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Microsoft Cognitive Toolkit 2.x培訓(xùn)

 
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   上課時(shí)間和地點(diǎn)
上課地點(diǎn):【上海】:同濟(jì)大學(xué)(滬西)/新城金郡商務(wù)樓(11號(hào)線白銀路站) 【深圳分部】:電影大廈(地鐵一號(hào)線大劇院站)/深圳大學(xué)成教院 【北京分部】:北京中山學(xué)院/福鑫大樓 【南京分部】:金港大廈(和燕路) 【武漢分部】:佳源大廈(高新二路) 【成都分部】:領(lǐng)館區(qū)1號(hào)(中和大道) 【沈陽(yáng)分部】:沈陽(yáng)理工大學(xué)/六宅臻品 【鄭州分部】:鄭州大學(xué)/錦華大廈 【石家莊分部】:河北科技大學(xué)/瑞景大廈 【廣州分部】:廣糧大廈 【西安分部】:協(xié)同大廈
最近開(kāi)課時(shí)間(周末班/連續(xù)班/晚班):2019年1月26日
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課程大綱
 

Microsoft Cognitive Toolkit 2.x (previously CNTK) is an open-source, commercial-grade toolkit that trains deep learning algorithms to learn like the human brain. According to Microsoft, CNTK can be 5-10x faster than TensorFlow on recurrent networks, and 2 to 3 times faster than TensorFlow for image-related tasks.

In this instructor-led, live training, participants will learn how to use Microsoft Cognitive Toolkit to create, train and evaluate deep learning algorithms for use in commercial-grade AI applications involving multiple types of data such as data, speech, text, and images.

By the end of this training, participants will be able to:

Access CNTK as a library from within a Python, C#, or C++ program
Use CNTK as a standalone machine learning tool through its own model description language (BrainScript)
Use the CNTK model evaluation functionality from a Java program
Combine feed-forward DNNs, convolutional nets (CNNs), and recurrent networks (RNNs/LSTMs)
Scale computation capacity on CPUs, GPUs and multiple machines
Access massive datasets using existing programming languages and algorithms
Audience

Developers
Data scientists
Format of the course

Part lecture, part discussion, exercises and heavy hands-on practice
Note

If you wish to customize any part of this training, including the programming language of choice, please contact us to arrange.

To request a customized course outline for this training, please contact us.

 
  備案號(hào):備案號(hào):滬ICP備08026168號(hào)-1 .(2024年07月24日)...............