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Hybrid Event

6th - 7th July 2026 | Miami, USA

International Conference on Statistical Computing for Data Science Applications (ICSC-DSA - 26)

4

Days

4

Hrs

07

Min

02

Sec

Conference Program

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.

Why it matters

SDG 4 — Quality Education
SDG 8 — Decent Work and Economic Growth
SDG 9 — Industry, Innovation and Infrastructure
SDG 10 — Reduced Inequalities
SDG 11 — Sustainable Cities and Communities
SDG 16 — Peace, Justice and Strong Institutions
Explore All Session Tracks
Track 01
Advancements in Statistical Computing

This track focuses on the latest developments in statistical computing methodologies and tools. Participants will explore innovative approaches that enhance the efficiency and accuracy of data analysis.

Track 02
Machine Learning Techniques for Data Science

This session will delve into cutting-edge machine learning algorithms and their applications in data science. Researchers will present their findings on how these techniques can improve predictive modeling and data interpretation.

Track 03
Artificial Intelligence in Statistical Analysis

This track examines the integration of artificial intelligence with statistical methods to enhance data-driven decision-making. Discussions will center on novel AI applications that augment traditional statistical approaches.

Track 04
Computational Statistics and Algorithm Development

This session is dedicated to the exploration of computational statistics and the development of algorithms for complex data analysis. Participants will share insights on algorithmic efficiency and robustness in statistical computing.

Track 05
Data Analytics in Big Data Environments

This track addresses the challenges and opportunities presented by big data in the context of data analytics. Presenters will discuss techniques for managing, analyzing, and deriving insights from large-scale datasets.

Track 06
Predictive Modeling Techniques

This session focuses on the methodologies and applications of predictive modeling in various fields. Researchers will present case studies demonstrating the effectiveness of these techniques in real-world scenarios.

Track 07
Simulation Methods in Data Science

This track explores the role of simulation methods in statistical analysis and data science applications. Participants will discuss how simulations can be used to model complex systems and evaluate statistical properties.

Track 08
Applied Statistics in Industry

This session highlights the application of statistical methods in various industries, showcasing real-world case studies. Researchers and practitioners will share insights on the impact of applied statistics on business decision-making.

Track 09
Quantitative Methods for Data Analysis

This track focuses on the application of quantitative methods in data analysis across different domains. Participants will explore various statistical techniques and their effectiveness in extracting meaningful insights from data.

Track 10
Ethics and Challenges in Data Science

This session addresses the ethical considerations and challenges faced in the field of data science. Discussions will revolve around responsible data usage, privacy concerns, and the implications of algorithmic bias.

Track 11
Future Trends in Statistical Computing

This track anticipates future trends and innovations in statistical computing and data science. Participants will engage in discussions about emerging technologies and their potential impact on the field.

2026 UPDATE

Consistent Academic Support

Science Net ensures that research activities continue without interruption in the current global situation. Participants can engage through digital and hybrid conference formats.