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Caffe2 Quick Start Guide

You're reading from   Caffe2 Quick Start Guide Modular and scalable deep learning made easy

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Product type Paperback
Published in May 2019
Publisher Packt
ISBN-13 9781789137750
Length 136 pages
Edition 1st Edition
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Author (1):
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Ashwin Nanjappa Ashwin Nanjappa
Author Profile Icon Ashwin Nanjappa
Ashwin Nanjappa
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Toc

Inference engines

Popular DL frameworks, such as TensorFlow, PyTorch, and Caffe, are designed primarily for training deep neural networks. They focus on offering features that are more useful for researchers to experiment easily with different types of network structures, training regimens, and techniques to achieve optimum training accuracy to solve a particular problem in the real world. After a neural network model has been successfully trained, practitioners could continue to use the same DL framework for deploying the trained model for inference. However, there are more efficient deployment solutions for inference. These are pieces of inference software that compile a trained model into a computation engine that is most efficient in latency or throughput on the accelerator hardware used for deployment.

Much like a C or C++ compiler, inference engines take the trained model...

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