🎥 Deep Genomics: Artificial Intelligence Meets The Human Genome
👁 1 раз ⏳ 5241 сек.
👁 1 раз ⏳ 5241 сек.
https://vlab.org/events/deep-genomics/
June 20, 2017, 6:00 p.m. at SRI International
====Moderator
Raeka Aiyar, Director of Scientific Strategy and Communications, Stanford Genome Technology Center
===Panelists
Charlene Son Rigby, SVP Customer Operations, Fabric Genomics
Helmy Eltoukhy, CEO, Guardant Health
Andy Felton, VP Marketing & Product Management, Ion Torrent Business
Ursheet Parikh, Partner, Mayfield Fund
===Event Team
Co-Chairs: Patricia Yotnda and Mike Chen
Event Team Members: Paul Dibyadeep,
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Deep Genomics: Artificial Intelligence Meets The Human Genome
https://vlab.org/events/deep-genomics/
June 20, 2017, 6:00 p.m. at SRI International
====Moderator
Raeka Aiyar, Director of Scientific Strategy and Communications, Stanford Genome Technology Center
===Panelists
Charlene Son Rigby, SVP Customer Operations…
June 20, 2017, 6:00 p.m. at SRI International
====Moderator
Raeka Aiyar, Director of Scientific Strategy and Communications, Stanford Genome Technology Center
===Panelists
Charlene Son Rigby, SVP Customer Operations…
🎥 Deep Learning course 2019, seminar #2
👁 13 раз ⏳ 1287 сек.
👁 13 раз ⏳ 1287 сек.
Семинар №2 курса https://dlcourse.ai/
Задание 1: https://github.com/sim0nsays/dlcourse_ai
Ноутбук 1, к которому мы ненадолго возвращаемся: https://colab.research.google.com/drive/1FBdo0TAv5eiWNl909vrcAQeau476rlOK
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Deep Learning course 2019, seminar #2
Семинар №2 курса https://dlcourse.ai/
Задание 1: https://github.com/sim0nsays/dlcourse_ai
Ноутбук 1, к которому мы ненадолго возвращаемся: https://colab.research.google.com/drive/1FBdo0TAv5eiWNl909vrcAQeau476rlOK
Задание 1: https://github.com/sim0nsays/dlcourse_ai
Ноутбук 1, к которому мы ненадолго возвращаемся: https://colab.research.google.com/drive/1FBdo0TAv5eiWNl909vrcAQeau476rlOK
Neural MMO — A Massively Multiagent Game Environment
By OpenAI: https://blog.openai.com/neural-mmo/
- Code: https://github.com/openai/neural-mmo
- 3D Client: https://github.com/jsuarez5341/neural-mmo-client
#artificialintelligence #deeplearning #multiagent #reinforcementlearning
🔗 Neural MMO - A Massively Multiagent Game Environment
We’re releasing our Neural MMO - a massively multiagent game environment for reinforcement learning agents.
By OpenAI: https://blog.openai.com/neural-mmo/
- Code: https://github.com/openai/neural-mmo
- 3D Client: https://github.com/jsuarez5341/neural-mmo-client
#artificialintelligence #deeplearning #multiagent #reinforcementlearning
🔗 Neural MMO - A Massively Multiagent Game Environment
We’re releasing our Neural MMO - a massively multiagent game environment for reinforcement learning agents.
Machine Learning with No Code
https://www.youtube.com/watch?v=w45t3itM5NM
🎥 Machine Learning with No Code
👁 1 раз ⏳ 704 сек.
https://www.youtube.com/watch?v=w45t3itM5NM
🎥 Machine Learning with No Code
👁 1 раз ⏳ 704 сек.
Is it possible to use machine learning without needing to code? The answer is yes! Uber's AI lab recently open sourced python library called Ludwig that they've been using internally for 2 years. The tagline is that it allows anyone to use deep learning without coding. It will require some configuration and unix commands to setup, but I'll show you how in this video. I'll also talk about other code-free tools like Azure ML Studio, DataRobot, and DeepCognition. Enjoy!
