Genomic Sequence Analysis for Exon Prediction Using Adaptive Signal Processing Algorithms
暫譯: 使用自適應信號處理演算法進行外顯子預測的基因組序列分析
Rahman, MD Zia Ur, Putluri, Srinivasareddy
- 出版商: CRC
- 出版日期: 2021-06-30
- 售價: $6,190
- 貴賓價: 9.5 折 $5,881
- 語言: 英文
- 頁數: 192
- 裝訂: Hardcover - also called cloth, retail trade, or trade
- ISBN: 0367615800
- ISBN-13: 9780367615802
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相關分類:
Algorithms-data-structures
海外代購書籍(需單獨結帳)
商品描述
This book addresses the issue of improving the accuracy in exon prediction in DNA sequences using various adaptive techniques based on different performance measures that are crucial in disease diagnosis and therapy. First, the authors present an overview of genomics engineering, structure of DNA sequence and its building blocks, genetic information flow in a cell, gene prediction along with its significance, and various types of gene prediction methods, followed by a review of literature starting with the biological background of genomic sequence analysis. Next, they cover various theoretical considerations of adaptive filtering techniques used for DNA analysis, with an introduction to adaptive filtering, properties of adaptive algorithms, and the need for development of adaptive exon predictors (AEPs) and structure of AEP used for DNA analysis. Then, they extend the approach of least mean squares (LMS) algorithm and its sign-based realizations with normalization factor for DNA analysis. They also present the normalized logarithmic-based realizations of least mean logarithmic squares (LMLS) and least logarithmic absolute difference (LLAD) adaptive algorithms that include normalized LMLS (NLMLS) algorithm, normalized LLAD (NLLAD) algorithm, and their signed variants. This book ends with an overview of the goals achieved and highlights the primary achievements using all proposed techniques. This book is intended to provide rigorous use of adaptive signal processing algorithms for genetic engineering, biomedical engineering, and bioinformatics and is useful for undergraduate and postgraduate students. This will also serve as a practical guide for Ph.D. students and researchers and will provide a number of research directions for further work.
Features
- Presents an overview of genomics engineering, structure of DNA sequence and its building blocks, genetic information flow in a cell, gene prediction along with its significance, and various types of gene prediction methods
- Covers various theoretical considerations of adaptive filtering techniques used for DNA analysis, introduction to adaptive filtering, properties of adaptive algorithms, need for development of adaptive exon predictors (AEPs), and structure of AEP used for DNA analysis
- Extends the approach of LMS algorithm and its sign-based realizations with normalization factor for DNA analysis
- Presents the normalized logarithmic-based realizations of LMLS and LLAD adaptive algorithms that include normalized LMLS (NLMLS) algorithm, normalized LLAD (NLLAD) algorithm, and their signed variants
- Provides an overview of the goals achieved and highlights the primary achievements using all proposed techniques
Dr. Md. Zia Ur Rahman is a professor in the Department of Electronics and Communication Engineering at Koneru Lakshmaiah Educational Foundation (K. L. University), Guntur, India. His current research interests include adaptive signal processing, biomedical signal processing, genetic engineering, medical imaging, array signal processing, medical telemetry, and nanophotonics.
Dr. Srinivasareddy Putluri is currently a Software Engineer at Tata Consultancy Services Ltd., Hyderabad. He received his Ph.D. degree (Genomic Signal Processing using Adaptive Signal Processing algorithms) from the Department of Electronics and Communication Engineering at Koneru Lakshmaiah Educational Foundation (K. L. University), Guntur, India. His research interests include genomic signal processing and adaptive signal processing. He has published 15 research papers in various journals and proceedings. He is currently a reviewer of publishers like the IEEE Access and IGI.
