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iDSC 2025 : Interdisciplinary Data Science Conference 2025 | |||||||||||||||
Link: https://idsc.at | |||||||||||||||
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Call For Papers | |||||||||||||||
The Interdisciplinary Data Science Conference 2025, formaly International Data Science Conference, invites researchers, practitioners, and industry experts to submit their latest findings and innovations in the field of Data Science. This conference aims to foster interdisciplinary collaboration, share cutting-edge research, and explore the diverse applications of data science across various domains. We seek to create a balanced and comprehensive platform that highlights foundational data management, statistical analysis, practical applications, and innovative advancements in machine learning and artificial intelligence.
For Submission of research papers, you can find underneath the topics. If you are interested in submitting Industry Contributions and Workshop Proposals please find more details on the our website . Submissions are welcome with the following topics to cover a broad spectrum within Data Science, ensuring a balanced representation across different areas of expertise. Statistical Methods and Traditional Data Analysis Time Series Analysis Multivariate Time Series: Anomaly detection, Generative models Time Series Forecasting and Prediction techniques Exploratory Data Analysis (EDA) Effective data visualization strategies Descriptive statistics for data interpretation Advanced Statistical Modeling Regression and Classification methods Bayesian statistics applications Machine Learning and AI Core Machine Learning Methods Supervised and Unsupervised Learning algorithms Transfer Learning, Incremental and Adaptive Learning Specialized AI Techniques Reinforcement Learning and Control Theory Topological Data Analysis and Topological Machine Learning Alternative Machine Learning Models beyond neural networks Imaging and Computer Vision Deep Learning applications in medical imaging Representation Learning and Feature Engineering Feature extraction and representation methods Security, Privacy, and Ethical Considerations Security and Privacy for AI Adversarial AI and Countermeasures Explainable AI for Security Deep Fake Detection across various data types Robustness of AI Methods against disruptions and attacks Ethical and Legislative Aspects Ethical issues in AI development and application Analysis of the EU AI Act and its implications Data Science in Industry and Production MLOps and Data Engineering MLOps strategies for industrial and Operational Technology (OT) contexts Building efficient data pipelines and workflow automation Co-Simulation and Interdisciplinary Applications Integrating reinforcement learning with co-simulation techniques Dynamic Systems and Control Modeling and controlling dynamic systems using machine learning Emerging and Interdisciplinary Topics Semantic Technologies Knowledge Graphs and Semantic Inference Semantic Information Modeling in industrial contexts Topical Innovations Advanced Topological Data Analysis methods Incremental and Adaptive Learning techniques Collaborative and Open Research Promoting open data and collaborative research efforts Encouraging interdisciplinary projects across multiple domains Data Management and Infrastructure Data Governance and Sovereignty Gaia-X – Data Spaces and Data Sovereignty Ensuring data sovereignty and compliance with data protection regulations Public Data Science and Open Data Open Data Initiatives Management of public data by governmental bodies Data-driven Business Models Leveraging data as a central resource in business Data-driven decision-making and innovation case studies Data Privacy and Security Privacy and Security for Federated Learning General data security practices across platforms How to submit Papers must be clearly presented in English language and must not exceed 14 pages, including tables, figures, references, and appendices. Submissions which are simultaneously submitted to this conference and other events or publication venues as well as submissions that do not utilize the correct formatting template, will be automatically rejected. Submissions will be selected based on their originality, timeliness, significance, relevance, and clarity of presentation. Submissions should be regarded as a commitment that, should the paper be accepted, at least one of the authors has to register and attend the conference to present the work (on site or online). Accepted and presented papers will be included in the iDSC proceedings. Reviews are double-blind. Regarding the preparation of submissions, please use either the provided Word or LaTeX template from the website under Call for papers. Attention: Please ensure that your submissions are ready for the double-blind review process and therefore do not contain any information, which could disclose the identity of the authors, such as author names, acknowledgements etc. Submission will be handled by Online Conference Service OCS - Springer. https://ocs.springer.com/misc/home/Research_Track_iDSC2025 |
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