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Coursera_Neural-Networks-and-Machine-Learning_Geoffrey-Hinton_University-of-Toronto
磁力链接/BT种子名称
Coursera_Neural-Networks-and-Machine-Learning_Geoffrey-Hinton_University-of-Toronto
磁力链接/BT种子简介
种子哈希:
ba102098008a21226094afec8a2c6a7f25276e5c
文件大小:
532.59M
已经下载:
6255
次
下载速度:
极快
收录时间:
2017-02-09
最近下载:
2025-09-30
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文件列表
1 - 1 - Why do we need machine learning [13 min].mp4
15.8 MB
1 - 2 - What are neural networks [8 min].mp4
10.2 MB
1 - 3 - Some simple models of neurons [8 min].mp4
9.7 MB
1 - 4 - A simple example of learning [6 min].mp4
6.9 MB
1 - 5 - Three types of learning [8 min].mp4
9.4 MB
10 - 1 - Why it helps to combine models [13 min].mp4
15.9 MB
10 - 2 - Mixtures of Experts [13 min].mp4
15.7 MB
10 - 3 - The idea of full Bayesian learning [7 min].mp4
8.8 MB
10 - 4 - Making full Bayesian learning practical [7 min].mp4
8.5 MB
10 - 5 - Dropout [9 min].mp4
10.2 MB
2 - 1 - Types of neural network architectures [7 min].mp4
9.2 MB
2 - 2 - Perceptrons The first generation of neural networks [8 min].mp4
9.8 MB
2 - 3 - A geometrical view of perceptrons [6 min].mp4
7.7 MB
2 - 4 - Why the learning works [5 min].mp4
6.2 MB
2 - 5 - What perceptrons cant do [15 min].mp4
17.4 MB
3 - 1 - Learning the weights of a linear neuron [12 min].mp4
14.2 MB
3 - 2 - The error surface for a linear neuron [5 min].mp4
6.2 MB
3 - 3 - Learning the weights of a logistic output neuron [4 min].mp4
4.6 MB
3 - 4 - The backpropagation algorithm [12 min].mp4
14.0 MB
3 - 5 - Using the derivatives computed by backpropagation [10 min].mp4
11.7 MB
4 - 1 - Learning to predict the next word [13 min].mp4
15.0 MB
4 - 2 - A brief diversion into cognitive science [4 min].mp4
5.6 MB
4 - 3 - Another diversion The softmax output function [7 min].mp4
8.4 MB
4 - 4 - Neuro-probabilistic language models [8 min].mp4
9.4 MB
4 - 5 - Ways to deal with the large number of possible outputs [15 min].mp4
14.9 MB
5 - 1 - Why object recognition is difficult [5 min].mp4
5.6 MB
5 - 2 - Achieving viewpoint invariance [6 min].mp4
7.2 MB
5 - 3 - Convolutional nets for digit recognition [16 min].mp4
19.4 MB
5 - 4 - Convolutional nets for object recognition [17min].mp4
24.1 MB
6 - 1 - Overview of mini-batch gradient descent.mp4
10.1 MB
6 - 2 - A bag of tricks for mini-batch gradient descent.mp4
15.6 MB
6 - 3 - The momentum method.mp4
10.2 MB
6 - 4 - Adaptive learning rates for each connection.mp4
7.0 MB
6 - 5 - Rmsprop Divide the gradient by a running average of its recent magnitude.mp4
15.9 MB
7 - 1 - Modeling sequences A brief overview.mp4
21.1 MB
7 - 2 - Training RNNs with back propagation.mp4
7.7 MB
7 - 3 - A toy example of training an RNN.mp4
7.6 MB
7 - 4 - Why it is difficult to train an RNN.mp4
9.3 MB
7 - 5 - Long-term Short-term-memory.mp4
10.7 MB
8 - 1 - A brief overview of Hessian Free optimization.mp4
17.0 MB
8 - 2 - Modeling character strings with multiplicative connections [14 mins].mp4
17.4 MB
8 - 3 - Learning to predict the next character using HF [12 mins].mp4
14.6 MB
8 - 4 - Echo State Networks [9 min].mp4
11.8 MB
9 - 1 - Overview of ways to improve generalization [12 min].mp4
14.2 MB
9 - 2 - Limiting the size of the weights [6 min].mp4
7.7 MB
9 - 3 - Using noise as a regularizer [7 min].mp4
8.9 MB
9 - 4 - Introduction to the full Bayesian approach [12 min].mp4
12.6 MB
9 - 5 - The Bayesian interpretation of weight decay [11 min].mp4
12.9 MB
9 - 6 - MacKays quick and dirty method of setting weight costs [4 min].mp4
4.6 MB
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本站不存储任何资源内容,只收集BT种子元数据(例如文件名和文件大小)和磁力链接(BT种子标识符),并提供查询服务,是一个完全合法的搜索引擎系统。 网站不提供种子下载服务,用户可以通过第三方链接或磁力链接获取到相关的种子资源。本站也不对BT种子真实性及合法性负责,请用户注意甄别!