Events Calendar

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12:00 AM - Arab Health 2020
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5th International Conference On Recent Advances In Medical Science ICRAMS
2020-01-01 - 2020-01-02    
All Day
2020 IIER 775th International Conference on Recent Advances in Medical Science ICRAMS will be held in Dublin, Ireland during 1st - 2nd January, 2020 as [...]
01 Jan
2020-01-01 - 2020-01-02    
All Day
The Academics World 744th International Conference on Recent Advances in Medical and Health Sciences ICRAMHS aims to bring together leading academic scientists, researchers and research [...]
03 Jan
2020-01-03 - 2020-01-04    
All Day
Academicsera – 599th International Conference On Pharma and FoodICPAF will be held on 3rd-4th January, 2020 at Malacca , Malaysia. ICPAF is to bring together [...]
The IRES - 642nd International Conference On Food Microbiology And Food SafetyICFMFS
2020-01-03 - 2020-01-04    
All Day
The IRES - 642nd International Conference on Food Microbiology and Food SafetyICFMFS aimed at presenting current research being carried out in that area and scheduled [...]
World Congress On Medical Imaging And Clinical Research WCMICR-2020
2020-01-03 - 2020-01-04    
All Day
The WCMICR conference is an international forum for the presentation of technological advances and research results in the fields of Medical Imaging and Clinical Research. [...]
International Conference On Agro-Ecology And Food Science ICAEFS
2020-01-06    
All Day
The key intention of ICAEFS is to provide opportunity for the global participants to share their ideas and experience in person with their peers expected [...]
RW- 743rd International Conference On Medical And Biosciences ICMBS
2020-01-07 - 2020-01-08    
All Day
RW- 743rd International Conference on Medical and Biosciences ICMBS is a prestigious event organized with a motivation to provide an excellent international platform for the [...]
International Conference On Nursing Ethics And Medical Ethics ICNEME
2020-01-08 - 2020-01-09    
All Day
An elegant and rich premier global platform for the International Conference on Nursing Ethics and Medical Ethics ICNEME that uniquely describes the Academic research and [...]
International Conference On Medical And Health SciencesICMHS-2020
2020-01-09 - 2020-01-10    
All Day
The ICMHS conference is an international forum for the presentation of technological advances and research results in the fields of Medical and Health Sciences. The [...]
12th Annual ICJR Winter Hip And Knee Course
2020-01-16 - 2020-01-19    
All Day
Make plans to join us in Vail, Colorado, for the 12th Annual Winter Hip And Knee Course, the premier winter meeting focused on primary and [...]
3rd Big Sky Cardiology Update 2020
2020-01-17 - 2020-01-18    
All Day
ABOUT 3RD BIG SKY CARDIOLOGY UPDATE 2020 Following the success of the 2nd edition, I am pleased to invite you to the “3rd Big Sky [...]
A4M India Conference
2020-01-18 - 2020-01-20    
All Day
ABOUT A4M INDIA CONFERENCE Taking place for the first time in New Delhi, India, this two-day event will serve as a foundational course in the [...]
International Conference On Oncology & Cancer Research ICOCR-2020
2020-01-19 - 2020-01-20    
All Day
The ICOCR conference is an international forum for the presentation of technological advances and research results in the fields of Oncology & Cancer Research. The [...]
Arab Health 2020
2020-01-27 - 2020-01-30    
All Day
ABOUT ARAB HEALTH 2020 Arab Health is an industry-defining platform where the healthcare industry meets to do business with new customers and develop relationships with [...]
12th International Conference on Acute Cardiac Care
2020-01-28 - 2020-01-29    
All Day
ABOUT 12TH INTERNATIONAL CONFERENCE ON ACUTE CARDIAC CARE Acute Cardiac Care has been undergoing a substantial transformation in recent years as the population ages and [...]
30 Jan
2020-01-30 - 2020-01-31    
All Day
The ICMHS conference is an international forum for the presentation of technological advances and research results in the fields of Medical and Health Sciences. The [...]
Annual Lower and Upper Canada Anesthesia Symposium 2020 (LUCAS)
2020-01-31 - 2020-02-02    
All Day
ABOUT ANNUAL LOWER & UPPER CANADA ANESTHESIA SYMPOSIUM 2020 (LUCAS) On behalf of the Departments of Anesthesia of McGill University, Queen’s University, and the University [...]
RF - 577th International Conference On Medical & Health Science - ICMHS 2020
2020-02-02 - 2020-02-03    
All Day
577th International Conference on Medical & Health Science - ICMHS 2020. It will be held during 2nd-3rd February, 2020 at Berlin , Germany. ICMHS 2020 [...]
ISER- 747th International Conference On Science, Health And Medicine ICSHM
2020-02-02 - 2020-02-03    
All Day
ISER- 747th International Conference on Science, Health and Medicine ICSHM is a prestigious event organized with a motivation to provide an excellent international platform for [...]
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A4M India Conference
18 Jan 20
Haridwar
Events on 2020-01-27
Arab Health 2020
27 Jan 20
Dubai
Events on 2020-01-28
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Articles

