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Approximate Bayesian Inference - (Hardcover) - 1 of 1

Approximate Bayesian Inference - (Hardcover)

$124.87

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Highlights

  • Extremely popular for statistical inference, Bayesian methods are also becoming popular in machine learning and artificial intelligence problems.
  • 508 Pages
  • Computers + Internet, Computer Science

Description



Book Synopsis



Extremely popular for statistical inference, Bayesian methods are also becoming popular in machine learning and artificial intelligence problems. Bayesian estimators are often implemented by Monte Carlo methods, such as the Metropolis-Hastings algorithm of the Gibbs sampler. These algorithms target the exact posterior distribution. However, many of the modern models in statistics are simply too complex to use such methodologies. In machine learning, the volume of the data used in practice makes Monte Carlo methods too slow to be useful. On the other hand, these applications often do not require an exact knowledge of the posterior. This has motivated the development of a new generation of algorithms that are fast enough to handle huge datasets but that often target an approximation of the posterior. This book gathers 18 research papers written by Approximate Bayesian Inference specialists and provides an overview of the recent advances in these algorithms. This includes optimization-based methods (such as variational approximations) and simulation-based methods (such as ABC or Monte Carlo algorithms). The theoretical aspects of Approximate Bayesian Inference are covered, specifically the PAC-Bayes bounds and regret analysis. Applications for challenging computational problems in astrophysics, finance, medical data analysis, and computer vision area also presented.

Dimensions (Overall): 9.61 Inches (H) x 6.69 Inches (W) x 1.5 Inches (D)
Weight: 2.84 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 508
Genre: Computers + Internet
Sub-Genre: Computer Science
Publisher: Mdpi AG
Format: Hardcover
Language: English
Street Date: June 1, 2022
TCIN: 1009333301
UPC: 9783036537894
Item Number (DPCI): 247-53-5070
Origin: Made in the USA or Imported
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Estimated ship dimensions: 1.5 inches length x 6.69 inches width x 9.61 inches height
Estimated ship weight: 2.84 pounds
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Q: How many research papers are included in the book?

submitted by AI Shopping Assistant - 4 days ago
  • A: The book includes 18 research papers written by specialists in Approximate Bayesian Inference.

    submitted byAI Shopping Assistant - 4 days ago
    Ai generated

Q: What type of algorithms are discussed in the book?

submitted by AI Shopping Assistant - 4 days ago
  • A: It discusses optimization-based methods, simulation-based methods, and algorithms like Metropolis-Hastings and variational approximations.

    submitted byAI Shopping Assistant - 4 days ago
    Ai generated

Q: What topics are covered in this book?

submitted by AI Shopping Assistant - 4 days ago
  • A: The book covers statistical inference, Bayesian methods, machine learning, and applications in various fields like finance and astrophysics.

    submitted byAI Shopping Assistant - 4 days ago
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Q: Who is the target audience for this book?

submitted by AI Shopping Assistant - 4 days ago
  • A: The book is aimed at individuals aged 22 and up, particularly those interested in computer science and statistical methods.

    submitted byAI Shopping Assistant - 4 days ago
    Ai generated

Q: What is the primary focus of the book?

submitted by AI Shopping Assistant - 4 days ago
  • A: The primary focus is on recent advances in Approximate Bayesian Inference algorithms and their applications in various fields.

    submitted byAI Shopping Assistant - 4 days ago
    Ai generated

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