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[Sales Discontinued] PyTorch Explained in One Shot with Code_Project Edition

PyTorch Explained in One Shot with Code_Project Edition implements practical deep learning projects using image, video, and natural language data, and helps you understand model structure and flow through code-focused learning rather than theory.

(5.0) 1 reviews

14 learners

Level Intermediate

Course period Unlimited

  • onepm
Deep Learning(DL)
Deep Learning(DL)
AI
AI
Deep Learning(DL)
Deep Learning(DL)
AI
AI

What you will gain after the course

  • PyTorch

  • Deep Learning

  • Deep Learning Practical Projects

'Understanding PyTorch in One Shot with Code_Project Edition' implements practical deep learning projects using image, video, and natural language data, focusing on intuitively understanding model structure and flow through code-centered learning rather than theory.


🔍 Core Curriculum Structure

🖼 Image Deep Learning - Faster R-CNN, YOLOv8

  • Practice image-based deep learning using two representative object detection models: Faster R-CNN and YOLOv8..

  • We follow the entire project flow from image data preprocessing, input analysis, to weight-based inference.

🎞 Video Deep Learning - Action Classification

  • Action Classification is the goal, where we configure a backbone model suitable for video data and design the model by connecting a classification head.

  • Compared to single image inference, create a custom dataset class suitable for the data structure of 'video data'.

  • We'll cover everything from exploring open-source video datasets to training and inference.

🌐 Web Crawling-Based Data Collection and Visualization

  • Practice the natural language preprocessing process in English and Korean.

  • Create a web crawler based on developer tools to collect text data.

  • The collected data undergoes natural language preprocessing, followed by word cloud visualization for Korean.

🧠 Natural Language Processing (NLP) and Fine-tuning

  • Learn an introduction to methods for improving language model performance.

  • We'll explore the API components of Hugging Face and work with language models by utilizing appropriate classes.

  • Fine-tune a Hugging Face pre-trained model to complete a customized NLP model.


Using synthetic oral cavity image data

We'll work on an Object Detection project for dental cavities.

After learning the steps of natural language processing,

with a corpus created directly through crawling

Practice creating a word cloud.

Recommended for
these people

Who is this course right for?

  • For those who are tired of PyTorch's MNIST examples

  • Those who feel overwhelmed about how to start a hands-on deep learning project

Need to know before starting?

  • python

  • Deep Learning Fundamentals

  • PyTorch

Hello
This is

Hansigyeong Co., Ltd. is an AI-integrated web/app and robot development company, as well as an AI big data convergence employment and entrepreneurship education consulting firm. Regarding big data and AI-related education, we conduct lectures on front-end development, back-end development, full-stack development, and AI convergence development at institutions such as KOSA and Multicampus.

https://youtu.be/wBqtTRyEd3I?si=qS9c8TdFAZq_qHLF

Curriculum

All

26 lectures ∙ (7hr 16min)

Published: 
Last updated: 

Reviews

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1 reviews

5.0

1 reviews

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    paulmoon008308

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    Average Rating 4.9

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    $42.90

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