
Ambulatory Arrhythmia Monitoring Devices Market Report and Forecast 2025-2034
Description
The global ambulatory arrhythmia monitoring devices market is expected to grow at a CAGR of 6.80% during the period 2025-2034.
Focus on Early Disease Detection and Prevention, Desire for Improved Quality of Life, and Technologically Superior Devices Expected to Drive the Market
Advancements in wearable technologies have offered new ways to diagnose and manage cardiovascular diseases and associated risk factors. Common technologies include heart rate, rhythm and blood pressure monitoring devices which are available to consumers directly. With time, wearable devices have become more sophisticated and their capacity to diagnose cardiovascular diseases and risk factors has enhanced. The direct-to-consumer healthcare sector is steadily growing, USA being the key market. With advancements in technology and introduction of new wearable devices, the wearable device sector is expected to expand further.
In Europe, coronary heart disease (CHD) is the leading cause of death. In America also, chronic heart disease is a major contributor to the number of deaths. At the same time, the number of people living with heart disease or those who have survived major cardiac attacks is rising. These numbers, however, may be linked to advancements made in diagnostic and monitoring capabilities that have become available to patients.
With an ageing global population, increasing focus on prevention and early recognition of disease, and desire for improved quality of life, the demand for ambulatory arrhythmia monitoring devices is expected to increase.
Ambulatory heart monitoring might prove to be an efficient way to evaluate and monitor individuals experiencing symptoms of cardiac arrhythmia, such as syncope, palpitations and dizziness. The method of monitoring would depend on frequency and intensity of symptoms.
At present, many devices are employed to evaluate cardiac rhythm abnormalities in ambulatory patients. These include pre-symptom continuous-loop or post-symptom recorders that can be worn externally or implanted into the body. Advancements in continuous real-time remote cardiac monitoring have enabled improved diagnosis.
Leading companies are looking to expand their capacities through mergers and acquisitions to offer efficient diagnostic solutions.
Patient-and-Event-Activated Intermittent Recorders
These devices are capable of consistently monitoring a patient’s ECG without constantly recording the data. Recorded data may be sent to a doctor or hospital through telephone or uploaded to a computer. Monitoring could be performed for months or weeks.
External Loop Recorders, Pre-symptom Memory Loop Cardiac Event Recorders
These can be worn for twenty to thirty days. The recorders employ memory loop recording (recording multiple minutes of activity at a given time and then begin again). When an individual experiences symptoms, they hold the device next to their chest and activate the device which then records ECG data. Only symptomatic events are recorded, enabling the doctor to decide if the symptoms are caused by cardiac arrhythmia.
Auto-trigger External Loop Recorders
These employ memory-loop recording, but record asymptomatic as well as symptomatic events.
Implantable or Insertable Loop Recorders, Pre-symptom Memory Loop Cardiac Event Recorders
These devices are implanted subcutaneously in the left or right side of the chest, and can be used for nearly fourteen to twenty months before being surgically removed.
Post-symptom Event Recorders
These are hand-held devices which require to be placed on the precordium when symptoms take place to record some minutes of ECG data.
Continuous Realtime Attended Remote Cardiac Monitors
These automatically record and send event data to the attendant at the hospital.
Mobile Cardiac Outpatient Telemetry System (CardioNet)
This system automatically detects and sends ECG data (through a sensor worn around the neck or on the belt) when an arrhythmic event happens. Individuals using this device are assessed for up to twenty-one days.
Remote Event Monitor (REM)
The REM is made of a flexible three-lead ECG electrode patch, a body-worn device and a hand-held/belt-worn device. The electrode enables continuous ECG monitoring through the attached body-worn device for up to 7 days. The patient may press an ‘event’ button on the monitor if they experience symptoms. The body-worn device employs memory loop recording to record the patient’s ECG before, during and after the event.
A short-range wireless link transmits data to the hand-held device which utilizes wireless technology (like GPRS or WiFi) to send the ECG data to a receiving station. REM enables asymptomatic events to be recorded and transmitted, and includes several arrhythmia detection algorithms in the on-board software. REM system allows individuals to perform normal daily activities during the assessment period.
Ambulatory Arrhythmia Monitoring Devices Definition and Global Market Segmentation
Ambulatory arrhythmia monitoring devices are used to detect and determine heart arrhythmia occurring unpredictably. Symptoms produced by arrhythmia are generally sudden and last for a short time. Thus, by the time the individual experiencing symptoms reaches the doctor, the symptoms may no longer be present, making it difficult to diagnose arrhythmia. In such cases, ambulatory monitoring devices are favoured. These devices are capable of monitoring heart activity for longer periods of time, increasing the chances of discovering the incidence of arrhythmia during the assessment period.
