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Predictmedix AI Inc C.PMED

Alternate Symbol(s):  PMEDF

Predictmedix AI Inc. is a life sciences technology company. The Company, through its subsidiaries, focuses on artificial intelligence (AI) technologies which target two specific areas: workplace health and safety and healthcare. It has developed a technology for the identification and detection of infectious disease symptoms, including COVID-19, referred to as its infectious disease symptom screening solutions (IDSS) and marketed in North America under the name Safe Entry System. It is also developing AI-powered products that address detection of alcohol and/or cannabis impairment in individuals; mental illness screening, and remote patient monitoring and treatment plans, referred to as the Mobile Wellbeing product. It is adding additional modules to this Mobile Wellbeing platform that enable us to use a patient’s history and real-time medical data, such as blood pressure, and to provide patients and their medical professionals with treatment plans for chronic disease management.


CSE:PMED - Post by User

Post by bmo1212on Nov 02, 2020 9:40am
179 Views
Post# 31822207

Artificial intelligence model detects asymptomatic Covid-19

Artificial intelligence model detects asymptomatic Covid-19
Artificial intelligence model detects asymptomatic Covid-19 infections through cellphone-recorded coughs
Results might provide a convenient screening tool for people who may not suspect they are infected.
Asymptomatic people who are infected with Covid-19 exhibit, by definition, no discernible physical symptoms of the disease. They are thus less likely to seek out testing for the virus, and could unknowingly spread the infection to others.
 
But it seems those who are asymptomatic may not be entirely free of changes wrought by the virus. MIT researchers have now found that people who are asymptomatic may differ from healthy individuals in the way that they cough. These differences are not decipherable to the human ear. But it turns out that they can be picked up by artificial intelligence.
 
In a paper published recently in the IEEE Journal of Engineering in Medicine and Biology, the team reports on an AI model that distinguishes asymptomatic people from healthy individuals through forced-cough recordings, which people voluntarily submitted through web browsers and devices such as cellphones and laptops.
 
The researchers trained the model on tens of thousands of samples of coughs, as well as spoken words. When they fed the model new cough recordings, it accurately identified 98.5 percent of coughs from people who were confirmed to have Covid-19, including 100 percent of coughs from asymptomatics — who reported they did not have symptoms but had tested positive for the virus.
 
The team is working on incorporating the model into a user-friendly app, which if FDA-approved and adopted on a large scale could potentially be a free, convenient, noninvasive prescreening tool to identify people who are likely to be asymptomatic for Covid-19. A user could log in daily, cough into their phone, and instantly get information on whether they might be infected and therefore should confirm with a formal test.
 
“The effective implementation of this group diagnostic tool could diminish the spread of the pandemic if everyone uses it before going to a classroom, a factory, or a restaurant,” says co-author Brian Subirana, a research scientist in MIT’s Auto-ID Laboratory.
The team is working with a company to develop a free pre-screening app based on their AI model. They are also partnerning with several hospitals around the world to collect a larger, more diverse set of cough recordings, which will help to train and strengthen the model’s accuracy.
 
As they propose in their paper, “Pandemics could be a thing of the past if pre-screening tools are always on in the background and constantly improved.”
 
Ultimately, they envision that audio AI models like the one they’ve developed may be incorporated into smart speakers and other listening devices so that people can conveniently get an initial assessment of their disease risk, perhaps on a daily basis.
 
This research was supported, in part, by Takeda Pharmaceutical Company Limited.
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