t-distributed Stochastic Neighbor Embedding (t-SNE) | Dimensionality Reduction Techniques (4/5)

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DeepFindr

DeepFindr

Күн бұрын

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▬▬ Papers / Resources ▬▬▬
Colab Notebook: colab.research.google.com/dri...
Entropy: gregorygundersen.com/blog/202...
Attractive / Repulsive Forces Gradient: jmlr.org/papers/volume23/21-0...
t-SNE Parameters distill: distill.pub/2016/misread-tsne/
Other great resources:
- By the t-SNE author: lvdmaaten.github.io/tsne/
- A good view on probability: siegel.work/blog/tSNE/
- CalTech tutorial: bebi103.caltech.edu.s3-website...
- Great visuals: newsletter.theaiedge.io/p/for...
- SNE vs T-SNE: / visualization-method-s...
- t-SNE in raw numpy: nlml.github.io/in-raw-numpy/i...
- t-SNE in raw javascript: observablehq.com/@nstrayer/t-...
- Video by the t-SNE author: • CVPR18: Tutorial: Part...
Image Sources:
- Perplexity image: stats.stackexchange.com/quest...
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▬▬ Timestamps ▬▬▬▬▬▬▬▬▬▬▬
00:00 Intro
00:30 Manifold learning
02:40 Relevant Papers & Agenda
03:25 Stochastic Neighbor Embedding (SNE)
03:56 Pairwise distances
04:35 Distance to Probability
06:06 Conditional Probability Math
07:05 Adjustment of Variance
08:20 Perplexity
09:55 How to find the variance
11:15 KL-divergence
12:55 Shepard Diagram
13:15 Gradient and it's interpretation
14:15 N-body simulation
14:35 Full SNE Algorithm
15:15 t-distributed Stochastic Neighbor Embedding (t-SNE)
15:28 Crowding Problem and how to solve it
17:58 Gaussian vs. Student's t Distribution
19:21 Symmetric Probabilities
20:35 Early Exaggeration
22:50 SNE vs. t-SNE
23:08 Brilliant.org Sponsoring
24:14 Code
27:15 Distill.pub Blogpost
27:49 Barnes-Hut t-SNE
29:54 Comparison
31:06 Outro
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Пікірлер: 6
@DeepFindr
@DeepFindr 5 ай бұрын
To try everything Brilliant has to offer-free-for a full 30 days, visit brilliant.org/DeepFindr​. The first 200 of you will get 20% off Brilliant’s annual premium subscription.
@chemicalengineeringfriends217
@chemicalengineeringfriends217 4 ай бұрын
Great videos! Looking forward to other parts :)
@clairenajjuuko7664
@clairenajjuuko7664 5 ай бұрын
Great video. looking forward to the UMAP video. Will you also be doing something on FAMD?
@DeepFindr
@DeepFindr 5 ай бұрын
Thanks! So far only UMAP is planned but maybe more methods will be added in the future :)
@lucapalese475
@lucapalese475 5 ай бұрын
Really nice! I will read those papers , I guess the backprop is more complex with the t-distribution
@DeepFindr
@DeepFindr 5 ай бұрын
Actually it should be easier because the distribution has an easier function
LoRA explained (and a bit about precision and quantization)
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