Packt
Advanced Machine Learning and Deep Learning
Packt

Advanced Machine Learning and Deep Learning

包含在 Coursera Plus

深入了解一个主题并学习基础知识。
高级设置 等级

推荐体验

9 小时 完成
灵活的计划
自行安排学习进度
深入了解一个主题并学习基础知识。
高级设置 等级

推荐体验

9 小时 完成
灵活的计划
自行安排学习进度

您将学到什么

  • Identify and recall deep learning foundations and applications

  • Explain how to develop and train neural network models

  • Use techniques to evaluate and optimize model performance

  • Assess the effectiveness of CNNs for image processing and semantic segmentation

要了解的详细信息

可分享的证书

添加到您的领英档案

作业

5 项作业

授课语言:英语(English)

了解顶级公司的员工如何掌握热门技能

Petrobras, TATA, Danone, Capgemini, P&G 和 L'Oreal 的徽标

积累特定领域的专业知识

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在注册此课程时,您还会同时注册此专项课程。
  • 向行业专家学习新概念
  • 获得对主题或工具的基础理解
  • 通过实践项目培养工作相关技能
  • 获得可共享的职业证书

该课程共有8个模块

In this module, we will explore the fundamental principles of deep learning, from its basic concepts to the intricacies of building and training neural networks. We will delve into various types of neural network layers, activation and loss functions, optimizers, and the tools and frameworks essential for deep learning development.

涵盖的内容

9个视频2篇阅读材料1个插件

In this module, we will delve into the specialized field of multi-target regression using deep learning. We will cover the theoretical foundations and follow a step-by-step coding guide to implement and refine regression models capable of predicting multiple continuous variables simultaneously.

涵盖的内容

3个视频1个插件

In this module, we will embark on a comprehensive journey into classification with deep learning, focusing on binary and multi-label classification techniques. We will build, code, and refine models that can effectively classify data into distinct or multiple categories, using hands-on labs and practical examples.

涵盖的内容

7个视频1个作业1个插件

In this module, we will dive deep into Convolutional Neural Networks (CNNs), from their basic architecture to advanced applications. We will engage with interactive explorations, hands-on labs, and practical exercises to develop a robust understanding of CNNs' role in image recognition, classification, and semantic segmentation.

涵盖的内容

8个视频1个插件

In this module, we will explore the fascinating world of Autoencoders, focusing on their theoretical foundations and practical applications. We will learn how to effectively implement Autoencoders, understand their diverse uses, and gain hands-on experience through coding labs.

涵盖的内容

3个视频1个插件

In this module, we will delve into transfer learning and pretrained models, exploring how these techniques revolutionize the efficiency and effectiveness of deep learning. We will learn to apply these methods practically through lab sessions, significantly enhancing our deep learning projects.

涵盖的内容

3个视频1个作业1个插件

In this module, we will explore Recurrent Neural Networks (RNNs) and their application in processing sequential data. We will focus on Long Short-Term Memory (LSTM) networks for time series prediction, gaining practical experience through coding labs and hands-on experimentation.

涵盖的内容

5个视频1个插件

In this module, we will explore Shiny, a framework for building interactive web applications. We will learn about its essential components, delve into language selection and reactive expressions, and gain hands-on experience in developing and deploying Shiny apps for real-world use.

涵盖的内容

10个视频1篇阅读材料3个作业

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位教师

Packt - Course Instructors
Packt
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