Processing Networks: Fluid Models and Stability (Hardcover)
暫譯: 處理網路:流體模型與穩定性 (精裝版)
Dai, J. G., Harrison, J. Michael
- 出版商: Cambridge
- 出版日期: 2020-10-15
- 售價: $1,260
- 貴賓價: 9.8 折 $1,235
- 語言: 英文
- 頁數: 404
- 裝訂: Hardcover - also called cloth, retail trade, or trade
- ISBN: 1108488897
- ISBN-13: 9781108488891
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相關分類:
大數據 Big-data、資訊科學
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商品描述
This state-of-the-art account unifies material developed in journal articles over the last 35 years, with two central thrusts: It describes a broad class of system models that the authors call 'stochastic processing networks' (SPNs), which include queueing networks and bandwidth sharing networks as prominent special cases; and in that context it explains and illustrates a method for stability analysis based on fluid models. The central mathematical result is a theorem that can be paraphrased as follows: If the fluid model derived from an SPN is stable, then the SPN itself is stable. Two topics discussed in detail are (a) the derivation of fluid models by means of fluid limit analysis, and (b) stability analysis for fluid models using Lyapunov functions. With regard to applications, there are chapters devoted to max-weight and back-pressure control, proportionally fair resource allocation, data center operations, and flow management in packet networks. Geared toward researchers and graduate students in engineering and applied mathematics, especially in electrical engineering and computer science, this compact text gives readers full command of the methods.
商品描述(中文翻譯)
這本最先進的著作整合了過去35年來在期刊文章中發展的材料,主要有兩個重點:它描述了一類廣泛的系統模型,作者稱之為「隨機處理網路」(stochastic processing networks, SPNs),其中包括排隊網路和帶寬共享網路作為突出的特例;在這個背景下,它解釋並示範了一種基於流體模型的穩定性分析方法。核心數學結果是一個定理,可以這樣轉述:如果從SPN導出的流體模型是穩定的,那麼SPN本身也是穩定的。詳細討論的兩個主題是(a)通過流體極限分析推導流體模型,以及(b)使用Lyapunov函數對流體模型進行穩定性分析。關於應用,書中有專門章節討論最大權重和反壓控制、比例公平資源分配、數據中心運營以及封包網路中的流量管理。本書針對工程和應用數學的研究人員及研究生,特別是在電機工程和計算機科學領域,這本簡明的文本使讀者能夠全面掌握這些方法。