ββImportant article in Nature about statistical significance
Scientists rise up against statistical significance β about motion to move from widely using and quoting statistical significance to confindence intervals.
Link: https://www.nature.com/articles/d41586-019-00857-9
#statistics #statsignificance #nature #science
Scientists rise up against statistical significance β about motion to move from widely using and quoting statistical significance to confindence intervals.
Link: https://www.nature.com/articles/d41586-019-00857-9
#statistics #statsignificance #nature #science
Next-level learning approach: using MRI to peek into baby brains to improve CV
MRI Scanning 17 babies for 26 hours to see how face-recognizing brain regions mature. When just 4-6 months, babies prefer to look at faces & socially relevant things. This means face recognition is learned via evolution: data-hungry & sample-inefficient.
Link: https://www.nature.com/articles/ncomms13995
#nature
MRI Scanning 17 babies for 26 hours to see how face-recognizing brain regions mature. When just 4-6 months, babies prefer to look at faces & socially relevant things. This means face recognition is learned via evolution: data-hungry & sample-inefficient.
Link: https://www.nature.com/articles/ncomms13995
#nature
Nature
Organization of high-level visual cortex in human infants
Nature Communications - Adult visual cortex is organized into regions that respond to categories such as faces and scenes, but it is unclear if this depends on experience. Here, authors measured...
ββOne-shot object detection
Long and complete post explaining how these one-shot detectors work and how they are trained and evaluated.
Link: https://machinethink.net/blog/object-detection/
#cv #dl #objectdetection
Long and complete post explaining how these one-shot detectors work and how they are trained and evaluated.
Link: https://machinethink.net/blog/object-detection/
#cv #dl #objectdetection
Deep Neural Networks Improve Radiologists' Performance in Breast Cancer Screening
A deep convolutional neural network for breast cancer screening exam classification, trained and evaluated on over 200,000 exams (over 1,000,000 images). #nn achieves an #AUC of 0.895 in predicting whether there is a cancer in the breast, when tested on the screening population.
Link: https://arxiv.org/abs/1903.08297
#cv #dl #cancer #objectdetection
A deep convolutional neural network for breast cancer screening exam classification, trained and evaluated on over 200,000 exams (over 1,000,000 images). #nn achieves an #AUC of 0.895 in predicting whether there is a cancer in the breast, when tested on the screening population.
Link: https://arxiv.org/abs/1903.08297
#cv #dl #cancer #objectdetection
arXiv.org
Deep Neural Networks Improve Radiologists' Performance in...
We present a deep convolutional neural network for breast cancer screening exam classification, trained and evaluated on over 200,000 exams (over 1,000,000 images). Our network achieves an AUC of...
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ML helping to fight world hunger
Plantix is an app helping farmers in India by detecting plant diseases from images. With its help people are able to see where diseases are spreading and warn the users in certain areas.
Link: https://www.thebetterindia.com/175044/india-farmer-earning-lakhs-plantix-app-crop-health/
#mlatwork #cv
Plantix is an app helping farmers in India by detecting plant diseases from images. With its help people are able to see where diseases are spreading and warn the users in certain areas.
Link: https://www.thebetterindia.com/175044/india-farmer-earning-lakhs-plantix-app-crop-health/
#mlatwork #cv
The Better India
AI to the Rescue: How Phones are Turning into Plant Doctors for Thousands of Farmers
Plantix aids farmers & gardening enthusiasts with information on diseases, pest infestation and nutrient deficiencyβall by sharing a photograph of a leaf!
Coconet: the ML model behind 20th of March Bach Doodle
Network trained to recreate Bach's music.
Link: https://magenta.tensorflow.org/coconet
#magenta #google #audiolearning
Network trained to recreate Bach's music.
Link: https://magenta.tensorflow.org/coconet
#magenta #google #audiolearning
Magenta
Coconet: the ML model behind todayβs Bach Doodle
Have you seen todayβs Doodle? Join us to celebrate J.S. Bachβs 334th birthday with the first AI-powered Google Doodle. You can create your own melody, an...
