International Conference on Biomedical Data Science and Informatics - (ICBDSI-26)


4th - 5th December, 2026 | Savannah, Georgia

Multi-format (In-person/Virtual)

Registration Options

Explore conference registration categories designed for every mode of participation.

Important Dates

Pre-registration Deadline

4th November, 2026

Paper Submission Deadline

9th November, 2026

Last Date Of Registration

19th November, 2026

Date Of Conference

4th - 5th December, 2026

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Conference Session Tracks

SDG Wheel

Aligned with

UN Sustainable Development Goals

This conference contributes to global sustainability by aligning its research discussions and academic sessions with key United Nations Sustainable Development Goals. It fosters knowledge exchange, innovation, and collaborative engagement.

SDG 3 SDG 3 — Good Health and Well-being
SDG 4 SDG 4 — Quality Education
SDG 9 SDG 9 — Industry, Innovation and Infrastructure
SDG 12 SDG 12 — Responsible Consumption and Production
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All Session Tracks

Track 01
Advancements in Predictive Modeling for Biomedical Applications

This track focuses on the latest methodologies in predictive modeling tailored for biomedical data. It aims to explore the integration of machine learning techniques to enhance patient outcomes and clinical decision-making.

Track 02
Deep Learning Techniques in Biomedical Engineering

This session will delve into the application of deep learning algorithms in various biomedical engineering challenges. Researchers are invited to present innovative solutions that leverage neural networks for data-driven insights.

Track 03
Anomaly Detection in Biomedical Systems

This track addresses the critical role of anomaly detection in ensuring the reliability of biomedical systems. Participants will discuss novel approaches to identify and mitigate anomalies in healthcare data.

Track 04
Feature Extraction and Its Impact on Biomedical Data Analysis

This session emphasizes the importance of feature extraction in improving the performance of biomedical data analysis. Contributions will highlight techniques that enhance the interpretability and accuracy of predictive models.

Track 05
Workflow Automation in Biomedical Research

This track explores the automation of workflows in biomedical research to improve efficiency and reproducibility. Presentations will focus on tools and methodologies that streamline data processing and analysis.

Track 06
System Monitoring and Maintenance in Biomedical Engineering

This session addresses the significance of system monitoring in maintaining biomedical engineering solutions. Discussions will include strategies for predictive maintenance and real-time monitoring of biomedical devices.

Track 07
Industrial IoT Applications in Healthcare

This track investigates the integration of Industrial IoT technologies in healthcare settings. Researchers will present case studies and frameworks that demonstrate the potential of IoT for enhancing patient care and operational efficiency.

Track 08
Digital Twin Technologies in Biomedical Engineering

This session will explore the emerging concept of digital twins in the biomedical field. Contributions will focus on how digital twin models can simulate and optimize biomedical processes and systems.

Track 09
Bioinformatics and Data Analytics in Health Informatics

This track highlights the intersection of bioinformatics and data analytics in advancing health informatics. Participants will discuss innovative approaches to analyze biological data for improved health outcomes.

Track 10
Process Optimization in Biomedical Engineering

This session focuses on methodologies for optimizing processes within biomedical engineering. Presentations will cover techniques that enhance operational efficiency and resource utilization in healthcare systems.

Track 11
Simulation Analytics in Biomedical Data Science

This track will explore the role of simulation analytics in biomedical data science. Researchers are encouraged to present their findings on how simulation can inform decision-making and improve healthcare delivery.