November 14, 2023

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AI phone app detects worsening heart failure based on changes in patients' voices

Credit: Pixabay/CC0 Public Domain
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Credit: Pixabay/CC0 Public Domain

A smartphone app using artificial intelligence technology to detect changes in the voice of a person with heart failure predicted more than 75% of hospitalizations about three weeks before they happened, according to late-breaking science presented Nov. 13 at the American Heart Association's Scientific Sessions 2023. The meeting, held Nov. 11–13, in Philadelphia, is a premier global exchange of the latest scientific advancements, research and evidence-based clinical practice updates in cardiovascular science.

"Speech analysis is that may be a useful tool in remote monitoring of heart failure patients, providing of worsening heart failure that frequently results in hospitalization," said lead study author William T. Abraham, M.D., FAHA, a professor of medicine, physiology and ; and a College of Medicine Distinguished Professor in the division of cardiovascular medicine at The Ohio State University Wexner Medical Center in Columbus.

"This technology has the potential to improve patient outcomes, keeping patients well and out of the hospital, through the implementation of proactive, outpatient care in response to voice changes."

Heart failure occurs when the can't pump enough blood to meet the body's needs for blood and oxygen. This can result in fatigue, fluid retention, shortness of breath and sometimes excessive coughing.

This study evaluated the effectiveness of the artificial intelligence-driven to predict worsening heart failure in advance of any need for hospitalization and /or intravenous treatment among people diagnosed with heart failure. The mobile phone app was designed to detect changes in speech measures in patients over time. The voice changes could indicate early increases of lung fluid, which is a sign of progressing heart failure.

The study was conducted from March 2018 through April 2023 and enrolled 416 adults living in Israel diagnosed with heart failure. Study participants recorded five sentences in their —Hebrew, Russian, Arabic or English—into the phone app daily. In a training phase of the study, distinct speech measures from 263 participants were used to develop the AI algorithm. Then, the algorithm was used in the remaining 153 participants to validate the tool's effectiveness.

The analysis found:

Researchers conclude that the technology detects future worsening heart failure episodes accurately, with a low unnecessary notification rate. This high rate of accuracy and early notification of worsening validate the AI tool as a potentially effective way to reduce hospitalization and improve .

Study background:

While statistically valid, the number of participants in the study was small, which is a limitation of the study. An ongoing U.S.-based study will add to the experience in further training and validating the technology, Abraham said.

More information: Validation of a Speech Analysis Application to Detect Worsening Heart Failure Events in Ambulatory Heart Failure Patients. www.abstractsonline.com/pp8/?_ … 1/presentation/16568

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