Code for this video:
https://github.c
YouTube
Machine Learning with No Code
Is it possible to use machine learning without needing to code? The answer is yes! Uber's AI lab recently open sourced python library called Ludwig that they've been using internally for 2 years. The tagline is that it allows anyone to use deep learning without…
A Gold-Winning Solution Review of Kaggle Humpback Whale Identification Challenge
https://towardsdatascience.com/a-gold-winning-solution-review-of-kaggle-humpback-whale-identification-challenge-53b0e3ba1e84?source=collection_home---4------0---------------------
🔗 A Gold-Winning Solution Review of Kaggle Humpback Whale Identification Challenge
An extensive yet simple review of the most noticeable approaches
https://towardsdatascience.com/a-gold-winning-solution-review-of-kaggle-humpback-whale-identification-challenge-53b0e3ba1e84?source=collection_home---4------0---------------------
🔗 A Gold-Winning Solution Review of Kaggle Humpback Whale Identification Challenge
An extensive yet simple review of the most noticeable approaches
Towards Data Science
A Gold-Winning Solution Review of Kaggle Humpback Whale Identification Challenge
An extensive yet simple review of the most noticeable approaches
ПАКЕТ VIP-FRANCHISE PREMIUM💰
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Что же такое наш пакет "90 франшиз" и как на нём зарабатывать?
Мощнейший VIP Комплект Франшизы с более чем 90 бизнес кейсами в виде информационных курсов, с инструкциями и обучением по самым различным тематикам быстрого заработка в интернете.
💡Около 1 терабайта информации, расположенного в доступе для скачивания с облачного хранилища.
☝Собранная информация в сумме составляет более чем 100 тысяч рублей.
📌Множество обучающего и практического материала📚 для раскрутки бизнеса и увеличения продаж.😉💪
📌Cписок из более 500 бесплатных досок .📜
📌Cофт для раскрутки и автоматизации в соц сетях и т.д.!!!
📌 Тренинги этого года с пошаговой инструкцией от А до Я, от начала до ведения бизнеса!
Благодаря👉 этому пакету вы сможете выбрать свое дело и работать на себя, стать финансово независимым😎🤑 и зарабатывать приличные деньги!💰
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Андрей Устюжанин: «Поиск темной материи в лабораторных условиях с помощью машинного обучения»
🔗 Андрей Устюжанин: «Поиск темной материи в лабораторных условиях с помощью машинного обучения»
21 февраля в Музее космонавтики состоялась вторая лекция цикла «Космос и технологии» на тему «Поиск темной материи в лабораторных условиях с помощью машинног...
🔗 Андрей Устюжанин: «Поиск темной материи в лабораторных условиях с помощью машинного обучения»
21 февраля в Музее космонавтики состоялась вторая лекция цикла «Космос и технологии» на тему «Поиск темной материи в лабораторных условиях с помощью машинног...
YouTube
Андрей Устюжанин: «Поиск темной материи в лабораторных условиях с помощью машинного обучения»
21 февраля в Музее космонавтики состоялась вторая лекция цикла «Космос и технологии» на тему «Поиск темной материи в лабораторных условиях с помощью машинног...
Build a deep neural network in 4 mins with TensorFlow in Colab
https://www.youtube.com/watch?v=_VTtrSDHPwU
🎥 Build a deep neural network in 4 mins with TensorFlow on Colabs
👁 1 раз ⏳ 234 сек.
https://www.youtube.com/watch?v=_VTtrSDHPwU
🎥 Build a deep neural network in 4 mins with TensorFlow on Colabs
👁 1 раз ⏳ 234 сек.
Google Colaboratory is a free Jupyter notebook environment that requires no setup and runs entirely in the Cloud. In this episode of Coding TensorFlow, Laurence shows us how to code, test, and train neural networks right in your browser, without having to worry about installing any kind of runtime. Watch to quickly see an example of how you can use TensorFlow to build a neural network for breast cancer classification...all this happens within Colab!
Download the pre-processed data & Colab to try it your
YouTube
Build a deep neural network in 4 mins with TensorFlow in Colab
Google Colaboratory is a free Jupyter notebook environment that requires no setup and runs entirely in the Cloud. In this episode of Coding TensorFlow, Laurence shows us how to code, test, and train neural networks right in your browser, without having to…
Tensor flow. Smooth dive
https://www.youtube.com/watch?v=cs9dBQxe8yM
🎥 Meetup #17. Tensor flow. Smooth dive
👁 8 раз ⏳ 3742 сек.
https://www.youtube.com/watch?v=cs9dBQxe8yM
🎥 Meetup #17. Tensor flow. Smooth dive
👁 8 раз ⏳ 3742 сек.
