Embark on a journey through the intricate workings of advanced Convolutional Neural Networks (CNNs), Transfer Learning, and Recurrent Neural Networks (RNNs). This course begins with a thorough exploration of CNNs, delving into sophisticated architectures like VGG16 and practical applications through multi-part case studies. Each segment is designed to build your foundational knowledge and practical skills incrementally.
Advanced CNNs, Transfer Learning, and Recurrent Networks
Ce cours fait partie de Spécialisation Deep Learning with Real-World Projects
Instructeur : Packt - Course Instructors
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Ce que vous apprendrez
Apply transfer learning techniques to enhance model performance.
Utilize RNNs and LSTMs for sequence prediction tasks.
Develop practical solutions for industry-specific problems.
Master the integration of advanced neural networks in real-world applications.
Compétences que vous acquerrez
- Catégorie : Sequence Prediction
- Catégorie : Transfer Learning
- Catégorie : TensorFlow
- Catégorie : Advanced CNNs
- Catégorie : Recurrent Networks
Détails à connaître
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septembre 2024
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Il y a 8 modules dans ce cours
In this module, we will delve into the basics of CNNs, examining the VGG16 architecture, and engage in a comprehensive case study spread across multiple practical sessions. These hands-on exercises will reinforce the theoretical concepts covered.
Inclus
7 vidéos2 lectures
In this module, we will explore various pre-trained models, their architectures, and the principles of transfer learning. Through a series of detailed sessions, we will apply these concepts in practical settings, culminating in case studies and analytical discussions.
Inclus
16 vidéos
In this module, we will apply CNN techniques to real-world natural images, specifically focusing on flower images. Through an extensive case study spread over multiple sessions, we will learn to implement, evaluate, and refine models in a practical, industry-relevant context.
Inclus
15 vidéos1 devoir
In this module, we will tackle the challenge of identifying medical abnormalities using CNNs. Focusing on X-Ray images, we will conduct a detailed case study over several sessions, learning to interpret medical data and develop effective diagnostic models.
Inclus
7 vidéos
In this module, we will introduce Recurrent Neural Networks, covering their basic concepts, architecture, and types. We will delve into training methods and address common challenges like the vanishing gradient problem through a series of detailed sessions.
Inclus
12 vidéos
In this module, we will focus on Long Short-Term Memory (LSTM) networks, covering their architecture and functionality. We will compare LSTM with other RNN variants like GRU and implement these networks in practical scenarios through a series of detailed sessions.
Inclus
10 vidéos1 devoir
In this module, we will apply RNN techniques to develop a Part-Of-Speech tagger for natural language processing tasks. Through an extended case study spread across multiple sessions, we will develop, evaluate, and refine the performance of the Part-Of-Speech tagger.
Inclus
9 vidéos
In this module, we will delve into the practical application of RNNs for text generation by exploring a comprehensive code generator case study divided into four parts. Each part builds on the previous one, enhancing our understanding and skills in using RNNs for generating coherent text.
Inclus
4 vidéos1 lecture2 devoirs
Instructeur
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University of Pennsylvania
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Foire Aux Questions
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