Advanced Forecasting With Python Av Joos Korstanje

Advanced Forecasting With Python Av Joos Korstanje

Cover all the machine learning techniques relevant for forecasting problems, ranging from univariate and multivariate time series to supervised learning, to state-of-the-art deep forecasting models such as LSTMs, recurrent neural networks, Facebook''s open-source Prophet model, and Amazon''s DeepA......
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<p>Cover all the machine learning techniques relevant for forecasting problems, ranging from univariate and multivariate time series to supervised learning, to state-of-the-art deep forecasting models such as LSTMs, recurrent neural networks, Facebook''s open-source Prophet model, and Amazon''s DeepAR model.</p><p>Rather than focus on a specific set of models, this book presents an exhaustive overview of all the techniques relevant to practitioners of forecasting. It begins by explaining the different categories of models that are relevant for forecasting in a high-level language. Next, it covers univariate and multivariate time series models followed by advanced machine learning and deep learning models. It concludes with reflections on model selection such as benchmark scores vs. understandability of models vs. compute time, and automated retraining and updating of models. </p><p>Each of the models presented in this book is covered in depth, with an intuitive simple explanation of th
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Cover all the machine learning techniques relevant for forecasting problems, ranging from univariate and multivariate time series to supervised learning, to state-of-the-art deep forecasting models such as LSTMs, recurrent neural networks, Facebook''s open-source Prophet model, and Amazon''s DeepAR model.Rather than focus on a specific set of models, this book presents an exhaustive overview of all the techniques relevant to practitioners of forecasting. It begins by explaining the different categories of models that are relevant for forecasting in a high-level language. Next, it covers univariate and multivariate time series models followed by advanced machine learning and deep learning models. It concludes with reflections on model selection such as benchmark scores vs. understandability of models vs. compute time, and automated retraining and updating of models. Each of the models presented in this book is covered in depth, with an intuitive simple explanation of the model, a mathematical transcription of the idea, and Python code that applies the model to an example data set.Reading this book will add a competitive edge to your current forecasting skillset. The book is also adapted to those who have recently started working on forecasting tasks and are looking for an exhaustive book that allows them to start with traditional models and gradually move into more and more advanced models.What You Will Learn Carry out forecasting with Python Mathematically and intuitively understand traditional forecasting models and state-of-the-art machine learning techniques Gain the basics of forecasting and machine learning, including evaluation of models, cross-validation, and back testing Select the right model for the right use case Who This Book Is ForThe advanced nature of the later chapters makes the book relevant for applied experts working in the domain of forecasting, as the models covered have been published only recently. Experts working in the domain will want to update their skills as traditional models are regularly being outperformed by newer models.

Produktinformasjon

Oppdag kraften i prediksjon med Advanced Forecasting With Python Av Joos Korstanje

Er du klar til å ta forecasting-ferdighetene dine til neste nivå? Med Advanced Forecasting With Python av Joos Korstanje får du en grundig innføring i de mest innovative teknikkene innen predictive analytics. Boken gir deg verktøyene til å mestre alt fra tradisjonelle tidsseriemodeller til de nyeste maskinlæringsteknikkene.

Hva du kan forvente av denne boken

  • Omfattende dekning: Dyk inn i både univariate og multivariate tidsserier, samt avanserte maskinlæringsmodeller, inkludert LSTMs og Facebooks Prophet-modell.
  • Praktiske eksempler: Lær med intuitiv forklaring og Python-kode for en rekke eksempler som gjør det lett å anvende teorien i praksis.
  • Evalueringsteknikker: Få et solid grunnlag i hvordan du evaluerer modeller, gjennomfører cross-validation og gjør back testing.
  • Modellvalg: Få innsikt i hvordan du velger riktig modell for forskjellige scenarier, fra benchmark-score til forståelighet og beregningstid.

For hvem er dette produktet?

Enten du er nybegynner eller en erfaren ekspert, vil Advanced Forecasting With Python Av Joos Korstanje gi deg de nødvendige verktøyene for å oppdatere og utfordre dine ferdigheter. De mer avanserte kapitlene lar deg dykke dypere inn i moderne modeller, som stadig overgår tradisjonelle tilnærminger.

Fordelene med å lese denne boken

  • Bygg et solid fundament i forecasting og maskinlæring.
  • Få et forsprang i feltet med oppdatert kunnskap om de nyeste verktøyene og teknikkene.
  • Utvikle praktiske ferdigheter som du kan bruke umiddelbart i ditt arbeid.

Er du klar til å transformere dine forecasting-evner? Advanced Forecasting With Python Av Joos Korstanje er nøkkelen til suksess i det stadig mer komplekse landskapet av datanalyse. Slipp løs ditt potensial og bli en ekspert på prediksjoner!

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Spesifikasjoner
SpråkEngelsk
FormatPaperback
Generelt
Sett
Nei
TypPapirbøker

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