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Practical Machine Learning for Computer Vision: End-to-End Image Processing Guide | AI & Deep Learning for Developers | Perfect for Image Recognition & Computer Vision Projects
$22.81
$41.48
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Practical Machine Learning for Computer Vision: End-to-End Image Processing Guide | AI & Deep Learning for Developers | Perfect for Image Recognition & Computer Vision Projects
Practical Machine Learning for Computer Vision: End-to-End Image Processing Guide | AI & Deep Learning for Developers | Perfect for Image Recognition & Computer Vision Projects
Practical Machine Learning for Computer Vision: End-to-End Image Processing Guide | AI & Deep Learning for Developers | Perfect for Image Recognition & Computer Vision Projects
$22.81
$41.48
45% Off
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Description
This practical book shows you how to employ machine learning models to extract information from images. ML engineers and data scientists will learn how to solve a variety of image problems including classification, object detection, autoencoders, image generation, counting, and captioning with proven ML techniques. This book provides a great introduction to end-to-end deep learning: dataset creation, data preprocessing, model design, model training, evaluation, deployment, and interpretability. Google engineers Valliappa Lakshmanan, Martin Görner, and Ryan Gillard show you how to develop accurate and explainable computer vision ML models and put them into large-scale production using robust ML architecture in a flexible and maintainable way. You'll learn how to design, train, evaluate, and predict with models written in TensorFlow or Keras. You'll learn how to: Design ML architecture for computer vision tasks Select a model (such as ResNet, SqueezeNet, or EfficientNet) appropriate to your task Create an end-to-end ML pipeline to train, evaluate, deploy, and explain your model Preprocess images for data augmentation and to support learnability Incorporate explainability and responsible AI best practices Deploy image models as web services or on edge devices Monitor and manage ML models
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Reviews
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5
I loved that this book essentially built on top of my current knowledge of Computer Vision. I have been through many courses to learn a lot about Computer Vision. The number one thing I liked about this book is that it provided a lot of context to various questions I have had but never got the chance to research. Things like how to handle Polar vs Cartesian Coordinates on images, how to handle other metadata related images, how to perform CV on sound waves, and etc.The amount of additional resources this book has makes it well worth the price! I highly recommend this book if you work in the Computer Vision or even in the ML space.

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