[image 04801] [CfP] 論文募集(〆切: 9/16) 併設ワークショップ MLCSA @ ACCV'22, Dec. 4-8, in Macau, China
hanxhua
hanxhua @ yamaguchi-u.ac.jp
2022年 8月 23日 (火) 10:45:06 JST
Image MLの皆様:
山口大学の韓です。お世話になっております。
ACCV 2022 併設ワークショップの論文募集をご案内します。
9月16日の締切まであと三週間ほどありますが、Work-in-Progressの内容も大歓迎です。投稿のご検討よろしくお願い致します。
[Apologies if you receive multiple copies of this CFP]
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The Fourth Workshop on Machine Learning and Computing for Visual
Semantic Analysis (MLCSA2022)
(In conjunction with ACCV 2022, Dec. 4-8, 2022, Macau, China)
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Workshop website: http://mlp.sci.yamaguchi-u.ac.jp/MLCSA2022/index.html
Recently, explosive amount of visual content have been acquired with
different kinds of visual sensors such as surveillance cameras, mobile
phones, medical imaging equipment and remote sensors. The existing
sensors may not always provide enough content or sufficient quality for
different semantic analysis tasks. How to enhance the quality of the
available visual data and reconstruct more additional information with
computational technique such as hyper-spectral image reconstruction and
high-speed video reconstruction from a snapshot have great affect for
the subsequent vision tasks. Furthermore, the
automatically/quantitatively analysis and understanding of the available
visual data without sufficient quality is becoming one of the most
active research areas in the vision community due to the scientifically
challenging problems and its great benefits to real life applications.
On the other hand, machine learning techniques especially the deep
learning framework have manifested the surprising superiority for
extracting structural and semantic visual representation in numerous
computer vision applications such as image classification, object
detection/localization, image segmentation, captioning, and so on. With
machine learning and computing techniques, it is prospected to discover
the inherent structure of the available unconditioned visual contents
and to achieve more promising results for various applications based on
visual semantic analysis.
This workshop, on Machine Learning and Computing for Visual Semantic
Analysis (MLCSA2022) – aims at sharing latest progress and developments,
current challenges, and potential applications for exploiting large
amounts of visual contents. We are interested in constructing effective
systems to enable visual semantic analysis and building wide
applications within the fields of artificial intelligence, machine
learning, ubiquitous computing, data mining, and others.
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TOPICS OF INTEREST (including but not limited to)
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The topics we are interested in, include constructing effective systems
to enable visual semantic analysis and building wide applications within
the fields of artificial intelligence, machine learning, image
processing, ubiquitous computing, data mining, and others.
The sample topics of interest include, but are not limited to, the
following:
• Unsupervised and semi-supervised learning
• Deep/transfer learning for image and multimedia analysis
• Statistical modeling of image processing task
• Image enhancement
• Hyper-spectral image super-resolution/reconstruction
• High-speed video reconstruction from compressive imaging snapshot
• Spatio-temporal data mining
• Feature extraction and matching
• Activity/Pattern learning and recognition
• Application of visual semantic analysis
• Semantic analysis of surveillance image and video
• Remote sensing image understanding
• Medical data analysis
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IMPORTANT DATES
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* Paper submission deadline: Sept. 16, 2022
* Acceptance notification: Sept. 30, 2022
* Camera-ready submission: Oct. 4, 2022
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PAPER SUBMISSION
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All submissions (including Work-In-Progress) must be original works not
under review at any other workshop, conference, or journal. Submitted
papers are limited to 14 pages, including figures and tables, in the
ACCV style. Additional pages containing only cited references are
allowed. Authors should consult Springer's authors'guidelines and use
the above templates for the preparation of their papers. For more
details, please check the submission guidelines in the workshop
homepage.
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ORGANIZING COMMITTEE
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Advisory Committee
• Prof. Yen-Wei Chen, Ritsumeikan University, Japan;
• Prof. Shin'ichi Satoh, National Institute of Informatics, Japan
Organizers:
Names and contact information for main organizers:
• Xian-Hua Han, Yamaguchi University, Japan
• YongQing Sun, NTT, Japan;
• Rahul Kumar JAIN, Ritsumeikan University, Japan
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For more information, please visit the workshop website:
http://mlp.sci.yamaguchi-u.ac.jp/MLCSA2022/index.html
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韓先花@山口大学大学院創成科学研究科
E-mail: hanxhua @ yamaguchi-u.ac.jp
HP: http://mlp.sci.yamaguchi-u.ac.jp
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