Видео доклада с семнадцатой встречи сообщества .Nuts. C докладом выступил Сергей Лозовской. Доклад состоялся 28 февраля 2019 года.
YouTube
Meetup #17. Tensor flow. Smooth dive
Видео доклада с семнадцатой встречи сообщества .Nuts. C докладом выступил Сергей Лозовской. Доклад состоялся 28 февраля 2019 года.
Machine Learning
A Probabilistic Perspective
Kevin P. Murphy
📝 Machine-Learning-A-Probabilistic-Perspective.pdf - 💾26 293 504
A Probabilistic Perspective
Kevin P. Murphy
📝 Machine-Learning-A-Probabilistic-Perspective.pdf - 💾26 293 504
Similarity learning using deep neural networks - Jacek Komorowski
Наш телеграм канал - https://tele.click/ai_machinelearning_big_data
https://www.youtube.com/watch?v=OkcS4qE4Zsg
🎥 Similarity learning using deep neural networks - Jacek Komorowski
👁 1 раз ⏳ 2116 сек.
Наш телеграм канал - https://tele.click/ai_machinelearning_big_data
https://www.youtube.com/watch?v=OkcS4qE4Zsg
🎥 Similarity learning using deep neural networks - Jacek Komorowski
👁 1 раз ⏳ 2116 сек.
PyData Warsaw 2018
Deep neural network give very good results in visual object recognition tasks, but they require large number of training examples from each category. I'll present a class of neural network architectures, that can be used when only few training examples from each class are available. They are based on 'similarity learning' concept and can be used to solve various practical problems.
===
www.pydata.org
PyData is an educational program of NumFOCUS, a 501(c)3 non-profit organization in the
YouTube
Similarity learning using deep neural networks - Jacek Komorowski
PyData Warsaw 2018
Deep neural network give very good results in visual object recognition tasks, but they require large number of training examples from each category. I'll present a class of neural network architectures, that can be used when only few…
Deep neural network give very good results in visual object recognition tasks, but they require large number of training examples from each category. I'll present a class of neural network architectures, that can be used when only few…
3 Levels of Deep Learning Competence
https://machinelearningmastery.com/deep-learning-competence/
🔗 3 Levels of Deep Learning Competence
Deep learning is not a magic bullet, but the techniques have shown to be highly effective in a large number of very challenging problem domains. This means that there is a ton of demand by businesses for effective deep learning practitioners. The problem is, how can the average business differentiate between good and bad practitioners? …
https://machinelearningmastery.com/deep-learning-competence/
🔗 3 Levels of Deep Learning Competence
Deep learning is not a magic bullet, but the techniques have shown to be highly effective in a large number of very challenging problem domains. This means that there is a ton of demand by businesses for effective deep learning practitioners. The problem is, how can the average business differentiate between good and bad practitioners? …
Tutorial wineural differentiation
https://nbviewer.jupyter.org/github/urtrial/neural_ode/blob/master/Neural%20ODEs.ipynb
🔗 Notebook on nbviewer
Check out this Jupyter notebook!
https://nbviewer.jupyter.org/github/urtrial/neural_ode/blob/master/Neural%20ODEs.ipynb
🔗 Notebook on nbviewer
Check out this Jupyter notebook!
nbviewer.org
Notebook on nbviewer
Check out this Jupyter notebook!
Learning Theory: Empirical Risk Minimization
https://towardsdatascience.com/learning-theory-empirical-risk-minimization-d3573f90ff77?source=collection_home---4------1---------------------
🔗 Learning Theory: Empirical Risk Minimization – Towards Data Science
Delving into ERM, one of the essential neglected concepts in machine learning
https://towardsdatascience.com/learning-theory-empirical-risk-minimization-d3573f90ff77?source=collection_home---4------1---------------------
🔗 Learning Theory: Empirical Risk Minimization – Towards Data Science
Delving into ERM, one of the essential neglected concepts in machine learning
Towards Data Science
Learning Theory: Empirical Risk Minimization
Delving into ERM, one of the essential neglected concepts in machine learning
Practical Deep Learning For Coders 2018
https://www.youtube.com/watch?v=IPBSB1HLNLo&list=PLfYUBJiXbdtS2UQRzyrxmyVHoGW0gmLSM&index=2&t=0s
https://www.youtube.com/playlist?list=PLfYUBJiXbdtS2UQRzyrxmyVHoGW0gmLSM
🎥 Lesson 1: Deep Learning 2018
👁 133 раз ⏳ 5195 сек.
