Hybrid Conferencee

International Conference on Data-Driven Statistical Modeling and Analysis (ICDDSMA - 27)

17th - 18th June 2027 | Odesa, Ukraine
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Expand the Academic Reach of Your Research - a Q1-ranked and Scopus-indexed journal publication opportunity

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Conference Notifications:

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Call for Papers Extended:
"The deadline for full paper submissions has been extended for the Research Plus International Conference in Odesa. Submit your research by today to participate in one of the top conferences."
Certificate of Presentation:
"Present your research and receive a Certificate of Presentation to recognise your valuable contribution to the conference."
Abstract Submissions Open:
"Abstract submissions for the Odesa event are now open! Don’t miss the chance to present your research. Submit now."
Networking with Global Experts:
"Engage with researchers and professionals from around the world at the Odesa conference. Build collaborations and gain insights from leading experts."
Keynote Speaker Sessions:
"Don’t miss our Keynote Sessions in Odesa, featuring global leaders and innovators sharing their knowledge."
Best Paper & Best Paper Presentation Award:
"Submit your paper and stand a chance to win the Best Paper Presentation Award. The winner will be recognized at the conference in Odesa."
SDG-Inspired Conference Focus:
"Our conference will highlight research that addresses global sustainability, inclusive education, and solutions for environmental challenges."

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 4
SDG 4 Quality Education
SDG 8
SDG 8 Decent Work and Economic Growth
SDG 9
SDG 9 Industry, Innovation and Infrastructure
Track 01

Advancements in Data-Driven Statistical Modeling

This track focuses on the latest methodologies in data-driven statistical modeling, emphasizing innovative approaches to model complex datasets. Researchers are encouraged to present novel frameworks that enhance predictive accuracy and interpretability.

Track 02

Statistical Analysis Techniques for Big Data

This session highlights advanced statistical analysis techniques tailored for big data environments. Participants will explore methods that address the challenges posed by high-dimensional datasets and provide insights into effective data interpretation.

Track 03

Machine Learning Applications in Statistical Research

This track examines the intersection of machine learning and traditional statistical methods, showcasing applications that enhance data analysis. Contributions should focus on how machine learning algorithms can be integrated into statistical frameworks for improved outcomes.

Track 04

Predictive Analytics: Methods and Applications

This session invites discussions on predictive analytics methodologies and their practical applications across various domains. Papers should demonstrate the effectiveness of predictive models in real-world scenarios, highlighting case studies and empirical results.

Track 05

Computational Statistics and Algorithm Development

This track is dedicated to the development of computational algorithms that facilitate statistical analysis. Researchers are encouraged to present new algorithms that improve computational efficiency and accuracy in statistical modeling.

Track 06

Knowledge Discovery in Data Science

This session focuses on techniques for knowledge discovery from large datasets, emphasizing the role of statistical methods in extracting meaningful insights. Contributions should highlight innovative approaches that bridge the gap between data science and statistical theory.

Track 07

Statistical Algorithms for Data Science Applications

This track explores the design and implementation of statistical algorithms specifically for data science applications. Papers should illustrate how these algorithms can solve practical problems and enhance data-driven decision-making.

Track 08

Artificial Intelligence in Statistical Analysis

This session investigates the role of artificial intelligence in enhancing statistical analysis techniques. Researchers are invited to present studies that demonstrate the integration of AI methods with statistical approaches for improved analytical capabilities.

Track 09

Applied Statistics in Industry and Research

This track highlights the application of statistical methods in various industries and research fields. Contributions should provide insights into how applied statistics can solve real-world problems and inform decision-making processes.

Track 10

Innovations in Statistical Theory and Methodology

This session focuses on theoretical advancements in statistics and their implications for practical applications. Researchers are encouraged to present new theoretical frameworks that challenge existing paradigms and enhance statistical understanding.

Track 11

Ethics and Transparency in Data-Driven Research

This track addresses the ethical considerations and transparency issues in data-driven statistical research. Papers should discuss best practices for ensuring integrity and accountability in statistical analysis and reporting.