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portada Markov Models: Introduction to Markov Chains, Hidden Markov Models and Bayesian Networks
Type
Physical Book
Language
Inglés
Pages
106
Format
Paperback
Dimensions
22.9 x 15.2 x 0.6 cm
Weight
0.17 kg.
ISBN13
9781978304871

Markov Models: Introduction to Markov Chains, Hidden Markov Models and Bayesian Networks

Joshua Chapmann (Author) · Createspace Independent Publishing Platform · Paperback

Markov Models: Introduction to Markov Chains, Hidden Markov Models and Bayesian Networks - Chapmann, Joshua

Physical Book

£ 29.85

  • Condition: New
Origin: U.S.A. (Import costs included in the price)
It will be shipped from our warehouse between Thursday, July 25 and Thursday, August 01.
You will receive it anywhere in United Kingdom between 1 and 3 business days after shipment.

Synopsis "Markov Models: Introduction to Markov Chains, Hidden Markov Models and Bayesian Networks"

What is a MEMORYLESS predictive model? Markov models are a powerful predictive technique used to model stochastic systems using time-series data. They are centered around the fundamental property of "memorylessness", stating that the outcome of a problem depends only on the current state of the system - historical data must be ignored. This model construction may sound overly simplistic. After all, if you have historical data why not use it to develop more complete and well-informed models? Surely, it would lead to more accurate predictions. However, when modelling time-series data where previous results are of limited relevance, a memoryless model delivers vast performance advantages. By considering only the present state, algorithms become highly scalable, stable, fast and, above-all-else, extremely versatile. Speech recognition is a perfect example - nearly all of today's speech recognition algorthms are built using Markov Models. In this book we will explore why a Memoryless predictive model can be so advantageous to the modern tech industry. We will take a look at fundamental mathematics and high-level concepts alike, extending our understanding of the subject beyond the simple Markov Model. You will learn... Foundations of Markov Models Markov Chains Case Study: Google PageRank Hidden Markov Models Bayesian Networks Inference Tasks

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