“An emerging concept termed Organoid Intelligence (OI) ...

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“An emerging concept termed Organoid Intelligence (OI) combines organoids with artificial intelligence systems to generate learning and memory, with the goals of modeling cognition and enabling biological computing applications.”
https://onlinelibrary.wiley.com/doi/10.1002/adhm.202302745

The U.S. National Science Foundation has invested $14 million in seven interdisciplinary research projects through the Emerging Frontiers in Research and Innovation (EFRI): Biocomputing through EnGINeering Organoid Intelligence program.
https://new.nsf.gov/news/nsf-invests-14m-bioengineered-systems-ethical-biocomputing

1) Integrated Human Brain Organoid Systems for Adaptive Reservoir Computing, University of Michigan
https://nsf.gov/awardsearch/showAward?AWD_ID=2422149

2) Implantation of Dense Associative Memory through CArdiac muscle cell-based Reprogrammable Bio-Oscillatory Neural Networks, University of Notre Dame
https://nsf.gov/awardsearch/showAward?AWD_ID=2422333

3) Reservoir Computer - Intelligent and Evolving Mechano-Reservoir Computing with Living Spheroids on Fibers, Virginia Tech
https://nsf.gov/awardsearch/showAward?AWD_ID=2422340

4) Neuron-Soft Organoid-Computer Interfaces for Long-Term Three-Dimensional Neural Network Computing, Harvard University
https://nsf.gov/awardsearch/showAward?AWD_ID=2422348

5) Spatiotemporal Learning in 3D Neuronal Organoids, University of Maryland
https://nsf.gov/awardsearch/showAward?AWD_ID=2422352

6) Feasibility of 3D Biological Neurocomputers for Intelligent Biomedical Motor Control Systems, University of California, Irvine
https://nsf.gov/awardsearch/showAward?AWD_ID=2422412

7) Teaching non-brain organoids how to think: Programmable organoid intelligence using neuronal networks implemented by gene circuits, Massachusetts Institute of Technology
https://nsf.gov/awardsearch/showAward?AWD_ID=2422282

Graph Networks for Materials Exploration (GNoME) is a deep learning tool developed by Google DeepMind to predict and discover new materials. GNoME uses graph neural networks (GNNs) to predict the stability of new materials.
https://github.com/google-deepmind/materials_discovery

AI tool GNoME finds 2.2 million new crystals, including 380,000 stable materials that could power future technologies
https://deepmind.google/discover/blog/millions-of-new-materials-discovered-with-deep-learning/

Scaling deep learning for materials discovery
https://nature.com/articles/s41586-023-06735-9.pdf

DenseGNN: universal and scalable deeper graph neural networks for high-performance property prediction in crystals and molecules
https://nature.com/articles/s4152

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