Emotion AI: Facial Key-points Detection

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在此指导项目中,您将:

Understand the theory and intuition behind Deep Neural Networks, and Residual Neural Networks, and Convolutional Neural Networks (CNNs).

Build and train a deep learning model based on Convolutional Neural Network and Residual blocks using Keras with Tensorflow 2.0 as a backend.

Assess the performance of trained CNN and ensure its generalization using various Key performance indicators.

Clock2 hours/week
Intermediate中级
Cloud无需下载
Video分屏视频
Comment Dots英语(English)
Laptop仅限桌面

In this 1-hour long project-based course, you will be able to: - Understand the theory and intuition behind Deep Learning, Convolutional Neural Networks (CNNs) and Residual Neural Networks. - Import Key libraries, dataset and visualize images. - Perform data augmentation to increase the size of the dataset and improve model generalization capability. - Build a deep learning model based on Convolutional Neural Network and Residual blocks using Keras with Tensorflow 2.0 as a backend. - Compile and fit Deep Learning model to training data. - Assess the performance of trained CNN and ensure its generalization using various KPIs. - Improve network performance using regularization techniques such as dropout.

您要培养的技能

Deep LearningMachine LearningPython ProgrammingArtificial Intelligence(AI)Computer Vision

分步进行学习

在与您的工作区一起在分屏中播放的视频中,您的授课教师将指导您完成每个步骤:

  1. Task 1: Project Overview/Understand the problem statement and business case

  2. Task 2: Import Libraries/datasets and perform preliminary data processing

  3. Task 3: Perform Image Visualization

  4. Task 4: Perform Image Augmentation

  5. Task 5: Prepare the data for deep learning model training (Normalization/reshaping)

  6. Task 6: Understand the theory and intuition behind Deep Neural Networks and CNNs.

  7. Task 7: Build Deep Residual Neural Network Model

  8. Task 8: Compile and train deep learning model

  9. Task 9: Assess the Performance of the Trained Model

指导项目工作原理

您的工作空间就是浏览器中的云桌面,无需下载

在分屏视频中,您的授课教师会为您提供分步指导

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常见问题

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