商品描述(中文翻譯)
這本書探討了使用各種基於不同性能指標的自適應技術來提高DNA序列中外顯子預測準確性的問題,這些指標在疾病診斷和治療中至關重要。首先,作者介紹了基因組工程的概述、DNA序列的結構及其基本組成部分、細胞中的遺傳信息流、基因預測及其重要性,以及各種基因預測方法,接著回顧了文獻,從基因組序列分析的生物學背景開始。接下來,他們涵蓋了用於DNA分析的自適應過濾技術的各種理論考量,包括自適應過濾的介紹、自適應算法的特性,以及開發自適應外顯子預測器(AEPs)的必要性和用於DNA分析的AEP結構。然後,他們擴展了最小均方(LMS)算法及其基於符號的實現,並為DNA分析引入了歸一化因子。他們還介紹了基於歸一化的最小均對數平方(LMLS)和最小對數絕對差(LLAD)自適應算法的實現,包括歸一化LMLS(NLMLS)算法、歸一化LLAD(NLLAD)算法及其符號變體。本書最後概述了所達成的目標,並突顯了使用所有提出技術的主要成就。本書旨在為遺傳工程、生物醫學工程和生物信息學提供自適應信號處理算法的嚴謹應用,對本科生和研究生都非常有用。這也將作為博士生和研究人員的實用指南,並提供多個研究方向以供進一步研究。
特點
- 提供基因組工程的概述、DNA序列的結構及其基本組成部分、細胞中的遺傳信息流、基因預測及其重要性,以及各種基因預測方法
- 涵蓋用於DNA分析的自適應過濾技術的各種理論考量,自適應過濾的介紹、自適應算法的特性、開發自適應外顯子預測器(AEPs)的必要性,以及用於DNA分析的AEP結構
- 擴展LMS算法及其基於符號的實現,並為DNA分析引入歸一化因子
- 提供基於歸一化的LMLS和LLAD自適應算法的實現,包括歸一化LMLS(NLMLS)算法、歸一化LLAD(NLLAD)算法及其符號變體
- 概述所達成的目標,並突顯使用所有提出技術的主要成就
Dr. Md. Zia Ur Rahman是印度甘杜爾Koneru Lakshmaiah教育基金會(K. L. University)電子與通信工程系的教授。他目前的研究興趣包括自適應信號處理、生物醫學信號處理、遺傳工程、醫學影像、陣列信號處理、醫學遙測和納米光子學。
Dr. Srinivasareddy Putluri目前是塔塔顧問服務有限公司(Tata Consultancy Services Ltd.)的軟體工程師,工作地點在海得拉巴。他在印度甘杜爾Koneru Lakshmaiah教育基金會(K. L. University)電子與通信工程系獲得了博士學位(使用自適應信號處理算法的基因組信號處理)。他的研究興趣包括基因組信號處理和自適應信號處理。他在各種期刊和會議上發表了15篇研究論文,目前是IEEE Access和IGI等出版商的審稿人。
作者簡介
Prof. Md Zia Ur Rahman is a Professor with the Department of Electronics and Communication Engineering, K. L. University, Koneru Lakshmaiah Educational Foundation Guntur, India. His current research interests include adaptive signal processing, biomedical signal processing, medical imaging, array signal processing, MEMS, Nano photonics.
Srinivasareddy Putluri, M.Tech., Ph.D is with the Department of Electronics and Communication Engineering, Koneru Lakshmaiah Educational Foundation, K. L. University, Vaddeswaram, Guntur, India. His research interests include genomic signal processing and adaptive signal processing.
作者簡介(中文翻譯)
教授 Md Zia Ur Rahman 是印度甘杜爾 K. L. 大學電子與通信工程系的教授。他目前的研究興趣包括自適應信號處理、生物醫學信號處理、醫學影像、陣列信號處理、微機電系統(MEMS)和奈米光子學。
Srinivasareddy Putluri,M.Tech.,Ph.D. 目前在印度甘杜爾 K. L. 大學的電子與通信工程系任職。他的研究興趣包括基因組信號處理和自適應信號處理。