The Curse Of Pca
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Author |
: Dan Schneider |
Publisher |
: |
Total Pages |
: 116 |
Release |
: 2007 |
ISBN-10 |
: 0439916488 |
ISBN-13 |
: 9780439916486 |
Rating |
: 4/5 (88 Downloads) |
Synopsis The Curse of PCA by : Dan Schneider
The TeeNick block, featuring Zoey 101, is must-watch, must-TIVO, must-discuss viewing for tweens. Zoey Brooks and her friends Quinn and Lola are among the first girls to attend Pacific Coast Academy. The classes are tough, but getting the boys to accept them is even tougher! But there's lots of sunshine, good times and good friends to go around. And that's what it's all about, right? A brand new novel based on two episodes from the hit TV show.
Author |
: Dan Schneider |
Publisher |
: |
Total Pages |
: 116 |
Release |
: 2007 |
ISBN-10 |
: 0439882575 |
ISBN-13 |
: 9780439882576 |
Rating |
: 4/5 (75 Downloads) |
Synopsis A Quinn in Need by : Dan Schneider
The TeeNick block, featuring Zoey 101, is must-watch, must-TIVO, must-discuss viewing for tweens. Based on the following two episodes: 21. Robot Wars Sick and tired of hearing how smart a group of science nerds think they are, Zoey decides to wage war . . . Robot War! Only problem? Zoey and the crew don't know the first thing about building a robot so they recruit Quinn to help them. But when she overhears Logan making fun of her, Quinn bails. Is the battle lost before it begins? Luckily Zoey has a few tricks up her sleeve, and she's going to show those nerds that all is fair in Robots and War. ((continued on Extended Summary))
Author |
: Rebecca L. Thomas |
Publisher |
: Libraries Unlimited |
Total Pages |
: 1022 |
Release |
: 2009 |
ISBN-10 |
: UOM:39015080867834 |
ISBN-13 |
: |
Rating |
: 4/5 (34 Downloads) |
Synopsis Popular Series Fiction for K–6 Readers by : Rebecca L. Thomas
Indexes popular fiction series for K-6 readers with groupings based on thematics, consistant setting, or consistant characters. Annotated entries are arranged alphabetically by series name and include author, publisher, date, grade level, genre, and a list of individual titles in the series. Volume is indexed by author, title, and subject/genre and includes appendixes suggesting books for boys, girls, and reluctant/ESL readers.
Author |
: Field Cady |
Publisher |
: John Wiley & Sons |
Total Pages |
: 208 |
Release |
: 2020-12-30 |
ISBN-10 |
: 9781119544081 |
ISBN-13 |
: 1119544084 |
Rating |
: 4/5 (81 Downloads) |
Synopsis Data Science by : Field Cady
Tap into the power of data science with this comprehensive resource for non-technical professionals Data Science: The Executive Summary – A Technical Book for Non-Technical Professionals is a comprehensive resource for people in non-engineer roles who want to fully understand data science and analytics concepts. Accomplished data scientist and author Field Cady describes both the “business side” of data science, including what problems it solves and how it fits into an organization, and the technical side, including analytical techniques and key technologies. Data Science: The Executive Summary covers topics like: Assessing whether your organization needs data scientists, and what to look for when hiring them When Big Data is the best approach to use for a project, and when it actually ties analysts’ hands Cutting edge Artificial Intelligence, as well as classical approaches that work better for many problems How many techniques rely on dubious mathematical idealizations, and when you can work around them Perfect for executives who make critical decisions based on data science and analytics, as well as mangers who hire and assess the work of data scientists, Data Science: The Executive Summary also belongs on the bookshelves of salespeople and marketers who need to explain what a data analytics product does. Finally, data scientists themselves will improve their technical work with insights into the goals and constraints of the business situation.
Author |
: Parinya Sanguansat |
Publisher |
: BoD – Books on Demand |
Total Pages |
: 304 |
Release |
: 2012-03-02 |
ISBN-10 |
: 9789535101956 |
ISBN-13 |
: 9535101951 |
Rating |
: 4/5 (56 Downloads) |
Synopsis Principal Component Analysis by : Parinya Sanguansat
This book is aimed at raising awareness of researchers, scientists and engineers on the benefits of Principal Component Analysis (PCA) in data analysis. In this book, the reader will find the applications of PCA in fields such as image processing, biometric, face recognition and speech processing. It also includes the core concepts and the state-of-the-art methods in data analysis and feature extraction.
Author |
: Field Cady |
Publisher |
: John Wiley & Sons |
Total Pages |
: 420 |
Release |
: 2017-02-28 |
ISBN-10 |
: 9781119092940 |
ISBN-13 |
: 1119092949 |
Rating |
: 4/5 (40 Downloads) |
Synopsis The Data Science Handbook by : Field Cady
A comprehensive overview of data science covering the analytics, programming, and business skills necessary to master the discipline Finding a good data scientist has been likened to hunting for a unicorn: the required combination of technical skills is simply very hard to find in one person. In addition, good data science is not just rote application of trainable skill sets; it requires the ability to think flexibly about all these areas and understand the connections between them. This book provides a crash course in data science, combining all the necessary skills into a unified discipline. Unlike many analytics books, computer science and software engineering are given extensive coverage since they play such a central role in the daily work of a data scientist. The author also describes classic machine learning algorithms, from their mathematical foundations to real-world applications. Visualization tools are reviewed, and their central importance in data science is highlighted. Classical statistics is addressed to help readers think critically about the interpretation of data and its common pitfalls. The clear communication of technical results, which is perhaps the most undertrained of data science skills, is given its own chapter, and all topics are explained in the context of solving real-world data problems. The book also features: • Extensive sample code and tutorials using Python™ along with its technical libraries • Core technologies of “Big Data,” including their strengths and limitations and how they can be used to solve real-world problems • Coverage of the practical realities of the tools, keeping theory to a minimum; however, when theory is presented, it is done in an intuitive way to encourage critical thinking and creativity • A wide variety of case studies from industry • Practical advice on the realities of being a data scientist today, including the overall workflow, where time is spent, the types of datasets worked on, and the skill sets needed The Data Science Handbook is an ideal resource for data analysis methodology and big data software tools. The book is appropriate for people who want to practice data science, but lack the required skill sets. This includes software professionals who need to better understand analytics and statisticians who need to understand software. Modern data science is a unified discipline, and it is presented as such. This book is also an appropriate reference for researchers and entry-level graduate students who need to learn real-world analytics and expand their skill set. FIELD CADY is the data scientist at the Allen Institute for Artificial Intelligence, where he develops tools that use machine learning to mine scientific literature. He has also worked at Google and several Big Data startups. He has a BS in physics and math from Stanford University, and an MS in computer science from Carnegie Mellon.
