Deep Learning / keras version

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keras 🌿
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Deep Learning for humans

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keras-bda πŸ‚
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A Bayesian Data Augmentation Approach for Learning Deep Models in Keras. Here is the link to a pytorch version: https://github.com/toantm/pytorch-bda

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A silly Deep Learning Keras version of tictactoe

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Deep version of the Seq2Seq model written in Keras. Extension of version described in https://blog.keras.io/a-ten-minute-introduction-to-sequence-to-sequence-learning-in-keras.html

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4 (+0) ⭐

DeepArtist is an CNN based deep learning model to identify artist or painter from a painting. This repo contains code of the web application version of DeepArtist. Technologies used - Python, Tensorflow, Keras, Flask, HTML and CSS.

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Deep learning is the machine learning technique behind the most exciting capabilities in diverse areas like robotics, natural language processing, image recognition and artificial intelligence (including the famous AlphaGo). In this course, you'll gain hands-on, practical knowledge of how to use deep learning with Keras 2.0, the latest version of a cutting edge library for deep learning in Python.

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Ability to easily iterate over different neural network architectures is key to doing machine learning research. While deep learning libraries like Keras makes it very easy to prototype new layers and models, writing custom recurrent neural networks is harder than it needs to be in almost all popular deep learning libraries available today. One key missing feature in these libraries is reusable RNN cells. Most libraries provide layers (such as LSTM, GRU etc), which can only be used as is, and not be easily embedded in a bigger RNN. Writing the RNN logic itself can be tiresome at times. For example in Keras, information about the states (shape and initial value) are provided by writing two seperate functions, get_initial_states and reset_states (for stateful version). There are many architectures whose implementation is not trivial using modern deep learning libraries, such as:

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