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Statistical Learning from a Regression Perspective 2020 PAPERBACK by Richard...

Description: FASTSHIPPING HASSLEFREERETURNS SECUREPAYMENT EXCELLENTSERVICE Description This textbook considers statistical learning applications when interest centers on the conditional distribution of a response variable, given a set of predictors, and in the absence of a credible model that can be specified before the data analysis begins. Consistent with modern data analytics, it emphasizes that a proper statistical learning data analysis depends in an integrated fashion on sound data collection, intelligent data management, appropriate statistical procedures, and an accessible interpretation of results. The unifying theme is that supervised learning properly can be seen as a form of regression analysis. Key concepts and procedures are illustrated with a large number of real applications and their associated code in R, with an eye toward practical implications. The growing integration of computer science and statistics is well represented including the occasional, but salient, tensions that result. Throughout, there are links to the big picture. The third edition considers significant advances in recent years, among which are: the development of overarching, conceptual frameworks for statistical learning; the impact of  “big data” on statistical learning; the nature and consequences of post-model selection statistical inference; deep learning in various forms; the special challenges to statistical inference posed by statistical learning; the fundamental connections between data collection and data analysis; interdisciplinary ethical and political issues surrounding the application of algorithmic methods in a wide variety of fields, each linked to concerns about transparency, fairness, and accuracy. This edition features new sections on accuracy, transparency, and fairness, as well as a new chapter on deep learning. Precursors to deep learning get an expanded treatment. The connections between fitting and forecasting are considered in greater depth. Discussion of the estimation targets for algorithmic methods is revised and expanded throughout to reflect the latest research. Resampling procedures are emphasized. The material is written for upper-undergraduate and graduate students in the social, psychological and life sciences and for researchers who want to apply statistical learning procedures to scientific and policy problems. Publisher ‏ : ‎ Springer Language ‏ : ‎ English Paperback ‏ : ‎ 460 pages ISBN-10 ‏ : ‎ 3030429237 ISBN-13 ‏ : ‎ 978-3030429232 Item Weight ‏ : ‎ 1.41 pounds Dimensions ‏ : ‎ 6.1 x 1.08 x 9.25 inches SHIPPING Shipping All items fast! The majority of orders are shipped using USPS Priority Mail and UPS Ground if requested. There is an option at checkout to add a Signature of Delivery for extra security & peace of mind. This means you need to sign for your parcel. If you are not home, the courier will take it to your local post office for collection. We also offer expedited shipments upon request, we will quote the shipment and let you know of the estimated cost. If agreed we will process the order and add the shipping charge to your invoice. All items ordered by 3 PM EST will be shipped same day. We also are partnered with Ebay using the Global Shipping Program. We will ship internationally to any country that is a part of the program. "International buyers – please note: Import duties, taxes, and charges aren't included in the item price or postage cost. These charges are the buyer's responsibility. "Please check with your country's customs office to determine what these additional costs will be, prior to bidding or buying." Alaska/Hawaii/Puerto Rico charge extra : $30.00 Canada $50.00  *Additional taxes may apply Every item we ship is fully insured. You will receive a shipment confirmation and tracking number as soon as your item leaves our facility.    We offer same day shipment for orders submitted before 2:00 pm EST. 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Any items returned to us may be subject to a 20% restocking fee. The refund price (after restocking and shipping fees are deducted) will be issued to you via the original method of payment for your purchase. FEEDBACK Our all customers are 100% satisfied. If you have any issues with your orders, please contact us to resolve it. We are happy to help you EXCHANGE CANCELLATION You need to send us an order cancellation request through eBay before the shipment made. once we have the request, we will approve it from our end and grant your full refund back to your account. CONTACT US Please send us an email via ebay. We will reply within 24 hours. Copyright © | All Rights Reserved

Price: 105.61 USD

Location: Philadelphia, Pennsylvania

End Time: 2024-11-30T15:59:55.000Z

Shipping Cost: 5.99 USD

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Statistical Learning from a Regression Perspective 2020 PAPERBACK  by Richard...

Item Specifics

Restocking Fee: No

Return shipping will be paid by: Seller

All returns accepted: Returns Accepted

Item must be returned within: 30 Days

Refund will be given as: Money back or replacement (buyer's choice)

ISBN: 3030429237

Number of Pages: Xxvi, 433 Pages

Publication Name: Statistical Learning from a Regression Perspective

Language: English

Publisher: Springer International Publishing A&G

Subject: Public Health, Probability & Statistics / General, Statistics

Publication Year: 2021

Item Weight: 24.7 Oz

Type: Textbook

Author: Richard A. Berk

Item Length: 9.3 in

Subject Area: Mathematics, Social Science, Medical

Item Width: 6.1 in

Format: Trade Paperback

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