AI Research
This Artificial Intelligence Giant Is My Forever Technology Hold
Written by Adam Othman at The Motley Fool Canada
Investing to become very wealthy over the years isn’t something that comes to you by making one good investment. It takes plenty of time and disciplined investing over several years to create lasting success. Yes, there is a degree of luck involved, but maximizing your chances of becoming a successful stock market investor requires making intelligent investments.
Identifying a part of the market that’s slated to deliver substantial returns can be an excellent way to find a good investment for your self-directed investment portfolio. These days, it seems anything that has something to do with Artificial Intelligence (AI) is the right move to make, and there’s no shortage of choices in the market.
If you’re looking for AI stocks, the TSX has plenty of publicly traded companies offering you exposure. Today, I will discuss an AI stock from the healthcare sector that you should take a good look at as a long-term holding for your portfolio.
WELL Health Technologies Corp. (TSX:WELL) is a $1.1 billion market capitalization company that owns and operates a portfolio of primary healthcare clinics across North America through several business segments. WELL Health might not be a household name yet, but it seems like it’s well on its way to becoming one.
WELL Health offers support to thousands of medical practitioners and clinics through its digital health platform. The company came into the limelight during the pandemic, offering telehealth services during social distancing restrictions to a population that wanted safer access to healthcare during that time.
While the world has moved into a post-pandemic era, WELL Health remains a relevant business. The company’s expanded offerings have recently combined with AI to reduce costs while improving patient care across the board.
The AI stock saw stellar results in its first quarter for fiscal 2025. The company generated a record high revenue that was up by over 30% from the same period last year, and its adjusted earnings before interest, taxes, depreciation, and amortization (EBITDA) were up by 36% from Q1 2024.
A recent foray into AI has also picked things up for WELL Health. The company recently acquired HEALWELL AI, which is a company focusing entirely on helping practitioners make clinical decisions enhanced by AI. WELL Health anticipates that the acquisition will result in around $40 million per quarter in revenue through this platform.
The move, if it turns out to be successful, will see WELL Health move on from being a mere telehealth company into a full-fledged AI-powered healthcare data company.
AI Research
EU Publishes Final AI Code of Practice to Guide AI Companies
The European Commission said Thursday (July 10) that it published the final version of a voluntary framework designed to help artificial intelligence companies comply with the European Union’s AI Act.
AI Research
Every Blooming Thing – Technology and Artificial Intelligence in the garden – appeal-democrat.com
AI Research
Researchers develop AI model to generate global realistic rainfall maps
Severe weather events, such as heavy rainfall, are on the rise worldwide. Reliable assessments of these events can save lives and protect property. Researchers at the Karlsruhe Institute of Technology (KIT) have developed a new method that uses artificial intelligence (AI) to convert low-resolution global weather data into high-resolution precipitation maps. The method is fast, efficient, and independent of location. Their findings have been published in npj Climate and Atmospheric Science.
“Heavy rainfall and flooding are much more common in many regions of the world than they were just a few decades ago,” said Dr. Christian Chwala, an expert on hydrometeorology and machine learning at the Institute of Meteorology and Climate Research (IMK-IFU), KIT’s Campus Alpin in the German town of Garmisch-Partenkirchen. “But until now the data needed for reliable regional assessments of such extreme events was missing for many locations.”
His research team addresses this problem with a new AI that can generate precise global precipitation maps from low-resolution information. The result is a unique tool for the analysis and assessment of extreme weather, even for regions with poor data coverage, such as the Global South.
For their method, the researchers use historical data from weather models that describe global precipitation at hourly intervals with a spatial resolution of about 24 kilometers. Not only was their generative AI model (spateGEN-ERA5) trained with this data, it also learned (from high-resolution weather radar measurements made in Germany) how precipitation patterns and extreme events correlate at different scales, from coarse to fine.
“Our AI model doesn’t merely create a more sharply focused version of the input data, it generates multiple physically plausible, high-resolution precipitation maps,” said Luca Glawion of IMK-IFU, who developed the model while working on his doctoral thesis in the SCENIC research project. “Details at a resolution of 2 kilometers and 10 minutes become visible. The model also provides information about the statistical uncertainty of the results, which is especially relevant when modeling regionalized heavy rainfall events.”
He also noted that validation with weather radar data from the United States and Australia showed that the method can be applied to entirely different climatic conditions.
Correctly assessing flood risks worldwide
With their method’s global applicability, the researchers offer new possibilities for better assessment of regional climate risks. “It’s the especially vulnerable regions that often lack the resources for detailed weather observations,” said Dr. Julius Polz of IMK-IFU, who was also involved in the model’s development.
“Our approach will enable us to make much more reliable assessments of where heavy rainfall and floods are likely to occur, even in such regions with poor data coverage.” Not only can the new AI method contribute to disaster control in emergencies, it can also help with the implementation of more effective long-term preventive measures such as flood control.
More information:
Luca Glawion et al, Global spatio-temporal ERA5 precipitation downscaling to km and sub-hourly scale using generative AI, npj Climate and Atmospheric Science (2025). DOI: 10.1038/s41612-025-01103-y
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Karlsruhe Institute of Technology
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Researchers develop AI model to generate global realistic rainfall maps (2025, July 10)
retrieved 10 July 2025
from https://phys.org/news/2025-07-ai-generate-global-realistic-rainfall.html
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