Data Mining in Biomedical Imaging, Signaling, and Systems (Hardcover)
暫譯: 生物醫學影像、信號與系統中的資料探勘 (精裝版)
Sumeet Dua, Rajendra Acharya U
- 出版商: Auerbach Publication
- 出版日期: 2011-05-16
- 售價: $3,600
- 貴賓價: 9.5 折 $3,420
- 語言: 英文
- 頁數: 440
- 裝訂: Hardcover
- ISBN: 1439839387
- ISBN-13: 9781439839386
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相關分類:
Data-mining
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商品描述
Data mining can help pinpoint hidden information in medical data and accurately differentiate pathological from normal data. It can help to extract hidden features from patient groups and disease states and can aid in automated decision making. Data Mining in Biomedical Imaging, Signaling, and Systems provides an in-depth examination of the biomedical and clinical applications of data mining. It supplies examples of frequently encountered heterogeneous data modalities and details the applicability of data mining approaches used to address the computational challenges in analyzing complex data.
The book details feature extraction techniques and covers several critical feature descriptors. As machine learning is employed in many diagnostic applications, it covers the fundamentals, evaluation measures, and challenges of supervised and unsupervised learning methods. Both feature extraction and supervised learning are discussed as they apply to seizure-related patterns in epilepsy patients. Other specific disorders are also examined with regard to the value of data mining for refining clinical diagnoses, including depression and recurring migraines. The diagnosis and grading of the world’s fourth most serious health threat, depression, and analysis of acoustic properties that can distinguish depressed speech from normal are also described. Although a migraine is a complex neurological disorder, the text demonstrates how metabonomics can be effectively applied to clinical practice.
The authors review alignment-based clustering approaches, techniques for automatic analysis of biofilm images, and applications of medical text mining, including text classification applied to medical reports. The identification and classification of two life-threatening heart abnormalities, arrhythmia and ischemia, are addressed, and a unique segmentation method for mining a 3-D imaging biomarker, exemplified by evaluation of osteoarthritis, is also presented. Given the widespread deployment of complex biomedical systems, the authors discuss system-engineering principles in a proposal for a design of reliable systems. This comprehensive volume demonstrates the broad scope of uses for data mining and includes detailed strategies and methodologies for analyzing data from biomedical images, signals, and systems.
商品描述(中文翻譯)
資料探勘可以幫助找出醫療數據中的隱藏資訊,並準確區分病理數據與正常數據。它可以幫助從患者群體和疾病狀態中提取隱藏特徵,並有助於自動化決策。生物醫學影像、信號與系統中的資料探勘提供了對資料探勘在生物醫學和臨床應用中的深入檢視。它提供了經常遇到的異質數據模式的範例,並詳細說明了用於解決分析複雜數據計算挑戰的資料探勘方法的適用性。
本書詳細介紹了特徵提取技術,並涵蓋了幾個關鍵的特徵描述子。由於機器學習在許多診斷應用中被採用,因此它涵蓋了監督式和非監督式學習方法的基本原理、評估指標和挑戰。特徵提取和監督式學習都被討論,因為它們適用於癲癇患者的癲癇相關模式。其他特定疾病也被檢視,關於資料探勘在精煉臨床診斷中的價值,包括憂鬱症和反覆性偏頭痛。世界第四大最嚴重健康威脅的憂鬱症的診斷和分級,以及能夠區分憂鬱語音與正常語音的聲學特性分析也被描述。儘管偏頭痛是一種複雜的神經系統疾病,文本展示了如何有效地將代謝組學應用於臨床實踐。
作者回顧了基於對齊的聚類方法、自動分析生物膜影像的技術,以及醫療文本探勘的應用,包括應用於醫療報告的文本分類。針對兩種危及生命的心臟異常,心律不整和缺血,進行了識別和分類,並提出了一種獨特的分割方法,用於挖掘三維影像生物標記,以評估骨關節炎為例。考慮到複雜生物醫學系統的廣泛部署,作者在設計可靠系統的提案中討論了系統工程原則。這本綜合性著作展示了資料探勘的廣泛應用範圍,並包括了分析生物醫學影像、信號和系統數據的詳細策略和方法論。