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課程簡介
- Machine Learning 限制
- Machine Learning, 非線性映射
- Neural Networks
- 非線性優化,隨機/MiniBatch 梯度不錯
- 反向傳播
- 深度稀疏編碼
- 稀疏自動編碼器 (SAE)
- 捲積 Neural Networks (CNN)
- 成功之處:描述符匹配
- 基於立體聲的障礙物
- 避讓 Robotics
- 池化和不變性
- 可視化/反捲積網路
- 遞歸 Neural Networks (RNN) 及其優化
- NLP 的應用
- RNN 繼續說道,
- 無 Hessian 優化
- 語言分析:單詞/句子向量、解析、情感分析等。
- 概率圖形模型
- Hopfield Nets,玻爾茲曼機
- 深度置信網,堆疊 RBM
- 在視頻中 NLP、姿勢和活動識別中的應用
- 最新進展
- 大規模學習
- 神經圖靈機
最低要求
Good 對 Machine Learning 的理解。至少有 Deep Learning 的理論知識。
28 時間:
客戶評論 (4)
I was benefit from the passion to teach and focusing on making thing sensible.
Zaher Sharifi - GOSI
Course - Advanced Deep Learning
Doing exercises on real examples using Eras. Italy totally understood our expectations about this training.
Paul Kassis
Course - Advanced Deep Learning
The exercises are sufficiently practical and do not need high knowledge in Python to be done.
Alexandre GIRARD
Course - Advanced Deep Learning
The global overview of deep learning.