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Fundamentals of Deep Learning · LearnSpace
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courseraIT и технологии

Fundamentals of Deep Learning

Курс от Whizlabs
Средний≈ 6 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Fundamentals of Deep Learning is a structured course designed for developers, data professionals, and AI enthusiasts who want to build a strong foundation in neural networks and modern deep learning techniques. This course focuses on core deep learning principles, including how artificial neurons work, forward and backward propagation, gradient descent optimization, activation functions, multi-class classification, Convolutional Neural Networks (CNNs), and transfer learning. Through a progressive and practical learning path, you will gain hands-on experience training neural networks, evaluating model performance, and applying deep learning techniques to real-world image classification problems. The course bridges theory and implementation, helping you understand not just how models work, but why they work. Whether you are beginning your journey in artificial intelligence or preparing for advanced machine learning and cloud-based AI roles, this course equips you with the conceptual clarity and practical skills required to confidently build and evaluate deep learning models. This course includes approximately 3:30–4:00 hours of video lectures, combining foundational theory with step-by-step demonstrations. It is divided into focused modules that progressively develop your understanding of neural network architecture and applied deep learning techniques. To reinforce learning, each module includes quizzes and in-video practice questions that test conceptual understanding and practical application. 📘 Module 1: Foundations of Deep Learning and Neural Networks 🧠 Module 2: Deep Learning Models, Computer Vision, and Transfer Learning

Навыки, которые вы освоите

Transfer LearningArtificial Neural NetworksModel TrainingConvolutional Neural NetworksDeep LearningModel OptimizationImage AnalysisMachine Learning MethodsComputer VisionNetwork ArchitectureApplied Machine LearningFine-tuningArtificial Intelligence and Machine Learning (AI/ML)Model Evaluation

Программа курса

2 модулей · 24 учебных материалов

01Foundations of Deep Learning and Neural Networks13 материалов

Core Concepts and Learning Mechanics of Deep Learning

Welcome to the CourseЧтениеOverview of Foundations of Deep Learning and Neural NetworksЧтениеWhat is Deep Learning?ВидеоExpectations from Fundamentals of Deep LearningВидео

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Whizlabs Instructor

Преподаватель курса

Fundamentals of Deep Learning
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 6 ч

2 модулей

Язык: Английский

Часть программы вашего университета
How Data is Processed in a NeuronВидео
Gradient DescentВидео
Training a Neuron – DemoВидео
Deep Learning Neural Network – Forward PropagationВидео
Backward Propagation – Deep Learning Neural NetworkВидео
Activation FunctionsВидео
Activation Functions – DemoВидео
Core Concepts and Learning Mechanics of Deep Learning - Knowledge CheckЗадание
Foundations of Deep Learning and Neural Networks - AssessmentЗадание
02Deep Learning Models, Computer Vision, and Transfer Learning11 материалов

Applied Deep Learning: CNNs, Classification, and Transfer Learning

Overview of Deep Learning Models, Computer Vision, and Transfer LearningЧтениеMulti-Class Classification with MNIST Dataset – Deep LearningВидеоDeep Learning Foundations CoachDIALOGUETraining Multiclass Classifier – Fit and EvaluateВидеоUnderstanding Convolutional Neural Networks (CNNs)ВидеоTransfer Learning TechniquesВидеоImplementing Transfer Learning on an Image Dataset – DemoВидеоApplied Deep Learning: CNNs, Classification, and Transfer Learning - Knowledge CheckЗаданиеDeep Learning Models, Computer Vision, and Transfer Learning - AssessmentЗаданиеWhat's Next ?ЧтениеDeepVision Labs – Production-Ready Deep Learning Deployment ReviewDIALOGUE