By device type, the market is segmented into:
The report presents a detailed analysis of the following key players in the market, looking into their capacity, and latest developments like capacity expansions, plant turnarounds, and mergers and acquisitions:
Focus on Early Disease Detection and Prevention, Desire for Improved Quality of Life, and Technologically Superior Devices Expected to Drive the Market
Advancements in wearable technologies have offered new ways to diagnose and manage cardiovascular diseases and associated risk factors. Common technologies include heart rate, rhythm and blood pressure monitoring devices which are available to consumers directly. With time, wearable devices have become more sophisticated and their capacity to diagnose cardiovascular diseases and risk factors has enhanced. The direct-to-consumer healthcare sector is steadily growing, USA being the key market. With advancements in technology and introduction of new wearable devices, the wearable device sector is expected to expand further.
In Europe, coronary heart disease (CHD) is the leading cause of death. In America also, chronic heart disease is a major contributor to the number of deaths. At the same time, the number of people living with heart disease or those who have survived major cardiac attacks is rising. These numbers, however, may be linked to advancements made in diagnostic and monitoring capabilities that have become available to patients.
With an ageing global population, increasing focus on prevention and early recognition of disease, and desire for improved quality of life, the demand for ambulatory arrhythmia monitoring devices is expected to increase.
Ambulatory heart monitoring might prove to be an efficient way to evaluate and monitor individuals experiencing symptoms of cardiac arrhythmia, such as syncope, palpitations and dizziness. The method of monitoring would depend on frequency and intensity of symptoms.
At present, many devices are employed to evaluate cardiac rhythm abnormalities in ambulatory patients. These include pre-symptom continuous-loop or post-symptom recorders that can be worn externally or implanted into the body. Advancements in continuous real-time remote cardiac monitoring have enabled improved diagnosis.
Leading companies are looking to expand their capacities through mergers and acquisitions to offer efficient diagnostic solutions.
Patient-and-Event-Activated Intermittent Recorders
These devices are capable of consistently monitoring a patient’s ECG without constantly recording the data. Recorded data may be sent to a doctor or hospital through telephone or uploaded to a computer. Monitoring could be performed for months or weeks.
External Loop Recorders, Pre-symptom Memory Loop Cardiac Event Recorders
These can be worn for twenty to thirty days. The recorders employ memory loop recording (recording multiple minutes of activity at a given time and then begin again). When an individual experiences symptoms, they hold the device next to their chest and activate the device which then records ECG data. Only symptomatic events are recorded, enabling the doctor to decide if the symptoms are caused by cardiac arrhythmia.
Auto-trigger External Loop Recorders
These employ memory-loop recording, but record asymptomatic as well as symptomatic events.
Implantable or Insertable Loop Recorders, Pre-symptom Memory Loop Cardiac Event Recorders
These devices are implanted subcutaneously in the left or right side of the chest, and can be used for nearly fourteen to twenty months before being surgically removed.
Post-symptom Event Recorders
These are hand-held devices which require to be placed on the precordium when symptoms take place to record some minutes of ECG data.
Continuous Realtime Attended Remote Cardiac Monitors
These automatically record and send event data to the attendant at the hospital.
Mobile Cardiac Outpatient Telemetry System (CardioNet)
This system automatically detects and sends ECG data (through a sensor worn around the neck or on the belt) when an arrhythmic event happens. Individuals using this device are assessed for up to twenty-one days.
Remote Event Monitor (REM)
The REM is made of a flexible three-lead ECG electrode patch, a body-worn device and a hand-held/belt-worn device. The electrode enables continuous ECG monitoring through the attached body-worn device for up to 7 days. The patient may press an ‘event’ button on the monitor if they experience symptoms. The body-worn device employs memory loop recording to record the patient’s ECG before, during and after the event.
A short-range wireless link transmits data to the hand-held device which utilizes wireless technology (like GPRS or WiFi) to send the ECG data to a receiving station. REM enables asymptomatic events to be recorded and transmitted, and includes several arrhythmia detection algorithms in the on-board software. REM system allows individuals to perform normal daily activities during the assessment period.
Ambulatory Arrhythmia Monitoring Devices Definition and Global Market Segmentation
Ambulatory arrhythmia monitoring devices are used to detect and determine heart arrhythmia occurring unpredictably. Symptoms produced by arrhythmia are generally sudden and last for a short time. Thus, by the time the individual experiencing symptoms reaches the doctor, the symptoms may no longer be present, making it difficult to diagnose arrhythmia. In such cases, ambulatory monitoring devices are favoured. These devices are capable of monitoring heart activity for longer periods of time, increasing the chances of discovering the incidence of arrhythmia during the assessment period.
