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OverviewUsing real-life examples to illustrate the performance of learning algorithms and instructing readers how to apply them to practical applications, this unique work offers a comprehensive treatment of subspace learning algorithms for neural networks. The authors summarize a decade of high quality research offering a host of practical applications. They demonstrate ways to extend the use of algorithms to fields such as encryption communication, data mining, computer vision, and signal and image processing to name just a few. The brilliance of the work lies with how it coherently builds a theoretical understanding of the convergence behavior of subspace learning algorithms through a summary of chaotic behaviors. Full Product DetailsAuthor: Jian Cheng Lv (Sichuan University, China) , Zhang Yi (Sichuan University, China) , Jiliu Zhou (Sichuan University, China)Publisher: Taylor & Francis Inc Imprint: CRC Press Inc Volume: 42 Dimensions: Width: 15.60cm , Height: 1.80cm , Length: 23.40cm Weight: 0.500kg ISBN: 9781439815359ISBN 10: 1439815356 Pages: 256 Publication Date: 29 September 2010 Audience: College/higher education , General/trade , Tertiary & Higher Education , General Format: Hardback Publisher's Status: Active Availability: In Print ![]() This item will be ordered in for you from one of our suppliers. Upon receipt, we will promptly dispatch it out to you. For in store availability, please contact us. Table of ContentsReviewsAuthor InformationJian Cheng LV and Zhang Yi are affiliated with the Machine Intelligence Lab of the College of Computer Science at Sichuan University. Jiliu Zhou is affiliated with the College of Computer Science at Sichuan University. Tab Content 6Author Website:Countries AvailableAll regions |