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Decentralized Optimization in Networks : Algorithmic Efficiency and Privacy Preservation
Qingguo Lu; Xiaofeng Liao; Huaqing Li; Shaojiang Deng; Yantao Li; Keke Zhang
Morgan Kaufmann (2025)
Pehmeäkantinen kirja
131,50
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Generalizing from Limited Resources in the Open World - Second International Workshop, GLOW 2024, Held in Conjunction with IJCAI
Jinyang Guo; Yuqing Ma; Yifu Ding; Ruihao Gong; Xingyu Zheng; Changyi He; Yantao Lu; Xianglong Liu
Springer Verlag, Singapore (2024)
Pehmeäkantinen kirja
68,90
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ostoskoriin kpl
Siirry koriin
Decentralized Optimization in Networks : Algorithmic Efficiency and Privacy Preservation
131,50 €
Morgan Kaufmann
Sivumäärä: 300 sivua
Asu: Pehmeäkantinen kirja
Julkaisuvuosi: 2025, 01.09.2025 (lisätietoa)
Kieli: Englanti
Decentralized algorithms are useful for solving large-scale complex optimization problems, which not only alleviate the single-point resource bottleneck problem of centralized algorithms, but also possess higher scalability. Decentralized Optimization in Networks: Algorithmic Efficiency and Privacy Preservation provides the reader with theoretical foundations, practical guidance, and problem-solving approaches to decentralized optimization. It teaches how to apply decentralized optimization algorithms to improve optimization efficiency (communication efficiency, computational efficiency, fast convergence), solve large-scale problems (training for large-scale datasets), achieve privacy preservation (effectively counter external eavesdropping attacks, differential attacks, etc), and overcome a range of challenges in complex decentralized network environments (random sleep, random link failures, time-varying, directed, etc). It focuses on: 1) communication-efficiency: event-triggered communication, random link failures, zeroth-order gradients. 2) computation-efficiency: variance-reduction, Polyak’s projection, stochastic gradient, random sleep. 3) privacy preservation: differential privacy, edge-based correlated perturbations, conditional noises. It uses simulation results, including practical application examples, to illustrate the effectiveness and the practicability of decentralized optimization algorithms.


  • Introduces the latest and advanced algorithms in decentralized optimization of networked control systems
  • Proposes effective strategies for efficient execution and privacy preservation in the development of decentralized optimization algorithms
  • Constructs the frameworks of convergence and complexity analysis, privacy and security proof, and performance evaluation
  • Includes systematic detailed implementations on how decentralized optimization algorithms solve the problems in real world systems: smart grid systems, online learning systems, wireless sensor systems, etc
  • Helps reader to develop their own novel decentralized optimization algorithms


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Myymäläsaatavuus
Helsinki
Tapiola
Turku
Tampere
Decentralized Optimization in Networks : Algorithmic Efficiency and Privacy Preservation
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ISBN:
9780443333378
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