Cursos de TensorFlow

Cursos de TensorFlow

TensorFlow é uma biblioteca de software de código aberto para aprendizagem profunda (deep learning). Os cursos de treinamento TensorFlow ao vivo demonstram, através de discussões interativas e práticas práticas, como usar o sistema TensorFlow para facilitar a pesquisa em aprendizado de máquina e facilitar a transição do protótipo de pesquisa para o sistema de produção. O treinamento TensorFlow está disponível em vários formatos, incluindo treinamento ao vivo no local e treinamento online ao vivo e interativo. O treinamento ao vivo no local pode ser realizado nas instalações do cliente no Brasil ou nos centros de treinamento locais NobleProg no Brasil. O treinamento ao vivo remoto é realizado por meio de uma área de trabalho remota e interativa.



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Programas do curso TensorFlow

Nome do Curso
Duração
Visão geral
Nome do Curso
Duração
Visão geral
21 horas
O TensorFlow é um API de segunda geração da biblioteca de software de código aberto do Google para o Deep Learning.
O sistema é desenhado para facilitar a pesquisa em machine learning e para tornar facil e rapido a transição do prototipo de pesquisa ao sistema de produção.

Público:
Este curso é dirigido a todos aqueles engeheiros que buscam utilizar o TensorFlow para seus projetos de Deep Learning, já sejam pessoais ou laborais.
Depois de completar o Curso, os participantes poderão:

- Entender a estrutura do TensorFlow e os seus mecanismos.
- poderão fazer a instalação do ambiente de produççao no programa
- Poderão entender e monitorar a qualidade do código esrito.
- Imlementar modelos avançados de treinamento, raficos e logging.
28 horas
Este curso explora com exemplo específicos a aplicação do TensorFlow para os propósitos do reconhecimento de imagem.

Este cuso é dirigido à engenheiros que buscam utilizar o TensorFlow para os propósitos de reconhecimento de imagem.

Os participantes que tomem este curso aprenderão:

- Entender a estrutura e mecanismos do TensorFlow
- Instalar e produzir e produzir no ambiente do programa.
- Implementar treinamento avançado, modedlos de construçao de graficos e logging.
35 horas
TensorFlow™ is an open source software library for numerical computation using data flow graphs.

SyntaxNet is a neural-network Natural Language Processing framework for TensorFlow.

Word2Vec is used for learning vector representations of words, called "word embeddings". Word2vec is a particularly computationally-efficient predictive model for learning word embeddings from raw text. It comes in two flavors, the Continuous Bag-of-Words model (CBOW) and the Skip-Gram model (Chapter 3.1 and 3.2 in Mikolov et al.).

Used in tandem, SyntaxNet and Word2Vec allows users to generate Learned Embedding models from Natural Language input.

Audience

This course is targeted at Developers and engineers who intend to work with SyntaxNet and Word2Vec models in their TensorFlow graphs.

After completing this course, delegates will:

- understand TensorFlow’s structure and deployment mechanisms
- be able to carry out installation / production environment / architecture tasks and configuration
- be able to assess code quality, perform debugging, monitoring
- be able to implement advanced production like training models, embedding terms, building graphs and logging
21 horas
Este curso é apropriado para pesquisadores em Deep Learning e engenheiros interessados em utilizar as ferramentas disponíveis (a maioria sendo de código aberto) para analizar as imagens de computador.
28 horas
This course will give you knowledge in neural networks and generally in machine learning algorithm, deep learning (algorithms and applications).

This training is more focus on fundamentals, but will help you to choose the right technology : TensorFlow, Caffe, Teano, DeepDrive, Keras, etc. The examples are made in TensorFlow.
7 horas
In this instructor-led, live training in Brasil, participants will learn how to take advantage of the innovations in TPU processors to maximize the performance of their own AI applications.

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

- Train various types of neural networks on large amounts of data.
- Use TPUs to speed up the inference process by up to two orders of magnitude.
- Utilize TPUs to process intensive applications such as image search, cloud vision and photos.
14 horas
Embedding Projector is an open-source web application for visualizing the data used to train machine learning systems. Created by Google, it is part of TensorFlow.

