PyTorch Pocket Reference: Building and Deploying Deep Learning Models
PyTorch has, no doubt, enabled some of the finest advances in deep learning and AI.
PyTorch Pocket Reference: Building and Deploying Deep Learning Models
Stavka #: 32224869

PyTorch Pocket Reference: Building and Deploying Deep Learning Models

Stavka #: 32224869

€ 23

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PyTorch has, no doubt, enabled some of the finest advances in deep learning and AI.
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What Stands Out

Concise Guide
A compact reference that provides essential information on PyTorch, ideal for quickly building and deploying deep learning models without overwhelming detail, making it perfect for beginners and busy professionals.
Hands-On Approach
Includes practical examples and real-world applications, enabling users to immediately implement learned concepts, thus enhancing understanding and retention of deep learning techniques.
Updated Content
Current with the latest PyTorch developments, this edition ensures users are working with the most up-to-date tools and practices, giving them a competitive edge in the rapidly evolving field of deep learning.

Detalji o proizvodu

Discover how to build and deploy deep learning models with the PyTorch Pocket Reference. Ubuy Croatia offers the 1st edition of this essential resource for deep learning enthusiasts.
Publisher O'Reilly Media
Publication date June 15, 2021
Edition 1st
Language English
Print length 307 pages
ISBN-10 149209000X
ISBN-13 978-1492090007
Item Weight 2.31 pounds (1.05 kg)
Dimensions 4.25 x 0.65 x 7 inches (10.8 x 1.7 x 17.8 cm)

Who Should Buy?

Suitable For
  • Beginner Developers

    Ideal for newcomers to deep learning looking for a concise guide to start building models using PyTorch.

  • Busy Professionals

    Perfect for data scientists and ML engineers who need a quick reference for PyTorch without extensive reading.

  • Rapid Prototypers

    Beneficial for those requiring swift model development and deployment, providing essential insights without overwhelming detail.

Not Suitable For
  • Comprehensive Learners

    Not suitable for those who prefer in-depth study and theoretical understanding of deep learning concepts.

OPIS PROIZVODA

PyTorch Pocket Reference: Building and Deploying Deep Learning Models

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Pitanja i odgovori kupaca

  • pitanje: Kako kupovati PyTorch Pocket Reference: Building and Deploying online od Ubuya?

    odgovor: Jednostavno je kupovati PyTorch Pocket Reference: Building and Deploying online s Ubuya.. Samo trebate potražiti proizvod, odabrati način dostave tijekom odjave i dobiti ga na svoju lokaciju.
  • pitanje: Je li PyTorch Pocket Reference: Building and Deploying dostupan za online kupnju u Croatia?

    odgovor: Da, na Ubuyu Croatia ovaj proizvod vam je dostupan za kupnju po razumnoj cijeni.. PyTorch Pocket Reference: Building and Deploying nije dostupan lokalno, ali možete nam povjeriti naše usluge ekspresne dostave.
  • pitanje: Koliko dugo je potrebno da dobijete proizvod nakon narudžbe?

    odgovor: Vrijeme isporuke vašeg naručenog proizvoda ovisi o tome što ste naručili i načinu dostave koji ste odabrali.. Predviđeno vrijeme dostave navedeno je tijekom procesa naplate, stoga budite bezbrižni prilikom kupovine.

Intelligence & Semantics Editorial Review

PyTorch Pocket Reference: Building and Deploying Deep Learning Models is an informative guide published by O'Reilly Media on June 15, 2021. It covers essential aspects of using PyTorch, a dominant framework in machine learning research. Users have found the book useful for quickly referencing key concepts and API subsets without getting lost in extensive online documentation. The content succinctly addresses optimization loops and usage guidance, allowing for effective application in development. However, some readers note the challenges of reproducibility due to missing requirements files and the reliance on external tutorials for deeper understanding, indicating a need for improved clarity and completeness.

Customer Reviews & Ratings

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Pros

  • Concise guide for quick reference
  • Helpful for beginners in PyTorch
  • Well-categorized API subsets
  • Clear writing style and perspective
  • Informative for transitioning from other frameworks

Protiv

  • Some content may feel incomplete or outdated

Product Price History

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