Packt
NLP – Machine Learning Models in Python
Packt

NLP – Machine Learning Models in Python

包含在 Coursera Plus

深入了解一个主题并学习基础知识。
中级 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。
中级 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

  • Build and evaluate spam detection models using Naive Bayes and performance metrics.

  • Implement sentiment analysis with logistic regression in Python.

  • Create extractive summaries using vector methods and TextRank algorithms.

  • Apply LDA, NMF, and LSA techniques for uncovering latent topics in text data.

要了解的详细信息

可分享的证书

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最近已更新!

May 2025

作业

8 项作业

授课语言:英语(English)

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积累特定领域的专业知识

本课程是 Applied NLP and Generative AI 专项课程 专项课程的一部分
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7个模块

In this module, we will introduce you to the course and what lies ahead. You’ll gain a clear understanding of the course roadmap and the unique value it offers. We’ll also share a special offer exclusively for enrolled students.

涵盖的内容

2个视频2篇阅读材料

In this module, we will help you get started by showing you where to access the course code and supporting resources. You'll also receive actionable advice on how to stay engaged and make the most of your learning journey. This foundational setup ensures you're fully prepared for the lessons ahead.

涵盖的内容

2个视频1个作业1个插件

In this module, we will explore the real-world problem of spam detection using machine learning. You'll gain a solid understanding of the Naive Bayes algorithm, key evaluation metrics, and how to handle class imbalance. The module concludes with a hands-on implementation of a spam classifier in Python.

涵盖的内容

6个视频1个作业1个插件

In this module, we will dive into sentiment analysis—a key application of NLP used to determine the emotional tone of text. You’ll learn the intuition and mechanics behind logistic regression and explore both binary and multiclass scenarios. The module wraps up with a guided Python implementation, allowing you to apply these concepts in practice.

涵盖的内容

7个视频1个作业1个插件

In this module, we will explore the field of text summarization and the different strategies used to condense large volumes of text. You'll learn both vector-based methods and the more advanced TextRank algorithm, with intuitive explanations and hands-on Python implementations. This section includes guided exercises for all skill levels, ensuring a strong grasp of summarization techniques.

涵盖的内容

10个视频1个作业1个插件

In this module, we will dive into topic modeling techniques that help uncover the underlying themes within large text datasets. You'll explore both LDA and NMF, learning the theory, intuition, and practical implementation of each. By the end, you’ll be equipped to apply topic modeling in Python and analyze results effectively.

涵盖的内容

9个视频1个作业1个插件

In this module, we will explore Latent Semantic Analysis and Indexing, techniques used to discover hidden patterns and meanings in text data. You'll gain a conceptual understanding of Singular Value Decomposition and how it's applied to NLP tasks. The module includes Python-based implementation and exercises to deepen your practical skills.

涵盖的内容

5个视频1篇阅读材料3个作业

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