Shri Dorilal Agarwal National Meritorious Scholarship 2018 for the Specially Challenged Students.
The PAKDD is one of the longest established and leading international conferences in the areas of data mining and knowledge discovery. It provides an international forum for researchers and industry practitioners to share their new ideas, original research results, and practical development experiences from all KDD related areas, including data mining, data warehousing, machine learning, artificial intelligence, databases, statistics, knowledge engineering, visualization, decision-making systems, and the emerging applications.
Important Notice: The safety and well-being of all conference participants is our priority. Depending on the COVID-19 situation, we will have the conference either as planned in Delhi or as an online event.
Abstract Submission Nov 23, 2020
Paper Submission Deadline Nov 30, 2020
Paper Acceptance Notification Date Feb 1, 2021
Camera Ready Papers Due Feb 24, 2021
Conference dates May 11-14, 2021
The Pacific-Asia Conference on Knowledge Discovery and Data Mining (PAKDD) is one of the longest established and leading international conferences in the areas of data mining and knowledge discovery. It provides an international forum for researchers and industry practitioners to share their new ideas, original research results, and practical development experiences from all KDD related areas, including data mining, data warehousing, machine learning, artificial intelligence, databases, statistics, knowledge engineering, visualization, decision-making systems, and the emerging applications.
PAKDD 2021 welcomes high-quality, original, and previously unpublished submissions in the theory, practice, and applications on all aspects of knowledge discovery and data mining. Topics of relevance for the conference include, but not limited to, the following:
Methods for analyzing scientific and business data, social networks, time series; mining sequences, streams, text, web, graphs, rules, patterns, logs data, IoT data, spatio-temporal data, biological data; recommender systems, computational advertising, multimedia, finance, bioinformatics.
Large-scale systems for text and graph analysis, sampling, parallel and distributed data mining (cloud, map-reduce, federated learning), novel algorithmic, and statistical techniques for big data.
Models and algorithms, asymptotic analysis; model selection, dimensionality reduction, relational/structured learning, matrix and tensor methods, probabilistic and statistical methods; deep learning, meta-learning, reinforcement learning; classification, clustering, regression, semi-supervised and unsupervised learning; personalization, security and privacy, visualization; fairness, interpretability, and robustness
Paper submission must be in English. All papers will be double-blind reviewed by the Program Committee based on technical quality, relevance to data mining, originality, significance, and clarity. All paper submissions will be handled electronically. Papers that do not comply with the Submission Policy will be rejected without review.
Each submitted paper should include an abstract up to 200 words and be no longer than 12 single-spaced pages with 10pt font size (including references, appendices, etc.). Authors are strongly encouraged to use Springer LNCS/LNAI manuscript submission guidelines for their submissions. All papers must be submitted electronically through the paper submission system in PDF format only. If required supplementary material may be submitted as a separate PDF file, but reviewers are not obligated to consider this, and your manuscript should, therefore, stand on its own merits without any supplementary material. Supplementary material will not be published in the proceedings.
The submitted papers must not be previously published anywhere and must not be under consideration by any other conference or journal during the PAKDD review process. Submitting a paper to the conference means that if the paper was accepted, at least one author will complete the regular registration and attend the conference to present the paper. For no-show authors, their papers will not be included in the proceedings. Before submitting your paper, please carefully read and agree with the PAKDD Paper Submission Policy and No-Show Policy: https://pakdd.org/policies/.
The conference will confer several awards, including Best Paper Award, Best Student Paper Award, and Best Application Paper Award from the submissions.
Springer will publish the proceedings of the conference as a volume of the LNAI series, and selected excellent papers will be invited for publications in special issues of high-quality journals, including Knowledge and Information Systems (KAIS) and International Journal of Data Science and Analytics.
Paper submission must adhere to the double-blind review policy. Submissions must have all details identifying the author(s) removed from the original manuscript (including the supplementary files, if any), and the author(s) should refer to their prior work in the third person and include all relevant citations.
Because of the double-blind review process, non-anonymous papers that have been issued as technical reports or similar cannot be considered for PAKDD 2021. An exception to this rule applies to manuscripts that were published in arXiv not later than 30th October 2020, i.e., at least a month before PAKDD’s submission deadline. These can be submitted to PAKDD provided that the submitted paper’s title and abstract are different from the one appearing on arXiv. Any submission shall not appear in arXiv until the review process has ended.
The author list and order cannot be changed after the paper is submitted.
FormattingTemplate: http://www.springer.de/comp/lncs/authors.html
SubmissionSite: https://cmt3.research.microsoft.com/PAKDD2021
If you have any questions, please feel free to contact us at pakdd2021@gmail.com
Kamal Karlapalem, Hong Cheng, Naren Ramakrishnan
Program Co-Chairs of PAKDD 2021
For more details refer the Official Website : http://www.pakdd2021.org/
Shri Dorilal Agarwal National Meritorious Scholarship 2018 for the Specially Challenged Students.
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