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Advanced Applied Deep Learning

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Advanced Applied Deep Learning
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25,89 USD
Typical price29,35 PLN
Lowest (90 days)24,49 PLN
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Last updatedمنذ أسبوع
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2026-08-08 2026-08-14
سجل الأسعار
تاريخ التحديثالسعر
2026-08-0824,49
2026-08-1424,49
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SP SpringerNatureLink Shop INT 25,89 USD free 25,89 USD متوفر منذ 3 أيام View offer
SP SpringerNatureLink Shop INT 31,49 USD 29,00 USD 60,49 USD متوفر منذ 3 أيام View offer
SP SpringerNatureLink Shop INT 31,49 USD 29,00 USD 60,49 USD متوفر منذ 3 أيام View offer
SP SpringerNatureLink Shop INT 31,49 USD 25,00 USD 56,49 USD متوفر منذ 3 أيام View offer
SP SpringerNatureLink Shop INT 31,49 USD 29,00 USD 60,49 USD متوفر منذ 3 أيام View offer
SP Springer Nature Author 31,49 USD 15,00 USD 46,49 USD متوفر منذ أسبوع View offer
SP SpringerNatureLink Shop INT 33,70 EUR 19,00 EUR 52,70 EUR متوفر منذ 3 أيام View offer

قد تتغيّر الأسعار والتوفر. آخر تحديث: 08.08.2026 09:14.

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Develop and optimize deep learning models with advanced architectures. This book teaches you the intricate details and subtleties of the algorithms that are at the core of convolutional neural networks. In Advanced Applied Deep Learning, you will study advanced topics on CNN and object detection using Keras and TensorFlow. Along the way, you will look at the fundamental operations in CNN, such as convolution and pooling, and then look at more advanced architectures such as inception networks, resnets, and many more. While the book discusses theoretical topics, you will discover how to work efficiently with Keras with many tricks and tips, including how to customize logging in Keras with custom callback classes, what is eager execution, and how to use it in your models. Finally, you will study how object detection works, and build a complete implementation of the YOLO (you only look once) algorithm in Keras and TensorFlow. By the end of the book you will have implemented various models in Keras and learned many advanced tricks that will bring your skills to the next level. What You Will Learn See how convolutional neural networks and object detection work Save weights and models on disk Pause training and restart it at a later stage Use hardware acceleration (GPUs) in your code Work with the Dataset TensorFlow abstraction and use pre-trained models and transfer learning Remove and add layers to pre-trained networks to adapt them to your specific project Apply pre-trained models such as Alexnet and VGG16 to new datasets Who This Book Is For Scientists and researchers with intermediate-to-advanced Python and machine learning know-how. Additionally, intermediate knowledge of Keras and TensorFlow is expected.

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