Big article on how #uber ML system Michelangelo works
Michelangelo enables internal teams to seamlessly build, deploy, and operate machine learning solutions at Uberβs scale. It is designed to cover the end-to-end ML workflow: manage data, train, evaluate, and deploy models, make predictions, and monitor predictions. The system also supports traditional ML models, time series forecasting, and deep learning.
Link: https://eng.uber.com/michelangelo/
#ML #MLSystem #MLatwork #practical
Michelangelo enables internal teams to seamlessly build, deploy, and operate machine learning solutions at Uberβs scale. It is designed to cover the end-to-end ML workflow: manage data, train, evaluate, and deploy models, make predictions, and monitor predictions. The system also supports traditional ML models, time series forecasting, and deep learning.
Link: https://eng.uber.com/michelangelo/
#ML #MLSystem #MLatwork #practical
π₯Quasi-Breaking: An Algorithm Inks a Record Deal With Warner Music
Endel uses machine learning to create personalized tracks meant to help people focus, relax and sleep better by inputting factors such as heart rate, time of day, location and weather.
Looking forward to actual music-generating algorithm being signed up for label.
Link: https://hypebeast.com/2019/3/endel-algorithm-record-deal-warner-music
#MLHype #audiolearning #DL #Endel
Endel uses machine learning to create personalized tracks meant to help people focus, relax and sleep better by inputting factors such as heart rate, time of day, location and weather.
Looking forward to actual music-generating algorithm being signed up for label.
Link: https://hypebeast.com/2019/3/endel-algorithm-record-deal-warner-music
#MLHype #audiolearning #DL #Endel
HYPEBEAST
An Algorithm Inks Distribution Partnership With Warner Music
This is the future.
ββReducing the Need for Labeled Data in Generative Adversarial Networks
How combination of self-supervision and semi-supervision can help learn from partially labeled data.
Link: https://ai.googleblog.com/2019/03/reducing-need-for-labeled-data-in.html
#GAN #DL #Google #supervisedvsunsupervised
How combination of self-supervision and semi-supervision can help learn from partially labeled data.
Link: https://ai.googleblog.com/2019/03/reducing-need-for-labeled-data-in.html
#GAN #DL #Google #supervisedvsunsupervised
Data Science by ODS.ai π¦
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Still looking for volunteers π
Data Science by ODS.ai π¦
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Google Docs
@opendatascience call to arms
Please fill in the form, if you want to volunteer to content exploration, annotating and posting.
π«Prefect (Airflow alternative) has gone Open Source
Prefect is capable of:
* Handling data processing timeline
* Orchestrating the backend of Cloud execution platform
* Parameterizing machine learning models
* Execute other ETL patterns
Docs: https://docs.prefect.io
Link: https://medium.com/the-prefect-blog/prefect-is-open-source-744e3c00cf35
GitHub: https://github.com/prefecthq/prefect
#ml_pipeline #mlflow
Prefect is capable of:
* Handling data processing timeline
* Orchestrating the backend of Cloud execution platform
* Parameterizing machine learning models
* Execute other ETL patterns
Docs: https://docs.prefect.io
Link: https://medium.com/the-prefect-blog/prefect-is-open-source-744e3c00cf35
GitHub: https://github.com/prefecthq/prefect
#ml_pipeline #mlflow
Prefect
Introduction - Prefect
ββA comprehensive beginnerβs guide to create a Time Series Forecast (with Codes in Python)
A middle-level article on #TS forecasting in #Python.
Link: https://www.analyticsvidhya.com/blog/2016/02/time-series-forecasting-codes-python/
A middle-level article on #TS forecasting in #Python.
Link: https://www.analyticsvidhya.com/blog/2016/02/time-series-forecasting-codes-python/
ββAn End-to-End Project on Time Series Analysis and Forecasting with Python
Todayβs second article about #TS forecasting, to cover basics and provide knowledge about how to approach TS data mining.
