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Advanced Deployment Scenarios with TensorFlow · LearnSpace
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courseraПрограммирование

Advanced Deployment Scenarios with TensorFlow

Курс от DeepLearning.AI
Средний≈ 12.9 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Bringing a machine learning model into the real world involves a lot more than just modeling. This Specialization will teach you how to navigate various deployment scenarios and use data more effectively to train your model. In this final course, you’ll explore four different scenarios you’ll encounter when deploying models. You’ll be introduced to TensorFlow Serving, a technology that lets you do inference over the web. You’ll move on to TensorFlow Hub, a repository of models that you can use for transfer learning. Then you’ll use TensorBoard to evaluate and understand how your models work, as well as share your model metadata with others. Finally, you’ll explore federated learning and how you can retrain deployed models with user data while maintaining data privacy. This Specialization builds upon our TensorFlow in Practice Specialization. If you are new to TensorFlow, we recommend that you take the TensorFlow in Practice Specialization first. To develop a deeper, foundational understanding of how neural networks work, we recommend that you take the Deep Learning Specialization.

Навыки, которые вы освоите

TensorflowModel DeploymentTransfer LearningFederated LearningInformation PrivacyModel TrainingFine-tuningMLOps (Machine Learning Operations)EmbeddingsModel EvaluationMachine Learning

Программа курса

4 модулей · 73 учебных материалов

01TensorFlow Extended20 материалов

TF serving as another deployment option for the model and ways to install it

Introduction, A conversation with Andrew NgВидеоIntroductionВидеоDownloading the Ungraded Labs and Programming AssignmentsЧтениеServingВидео

Учитесь у экспертов

Laurence Moroney

Instructor

Advanced Deployment Scenarios with TensorFlow
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Обучение откроется на Coursera
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Обучение на Coursera

≈ 12.9 ч

4 модулей

Язык: Английский

Субтитры: Арабский, Французский, Бенгальский, Украинский, Китайский (Китай), Греческий, Итальянский, Бразильский португальский, Вьетнамский, Нидерландский, Корейский, Немецкий, Пушту, Урду, Русский, Тайский, Индонезийский, Шведский, Турецкий, Азербайджанский, Испанский, Дари, Хинди, Японский, Казахский, Венгерский, Польский

Часть программы вашего университета
Installing TF ServingВидео
Join the DeepLearning.AI Forum to ask questions, get support, or share amazing ideas!Чтение
Installation linkЧтение
TensorFlow Serving summaryВидео

Building a model and deploying to TF Serving

Setup for servingВидеоServingВидео

Passing data to and from the model

PredictionsВидеоPassing data to servingВидеоGetting the predictions backВидеоTF server running in colabЧтениеRunning the colabВидео

Looking into a more complex model using the Fashion MNIST dataset

Serving with Fashion MNISTЧтениеComplex modelВидеоWeek 1 QuizЗадание

Lecture Notes (Optional)

Lecture Notes Week 1Чтение

Ungraded Exercise - Serving with MNIST

Ungraded Assignment - Serving with MNISTЧтение
02Sharing pre-trained models with TensorFlow Hub22 материалов

TF Hub

Introduction, A conversation with Andrew NgВидеоIntroduction to TF HubВидеоTensorflow Hub linkЧтениеTransfer learningВидеоLink to saved modelsЧтениеInferenceВидеоModule storageВидеоColabЧтение

Text based models

Text based modelsВидеоWord embeddingsВидеоPre-trained Word EmbeddingsЧтениеExperimenting with embeddingsВидеоText Classification ColabЧтениеColabВидео

Image classification

Classify cats and dogsВидеоMobileNet model detailsЧтениеTransfer learningВидеоColabЧтениеWeek 2 QuizЗадание

Lecture Notes (Optional)

Lecture Notes Week 2Чтение

Exercise 2 - TensorFlow Hub

TensorFlow Hub assignmentЛабораторнаяExercise 2Программирование
03Tensorboard: tools for model training16 материалов

Overview of Tensorboard

Introduction, A conversation with Andrew NgВидеоTensorboard scalarsВидеоtensorboard.devЧтениеCallbacksВидеоHistogramsВидеоPublishing model detailsВидео

Local Tensorboard

Local tensorboardВидео

Graphics and confusion matrix

Looking at graphics in a datasetВидеоMore than one imageВидеоConfusion matrixВидеоMultiple callbacksВидеоColabЧтениеWeek 3 QuizЗадание

Lecture Notes (Optional)

Lecture Notes Week 3Чтение

Exercise 3 - Tensorboard

Tensorboard AssignmentЛабораторнаяExercise 3Программирование
04Federated Learning15 материалов

Intro to Federated Learning

Introduction, A conversation with Andrew NgВидеоTraining on mobile devicesВидеоData at the edgeВидеоHow it worksВидео

Privacy and masking

Maintaining user privacyВидеоMaskingВидео

Federated Learning APIs

APIs for Federated LearningВидеоExample of federated learningВидеоColabЧтение[IMPORTANT] Reminder about end of access to Lab NotebooksЧтениеWeek 4 QuizЗаданиеOutroВидеоWhat next?Чтение(Optional) Opportunity to Mentor Other LearnersЧтение

Lecture Notes (Optional)

Lecture Notes Week 4Чтение