Python for natural language processing : (Record no. 15447)

000 -LEADER
fixed length control field 04182nam a22003617a 4500
003 - CONTROL NUMBER IDENTIFIER
control field OSt
005 - DATE AND TIME OF LATEST TRANSACTION
control field 20260702144024.0
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 260702t20242006sz a|||er|||| 001 0 eng d
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9783031575488 [hardbound]
040 ## - CATALOGING SOURCE
Original cataloging agency University of Cebu-Banilad
Transcribing agency University of Cebu-Banilad
100 ## - MAIN ENTRY--PERSONAL NAME
Personal name Nugues, Pierre M.,
Relator term author.
245 ## - TITLE STATEMENT
Title Python for natural language processing :
Remainder of title programming with NumPy, scikit-learn, Keras, and PyTorch /
Statement of responsibility, etc Pierre M. Nugues.
250 ## - EDITION STATEMENT
Edition statement Third edition.
260 ## - PUBLICATION, DISTRIBUTION, ETC. (IMPRINT)
Place of publication, distribution, etc Switzerland :
Name of publisher, distributor, etc Springer,
Date of publication, distribution, etc c2024.
300 ## - PHYSICAL DESCRIPTION
Extent xxv, 520 pages :
Other physical details illustrations (black and white) ;
Dimensions 24 cm.
336 ## - CONTENT TYPE
Source rdacontent
Content type term text
337 ## - MEDIA TYPE
Source rdamedia
Media type term unmediated
338 ## - CARRIER TYPE
Source rdacarrier
Carrier type volume
500 ## - GENERAL NOTE
General note https://doi.org/10.1007/978-3-031-575295
504 ## - BIBLIOGRAPHY, ETC. NOTE
Bibliography, etc Includes bibliographical references and index.
505 ## - FORMATTED CONTENTS NOTE
Formatted contents note Contents: 1 An overview of language processing — 2 A tour of python — 3 Corpus processing tools — 4 Encoding and annotation schemes — 5 Python for numerical computations — 6 Topics in information theory and machine learning — 7 Linear and logistic regression — 8 Neural networks — 9 Counting and indexing words — 10 Word sequences — 11 Dense vector representations — 12 Words, part of speech, and morphology — 13 Subword segmentation — 14 Part-of-speech and sequence annotation — 15 Self-attention and transformers — 16 Pretraining an encoder: The BERT Language model — 17 Sequence-to-sequence architectures: Encoder-decoders and decoders — References — Index.
520 ## - SUMMARY, ETC.
Summary, etc "Since the last edition of this book (2014), progress has been astonishing in all areas of Natural Language Processing, with recent achievements in Text Generation that spurred a media interest going beyond the traditional academic circles.<br/><br/>Text Processing has meanwhile become a mainstream industrial tool that is used, to various extents, by countless companies.<br/><br/>As such, a revision of this book was deemed necessary to catch up with the recent breakthroughs, and the author discusses models and architectures that have been instrumental in the recent progress of Natural Language Processing. As in the first two editions, the intention is to expose the reader to the theories used in Natural Language Processing, and to programming examples that are essential for a deep understanding of the concepts.<br/><br/>Although present in the previous two editions, Machine Learning is now even more pregnant, having replaced many of the earlier techniques to process text.<br/><br/>Many new techniques build on the availability of text.<br/><br/>Using Python notebooks, the reader will be able to load small corpora, format text, apply the models through executing pieces of code, gradually discover the theoretical parts by possibly modifying the code or the parameters, and traverse theories and concrete problems through a constant interaction between the user and the machine.<br/><br/>The data sizes and hardware requirements are kept to a reasonable minimum so that a user can see instantly, or at least quickly, the results of most experiments on most machines. The book does not assume a deep knowledge of Python, and an introduction to this language aimed at Text Processing is given in Ch. 2, which will enable the reader to touch all the programming concepts, including NumPy arrays and PyTorch tensors as fundamental structures to represent and process numerical data in Python, or Keras for training Neural Networks to classify texts.<br/><br/>Covering topics like Word Segmentation and Part-of-Speech and Sequence Annotation, the textbook also gives an in-depth overview of Transformers (for instance, BERT), Self-Attention and Sequence-to-Sequence Architectures. " --Backcover
521 ## - TARGET AUDIENCE NOTE
Target audience note Adult
541 ## - IMMEDIATE SOURCE OF ACQUISITION NOTE
Source of acquisition Purchased
Deans/Chairperson Ortega, Eric
Department College of Computer Studies
Subject Category Computer Science
546 ## - LANGUAGE NOTE
Language note Text in English
650 ## - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Natural language processing (Computer science).
650 ## - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Python (Computer program language).
650 ## - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Machine learning.
650 ## - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Application software
General subdivision Development.
942 ## - ADDED ENTRY ELEMENTS (KOHA)
Source of classification or shelving scheme
Type of record Book
998 ## - LOCAL CONTROL INFORMATION (RLIN)
Encoded by Janna [new]
Date encoded 07/02/2026
Holdings
Withdrawn status Lost status Source of classification or shelving scheme Damaged status Not for loan Library Location Other Library Location Shelving location Date acquired Source of Acquisition Cost, normal purchase price Full call number Barcode Date last seen Price effective from Koha item type
          College Library UCBL_MAIN Subject Reference 02/07/2026 ALBASA - C&E Publishing 5888.00 006.35 N89 2024 3UCBL000029704 02/07/2026 02/07/2026 Subject Reference

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