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#alanturinginstitute

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#AI system called #Aardvark could deliver #weather forecasts as accurate as those from advanced weather services but run on desktops. Developed by #UK's #AlanTuringInstitute, #CambridgeUniversity, European Centre for Medium-Range Weather Forecasts and Microsoft, Aardvark aims to make sophisticated forecasting accessible to countries with fewer resources, particularly in #Africa.
The system has already outperformed the US Global Forecast System on many variables in testing
nature.com/articles/s41586-025

NatureEnd-to-end data-driven weather prediction - NatureWeather prediction is critical for a range of human activities including transportation, agriculture and industry, as well as the safety of the general public. Machine learning is transforming numerical weather prediction (NWP) by replacing the numerical solver with neural networks, improving the speed and accuracy of the forecasting component of the prediction pipeline 1,2,3,4,5,6. However, current models rely on numerical systems at initialisation and to produce local forecasts, limiting their achievable gains. Here we show that a single machine learning model can replace the entire NWP pipeline. Aardvark Weather, an end-to-end data-driven weather prediction system, ingests observations and produces global gridded forecasts and local station forecasts. The global forecasts outperform an operational NWP baseline for multiple variables and lead times. The local station forecasts are skillful up to ten days lead time, competing with a post-processed global NWP baseline and a state-of-the-art end-to-end forecasting system with input from human forecasters. End-to-end tuning further improves the accuracy of local forecasts. Our results show that skillful forecasting is possible without relying on NWP at deployment time, which will enable the full speed and accuracy benefits of data-driven models to be realised. We believe Aardvark Weather will be the starting point for a new generation of end-to-end models that will reduce computational costs by orders of magnitude, and enable rapid, affordable creation of customised models for a range of end-users.
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Next was a fantastic panel on the human #labor behind #AI with Madhumita Murgia, Wendy Gonzalez, Siddharth Suri, and Callum Cant at the #AlanTuringInstitute. Most #AI is driven by click workers training these systems, who are often underpaid and algorithmically managed. This essential conversation gets at how to change this approach and issues that #tech companies should consider when developing ever larger models that require this kind of work. Highly recommend youtube.com/watch?v=8pIrfngZCL (3/4)

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Last was a nice technical talk on interpreting deep #NeuralNetworks by Bin Yu at the #AlanTuringInstitute. Complex prediction models are always extremely challenging for humans to understand, with decisions that can seem nonsensical. The methods introduced here add more tools to ameliorating this issue lnkd.in/egqJ42Ne (7/7) #AI

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Next was an important discussion on better images of #AI w/ @taniaduarte , Kanta Dihal, & @tristanf at the #AlanTuringInstitute. Changing misperceptions of the current capabilities of AI is a top priority, and reasoned argument alone won't get society there. #Art can have a huge effect, particularly the imagery organizations use when trying to represent these algorithms. This conversation introduces new images and an approach to develop them. Highly recommend youtube.com/watch?v=7el1K9Q4cl (5/7)

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Next was an engaging talk on decentralized #data #governance by Mark Lizar at the #AlanTuringInstitute. The current model of personal data siloed away in different databases with little meaningful user control is problematic to say the least, and the model of operational #transparency proposed here seems like a meaningful framework to start to address these problems. Highly recommend youtube.com/watch?v=ogjKwTMf4Z (4/7)

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Next was a fantastic talk by Cynthia Rudin on the challenges of using #MachineLearning for scoring systems at #AlanTuringInstitute. I always love a talk that takes a hatchet to the #Compass system, and this excellent talk does that and more, succinctly discussing when and how one should consider using machine learning, how problems in #data can significantly throw off scores, and the importance of #auditing systems even if you design it yourself. Highly recommend youtube.com/watch?v=sOCUP79m5l (3/7)