Link: https://towardsdatascience.com/an-end-to-end-project-on-time-series-analysis-and-forecasting-with-python-4835e6bf050b
#Python
Todayβs second article about #TS forecasting, to cover basics and provide knowledge about how to approach TS data mining.
Link: https://towardsdatascience.com/an-end-to-end-project-on-time-series-analysis-and-forecasting-with-python-4835e6bf050b
#Python
πUsing AI to help increase blood donations
This is a post describing how #Facebook uses #ML and #AI to detect intent or interest in blood donation and to match these people with local hospitals, increasing probability of people actually donating blood. Sounds like an awesome and inspiring application for AI.
Link: https://tech.fb.com/using-ai-to-help-increase-blood-donations/
This is a post describing how #Facebook uses #ML and #AI to detect intent or interest in blood donation and to match these people with local hospitals, increasing probability of people actually donating blood. Sounds like an awesome and inspiring application for AI.
Link: https://tech.fb.com/using-ai-to-help-increase-blood-donations/
Tech at Meta
Using AI to help increase blood donations - Tech at Meta
Using AI to help increase blood donationsUsing AI to help increase blood donationsAn in-depth look at the AI technology behind a Facebook feature that connects potential blood donors with local hospitals and blood banksAn in-depth look at the AI technologyβ¦
IPython notebooks and git
#IPython or #Jupyter is one of the most popular tools in Data Science. It usage may questionable, but it is optimal for beginners and people who are making thier first steps. This article covers rare theme β keeping notebooks in git repository and optimizing collaboration using them. Main problem lies in technical information (like cell execution count), which is redundant and can be omitted, but still gets written to git in the default scenario.
Link: https://pascalbugnion.net/blog/ipython-notebooks-and-git.html
Code: https://gist.github.com/pbugnion/ea2797393033b54674af
#datascience #practicalML
#IPython or #Jupyter is one of the most popular tools in Data Science. It usage may questionable, but it is optimal for beginners and people who are making thier first steps. This article covers rare theme β keeping notebooks in git repository and optimizing collaboration using them. Main problem lies in technical information (like cell execution count), which is redundant and can be omitted, but still gets written to git in the default scenario.
Link: https://pascalbugnion.net/blog/ipython-notebooks-and-git.html
Code: https://gist.github.com/pbugnion/ea2797393033b54674af
#datascience #practicalML
Gist
Keeping IPython notebooks under Git version control
Keeping IPython notebooks under Git version control - ipython_notebook_in_git.md
ββPI-REC: Progressive Image Reconstruction Network With Edge and Color Domain
Paper on how image can be reconstracted from doodle and color palette.
Link: https://arxiv.org/pdf/1903.10146.pdf
#ImageReconstruction #CV #DL
Paper on how image can be reconstracted from doodle and color palette.
Link: https://arxiv.org/pdf/1903.10146.pdf
#ImageReconstruction #CV #DL
ββFast video object segmentation with Spatio-Temporal GANs
Spatio-Temporal GANs to the Video Object Segmentation task, allowing to run at 32 FPS without fine-tuning.
#FaSTGAN #GAN #Segmentation #videomining #CV #DL
Spatio-Temporal GANs to the Video Object Segmentation task, allowing to run at 32 FPS without fine-tuning.
#FaSTGAN #GAN #Segmentation #videomining #CV #DL
ββStep Change Improvement in Molecular Property Prediction with PotentialNet
Paper on a significant improvement in ability to predict molecular properties in drug design. #ML algorithms are getting better and better than classical methods.
Link: https://medium.com/@pandelab/step-change-improvement-in-molecular-property-prediction-with-potentialnet-f431ffa32a2c
#drugsdesign #biolearning #healthcare
Paper on a significant improvement in ability to predict molecular properties in drug design. #ML algorithms are getting better and better than classical methods.
Link: https://medium.com/@pandelab/step-change-improvement-in-molecular-property-prediction-with-potentialnet-f431ffa32a2c
#drugsdesign #biolearning #healthcare