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Pattern classification 2nd ed

Pattern classification 2nd ed (133회 대출)

자료유형
단행본
개인저자
Duda, Richard O. Hart, Peter E. (Peter Elliot) 1941- Stork, David G.
서명 / 저자사항
Pattern classification / Richard O. Duda, Peter E. Hart [and] David G. Stork.
판사항
2nd ed.
발행사항
New York :   Wiley ,   2001.  
형태사항
xx, 654 p. : ill. ; 27 cm.
ISBN
0471056693 (alk. paper)
일반주기
"A Wiley-Interscience Publication."  
내용주기
Introduction -- Bayesian decision theory -- Maximum-likelihood and Bayesian parameter estimation -- Nonparametric techniques -- Linear discriminant functions -- Multilayer neural networks -- Stochastic methods -- Nonmetric methods -- Algorithm-independent machine learning -- Unsupervised learning and clustering -- Mathematical foundations.
서지주기
Includes bibliographical references and index.
일반주제명
Pattern recognition systems. Statistical decision. Pattern Recognition. Statistics. Statistical decision. Pattern recognition systems. Perceptrons Reconnaissance des formes (Informatique) Prise de decision (Statistique)
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050 0 0 ▼a Q327 ▼b .D83 2000
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100 1 ▼a Duda, Richard O.
245 1 0 ▼a Pattern classification / ▼c Richard O. Duda, Peter E. Hart [and] David G. Stork.
250 ▼a 2nd ed.
260 ▼a New York : ▼b Wiley , ▼c 2001.
300 ▼a xx, 654 p. : ▼b ill. ; ▼c 27 cm.
500 ▼a "A Wiley-Interscience Publication."
504 ▼a Includes bibliographical references and index.
505 2 ▼a Introduction -- Bayesian decision theory -- Maximum-likelihood and Bayesian parameter estimation -- Nonparametric techniques -- Linear discriminant functions -- Multilayer neural networks -- Stochastic methods -- Nonmetric methods -- Algorithm-independent machine learning -- Unsupervised learning and clustering -- Mathematical foundations.
650 0 ▼a Pattern recognition systems.
650 0 ▼a Statistical decision.
650 2 ▼a Pattern Recognition.
650 2 ▼a Statistics.
650 4 ▼a Statistical decision.
650 4 ▼a Pattern recognition systems.
650 6 ▼a Perceptrons
650 6 ▼a Reconnaissance des formes (Informatique)
650 6 ▼a Prise de decision (Statistique)
700 1 ▼a Hart, Peter E. ▼q (Peter Elliot) ▼d 1941-
700 1 ▼a Stork, David G.

No. 소장처 청구기호 등록번호 도서상태 반납예정일 예약 서비스
No. 1 소장처 중앙도서관/서고6층/ 청구기호 006.4 D844p2 등록번호 111378474 (17회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 2 소장처 중앙도서관/서고6층/ 청구기호 006.4 D844p2 등록번호 111430891 (17회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 3 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 006.4 D844p2 등록번호 121081855 (34회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 4 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 006.4 D844p2 등록번호 121152535 (17회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 5 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 006.4 D844p2 등록번호 121190471 (21회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 6 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 006.4 D844p2 등록번호 121190795 (21회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 7 소장처 세종학술정보원/과학기술실(5층)/ 청구기호 006.4 D844p2 등록번호 151123316 (6회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M ?
No. 소장처 청구기호 등록번호 도서상태 반납예정일 예약 서비스
No. 1 소장처 중앙도서관/서고6층/ 청구기호 006.4 D844p2 등록번호 111378474 (17회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 2 소장처 중앙도서관/서고6층/ 청구기호 006.4 D844p2 등록번호 111430891 (17회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 소장처 청구기호 등록번호 도서상태 반납예정일 예약 서비스
No. 1 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 006.4 D844p2 등록번호 121081855 (34회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 2 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 006.4 D844p2 등록번호 121152535 (17회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 3 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 006.4 D844p2 등록번호 121190471 (21회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 4 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 006.4 D844p2 등록번호 121190795 (21회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M
No. 소장처 청구기호 등록번호 도서상태 반납예정일 예약 서비스
No. 1 소장처 세종학술정보원/과학기술실(5층)/ 청구기호 006.4 D844p2 등록번호 151123316 (6회 대출) 도서상태 대출가능 반납예정일 예약 서비스 B M ?

컨텐츠정보

책소개

The first edition, published in 1973, has become a classic reference in the field. Now with the second edition, readers will find information on key new topics such as neural networks and statistical pattern recognition, the theory of machine learning, and the theory of invariances. Also included are worked examples, comparisons between different methods, extensive graphics, expanded exercises and computer project topics.

Unter Musterklassifikation versteht man die Zuordnung eines physikalischen Objektes zu einer von mehreren vordefinierten Kategorien. Auf dieser Grundlage konnen Computer Muster erkennen. Das Interesse an diesem Forschungsgebiet hat in den letzten Jahren, besonders im Zuge der Weiterentwicklung neuronaler Netze, stark zugenommen. Die umfassend uberarbeitete, erweiterte und jetzt zweifarbig gestaltete Neuauflage beschreibt alle wesentlichen Aspekte der Mustererkennung systematisch und verstandlich. Mit Losungsheft! (01/00)

New feature

From the reviews of the First Edition . . .

"The first edition of this book, published 30 years ago by Duda and Hart, has been a defining book for the field of Pattern Recognition. Stork has done a superb job of updating the book. He has undertaken a monumental task of sifting through 30 years of material in a rapidly growing field and presented another snapshot of the field, determining what will be of importance for the next 30 years and incorporating it into this second edition. The style is easy to read as in the original book and the statistical, mathematical material comes alive with many new illustrations. The end result is harmonious, leading the reader through many new topics..." --Sargur N. Srihari, PhD, Director, Center for Excellence in Document Analysis and Recognition, Distinguished Professor, Department of Computer Science and Engineering, SUNY at Buffalo

Practitioners developing or investigating pattern recognition systems in such diverse application areas as speech recognition, optical character recognition, image processing, or signal analysis, often face the difficult task of having to decide among a bewildering array of available techniques. This unique text/professional reference provides the information you need to choose the most appropriate method for a given class of problems, presenting an in-depth, systematic account of the major topics in pattern recognition today. A new edition of a classic work that helped define the field for over a quarter century, this practical book updates and expands the original work, focusing on pattern classification and the immense progress it has experienced in recent years. Special features include:
* Clear explanations of both classical and new methods, including neural networks, stochastic methods, genetic algorithms, and theory of learning
* Over 350 high-quality, two-color illustrations highlighting various concepts
* Numerous worked examples
* Pseudocode for pattern recognition algorithms
* Expanded problems, keyed specifically to the text
* Complete exercises, linked to the text
* Algorithms to explain specific pattern-recognition and learning techniques
* Historical remarks and important references at the end of chapters
* Appendices covering the necessary mathematical background


정보제공 : Aladin

저자소개

Richard O. Duda(지은이)

캘리포니아주의 산호세에 위치한 산호세 주립대학교의 전기공학과 교수이다.

정보제공 : Aladin

목차

Bayesian Decision Theory.

Maximum-Likelihood and Bayesian Parameter Estimation.

Nonparametric Techniques.

Linear Discriminant Functions.

Multilayer Neural Networks.

Stochastic Methods.

Nonmetric Methods.

Algorithm-Independent Machine Learning.

Unsupervised Learning and Clustering.

Appendix.

Index.


정보제공 : Aladin

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