Packt
Applied Generative AI & NLP with Python
Packt

Applied Generative AI & NLP with 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

2 周 完成
在 10 小时 一周
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

2 周 完成
在 10 小时 一周
灵活的计划
自行安排学习进度

您将学到什么

  • Utilize Huggingface to implement and fine-tune state-of-the-art NLP models for diverse applications like text classification and summarization.

  • Implement vector databases and advanced neural network techniques for sentiment analysis, word embeddings, and real-world NLP solutions.

  • Apply advanced prompt engineering techniques like chain-of-thought reasoning and RAG to optimize AI performance and tackle complex NLP tasks.

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

15 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

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14个模块

In this module, we will introduce the course structure, objectives, and the instructors. You will learn how to navigate the course effectively, access materials, and prepare your system for hands-on coding exercises. This foundational setup ensures a smooth learning experience throughout the course.

涵盖的内容

6个视频2篇阅读材料1个作业

In this module, we will delve into the basics of NLP, focusing on word embeddings and sentiment analysis. You’ll gain both theoretical knowledge and practical skills through coding exercises, setting the stage for advanced topics. Concepts like GloVe embeddings and transformers will also be introduced to deepen your understanding of modern NLP.

涵盖的内容

14个视频1个作业1个插件

In this module, we will explore the powerful Huggingface library for pre-trained models. Learn to implement and code solutions for a variety of tasks including text summarization, question answering, and named entity recognition. Gain hands-on experience with the library’s robust pipelines and model functionalities.

涵盖的内容

17个视频1个作业1个插件

In this module, we will guide you through finetuning machine learning models to improve their performance. Through coding exercises, you will learn to build simple models, perform exploratory data analysis, and save/load trained models efficiently using Huggingface tools.

涵盖的内容

8个视频1个作业1个插件

In this module, we will explore vector databases, emphasizing their role in handling large-scale datasets. Through theoretical insights and practical coding, you will learn to implement tokenization, build vector databases, and develop multimodal systems to manage and query complex data effectively.

涵盖的内容

14个视频1个作业1个插件

In this module, we will explore the OpenAI API, delving into its architecture and practical applications. You will learn to obtain and configure API keys, implement the OpenAI Python package, and interact with REST APIs. Additionally, we'll cover cost management for effective project budgeting.

涵盖的内容

9个视频1个作业1个插件

In this module, we will uncover the art of prompt engineering, a critical skill in leveraging AI models effectively. Through practical coding sessions, you will learn techniques for creating clear instructions, managing outputs, and optimizing prompts for complex AI tasks.

涵盖的内容

7个视频1个作业1个插件

In this module, we will take a deep dive into advanced prompt engineering methods, introducing innovative techniques to tackle complex reasoning tasks. You will gain hands-on experience with coding examples, exploring self-consistency, tree-of-thought, and self-critique methodologies to elevate AI model capabilities.

涵盖的内容

17个视频1个作业1个插件

In this module, we will introduce Retrieval-Augmented Generation (RAG) and its role in improving AI outputs by integrating external data. Through hands-on coding, you will learn to handle vector databases, manage LLMs, and combine these elements to create robust RAG implementations.

涵盖的内容

5个视频1个作业1个插件

In this module, we will guide you through a capstone project, focusing on the development of a climate change chatbot. You will prepare data, implement vector databases, apply RAG techniques, and integrate these components into a user-friendly web application. This hands-on project solidifies your learning and showcases your skills.

涵盖的内容

5个视频1个作业1个插件

In this module, we will dive into open-source LLMs, discovering their capabilities and potential for customization. Through practical examples, you will learn to implement these models effectively, empowering you to solve diverse NLP challenges with open-source tools.

涵盖的内容

2个视频1个作业1个插件

In this module, we will explore data augmentation techniques, emphasizing their importance in creating robust datasets. Through coding exercises, you will learn methods like random cropping, back-translation, and contextual augmentation to enhance your machine learning workflows.

涵盖的内容

7个视频1个作业1个插件

In this module, we will cover miscellaneous yet vital topics, including an introduction to Claude and the theoretical underpinnings of LLM functions. Practical coding sessions will reinforce these concepts, ensuring a holistic learning experience.

涵盖的内容

4个视频1个作业1个插件

In this concluding module, we will reflect on your learning journey, summarize key takeaways, and provide guidance on further education and career opportunities. Gain insights into leveraging your skills to achieve success in the field of generative AI and NLP.

涵盖的内容

1个视频1篇阅读材料2个作业

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