Cutting Edge Deep Learning – Telegram
Cutting Edge Deep Learning
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📕 Deep learning
📗 Reinforcement learning
📘 Machine learning
📙 Papers - tools - tutorials

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Pixel Recurrent Neural Network
Pixel RNN sequentially predicts the pixels in an image along the two spatial dimensions. The method models the discrete probability of the raw pixel values and encodes the complete set of dependencies in the image.
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Paper: https://arxiv.org/abs/1601.06759
Via: @CEdeeplearning 📌
Other social media: https://linktr.ee/cedeeplearning
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#pixelrnn #generativemodel #computervision #rnn #cnn #neuralnetworks #deeplearning #machinelearning
“Facts are stubborn things, but statistics are pliable.”
― Mark Twain

📌Via: @cedeeplearning
🔹Using machine learning to analyze whole brain vasculature

Source: Helmholtz Zentrum München

Diseases of the brain are often associated with typical vascular changes. Now, scientists at Helmholtz Zentrum München, LMU University Hospital Munich and the Technical University of Munich have come up with a technique for visualizing the structures of all the brain’s blood vessels – right down to the finest capillaries – including any pathological changes. So far, they have used the technique, which is based on a combination of biochemical methods and artificial intelligence, to capture the whole brain vasculature of a mouse.

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📌Via: @cedeeplearning

https://neurosciencenews.com/machine-learning-brain-vasculature-15909/

#machinelearning
#deeplearning
#neuralnetworks
New study allows brain and artificial neurons to link up over the web
🔻New study allows brain and artificial neurons to link up over the web
Source: University of Southampton

Researchers have created a hybrid neural network where biological and artificial neurons in different parts of the world were able to communicate via the internet through a hub of memristive synapses.
Brain functions are made possible by circuits of spiking neurons, connected together by microscopic, but highly complex links called ‘synapses’. In this new study, published in the scientific journal Nature Scientific Reports, the scientists created a hybrid neural network where biological and artificial neurons in different parts of the world were able to communicate with each other over the internet through a hub of artificial synapses made using cutting-edge nanotechnology. This is the first time the three components have come together in a unified network.
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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

#machinelearning
#neuralnetworks
#deeplearning
#AI
🔻Using computers to view the unseen

From: Rachel Gordon

A new computational imaging method could change how we view hidden information in scenes.
Cameras and computers together can conquer some seriously stunning feats. Giving computers vision has helped us fight wildfires in California, understand complex and treacherous roads — and even see around corners.
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📌Via: @cedeeplearning


http://news.mit.edu/2019/using-computers-view-unseen-computational-mirrors-mit-csail-1206

#deeplearning
#computervision
#neuralnetworks
#objectdetection
#machinelearning
🔹What a little more #computing_power can do
From: Kim Martineau

To recognize a cat in a picture, a deep learning model may need to see millions of photos before its artificial #neurons “learn” to identify a cat. But there may be a more efficient way. New MIT research shows that models only a fraction of the size are needed. “When you train a big network there’s a small one that could have done everything,”. neural network could get by with on-tenth the number of connections if the right subnetwork is found at the outset.
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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

link: http://news.mit.edu/2019/what-extra-computing-power-can-do-0916

#neuralnetworks
#GAN
#deeplearning
#machinelearning
🔻Supercomputer analyzes web traffic across entire internet

From: Rob Matheson

Using a supercomputing system, MIT researchers have developed a model that captures what web traffic looks like around the world on a given day, which can be used as a measurement tool for internet research and many other applications.
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📌Via: @cedeeplearning

http://news.mit.edu/2019/supercomputer-analyzes-web-traffic-across-entire-internet-1028

#deeplearning
#neuralnetworks
#supercomputer
#machinelearning
#AI
🔹Algorithms, Libraries, Toolkits and Platforms…

There are a multitude of technologies and frameworks on the market today that enable data scientists and machine learning engineers to build, deploy and maintain machine learning systems, pipelines and workflows. Just like any economic matter, supply and demand drives the improvement and progress of the product. As the use of machine learning in business increases, so does the number of frameworks and software that facilitate full-fledged machine learning workflows.
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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

link: https://www.rocketsource.co/blog/machine-learning-models/

#machinelearning
#algorithm
#library
#platform
#technology
🔹New Visual Relationships, Human Actions, and Image-Level Annotations

Open Images V6 is a significant qualitative and quantitative step towards improving the unified annotations for image classification, object detection, visual relationship detection, and instance segmentation, and takes a novel approach in connecting vision and language with localized narratives. We hope that Open Images V6 will further stimulate progress towards genuine scene understanding.
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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