Artificial Intelligence in Remote Patient Monitoring: Opportunities and Cautions

Remote patient monitoring (RPM) has incorporated artificial intelligence (AI) for many years, even before technologies like ChatGPT captured widespread attention. Early implementations weren’t advanced large language models but rule-based systems designed to alert clinicians when patient data indicated potential concerns.

Today, as modern AI reshapes healthcare, RPM is positioned at the forefront of an exciting evolution—offering remarkable potential while demanding careful oversight and responsibility.

The Evolution of RPM: From Intensive Oversight to Scalable Monitoring
To appreciate AI’s role in RPM today, it’s helpful to look at its development. Early RPM programs targeted high-acuity patients with a significant short-term risk of adverse—and costly—events. Examples include recently discharged heart failure patients who received near real-time monitoring from dedicated nurses. These high-touch programs relied heavily on human oversight to ensure safety and positive outcomes.

The COVID-19 public health emergency transformed the landscape, expanding RPM to monitor medium- to high-risk patients on a much larger scale. Programs shifted from tracking a few critically ill individuals to managing hundreds of patients simultaneously.

Today, RPM has shifted its focus toward chronic disease management, targeting medium-risk patients with the goal of preventing long-term complications rather than responding to immediate crises. Monitoring a hypertensive patient’s five-year stroke risk differs greatly from tracking a transplant recipient’s six-month survival. This broader scope and scale create an ideal setting for AI to add value—not by replacing human judgment, but by improving efficiency and detecting patterns that might be overlooked by clinicians and care teams, especially during increasingly busy workdays.
Current AI Applications in RPM: Three Key Focus Areas

AI is already driving tangible improvements in remote patient monitoring across several domains. Here are three areas where AI is helping transform RPM into a more efficient, scalable, and proactive model of care.

Clinical Documentation and Workflow Efficiency
Some of the most advanced AI applications in RPM target “low-risk, high-impact” enhancements to provider workflows. Tools such as automated encounter transcription, structured data extraction from multiple sources, and intelligent documentation assistance are saving clinicians and care teams substantial time while generally improving data accuracy.

These solutions are particularly effective at trend analysis and visualization, using pattern recognition to flag subtle changes in vital signs and biometrics that busy staff might otherwise overlook. The value of AI here isn’t that humans couldn’t detect these trends—it’s that AI consistently prioritizes and surfaces the most critical information, enabling care teams to monitor more patients effectively with the same resources.

AI is also improving compliance in RPM documentation, helping ensure that coding requirements are fully met while reducing manual oversight. These systems can automatically verify that clinicians are spending the right amount of time with each patient at the appropriate intervals, ensuring documentation and billing standards are satisfied before codes are submitted.

