[MINI] One Shot Learning
Data Skeptic22 Sep 2017

[MINI] One Shot Learning

One Shot Learning is the class of machine learning procedures that focuses learning something from a small number of examples. This is in contrast to "traditional" machine learning which typically requires a very large training set to build a reasonable model.

In this episode, Kyle presents a coded message to Linhda who is able to recognize that many of these new symbols created are likely to be the same symbol, despite having extremely few examples of each. Why can the human brain recognize a new symbol with relative ease while most machine learning algorithms require large training data? We discuss some of the reasons why and approaches to One Shot Learning.

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Avsnitt(601)

Unsupervised Depth Perception

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[MINI] Convolutional Neural Networks

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[MINI] Generative Adversarial Networks

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Opinion Polls for Presidential Elections

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28 Apr 201752min

OpenHouse

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21 Apr 201726min

[MINI] GPU CPU

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There's more than one type of computer processor. The central processing unit (CPU) is typically what one means when they say "processor". GPUs were introduced to be highly optimized for doing floatin...

14 Apr 201711min

[MINI] Backpropagation

[MINI] Backpropagation

Backpropagation is a common algorithm for training a neural network.  It works by computing the gradient of each weight with respect to the overall error, and using stochastic gradient descent to iter...

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