Applied Linear Algebra and Matrix Methods (應用線性代數與矩陣方法)
Feeman, Timothy G.
- 出版商: Springer
- 出版日期: 2024-11-25
- 售價: $2,210
- 貴賓價: 9.5 折 $2,100
- 語言: 英文
- 頁數: 321
- 裝訂: Quality Paper - also called trade paper
- ISBN: 3031395646
- ISBN-13: 9783031395642
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相關分類:
線性代數 Linear-algebra
海外代購書籍(需單獨結帳)
相關主題
商品描述
This textbook is designed for a first course in linear algebra for undergraduate students from a wide range of quantitative and data driven fields. By focusing on applications and implementation, students will be prepared to go on to apply the power of linear algebra in their own discipline. With an ever-increasing need to understand and solve real problems, this text aims to provide a growing and diverse group of students with an applied linear algebra toolkit they can use to successfully grapple with the complex world and the challenging problems that lie ahead. Applications such as least squares problems, information retrieval, linear regression, Markov processes, finding connections in networks, and more, are introduced on a small scale as early as possible and then explored in more generality as projects. Additionally, the book draws on the geometry of vectors and matrices as the basis for the mathematics, with the concept of orthogonality taking center stage. Important matrix factorizations as well as the concepts of eigenvalues and eigenvectors emerge organically from the interplay between matrix computations and geometry.
商品描述(中文翻譯)
這本教科書是為本科生的線性代數入門課程而設計,適合來自各種定量和數據驅動領域的學生。通過專注於應用和實施,學生將能夠在自己的學科中運用線性代數的力量。隨著對理解和解決實際問題的需求不斷增加,本書旨在為一個日益增長和多樣化的學生群體提供一套應用線性代數的工具包,幫助他們成功應對複雜的世界和未來的挑戰性問題。應用範疇如最小二乘問題、信息檢索、線性回歸、馬可夫過程、尋找網絡中的連結等,將在盡早的階段以小規模介紹,然後作為項目進一步探索更一般的情況。此外,本書以向量和矩陣的幾何學為數學基礎,正交性的概念成為核心。重要的矩陣分解以及特徵值和特徵向量的概念,則自然而然地從矩陣計算和幾何之間的相互作用中產生。
R 檔案是額外提供的,並且免費可用。它們包含許多文中示例的基本代碼和模板、大部分項目以及選定練習的解答。儘可能地,數據集和矩陣條目已包含在檔案中,從而減少所需的手動數據輸入量。
作者簡介
作者簡介(中文翻譯)
Timothy G. Feeman 是賓夕法尼亞州蘭卡斯特的維拉諾瓦大學數學教授。他的原始研究領域是希爾伯特空間上的算子理論,曾被形容為「與二十世紀特徵的科學和技術發展有最強互動的數學領域」。自1990年代中期至後期以來,他的學術努力變得更加多樣化。Feeman 教授是《醫學影像的數學》的作者,該書也發表在「Springer Undergraduate Texts in Mathematics and Technology」系列中。