Credit: ai.googleblog.com

#classification
#machinelearning
#deeplearning
#imagedetection
🔹Photo Editing with Generative Adversarial Networks

#GANs are a very hot topic in #Machine_Learning. In this post I will explore various ways of using a GAN to create previously unseen images. I provide source code in #Tensorflow and a modified version of DIGITS that you are free to use if you wish to try it out yourself.
🔻Do not miss out this article
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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

link: https://devblogs.nvidia.com/photo-editing-generative-adversarial-networks-1/
🔻DEPLOYING COMPUTER VISION TO HELP SOCIAL DISTANCING AMID PANDEMIC OUTBREAK

This can help to:

· Know the number of people in given public place or facility

· If the gatherings are confined by mandated congregation limit

· Know where and when the cleaning personnel should focus their activities of sanitizing and waste disposal

· Check if people are wearing face masks in the suggested regions

· Observe if people are following recommended social distancing policies.

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📌Via: @cedeeplearning

https://www.analyticsinsight.net/deploying-computer-vision-to-help-in-social-distancing-amid-pandemic-outbreak/

#computervision
#AI
#COVID19
#deeplearning
#machinelearning
🔹BENEFITS OF SPARK NLP

1. It’s very accurate
2. Reduced training model sizes
3. It’s fast
4. It is fully supported by Spark
5. It is scalable
6. Extensive functionality and support
7. A large community
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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

link: https://www.analyticsinsight.net/benefits-of-spark-nlp/

#spark
#NLP
#deeplearning
#neuralnetworks
🔹The Rise of Generative Adversarial Networks

A comprehensive overview of Generative Adversarial Networks, covering its birth, different architectures including #DCGAN, #StyleGAN and #BigGAN, as well as some real-world examples.

Credit: By Kailash Ahirwar

In this article, we have seen how GANs rose to fame and became a global phenomenon. I hope, we see the democratization of GANs in the coming years. In this article, we started with the birth of GANs. Then, we explored some widely popular GAN architectures. Finally, we witnessed the rise of GANs. When I see negative press around GANs, I am baffled. I believe, it is our responsibility to make everyone aware of the repercussions of GANs and how can we ethically and morally use GANs for our best.
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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

link: https://www.kdnuggets.com/2019/04/rise-generative-adversarial-networks.html

#GAN
#deepfake
#deeplearning
#neuralnetworks
#Ian_Goodfellow
🔻TensorFlow Dev Summit 2020: Top 10 Tricks for TensorFlow and Google Colab Users

In this piece, we’ll highlight some of the tips and tricks mentioned during this year’s TF summit. Specifically, these tips will help you in getting the best out of Google’s Colab.

Credit: By Derrick Mwiti
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📌Via: @cedeeplearning

https://www.kdnuggets.com/2020/04/tensorflow-dev-summit-2020-top-10-tricks-tensorflow-colabs.html

#TensorFlow
#google
#neuralnetworks
#deeplearning
#machinelearning
🔻🔻2 Things You Need to Know about Reinforcement Learning
1. Computational Efficiency
2. Sample Efficiency

Experimenting with different strategies for a reinforcement learning model is crucial to discovering the best approach for your application. However, where you land can have significant impact on your system's energy consumption that could cause you to think again about the efficiency of your computations.

By Kevin Vu
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📌Via: @cedeeplearning

https://www.kdnuggets.com/2020/04/2-things-reinforcement-learning.html

#reinforcement
#deeplearning
#neuralnetworks
#efficiency
#machinelearning
🔹Computing and artificial intelligence: Humanistic perspectives from MIT

"The advent of artificial intelligence presents our species with an historic opportunity — disguised as an existential challenge: Can we stay human in the age of AI? In fact, can we grow in humanity, can we shape a more humane, more just, and sustainable world?"

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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

link: https://shass.mit.edu/news/news-2019-computing-and-ai-humanistic-perspectives-mit-foreword-dean-melissa-nobles

#MIT
#AI
#machinelearning
#computing
🔻Detecting patients’ pain levels via their brain signals

System could help with diagnosing and treating #noncommunicative patients.

Researchers from #MIT and elsewhere have developed a system that measures a patient’s pain level by analyzing brain activity from a portable #neuroimaging device. The system could help doctors diagnose and treat pain in unconscious and noncommunicative patients, which could reduce the risk of chronic pain that can occur after surgery.
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📌Via: @cedeeplearning
📌Social media: https://linktr.ee/cedeeplearning

link: http://news.mit.edu/2019/detecting-pain-levels-brain-signals-0912

#deeplearning
#neuralnetworks
#machinelearning
#computerscience