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學生對 Coursera Project Network 提供的 TensorFlow Serving with Docker for Model Deployment 的評價和反饋

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52 個評分

課程概述

This is a hands-on, guided project on deploying deep learning models using TensorFlow Serving with Docker. In this 1.5 hour long project, you will train and export TensorFlow models for text classification, learn how to deploy models with TF Serving and Docker in 90 seconds, and build simple gRPC and REST-based clients in Python for model inference. With the worldwide adoption of machine learning and AI by organizations, it is becoming increasingly important for data scientists and machine learning engineers to know how to deploy models to production. While DevOps groups are fantastic at scaling applications, they are not the experts in ML ecosystems such as TensorFlow and PyTorch. This guided project gives learners a solid, real-world foundation of pushing your TensorFlow models from development to production in no time! Prerequisites: In order to successfully complete this project, you should be familiar with Python, and have prior experience with building models with Keras or TensorFlow. Note: This course works best for learners who are based in the North America region. We’re currently working on providing the same experience in other regions....

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1 - TensorFlow Serving with Docker for Model Deployment 的 9 個評論(共 9 個)

創建者 Enzo D G M

2020年10月18日

創建者 Gabriel I P L

2020年8月26日

創建者 Bryan R

2021年4月23日

創建者 Rohan C

2021年2月20日

創建者 serdar b

2021年1月18日

創建者 Kristian V

2021年2月14日

創建者 Carlos M C F

2020年8月26日

創建者 Igor K

2021年8月15日

創建者 David W

2020年11月10日