TensorFlow Hub: Deep Learning, Computer Vision and NLP
Price: 19.99$
Deep Learning is the application of artificial neural networks to solve complex problems and commercial problems. There are several practical applications that have already been built using these techniques, such as: self-driving cars, development of new medicines, diagnosis of diseases, automatic generation of news, facial recognition, product recommendation, forecast of stock prices, and many others! The technique used to solve these problems is artificial neural networks, which aims to simulate how the human brain works. They are considered to be the most advanced techniques in the Machine Learning area. One of the most used libraries to implement this type of application is Google Tensor Flow, which supports advanced architectures of artificial neural networks. There is also a repository called Tensor Flow Hub which contains pre-trained neural networks for solving many kinds of problems, mainly in the area of Computer Vision and Natural Language Processing. The advantage is that you do not need to train a neural network from scratch! Google itself provides hundreds of ready-to-use models, so you just need to load and use them in your own projects. Another advantage is that few lines of code are needed to get the results! In this course you will have a practical overview of some of the main Tensor Flow Hub models that can be applied to the development of Deep Learning projects! At the end, you will have all the necessary tools to use Tensor Flow Hub to build complex solutions that can be applied to business problems. See below the projects that you are going to implement: Classification of five species of flowers Detection of over 80 different objects Creating new images using style transfer Use of GAN (generative adversarial network) to complete missing parts of images Recognition of actions in videos Text polarity classification (positive and negative)Use of a question and answer (Q & A) dataset to find similar document Audio classification All implementations will be done step by step using Google Colab online, so you do not need to worry about installing and configuring the tools on your own machine! There are more than 50 classes and more than 7 hours of videos!
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And Im running from a standard users account with strict limitations, which I think may be the limiting factor, but Im running the cmd as the system I am currently working on.