By device type, the market is segmented into:
- Resting ECG
- Event Monitor
- Implantable Cardiac Monitor
- Holter Monitor
- Mobile Cardiac Telemetry Devices
- Others
- Hospitals and Clinics
- Diagnostic Centres
- Ambulatory Surgical Centres
- Homecare Settings
- Others
- North America
- Europe
- Asia Pacific
- Latin America
- Middle East and Africa
The report presents a detailed analysis of the following key players in the market, looking into their capacity, and latest developments like capacity expansions, plant turnarounds, and mergers and acquisitions:
- Biotronik
- BioTelemetry Inc.
- Abbott Laboratories
- Medi-Lynx Cardiac Monitoring, LLC
- ZOLL Medical Corporation
- Others
Table of Contents
153 Pages
- 1 Executive Summary
- 1.1 Market Size 2024-2025
- 1.2 Market Growth 2025(F)-2034(F)
- 1.3 Key Demand Drivers
- 1.4 Key Players and Competitive Structure
- 1.5 Industry Best Practices
- 1.6 Recent Trends and Developments
- 1.7 Industry Outlook
- 2 Market Overview and Stakeholder Insights
- 2.1 Market Trends
- 2.2 Key Verticals
- 2.3 Key Regions
- 2.4 Supplier Power
- 2.5 Buyer Power
- 2.6 Key Market Opportunities and Risks
- 2.7 Key Initiatives by Stakeholders
- 3 Economic Summary
- 3.1 GDP Outlook
- 3.2 GDP Per Capita Growth
- 3.3 Inflation Trends
- 3.4 Democracy Index
- 3.5 Gross Public Debt Ratios
- 3.6 Balance of Payment (BoP) Position
- 3.7 Population Outlook
- 3.8 Urbanisation Trends
- 4 Country Risk Profiles
- 4.1 Country Risk
- 4.2 Business Climate
- 5 Global Ambulatory Arrhythmia Monitoring Devices Market Analysis
- 5.1 Key Industry Highlights
- 5.2 Global Ambulatory Arrhythmia Monitoring Devices Historical Market (2018-2024)
- 5.3 Global Ambulatory Arrhythmia Monitoring Devices Market Forecast (2025-2034)
- 5.4 Global Ambulatory Arrhythmia Monitoring Devices Market by Device Type
- 5.4.1 Resting ECG
- 5.4.1.1 Historical Trend (2018-2024)
- 5.4.1.2 Forecast Trend (2025-2034)
- 5.4.2 Event Monitor
- 5.4.2.1 Historical Trend (2018-2024)
- 5.4.2.2 Forecast Trend (2025-2034)
- 5.4.3 Implantable Cardiac Monitor
- 5.4.3.1 Historical Trend (2018-2024)
- 5.4.3.2 Forecast Trend (2025-2034)
- 5.4.4 Holter Monitor
- 5.4.4.1 Historical Trend (2018-2024)
- 5.4.4.2 Forecast Trend (2025-2034)
- 5.4.5 Mobile Cardiac Telemetry Devices
- 5.4.5.1 Historical Trend (2018-2024)
- 5.4.5.2 Forecast Trend (2025-2034)
- 5.4.6 Others
- 5.5 Global Ambulatory Arrhythmia Monitoring Devices Market by End-User
- 5.5.1 Hospitals and Clinics
- 5.5.1.1 Historical Trend (2018-2024)
- 5.5.1.2 Forecast Trend (2025-2034)
- 5.5.2 Diagnostic Centres
- 5.5.2.1 Historical Trend (2018-2024)
- 5.5.2.2 Forecast Trend (2025-2034)
- 5.5.3 Ambulatory Surgical Centres
- 5.5.3.1 Historical Trend (2018-2024)
- 5.5.3.2 Forecast Trend (2025-2034)
- 5.5.4 Homecare Settings
- 5.5.4.1 Historical Trend (2018-2024)
- 5.5.4.2 Forecast Trend (2025-2034)
- 5.5.5 Others
- 5.6 Global Ambulatory Arrhythmia Monitoring Devices Market by Region
- 5.6.1 North America
- 5.6.1.1 Historical Trend (2018-2024)
- 5.6.1.2 Forecast Trend (2025-2034)
- 5.6.2 Europe
- 5.6.2.1 Historical Trend (2018-2024)
- 5.6.2.2 Forecast Trend (2025-2034)
- 5.6.3 Asia Pacific
- 5.6.3.1 Historical Trend (2018-2024)
- 5.6.3.2 Forecast Trend (2025-2034)
- 5.6.4 Latin America
- 5.6.4.1 Historical Trend (2018-2024)
- 5.6.4.2 Forecast Trend (2025-2034)
- 5.6.5 Middle East and Africa
- 5.6.5.1 Historical Trend (2018-2024)
- 5.6.5.2 Forecast Trend (2025-2034)
