Computer Vision Using Deep Learning: Neural Network Architectures with Python and Keras
(eBook)

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Published
Apress, 2021.
Status
Available Online

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Format
eBook
Language
English
ISBN
9781484266168

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APA Citation, 7th Edition (style guide)

Vaibhav Verdhan., & Vaibhav Verdhan|AUTHOR. (2021). Computer Vision Using Deep Learning: Neural Network Architectures with Python and Keras . Apress.

Chicago / Turabian - Author Date Citation, 17th Edition (style guide)

Vaibhav Verdhan and Vaibhav Verdhan|AUTHOR. 2021. Computer Vision Using Deep Learning: Neural Network Architectures With Python and Keras. Apress.

Chicago / Turabian - Humanities (Notes and Bibliography) Citation, 17th Edition (style guide)

Vaibhav Verdhan and Vaibhav Verdhan|AUTHOR. Computer Vision Using Deep Learning: Neural Network Architectures With Python and Keras Apress, 2021.

MLA Citation, 9th Edition (style guide)

Vaibhav Verdhan, and Vaibhav Verdhan|AUTHOR. Computer Vision Using Deep Learning: Neural Network Architectures With Python and Keras Apress, 2021.

Note! Citations contain only title, author, edition, publisher, and year published. Citations should be used as a guideline and should be double checked for accuracy. Citation formats are based on standards as of August 2021.

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Grouped Work ID5cd4a913-54ee-1835-630e-1abd9fb3d05e-eng
Full titlecomputer vision using deep learning neural network architectures with python and keras
Authorverdhan vaibhav
Grouping Categorybook
Last Update2023-12-26 19:04:05PM
Last Indexed2024-04-20 01:08:44AM

Book Cover Information

Image Sourcehoopla
First LoadedSep 12, 2022
Last UsedApr 18, 2024

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    [synopsis] => Organizations spend huge resources in developing software that can perform the way a human does. Image classification, object detection and tracking, pose estimation, facial recognition, and sentiment estimation all play a major role in solving computer vision problems.
This book will bring into focus these and other deep learning architectures and techniques to help you create solutions using Keras and the TensorFlow library. You'll also review mutliple neural network architectures, including LeNet, AlexNet, VGG, Inception, R-CNN, Fast R-CNN, Faster R-CNN, Mask R-CNN, YOLO, and SqueezeNet and see how they work alongside Python code via best practices, tips, tricks, shortcuts, and pitfalls. All code snippets will be broken down and discussed thoroughly so you can implement the same principles in your respective environments.

Computer Vision Using Deep Learning offers a comprehensive yet succinct guide that stitches DL and CV together to automate operations, reduce human intervention, increase capability, and cut the costs.

What You'll Learn

• Examine deep learning code and concepts to apply guiding principals to your own projects
• Classify and evaluate various architectures to better understand your options in various use cases
• Go behind the scenes of basic deep learning functions to find out how they work

Who This Book Is For
Professional practitioners working in the fields of software engineering and data science. A working knowledge of Python is strongly recommended. Students and innovators working on advanced degrees in areas related to computer vision and Deep Learning.
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