 2026年第2期36-43,共8页
针对现有广域分布式算力调度忽视骨干网动态时延和故障影响的问题,提出基于动态时延感知调度(Dynamic Latency-Aware Scheduling,DLAS)的技术。该技术通过30 s周期探测骨干网时延,结合智能故障检测与自适应迁移策略,可实现更优的路由决... 针对现有广域分布式算力调度忽视骨干网动态时延和故障影响的问题,提出基于动态时延感知调度(Dynamic Latency-Aware Scheduling,DLAS)的技术。该技术通过30 s周期探测骨干网时延,结合智能故障检测与自适应迁移策略,可实现更优的路由决策和高可用保障。建立时延优化数学模型,理论证明可降低平均时延35%~50%,缩短故障恢复时间至分钟级。试验表明,DLAS的算力服务响应时延相比传统轮询调度降低42.3%,相比静态地理调度降低28.7%,服务可靠性提升至99.95%以上,可为构建高效可靠的分布式算力网络提供理论与实践指导。 展开更多
关键词 分布式算力网络 算力调度 时延感知 故障检测 自适应迁移
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基于边缘计算的电力线通信网络故障检测系统
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作者 张清华 冯添磊 董良雷 《电子设计工程》 2026年第2期165-168,177,共5页
当前电力线通信网络故障检测数据库多采用目标式设定,存在执行效率较低的问题,导致单元故障检测频次下降。为此,提出一种基于边缘计算的电力线通信网络故障检测系统,并对其进行设计与分析。依据故障检测的实际需求,构建系统硬件平台,集... 当前电力线通信网络故障检测数据库多采用目标式设定,存在执行效率较低的问题,导致单元故障检测频次下降。为此,提出一种基于边缘计算的电力线通信网络故障检测系统,并对其进行设计与分析。依据故障检测的实际需求,构建系统硬件平台,集成边缘计算功能模块;通过关联通信锁相环并采用多阶架构,提升系统执行效率。在此基础上,设计多阶故障检测数据库,完成软件部分的开发。测试结果表明,与基于传统蚁群算法的检测系统及传统大数据检测系统相比,所提出的边缘计算故障检测系统能够实现更高的单元故障检测频次,表明其在故障检测效率与针对性方面具有优势,具备实际应用价值。 展开更多
关键词 边缘计算 电力线 通信网络 网络故障 检测系统
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图神经网络表达能力研究:现状、问题与展望
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作者 崔冠宇 郭雨荷 魏哲巍 《计算》 2026年第1期26-33,共8页
近年来,图神经网络(graph neural networks,GNN)在多个领域得到了广泛应用,围绕其表达能力的研究也在不断推进。作者对这一系列表达能力研究进行详细梳理,并指出其中一些被系统性忽视的问题,包括从纯结构角度刻画图神经网络表达能力存... 近年来,图神经网络(graph neural networks,GNN)在多个领域得到了广泛应用,围绕其表达能力的研究也在不断推进。作者对这一系列表达能力研究进行详细梳理,并指出其中一些被系统性忽视的问题,包括从纯结构角度刻画图神经网络表达能力存在不全面性、预处理代价高于展现模型表达能力的问题所需代价,以及对节点特征的关注不足等三类问题。本研究认为,解决上述问题的一种可能路径是设计一种能够有效刻画GNN行为的计算模型,如可以采用基于资源受限的CONGEST模型的分析框架来研究GNN的表达能力。 展开更多
关键词 图神经网络 表达能力 计算模型 CONGEST模型 Weisfeiler-Lehman图同构测试 计算复杂性
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基于ME-SDM算法的5G电力调度通信网络优化设计
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作者 徐堂炜 罗洪文 +2 位作者 吴肖遥 王剑楠 赖炜杰 《移动信息》 2026年第1期13-15,共3页
在智能电网环境下,传统电力调度通信网络存在实时性和可靠性不足的问题。基于此,文中提出基于多边缘软件定义消息传递算法的优化设计方案。该方案以5G电力调度通信网络为研究对象,包含边缘智能感知、自适应路由、差异化优先级管理和分... 在智能电网环境下,传统电力调度通信网络存在实时性和可靠性不足的问题。基于此,文中提出基于多边缘软件定义消息传递算法的优化设计方案。该方案以5G电力调度通信网络为研究对象,包含边缘智能感知、自适应路由、差异化优先级管理和分布式安全框架的四维优化策略。仿真结果表明,优化后的ME-SDM算法有效提升了关键性能指标,满足了电力调度通信需求。 展开更多
关键词 5G网络 电力调度通信 ME-SDM算法 边缘计算
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