University of Michigan AI analyzes brain MRIs in seconds

Researchers at the University of Michigan have developed an AI system called Prima that interprets brain MRI scans in seconds, identifying neurological conditions with up to 97.5% accuracy. The tool also flags urgent cases like strokes and brain hemorrhages, potentially speeding up medical responses. Findings from the study appear in Nature Biomedical Engineering.

A team led by neurosurgeon Todd Hollon at the University of Michigan has introduced Prima, a vision language model designed to process brain MRI scans alongside patient histories. Trained on over 200,000 MRI studies and 5.6 million imaging sequences from University of Michigan Health, Prima integrates clinical data to diagnose more than 50 neurological disorders.

Over a one-year evaluation period, the system was tested on more than 30,000 MRI studies, outperforming other advanced AI models in diagnostic accuracy. It not only identifies conditions but also prioritizes cases requiring immediate attention, such as strokes, by alerting relevant specialists like stroke neurologists or neurosurgeons right after imaging.

"As the global demand for MRI rises and places significant strain on our physicians and health systems, our AI model has potential to reduce burden by improving diagnosis and treatment with fast, accurate information," Hollon said.

Co-first author Yiwei Lyu, a postdoctoral fellow in computer science and engineering, emphasized the balance of speed and precision: "Accuracy is paramount when reading a brain MRI, but quick turnaround times are critical for timely diagnosis and improved outcomes. At key steps in the process, our results show how Prima can improve workflows and streamline clinical care without abandoning accuracy."

Unlike previous AI tools limited to specific tasks, Prima handles a broad range of predictions by mimicking radiologists' methods. Data scientist Samir Harake noted, "Prima works like a radiologist by integrating information regarding the patient's medical history and imaging data to produce a comprehensive understanding of their health. This enables better performance across a broad range of prediction tasks."

Radiology chair Vikas Gulani highlighted its relevance amid growing MRI demand and shortages: "Whether you are receiving a scan at a larger health system that is facing increasing volume or a rural hospital with limited resources, innovative technologies are needed to improve access to radiology services."

The researchers plan to enhance Prima with more electronic medical record data and adapt it for other imaging types, like mammograms and X-rays. Hollon described it as "ChatGPT for medical imaging," positioning it as a supportive tool for clinicians.

Makala yanayohusiana

AI SleepFM analyzing one night of sleep data in a Stanford lab to predict risks for 130 health conditions like dementia and heart disease.
Picha iliyoundwa na AI

Stanford-led AI uses one night of sleep-lab data to estimate future risk for 130 conditions

Imeripotiwa na AI Picha iliyoundwa na AI Imethibitishwa ukweli

Stanford Medicine researchers and collaborators report that an artificial intelligence model called SleepFM can analyze a single overnight polysomnography study and estimate a person’s future risk for more than 100 medical conditions, including dementia, heart disease and some cancers. The team says the system learns patterns across multiple physiological signals recorded during sleep and could reveal early warning signs years before clinical diagnosis.

Researchers at UC San Francisco and Wayne State University found that generative AI can process complex medical datasets faster than traditional human teams, sometimes yielding stronger results. The study focused on predicting preterm birth using data from over 1,000 pregnant women. This approach reduced analysis time from months to minutes in some cases.

Imeripotiwa na AI Imethibitishwa ukweli

Artificial intelligence systems designed to diagnose cancer from tissue slides are learning to infer patient demographics, leading to uneven diagnostic performance across racial, gender, and age groups. Researchers at Harvard Medical School and collaborators identified the problem and developed a method that sharply reduces these disparities, underscoring the need for routine bias checks in medical AI.

Neuroscientists at Princeton University report that the brain achieves flexible learning by reusing modular cognitive components across tasks. In experiments with rhesus macaques, researchers found that the prefrontal cortex assembles these reusable “cognitive Legos” to adapt behaviors quickly. The findings, published November 26 in Nature, underscore differences from current AI systems and could eventually inform treatments for disorders that impair flexible thinking.

Imeripotiwa na AI

Researchers at Duke University have developed an artificial intelligence framework that reveals straightforward rules underlying highly complex systems in nature and technology. Published on December 17 in npj Complexity, the tool analyzes time-series data to produce compact equations that capture essential behaviors. This approach could bridge gaps in scientific understanding where traditional methods fall short.

Researchers have developed a non-invasive imaging tool called fast-RSOM that visualizes the body's smallest blood vessels through the skin. This technology identifies early microvascular endothelial dysfunction, a precursor to cardiovascular disease, allowing for earlier interventions. The portable device could integrate into routine checkups to improve heart health outcomes.

Imeripotiwa na AI

Chinese AI pioneer SenseTime is leveraging its computer vision roots to lead the next phase of AI, shifting towards multimodal systems and embodied intelligence in the physical world. Co-founder and chief scientist Lin Dahua stated that this approach mirrors Google's, starting with vision capabilities as the core and adding language to build true multimodal systems.

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