Reading Randomness I: New Horizons for Understanding Fractal and Fractional Calculus
暫譯: 閱讀隨機性 I:理解分形與分數微積分的新視野

Nigmatullin, Raoul R., Chen, Yangquan

  • 出版商: CRC
  • 出版日期: 2026-09-21
  • 售價: $5,550
  • 貴賓價: 9.5 折 $5,272
  • 語言: 英文
  • 頁數: 213
  • 裝訂: Hardcover - also called cloth, retail trade, or trade
  • ISBN: 1041348142
  • ISBN-13: 9781041348146
  • 相關分類: 機率統計學 Probability-and-statistics
  • 海外代購書籍(需單獨結帳)

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商品描述

Reading Randomness I: New Horizons for Understanding Fractal and Fractional Calculus shows readers how to understand and analyze seemingly "noisy" and irregular data. It offers practical methods for comparing and labeling fluctuations, ensuring reproducible results across laboratories, industries, and research fields.

The book begins with a narrative tour of how people have understood chance, from ancient divination and games to modern probability, information theory, and computing. In seven chapters, the authors provide step-by-step instructions for extracting reliable patterns from raw measurements. These instructions include removing trends, checking whether a signal has long-term memory, and identifying stable patterns hidden inside apparent randomness. The book also presents new tools for analyzing "trendless" sequences, extending Fourier-style analysis to complicated, multi-period data, and measuring correlations in a way that distinguishes between contributions from the system itself and the environment. Using a reader-friendly approach, the authors explain how "memory" kernels capture slow, history-dependent behavior. Throughout the book, the authors emphasize independent checks, surrogate tests, and instrument-path corrections to ensure that conclusions can be reliably and safely transferred across place and time.

With case studies ranging from transcendental numbers and electrical circuits to earthquake records and precious metal price data, this valuable guidebook will appeal to students, researchers, and professionals working with complex data in science, engineering, and finance.

商品描述(中文翻譯)

Reading Randomness I:理解分形與分數微積分的新視野,帶領讀者了解並分析看似「雜訊」且不規則的資料。本書提供比較與標記波動的實用方法,確保不同實驗室、產業與研究領域之間都能取得可重現的結果。

本書首先以敘事方式回顧人類理解偶然性的歷程,從古代占卜與遊戲,一路發展至現代的機率、資訊理論與計算。全書共七章,作者以逐步說明的方式,教導讀者如何從原始測量資料中擷取可靠的模式。內容包括移除趨勢、檢查訊號是否具有長期記憶,以及辨識隱藏在表面隨機性之中的穩定模式。本書也介紹分析「無趨勢」序列的新工具,將 Fourier 風格的分析延伸至複雜的多週期資料,並以能夠區分系統本身與環境因素貢獻的方式測量相關性。作者採用易於理解的方式,說明「記憶」核心(memory kernels)如何捕捉緩慢且取決於歷史的行為。全書始終強調獨立檢查、替代資料測試(surrogate tests)以及儀器路徑修正,以確保研究結論能夠可靠且安全地跨越不同地點與時間加以應用。

本書的案例研究涵蓋超越數、電路、地震記錄,以及貴金屬價格資料等主題。對於在科學、工程與金融領域處理複雜資料的學生、研究人員與專業人士而言,這是一本極具價值的實用指南。

作者簡介

Raoul R. Nigmatullin is Professor at the Radioelectronics and Informative Measurements Technics Department, Kazan National Research Technical University, named after A.N. Tupolev. His research interests include dielectric spectroscopy in electrochemistry and new treatment methods in radiometry.

YangQuan Chen, a Clarivate Highly Cited Researcher, is Professor at the School of Engineering, University of California, Merced. His research interests include smart control engineering via digital twins and applied fractional calculus in STEM.

作者簡介(中文翻譯)

Raoul R. Nigmatullin 是 A.N. Tupolev 喀山國立研究技術大學(Kazan National Research Technical University)無線電電子與資訊測量技術系(Radioelectronics and Informative Measurements Technics Department)的教授。他的研究興趣包括電化學中的介電光譜學,以及輻射測量學中的新型處理方法。

YangQuan Chen 是 Clarivate 高被引研究員(Highly Cited Researcher),現任 University of California, Merced 工程學院教授。他的研究興趣包括透過數位孿生(digital twins)進行智慧控制工程,以及分數階微積分(fractional calculus)在 STEM 領域的應用。