https://www.youtube.com/watch?v=IPBSB1HLNLo&list=PLfYUBJiXbdtS2UQRzyrxmyVHoGW0gmLSM&index=2&t=0s
https://www.youtube.com/playlist?list=PLfYUBJiXbdtS2UQRzyrxmyVHoGW0gmLSM
🎥 Lesson 1: Deep Learning 2018
👁 133 раз ⏳ 5195 сек.
NB: Please go to http://course.fast.ai to view this video since there is important updated information there. If you have questions, use the forums at http://forums.fast.ai
Welcome to the start of your fast.ai journey! In today’s lesson you’ll set up your deep learning server, and training your first image classification model (a convolutional neural network, or CNN), which will learn to distinguish dogs from cats nearly perfectly. If you need help at any time, head over to forums.fast.ai where over a thou
YouTube
Lesson 1: Deep Learning 2018
NB: Please go to http://course.fast.ai to view this video since there is important updated information there. If you have questions, use the forums at http:/...
🎥 Artificial Intelligence And Machine Learning E-Degree : Sneak Peak | Eduonix
👁 2 раз ⏳ 2819 сек.
👁 2 раз ⏳ 2819 сек.
Machine Learning is one of the technologies which gained immense popularity recently. This video gives a sneak peek of our AI and ML E-Degree campaign on Kickstarter. Herein, the tutor explains the different models of machine learning such as supervised, unsupervised and reinforcement ML models along with the insights into data science workflows and deep learning.
If you are one of those who is always intrigued by the concepts of AI and ML, then you can learn it from the very beginning by backing our AI a
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Artificial Intelligence And Machine Learning E-Degree : Sneak Peak | Eduonix
Machine Learning is one of the technologies which gained immense popularity recently. This video gives a sneak peek of our AI and ML E-Degree campaign on Kickstarter. Herein, the tutor explains the different models of machine learning such as supervised,…
🎥 Distributed deep learning and why you may not need it - Jakub Sanojca, Mikuláš Zelinka
👁 5 раз ⏳ 1729 сек.
👁 5 раз ⏳ 1729 сек.
PyData Warsaw 2018
Deep learning thrives with always bigger networks and always growing datasets but single machine can only handle so much. When to scale to multiple machines and how do do it efficiently? What pros and cons available options have and what is theory behind their approach to distributed training? In this talk we will answer those questions and show what problems we are trying to solve at Avast.
===
www.pydata.org
PyData is an educational program of NumFOCUS, a 501(c)3 non-profit organizat
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Distributed deep learning and why you may not need it - Jakub Sanojca, Mikuláš Zelinka
PyData Warsaw 2018
Deep learning thrives with always bigger networks and always growing datasets but single machine can only handle so much. When to scale to multiple machines and how do do it efficiently? What pros and cons available options have and what…
Deep learning thrives with always bigger networks and always growing datasets but single machine can only handle so much. When to scale to multiple machines and how do do it efficiently? What pros and cons available options have and what…
🎥 Keynote: The Neural Aesthetic - Gene Kogan
👁 1 раз ⏳ 2861 сек.
👁 1 раз ⏳ 2861 сек.
PyData Warsaw 2018
Over the past several years, two trends in machine learning have converged to pique the curiosity of artists working with code: the proliferation of powerful open source deep learning frameworks like TensorFlow and Torch, and the emergence of data-intensive generative models for hallucinating images, sounds, and text as though they came from the oeuvre of Shakespeare, Picasso, or just a gigantic database of digitized cats.
===
www.pydata.org
PyData is an educational program of NumFOCUS,
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Keynote: The Neural Aesthetic - Gene Kogan
PyData Warsaw 2018
Over the past several years, two trends in machine learning have converged to pique the curiosity of artists working with code: the proliferation of powerful open source deep learning frameworks like TensorFlow and Torch, and the emergence…
Over the past several years, two trends in machine learning have converged to pique the curiosity of artists working with code: the proliferation of powerful open source deep learning frameworks like TensorFlow and Torch, and the emergence…