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Computer Vision with Embedded Machine Learning · LearnSpace
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Computer Vision with Embedded Machine Learning

Курс от Edge Impulse
Средний≈ 31.1 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Computer vision (CV) is a fascinating field of study that attempts to automate the process of assigning meaning to digital images or videos. In other words, we are helping computers see and understand the world around us! A number of machine learning (ML) algorithms and techniques can be used to accomplish CV tasks, and as ML becomes faster and more efficient, we can deploy these techniques to embedded systems. This course, offered by a partnership among Edge Impulse, OpenMV, Seeed Studio, and the TinyML Foundation, will give you an understanding of how deep learning with neural networks can be used to classify images and detect objects in images and videos. You will have the opportunity to deploy these machine learning models to embedded systems, which is known as embedded machine learning or TinyML. Familiarity with the Python programming language and basic ML concepts (such as neural networks, training, inference, and evaluation) is advised to understand some topics as well as complete the projects. Some math (reading plots, arithmetic, algebra) is also required for quizzes and projects. If you have not done so already, taking the "Introduction to Embedded Machine Learning" course is recommended. This course covers the concepts and vocabulary necessary to understand how convolutional neural networks (CNNs) operate, and it covers how to use them to classify images and detect objects. The hands-on projects will give you the opportunity to train your own CNNs and deploy them to a microcontroller and/or single board computer.

Навыки, которые вы освоите

Computer VisionEmbedded SystemsTransfer LearningConvolutional Neural NetworksArtificial Neural NetworksModel TrainingMachine LearningDeep LearningPython ProgrammingClassification AlgorithmsImage AnalysisResponsible AIComputer ProgrammingData EthicsModel DeploymentModel Evaluation

Программа курса

3 модулей · 89 учебных материалов

01Image Classification34 материалов

Introduction

Welcome to the CourseВидеоInstructor IntroductionsВидеоSyllabusЧтениеRequired HardwareЧтение

Учитесь у экспертов

Shawn Hymel

Instructor

Computer Vision with Embedded Machine Learning
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Обучение на Coursera

≈ 31.1 ч

3 модулей

Язык: Английский

Субтитры: Арабский, Французский, Узбекский, Украинский, Китайский (Китай), Греческий, Итальянский, Бразильский португальский, Нидерландский, Корейский, Немецкий, Русский, Тайский, Индонезийский, Шведский, Турецкий, Испанский, Хинди, Японский, Казахский, Польский

Часть программы вашего университета
Errata and ChangesЧтение
Getting HelpЧтение
Meet and GreetОбсуждение
SlidesЧтение

Introduction to Computer Vision

What is Computer Vision?ВидеоOverview of Digital ImagesВидеоData CollectionВидеоSlidesЧтениеPython and Numpy HelpЧтениеProject - Load and Manipulate ImagesЧтениеComputer VisionЗадание

Image Classification

Overview of Image ClassificationВидеоReview of Neural NetworksВидеоTraining an Image Classifier with KerasВидеоSlidesЧтениеImage Classification and Neural NetworksЧтениеImage Classification with Neural NetworksЗадание

Using Edge Impulse to Train a Model

Using Colab to Curate and Upload a DatasetВидеоUsing Edge Impulse to Train a ModelВидеоPython and Edge Impulse DocumentationЧтениеProject - Extract Features and Train ModelЧтение

Deploy Model to Embedded Device

Inference on a Single Board ComputerВидеоInference on a Microcontroller (MicroPython)ВидеоEdge Impulse and OpenMV DocumentationЧтениеImage Classification on Embedded DevicesЗадание

Project and Review

Project - Deploy DNN Image ClassifierЧтениеReview of Module 1ВидеоSlidesЧтениеModule 1 ReviewЗаданиеShare Your Image Classification ProjectОбсуждение
02Convolutional Neural Networks28 материалов

Convolution and Pooling

Image ConvolutionВидеоPooling LayerВидеоSlidesЧтениеProject - Convolution and PoolingЧтениеConvolution and PoolingЗадание

Convolutional Neural Network

Convolutional Neural NetworkВидеоDigging Deeper into CNNsЧтениеTraining a Convolutional Neural NetworkВидеоSlidesЧтениеProject - Training a CNNЧтениеConvolutional Neural NetworksЗадание

Analyzing and Augmenting CNN Training

CNN VisualizationsВидеоData AugmentationВидеоSlidesЧтениеCNN Visualizations and Data AugmentationЧтениеProject - Data AugmentationЧтениеVisualizations and Data AugmentationЗадание

Transfer Learning

Transfer Learning and MobileNetВидеоDigging Deeper into Transfer LearningЧтениеTransfer Learning with Edge ImpulseВидеоSlidesЧтениеProject - Transfer LearningЧтениеTransfer LearningЗадание

Project and Review

Project - Deploy CNN Image ClassifierЧтениеReview of Module 2ВидеоSlidesЧтениеModule 2 ReviewЗаданиеShare Your CNN Classifier ProjectОбсуждение
03Object Detection27 материалов

Object Localization

Introduction to Object DetectionВидеоSlidesЧтениеDrawing APIЧтениеProject - Sliding Window Object DetectionЧтение

Creating an Object Detector

Object Detection Performance MetricsВидеоObject Detection ModelsВидеоTraining an Object Detection ModelВидеоSlidesЧтениеDigging Deeper into Object DetectionЧтениеObject DetectionЗадание

Deploying an Object Detector

Deploy Object Detection Model to a Single Board ComputerВидеоDeploying an Object Detection ModelЧтение

Going Further

Image SegmentationВидеоMulti-stage Inference with Dmitry MaslovВидеоReusing Representations with Mat KelceyВидеоSlidesЧтениеDigging Deeper into Advanced TopicsЧтениеImage SegmentationЗаданиеConstrained Object Detection

Project and Review

Project - Deploy Object Detection ModelЧтениеReview of Module 3ВидеоSlidesЧтениеModule 3 ReviewЗаданиеShare Your Object Detection ModelОбсуждениеNew Plugin ItemPLUGINConclusion
Чтение
Видео
Going further with Edge AI!Чтение