Time Series Analysis with Python Cookbook: Practical recipes for exploratory data analysis, data preparation, forecasting, and model evaluation
Mahsulot #: 58534803

Time Series Analysis with Python Cookbook: Practical recipes for exploratory data analysis, data preparation, forecasting, and model evaluation

Mahsulot #: 58534803

UZS 669901

UZS 1175042

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  • Perform time series analysis and forecasting confidently with this Python code bank and reference manualKey FeaturesExplore forecasting and anomaly detection techniques using statistical, machine learning, and deep learning algorithmsLearn different techniques for evaluating, diagnosing, and optimizing your modelsWork with a variety of complex data with trends, multiple seasonal patterns, and irregularitiesBook DescriptionTime series data is everywhere, available at a high frequency and volume. It is complex and can contain noise, irregularities, and multiple patterns, making it crucial to be well-versed with the techniques covered in this book for data preparation, analysis, and forecasting.This book covers practical techniques for working with time series data, starting with ingesting time series data from various sources and formats, whether in private cloud storage, relational databases, non-relational databases, or specialized time series databases such as InfluxDB. Next, you'll learn strategies for handling missing data, dealing with time zones and custom business days, and detecting anomalies using intuitive statistical methods, followed by more advanced unsupervised ML models. The book will also explore forecasting using classical statistical models such as Holt-Winters, SARIMA, and VAR. The recipes will present practical techniques for handling non-stationary data, using power transforms, ACF and PACF plots, and decomposing time series data with multiple seasonal patterns. Later, you'll work with ML and DL models using TensorFlow and PyTorch.Finally, you'll learn how to evaluate, compare, optimize models, and more using the recipes covered in the book.What you will learnUnderstand what makes time series data different from other dataApply various imputation and interpolation strategies for missing dataImplement different models for univariate and multivariate time seriesUse different deep learning libraries such as TensorFlow, Keras, and PyTorchPlot interactive time series visualizations using hvPlotExplore state-space models and the unobserved components model (UCM)Detect anomalies using statistical and machine learning methodsForecast complex time series with multiple seasonal patternsWho this book is forThis book is for data analysts, business analysts, data scientists, data engineers, or Python developers who want practical Python recipes for time series analysis and forecasting techniques. Fundamental knowledge of Python programming is required. Although having a basic math and statistics background will be beneficial, it is not necessary. Prior experience working with time series data to solve business problems will also help you to better utilize and apply the different recipes in this book.Table of ContentsGetting Started with Time Series AnalysisReading Time Series Data from FilesReading Time Series Data from DatabasesPersisting Time Series Data to FilesPersisting Time Series Data to DatabasesWorking with Date and Time in PythonHandling Missing DataOutlier Detection Using Statistical MethodsExploratory Data Analysis and DiagnosisBuilding Univariate Time Series Models Using Statistical MethodsAdditional Statistical Modeling Techniques for Time SeriesForecasting Using Supervised Machine LearningDeep Learning for Time Series ForecastingOutlier Detection Using Unsupervised Machine LearningAdvanced Techniques for Complex Time Series
Publisher Packt Publishing
Publication date June 30, 2022
Language English
Print length 630 pages
ISBN-10 1801075549
ISBN-13 978-1801075541
Item Weight 2.35 pounds (1.07 kg)
Dimensions 7.5 x 1.42 x 9.25 inches (19.1 x 3.6 x 23.5 cm)

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Time Series Analysis with Python Cookbook: Practical recipes for exploratory data analysis, data preparation, forecasting, and model evaluation

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