International Conference on Big Data Analytics and Machine Learning for IT Development - (ICBDAMLITD-27)


26th - 27th February, 2027 | Naples, Italy

Multi-format (In-person/Virtual)

Registration Options

Explore conference registration categories designed for every mode of participation.

Important Dates

Pre-registration Deadline

27th January, 2027

Paper Submission Deadline

1st February, 2027

Last Date Of Registration

11th February, 2027

Date Of Conference

26th - 27th February, 2027

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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 8 SDG 8 — Decent Work and Economic Growth
SDG 9 SDG 9 — Industry, Innovation and Infrastructure
SDG 12 SDG 12 — Responsible Consumption and Production
SDG 13 SDG 13 — Climate Action
SDG 17 SDG 17 — Partnerships for the Goals
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All Session Tracks

Track 01
Advancements in Big Data Analytics

This track focuses on the latest methodologies and technologies in big data analytics. Researchers are invited to present their findings on novel approaches that enhance data processing and interpretation.

Track 02
Machine Learning Techniques for IT Development

This session explores innovative machine learning algorithms that drive IT development. Contributions should highlight practical applications and case studies demonstrating the impact of these techniques.

Track 03
Predictive Analytics in Business Intelligence

This track examines the role of predictive analytics in enhancing business intelligence frameworks. Papers should discuss the integration of predictive models into decision-making processes within organizations.

Track 04
Intelligent Systems and Automation

This session delves into the design and implementation of intelligent systems that automate IT processes. Submissions should focus on the synergy between machine learning and automation technologies.

Track 05
Cloud Computing for Scalable Data Solutions

This track investigates the use of cloud computing to facilitate scalable data processing solutions. Researchers are encouraged to present frameworks and architectures that optimize cloud resources for big data applications.

Track 06
AI Algorithms for Enhanced Data Integration

This session focuses on artificial intelligence algorithms that improve data integration across disparate systems. Contributions should address challenges and solutions in achieving seamless data interoperability.

Track 07
Frameworks for Advanced Analytics

This track highlights the development of frameworks that support advanced analytics in IT environments. Papers should discuss the architecture, usability, and performance of these frameworks in real-world scenarios.

Track 08
System Optimization Techniques in IT Infrastructure

This session explores methodologies for optimizing IT infrastructure to support big data and machine learning applications. Researchers are invited to share insights on performance improvements and resource management.

Track 09
Data Processing Innovations for Intelligent Systems

This track addresses innovative data processing techniques that enhance the functionality of intelligent systems. Submissions should focus on algorithms and tools that improve data handling and analysis.

Track 10
Business Intelligence and Data-Driven Decision Making

This session examines the intersection of business intelligence and data-driven decision-making processes. Papers should explore how big data analytics informs strategic planning and operational efficiency.

Track 11
Emerging Trends in Machine Learning for IT Solutions

This track focuses on emerging trends in machine learning that are shaping IT solutions. Researchers are encouraged to present novel applications and theoretical advancements that contribute to the field.