AI, Python, Cognitive Neuroscience
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"Neural network models are inspired by the biological brain—the analogy is that just as the neurons in brains calculate something and are connected, neurons in artificial neural networks also calculate and are connected, forming networks of interconnected neurons, also called units. In reality, the analogy ends there; biological brains are complicated structures, and there is still a lot that we don't know about how they work. So, if someone asks you whether your neural network model works like a brain, the answer is an emphatic, No." Alvaro Fuentes in "Hands-On Predictive Analytics with Python: Master the complete predictive analytics process, from problem definition to model deployment." Packt Publishing.

✴️ @AI_Python_EN
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End-to-end lung cancer screening with three-dimensional deep learning on low-dose chest computed tomography

Researchers from #GoogleAi and #Stanford published work today in #Nature that shows great potential to use machine learning to help catch more lung cancer cases earlier and increase survival likelihood.

Link: https://lnkd.in/fUMtA-3

#LungCancer #Cancer #biolearning #healthcare #DL

✴️ @AI_Python_EN
#ArtificialNeuralNetworks (ANN) were supposed to replicate the architecture of the human brain, yet till about a decade ago, the only common feature between #ANN and our brain was the nomenclature of their entities (for instance – neuron). ANN architectures have become extremely useful across industries.

https://bit.ly/2Et1wpl

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Download pdf, or get your copy, of AutoML: Methods, Systems, Challenges.

https://lnkd.in/gnWgVt8
#datascience
#machinelearning


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Which doodles are human-drawn and which are AI-generated? Berkeley researchers Forrest Huang et al created a #neuralnetwork that can generate sketches based on text descriptions:
http://bit.ly/2LZSHJN


✴️ @AI_Python_EN
Quant types often dismiss qualitative research as subjective and, therefore, unscientific.

Though a quant type myself, I must dissent. Not on the grounds that qualitative research is purely objective, but on the grounds that most quantitative research in any field requires a substantial amount of subjective judgment on the part of the research team, statisticians included.

Were this not the case, there would be little need to reproduce and replicate quantitative research findings, apart from concerns about fraud.

There would be far fewer journal articles, books and conferences, and little need for #meta_analysis. All #AI would give us the same answers, too.

✴️ @AI_Python_EN
letting beginners and experts alike learn about SAP HANA.
Download here --> https://lnkd.in/eTtdvi4

End to end Machine learning platform.
Bring your own language and microservices.Java, Node.js and Python are the officially supported languages.

SAP HANA is an ACID-compliant database and application development platform. You can use advanced data processing capabilities—text, graph, spatial, predictive, and more—to pull insights from all types of data.

#machinelearning #artificialintelligence #datascience #ml #ai #deeplearning #python #R #java #SQL

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Data-Efficient Image Recognition with Contrastive Predictive Coding

Hénaff et al.: https://lnkd.in/eMDhrU8

#ArtificialIntelligence #ComputerVision #MachineLearning

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Probabilistic Graphical Models

Spring 2019 • Carnegie Mellon University

Lisa Lee
https://sailinglab.github.io/pgm-spring-2019/lectures/

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SOD is an embedded, modern cross-platform computer vision and machine learning software library that expose a set of APIs for deep-learning, advanced media analysis & processing including real-time, multi-class object detection and model training on embedded systems with limited computational resource and IoT devices.

SOD - An Embedded #ComputerVision & #MachineLearning Library
https://sod.pixlab.io/
api https://sod.pixlab.io/api.html
samples https://sod.pixlab.io/samples.html
guide https://sod.pixlab.io/intro.html
github https://github.com/symisc/sod

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"Storytelling with Data: A Data Visualization Guide for Business Professionals" by Cole Nussbaumer Knaflic

I've just come across this first (2015) edition, and there now may be a second edition out. Here's the link to the PDF:

https://lnkd.in/fJSN7ci

✴️ @AI_Python_EN
Bringing human-like reasoning to driverless car navigation
Autonomous control system “learns” to use simple maps and image data to navigate new, complex routes.
#COMPUTERVISION

http://news.mit.edu/2019/human-reasoning-ai-driverless-car-navigation-0523

✴️ @AI_Python_EN
torchvision 0.3.0: segmentation, detection models, new datasets, C++/CUDA operators Blog with link to tutorial, release notes: https://pytorch.org/blog/torchvision03/ … Install commands have changed, use the selector on https://pytorch.org
NEW VIDEO: Learn how to write better, more efficient #pandas code 🐼 📺 https://www.youtube.com/watch?v=dPwLlJkSHLo … Download the dataset to follow along with the exercises: 👩‍💻 https://github.com/justmarkham/pycon-2019-tutorial … Become more fluent at using pandas to answer your own #DataScience questions! #Python
Revisiting Graph Neural Networks: All We Have is Low-Pass Filters. (arXiv:1905.09550v1 [http://stat.ML ]) http://bit.ly/2JyBy8

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