Care Management Support
AI is increasingly being applied to the care management component of RPM, helping identify missed opportunities in patient interactions—such as important topics not covered in recent visits that should be addressed in future encounters. By automating these checks, AI not only ensures accurate and defensible billing but also reduces administrative burden, minimizing the need for manual chart audits and follow-ups. This leads to more efficient workflows, keeping programs compliant and financially sustainable.

AI can also assist care managers by suggesting relevant social and community resources. For example, if a patient mentions difficulty accessing healthy food, the system may flag this information and prompt the care manager to recommend a local Meals on Wheels program or an upcoming nutrition class in the patient’s area.

Predictive Analytics and Risk Stratification
This is where AI in RPM becomes both powerful and sophisticated. Traditional systems, like electrocardiogram (ECG) analysis, often relied on hundreds of thousands of readings from a single data source. In contrast, AI-driven RPM can combine vital signs, clinical notes, patient-reported outcomes, and questionnaire responses to generate comprehensive risk assessments.

The true breakthrough comes from AI’s ability to detect subtle, previously unrecognized patterns. Individual patient responses that might not trigger alerts on their own can become clinically meaningful when analyzed collectively over time. This enables an early warning system for patient deterioration and risk, providing insights far beyond what human analysis could achieve at scale.

Need for Human Oversight
Responsible AI deployment is critical, particularly when predictive tools are used for high-acuity patients, where human clinical judgment remains essential. The concern isn’t solely AI accuracy—it’s also the risk of automation bias, where clinicians might over-rely on AI recommendations and reduce their own attentiveness.

For medium- and lower-risk patients, who cannot practically receive continuous human monitoring due to personnel and cost constraints, the question becomes less about AI versus humans and more about AI versus no monitoring. At a population level, having intelligent monitoring is far better than having none.

This highlights a core principle: AI in RPM should serve as decision support, not replace human decision-making. Clinicians must retain ultimate responsibility, verifying and validating AI-generated insights before applying them to patient care.

Challenges and Considerations
As AI becomes increasingly integrated into remote patient monitoring and wider healthcare workflows, it introduces both significant opportunities and added complexity. Organizations must carefully navigate several key challenges when evaluating and implementing AI within their RPM programs.

The “Black Box” Challenge
Even AI tools that perform well can remain opaque in how they reach their conclusions. In testing a summarization tool under development, what initially seemed like AI errors often turned out to be the system accurately detecting human mistakes. While this highlights AI’s potential, it also exposes a fundamental issue: even high-performing AI will occasionally err, and we may not know when or why.

This unpredictability reinforces the need for clinicians to remain vigilant. AI can appear convincingly correct while being wrong, so care teams must avoid over-reliance, regardless of the tool’s track record.

Vendor Selection and Due Diligence
The surge in AI adoption has drawn many companies with cutting-edge technology but limited healthcare experience. Similar to the early days of RPM—when wearable device firms entered the market without fully understanding clinical workflows—today’s AI landscape includes vendors that may lack the expertise required for safe, effective, and compliant care delivery.

Healthcare providers implementing RPM programs need to assess not only the technical capabilities of AI solutions but also the clinical experience and healthcare knowledge of potential vendor partners.

Looking Ahead: Balancing Innovation With Responsibility
Integrating AI into RPM presents a major opportunity to enhance care delivery, improve provider efficiency, reduce clinical risk, and expand monitoring to more patients who can benefit from these services. Achieving these gains, however, requires a careful approach that prioritizes patient safety, preserves human oversight, and addresses a range of ethical and operational concerns.

Success will hinge on providers’ ability to pair innovation with responsibility—using AI as a supportive tool to augment human clinical judgment rather than replace it. The future of AI in RPM is not about choosing between humans and machines; it is about combining both thoughtfully to build remote monitoring systems that are more effective, efficient, and accessible than either could accomplish alone.