- 6 North America Ambulatory Arrhythmia Monitoring Devices Market Analysis
- 6.1 United States of America
- 6.1.1 Historical Trend (2018-2024)
- 6.1.2 Forecast Trend (2025-2034)
- 6.2 Canada
- 6.2.1 Historical Trend (2018-2024)
- 6.2.2 Forecast Trend (2025-2034)
- 7 Europe Ambulatory Arrhythmia Monitoring Devices Market Analysis
- 7.1 United Kingdom
- 7.1.1 Historical Trend (2018-2024)
- 7.1.2 Forecast Trend (2025-2034)
- 7.2 Germany
- 7.2.1 Historical Trend (2018-2024)
- 7.2.2 Forecast Trend (2025-2034)
- 7.3 France
- 7.3.1 Historical Trend (2018-2024)
- 7.3.2 Forecast Trend (2025-2034)
- 7.4 Italy
- 7.4.1 Historical Trend (2018-2024)
- 7.4.2 Forecast Trend (2025-2034)
- 7.5 Others
- 8 Asia Pacific Ambulatory Arrhythmia Monitoring Devices Market Analysis
- 8.1 China
- 8.1.1 Historical Trend (2018-2024)
- 8.1.2 Forecast Trend (2025-2034)
- 8.2 Japan
- 8.2.1 Historical Trend (2018-2024)
- 8.2.2 Forecast Trend (2025-2034)
- 8.3 India
- 8.3.1 Historical Trend (2018-2024)
- 8.3.2 Forecast Trend (2025-2034)
- 8.4 ASEAN
- 8.4.1 Historical Trend (2018-2024)
- 8.4.2 Forecast Trend (2025-2034)
- 8.5 Australia
- 8.5.1 Historical Trend (2018-2024)
- 8.5.2 Forecast Trend (2025-2034)
- 8.6 Others
- 9 Latin America Ambulatory Arrhythmia Monitoring Devices Market Analysis
- 9.1 Brazil
- 9.1.1 Historical Trend (2018-2024)
- 9.1.2 Forecast Trend (2025-2034)
- 9.2 Argentina
- 9.2.1 Historical Trend (2018-2024)
- 9.2.2 Forecast Trend (2025-2034)
- 9.3 Mexico
- 9.3.1 Historical Trend (2018-2024)
- 9.3.2 Forecast Trend (2025-2034)
- 9.4 Others
- 10 Middle East and Africa Ambulatory Arrhythmia Monitoring Devices Market Analysis
- 10.1 Saudi Arabia
- 10.1.1 Historical Trend (2018-2024)
- 10.1.2 Forecast Trend (2025-2034)
- 10.2 United Arab Emirates
- 10.2.1 Historical Trend (2018-2024)
- 10.2.2 Forecast Trend (2025-2034)
- 10.3 Nigeria
- 10.3.1 Historical Trend (2018-2024)
- 10.3.2 Forecast Trend (2025-2034)
- 10.4 South Africa
- 10.4.1 Historical Trend (2018-2024)
- 10.4.2 Forecast Trend (2025-2034)
- 10.5 Others
- 11 Market Dynamics
- 11.1 SWOT Analysis
- 11.1.1 Strengths
- 11.1.2 Weaknesses
- 11.1.3 Opportunities
- 11.1.4 Threats
- 11.2 Porter’s Five Forces Analysis
- 11.2.1 Supplier’s Power
- 11.2.2 Buyer’s Power
- 11.2.3 Threat of New Entrants
- 11.2.4 Degree of Rivalry
- 11.2.5 Threat of Substitutes
- 11.3 Key Indicators for Demand
- 11.4 Key Indicators for Price
- 12 Value Chain Analysis
- 13 Competitive Landscape
- 13.1 Supplier Selection
- 13.2 Key Global Players
- 13.3 Key Regional Players
- 13.4 Key Player Strategies
- 13.5 Company Profiles
- 13.5.1 Biotronik
- 13.5.1.1 Company Overview
- 13.5.1.2 Product Portfolio
- 13.5.1.3 Demographic Reach and Achievements
- 13.5.1.4 Certifications
- 13.5.2 BioTelemetry Inc.
- 13.5.2.1 Company Overview
- 13.5.2.2 Product Portfolio
- 13.5.2.3 Demographic Reach and Achievements
- 13.5.2.4 Certifications
- 13.5.3 Abbott Laboratories
- 13.5.3.1 Company Overview
- 13.5.3.2 Product Portfolio
- 13.5.3.3 Demographic Reach and Achievements
- 13.5.3.4 Certifications
- 13.5.4 Medi-Lynx Cardiac Monitoring, LLC
- 13.5.4.1 Company Overview
- 13.5.4.2 Product Portfolio
- 13.5.4.3 Demographic Reach and Achievements
- 13.5.4.4 Certifications
- 13.5.5 ZOLL Medical Corporation
- 13.5.5.1 Company Overview
- 13.5.5.2 Product Portfolio
- 13.5.5.3 Demographic Reach and Achievements
- 13.5.5.4 Certifications
- 13.5.6 Others
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