This instructor-led, live training introduces the concepts behind Embedding Projector and walks participants through the setup of a demo project.

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

- Explore how data is being interpreted by machine learning models
- Navigate through 3D and 2D views of data to understand how a machine learning algorithm interprets it
- Understand the concepts behind Embeddings and their role in representing mathematical vectors for images, words and numerals.
- Explore the properties of a specific embedding to understand the behavior of a model
- Apply Embedding Project to real-world use cases such building a song recommendation system for music lovers

Audience

- Developers
- Data scientists

Format of the course

- Part lecture, part discussion, exercises and heavy hands-on practice
7 horas
In this instructor-led, live training in Brasil (online or onsite), participants will learn how to configure and use TensorFlow Serving to deploy and manage ML models in a production environment.

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

- Train, export and serve various TensorFlow models.
- Test and deploy algorithms using a single architecture and set of APIs.
- Extend TensorFlow Serving to serve other types of models beyond TensorFlow models.
35 horas
This course begins with giving you conceptual knowledge in neural networks and generally in machine learning algorithm, deep learning (algorithms and applications).

Part-1(40%) of this training is more focus on fundamentals, but will help you choosing the right technology : TensorFlow, Caffe, Theano, DeepDrive, Keras, etc.

Part-2(20%) of this training introduces Theano - a python library that makes writing deep learning models easy.

Part-3(40%) of the training would be extensively based on Tensorflow - 2nd Generation API of Google's open source software library for Deep Learning. The examples and handson would all be made in TensorFlow.

Audience

This course is intended for engineers seeking to use TensorFlow for their Deep Learning projects

After completing this course, delegates will:

-

have a good understanding on deep neural networks(DNN), CNN and RNN

-

understand TensorFlow’s structure and deployment mechanisms

-

be able to carry out installation / production environment / architecture tasks and configuration

-

be able to assess code quality, perform debugging, monitoring

-

be able to implement advanced production like training models, building graphs and logging
28 horas
In this instructor-led, live training in Brasil, participants will learn to use Python libraries for NLP as they create an application that processes a set of pictures and generates captions.

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

- Design and code DL for NLP using Python libraries.
- Create Python code that reads a substantially huge collection of pictures and generates keywords.
- Create Python Code that generates captions from the detected keywords.
28 horas
This is a 4 day course introducing AI and it's application. There is an option to have an additional day to undertake an AI project on completion of this course.
21 horas
This instructor-led, live training in Brasil (online or onsite) is aimed at developers and data scientists who wish to use Tensorflow 2.x to build predictors, classifiers, generative models, neural networks and so on.

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

- Install and configure TensorFlow 2.x.
- Understand the benefits of TensorFlow 2.x over previous versions.
- Build deep learning models.
- Implement an advanced image classifier.
- Deploy a deep learning model to the cloud, mobile and IoT devices.
14 horas
This instructor-led, live training in Brasil (online or onsite) is aimed at data scientists who wish to use TensorFlow.js to identify patterns and generate predictions through machine learning models.

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

- Build and train machine learning models with TensorFlow.js.
- Run existing machine learning models in the browser or under Node.js.
- Retrain pre-existing machine learning using custom data.
21 horas
This instructor-led, live training in Brasil (online or onsite) is aimed at data scientists who wish to go from training a single ML model to deploying many ML models to production.

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

- Install and configure TFX and supporting third-party tools.
- Use TFX to create and manage a complete ML production pipeline.
- Work with TFX components to carry out modeling, training, serving inference, and managing deployments.
- Deploy machine learning features to web applications, mobile applications, IoT devices and more.
14 horas
This instructor-led, live training in Brasil (online or onsite) is aimed at data scientists who wish to use TensorFlow to analyze potential fraud data.

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

- Create a fraud detection model in Python and TensorFlow.
- Build linear regressions and linear regression models to predict fraud.
- Develop an end-to-end AI application for analyzing fraud data.

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Próximos Cursos de TensorFlow

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