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portada PyTorch Deep Learning Blueprint. A Hands-On Guide to Building, Training, and Deploying Modern AI Models with Python, Transformers, and LLMs (2026 Edition) (en Inglés)
Formato
Libro Físico
Año
2026
Idioma
Inglés
N° páginas
104
Encuadernación
Tapa Blanda
Dimensiones
22.9x15.2x0.5 cm
ISBN13
9798196773846

PyTorch Deep Learning Blueprint. A Hands-On Guide to Building, Training, and Deploying Modern AI Models with Python, Transformers, and LLMs (2026 Edition) (en Inglés)

Moment Tech (Autor) · Independently published · Tapa Blanda

PyTorch Deep Learning Blueprint. A Hands-On Guide to Building, Training, and Deploying Modern AI Models with Python, Transformers, and LLMs (2026 Edition) (en Inglés) - MOMENT TECH

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Reseña del libro "PyTorch Deep Learning Blueprint. A Hands-On Guide to Building, Training, and Deploying Modern AI Models with Python, Transformers, and LLMs (2026 Edition) (en Inglés)"

Can AI truly be trusted in the clinic? In the high-stakes world of healthcare, "close enough" isn't good enough.
The gap between a Python script on a laptop and a deployed model in a hospital is a chasm filled with data silos, interoperability hurdles, and ethical minefields. Applied Clinical AI is the master blueprint for engineers and healthcare professionals who need to build, scale, and deploy AI that works in the real world.
Authored by MOMENT TECH, this hands-on guide skips the hype and dives straight into the technical architecture required to modernize healthcare. From mastering the nuances of FHIR (Fast Healthcare Interoperability Resources) to fine-tuning LLMs for medical reasoning, this book provides the production-grade code and strategy needed for 2026 and beyond.
Inside this comprehensive blueprint, you will master:
The Modern Stack: Build robust clinical pipelines using Python, Transformers, and PyTorch.
FHIR Integration: Bridge the gap between legacy EHR data and modern AI models with seamless interoperability.
LLMs in Medicine: Go beyond generic prompts-learn to fine-tune Large Language Models for high-accuracy clinical decision support.
Generative Healthcare: Implement VAEs, GANs, and Diffusion models for medical imaging and synthetic data generation.
Production & Scale: Move from local training to distributed clusters with FSDP and high-performance deployment wrappers.
The Ethics of Autonomy: Design agentic workflows that maintain "Human-in-the-Loop" safety and HIPAA/GDPR compliance.
Whether you are a senior software engineer moving into HealthTech or a clinical researcher looking to operationalize your models, this book is your technical North Star.
Stop building prototypes. Start building the future of medicine.

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El libro está escrito en Inglés.
La encuadernación de esta edición es Tapa Blanda.

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