čæ”å›žåˆ° Deep Learning with Keras and Tensorflow
IBM

Deep Learning with Keras and Tensorflow

Deep learning is revolutionizing many fields, including computer vision, natural language processing, and robotics. In addition, Keras, a high-level neural networks API written in Python, has become an essential part of TensorFlow, making deep learning accessible and straightforward. Mastering these techniques will open many opportunities in research and industry. You will learn to create custom layers and models in Keras and integrate Keras with TensorFlow 2.x for enhanced functionality. You will develop advanced convolutional neural networks (CNNs) using Keras. You will also build transformer models for sequential data and time series using TensorFlow with Keras. The course also covers the principles of unsupervised learning in Keras and TensorFlow for model optimization and custom training loops. Finally, you will develop and train deep Q-networks (DQNs) with Keras for reinforcement learning tasks (an overview of Generative Modeling and Reinforcement Learning is provided). You will be able to practice the concepts learned using hands-on labs in each lesson. A culminating final project in the last module will provide you an opportunity to apply your knowledge to build a Classification Model using transfer learning. This course is suitable for all aspiring AI engineers who want to learn TensorFlow and Keras. It requires a working knowledge of Python programming and basic mathematical concepts such as gradients and matrices, as well as fundamentals of Deep Learning using Keras.

ēŠ¶ę€ļ¼šKeras (Neural Network Library)
ēŠ¶ę€ļ¼šTransfer Learning
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精选评论

RR

4.0čÆ„č®ŗę—„ęœŸļ¼šJul 25, 2020

Nice course to introduce you to more advanced neural network algorithms, I wish the evaluations were more challenging and based on practical exercises... there is no final assignment either.

HJ

4.0čÆ„č®ŗę—„ęœŸļ¼šMay 17, 2020

It would have been nice if the video tutorials would explain the code section as well, and if there would have been some in-depth teaching of the code part. But this course did benefit.

MG

5.0čÆ„č®ŗę—„ęœŸļ¼šMay 16, 2023

very well-constructed course for deep learning students. Really enjoyed. Many thanks for IBM

CC

4.0čÆ„č®ŗę—„ęœŸļ¼šOct 4, 2022

V​ideos are good. Lab notebooks are a bit stale (still on tensorflow 2.2), so there are few wrinkles in getting them to work.

TJ

4.0čÆ„č®ŗę—„ęœŸļ¼šFeb 23, 2022

I expected some more explaination for the concepts. However from tensorflow website, more could be learnt.

MB

5.0čÆ„č®ŗę—„ęœŸļ¼šMar 25, 2022

The detail of prsenetation is awsome and make learning interesting. Thank you Corseara, Thank you IBM

VH

5.0čÆ„č®ŗę—„ęœŸļ¼šMar 4, 2021

This course is the best out of all courses in the specialization, the pace of the speaker was perfect.

RC

4.0čÆ„č®ŗę—„ęœŸļ¼šMay 14, 2020

Good an simple videos to understand the concept. The notebooks are very detailed and give a second layer of knowledge with practical example

RB

5.0čÆ„č®ŗę—„ęœŸļ¼šMay 18, 2020

Excellent course to get started with tensorflow and deep learning.Really enjoyed the course.

PD

4.0čÆ„č®ŗę—„ęœŸļ¼šJan 4, 2020

Very clear explanation and well organized course. I give 4 stars because videos of Week 5 are missing the audio and subtitles.

KG

5.0čÆ„č®ŗę—„ęœŸļ¼šFeb 3, 2025

I have seen a lot of people explaining different things in Deep Learning, but I must admit, this course should be given 10 on 10 for covering everything theory to code, basics to advanced.

XH

4.0čÆ„č®ŗę—„ęœŸļ¼šJun 29, 2020

The course concepts are not in-depth enough, and the server for Jupyter notebook running is way too slow...

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