Author |
: Joe Zhu |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 334 |
Release |
: 2007-06-08 |
ISBN-10 |
: 9780387716077 |
ISBN-13 |
: 0387716076 |
Rating |
: 4/5 (77 Downloads) |
Synopsis Modeling Data Irregularities and Structural Complexities in Data Envelopment Analysis by : Joe Zhu
In a relatively short period of time, data envelopment analysis (DEA) has grown into a powerful analytical tool for measuring and evaluating performance. DEA is computational at its core and this book is one of several Springer aim to publish on the subject. This work deals with the micro aspects of handling and modeling data issues in DEA problems. It is a handbook treatment dealing with specific data problems, including imprecise data and undesirable outputs.
Author |
: De-Shuang Huang |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 707 |
Release |
: 2010-07-30 |
ISBN-10 |
: 9783642149214 |
ISBN-13 |
: 3642149219 |
Rating |
: 4/5 (14 Downloads) |
Synopsis Advanced Intelligent Computing Theories and Applications by : De-Shuang Huang
This book constitutes the refereed proceedings of the 6th International Conference on Intelligent Computing, ICIC 2010, held in Changsha, China, in August 2010. The 85 revised full papers presented were carefully reviewed and selected from a numerous submissions. The papers are organized in topical sections on neural networks, evolutionary learning & genetic algorithms, fuzzy theory and models, fuzzy systems and soft computing, particle swarm optimization and niche technology, supervised & semi-supervised learning, unsupervised & reinforcement learning, combinatorial & numerical optimization, systems biology and computational biology, neural computing and optimization, nature inspired computing and optimization, knowledge discovery and data mining, artificial life and artificial immune systems, intelligent computing in image processing, special session on new hand based biometric methods, special session on recent advances in image segmentation, special session on theories and applications in advanced intelligent computing, special session on search based software engineering, special session on bio-inspired computing and applications, special session on advance in dimensionality reduction methods and its applications, special session on protein and gene bioinformatics: methods and applications.
Author |
: Ignacio Ruiz |
Publisher |
: John Wiley & Sons |
Total Pages |
: 471 |
Release |
: 2021-12-28 |
ISBN-10 |
: 9781119791386 |
ISBN-13 |
: 1119791383 |
Rating |
: 4/5 (86 Downloads) |
Synopsis Machine Learning for Risk Calculations by : Ignacio Ruiz
State-of-the-art algorithmic deep learning and tensoring techniques for financial institutions The computational demand of risk calculations in financial institutions has ballooned and shows no sign of stopping. It is no longer viable to simply add more computing power to deal with this increased demand. The solution? Algorithmic solutions based on deep learning and Chebyshev tensors represent a practical way to reduce costs while simultaneously increasing risk calculation capabilities. Machine Learning for Risk Calculations: A Practitioner’s View provides an in-depth review of a number of algorithmic solutions and demonstrates how they can be used to overcome the massive computational burden of risk calculations in financial institutions. This book will get you started by reviewing fundamental techniques, including deep learning and Chebyshev tensors. You’ll then discover algorithmic tools that, in combination with the fundamentals, deliver actual solutions to the real problems financial institutions encounter on a regular basis. Numerical tests and examples demonstrate how these solutions can be applied to practical problems, including XVA and Counterparty Credit Risk, IMM capital, PFE, VaR, FRTB, Dynamic Initial Margin, pricing function calibration, volatility surface parametrisation, portfolio optimisation and others. Finally, you’ll uncover the benefits these techniques provide, the practicalities of implementing them, and the software which can be used. Review the fundamentals of deep learning and Chebyshev tensors Discover pioneering algorithmic techniques that can create new opportunities in complex risk calculation Learn how to apply the solutions to a wide range of real-life risk calculations. Download sample code used in the book, so you can follow along and experiment with your own calculations Realize improved risk management whilst overcoming the burden of limited computational power Quants, IT professionals, and financial risk managers will benefit from this practitioner-oriented approach to state-of-the-art risk calculation.
Author |
: Ganesh R. Naik |
Publisher |
: Springer |
Total Pages |
: 256 |
Release |
: 2017-12-11 |
ISBN-10 |
: 9789811067044 |
ISBN-13 |
: 981106704X |
Rating |
: 4/5 (44 Downloads) |
Synopsis Advances in Principal Component Analysis by : Ganesh R. Naik
This book reports on the latest advances in concepts and further developments of principal component analysis (PCA), addressing a number of open problems related to dimensional reduction techniques and their extensions in detail. Bringing together research results previously scattered throughout many scientific journals papers worldwide, the book presents them in a methodologically unified form. Offering vital insights into the subject matter in self-contained chapters that balance the theory and concrete applications, and especially focusing on open problems, it is essential reading for all researchers and practitioners with an interest in PCA.