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抗污界面构建及其电化学生物传感应用进展
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作者 黎振华 诸颖 +1 位作者 陈静 宋世平 《应用化学》 CAS CSCD 北大核心 2022年第5期736-748,共13页
电化学生物传感器具有灵敏度高、便携性好、响应快速和易于集成等优点,在临床检测方面有很大应用潜力,并在可穿戴健康监测领域得到了快速发展。但在实际临床生物样本检测中,非靶标生物物质会在电极表面产生非特异性吸附(即生物污染),影... 电化学生物传感器具有灵敏度高、便携性好、响应快速和易于集成等优点,在临床检测方面有很大应用潜力,并在可穿戴健康监测领域得到了快速发展。但在实际临床生物样本检测中,非靶标生物物质会在电极表面产生非特异性吸附(即生物污染),影响了电化学生物传感器的性能。因此,构建具有防污染能力的传感界面(抗污界面),防止非靶标物质吸附到电极表面,对于扩大电化学生物传感器的实际应用范围,实现在复杂生物样本中的检测至关重要。本文概述了物理、化学和生物抗污电极界面的构建及其在临床相关生物标志物检测中的应用,为电化学生物传感器实际应用性能的提升提供技术参考,并通过对界面抗污原理和存在问题的探讨,对抗污界面发展前景和未来趋势予以展望。 展开更多
关键词 抗污界面 电化学生物传感 生物样本 临床检测
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用业务语言取代IT语言
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作者 Sharon Taylor Ken Turbitt 《软件世界》 2007年第15期63-64,共2页
业务经理希望IT部门不仅帮助公司实现业务目标的职能,而且还要进行创新。所以,IT部门应致力了解新的技术方向并充分利用各种技术,做到不仅提高业务流的有效性,而且提供创新服务和产品来拓展新的业务机会。这种业务经营方式要求IT具... 业务经理希望IT部门不仅帮助公司实现业务目标的职能,而且还要进行创新。所以,IT部门应致力了解新的技术方向并充分利用各种技术,做到不仅提高业务流的有效性,而且提供创新服务和产品来拓展新的业务机会。这种业务经营方式要求IT具备更高的服务管理成熟度。在这种方式中,不仅是强调建立合理结构、进行严格控制并处理有效服务管理的各个元素,而是让IT部门成为经营业务的合作伙伴。 展开更多
关键词 IT部门 业务流 语言 技术方向 创新服务 服务管理 经营方式 合理结构
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Elastic Optimization for Stragglers in Edge Federated Learning
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作者 Khadija Sultana Khandakar Ahmed +1 位作者 Bruce Gu Hua Wang 《Big Data Mining and Analytics》 EI CSCD 2023年第4期404-420,共17页
To fully exploit enormous data generated by intelligent devices in edge computing,edge federated learning(EFL)is envisioned as a promising solution.The distributed collaborative training in EFL deals with delay and pr... To fully exploit enormous data generated by intelligent devices in edge computing,edge federated learning(EFL)is envisioned as a promising solution.The distributed collaborative training in EFL deals with delay and privacy issues compared to traditional centralized model training.However,the existence of straggling devices,responding slow to servers,degrades model performance.We consider data heterogeneity from two aspects:high dimensional data generated at edge devices where the number of features is greater than that of observations and the heterogeneity caused by partial device participation.With large number of features,computation overhead on the devices increases,causing edge devices to become stragglers.And incorporation of partial training results causes gradients to be diverged which further exaggerates when more training is performed to reach local optima.In this paper,we introduce elastic optimization methods for stragglers due to data heterogeneity in edge federated learning.Specifically,we define the problem of stragglers in EFL.Then,we formulate an optimization problem to be solved at edge devices.We customize a benchmark algorithm,FedAvg,to obtain a new elastic optimization algorithm(FedEN)which is applied in local training of edge devices.FedEN mitigates stragglers by having a balance between lasso and ridge penalization thereby generating sparse model updates and enforcing parameters as close as to local optima.We have evaluated the proposed model on MNIST and CIFAR-10 datasets.Simulated experiments demonstrate that our approach improves run time training performance by achieving average accuracy with less communication rounds.The results confirm the improved performance of our approach over benchmark algorithms. 展开更多
关键词 edge computing federated learning distributed machine learning REGULARIZATION stragglers
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