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Time Series Algorithms Recipes - Implement Machine Learning and Deep Learning Techniques with Python (Paperback, 1st ed.) Loot Price: R762
Discovery Miles 7 620
You Save: R128 (14%)
Time Series Algorithms Recipes - Implement Machine Learning and Deep Learning Techniques with Python (Paperback, 1st ed.):...

Time Series Algorithms Recipes - Implement Machine Learning and Deep Learning Techniques with Python (Paperback, 1st ed.)

Akshay R Kulkarni, Adarsha Shivananda, Anoosh Kulkarni, V Adithya Krishnan

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List price R890 Loot Price R762 Discovery Miles 7 620 | Repayment Terms: R71 pm x 12* You Save R128 (14%)

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This book teaches the practical implementation of various concepts for time series analysis and modeling with Python through problem-solution-style recipes, starting with data reading and preprocessing. It begins with the fundamentals of time series forecasting using statistical modeling methods like AR (autoregressive), MA (moving-average), ARMA (autoregressive moving-average), and ARIMA (autoregressive integrated moving-average). Next, you'll learn univariate and multivariate modeling using different open-sourced packages like Fbprohet, stats model, and sklearn. You'll also gain insight into classic machine learning-based regression models like randomForest, Xgboost, and LightGBM for forecasting problems. The book concludes by demonstrating the implementation of deep learning models (LSTMs and ANN) for time series forecasting. Each chapter includes several code examples and illustrations. After finishing this book, you will have a foundational understanding of various concepts relating to time series and its implementation in Python. What You Will Learn Implement various techniques in time series analysis using Python. Utilize statistical modeling methods such as AR (autoregressive), MA (moving-average), ARMA (autoregressive moving-average) and ARIMA (autoregressive integrated moving-average) for time series forecasting Understand univariate and multivariate modeling for time series forecasting Forecast using machine learning and deep learning techniques such as GBM and LSTM (long short-term memory) Who This Book Is ForData Scientists, Machine Learning Engineers, and software developers interested in time series analysis.

General

Imprint: Apress
Country of origin: United States
Release date: December 2022
First published: 2023
Authors: Akshay R Kulkarni • Adarsha Shivananda • Anoosh Kulkarni • V Adithya Krishnan
Dimensions: 235 x 155mm (L x W)
Format: Paperback
Pages: 174
Edition: 1st ed.
ISBN-13: 978-1-4842-8977-8
Categories: Books > Computing & IT > Computer programming > Programming languages > General
Books > Computing & IT > Applications of computing > Artificial intelligence > Machine learning
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LSN: 1-4842-8977-3
Barcode: 9781484289778

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