International Workshop on Computational Aspects of Deep Learning (CADL), Milan, Italy, Jan 2021

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ICPR 2020 Workshop on Computational Aspects of Deep Learning
Milan, Italy, January 10, 2021
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Organized in conjunction with ICPR 2020
=== SUBMISIONS ARE NOW OPEN!!! ====

CFP Special Issue on Computer Vision and Deep Learning for Remote Sensing Applications

 

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CALL FOR PAPERS

 

* Special Issue on Computer Vision and Deep Learning for Remote Sensing Applications *

Journal: Remote Sensing (MDPI), IF 4.118

 

Guest Editors: Hyungtae Lee, Sungmin Eum, Claudio Piciarelli

 

Full info: http://mdpi.com/si/46402

 

Deadline: accepted papers will be published continuously (as soon as accepted) till the deadline (31 March 2021)

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Abstract:

 

Today, the field of computer vision and deep learning is rapidly progressing into many applications, including remote sensing, due to its remarkable performance. Especially for remote sensing, a myriad of challenges due to difficult data acquisition and annotation have not been fully solved yet. The remote sensing community is waiting for a breakthrough to address these challenges by utilizing high-performance deep learning-based models that typically require large-scale annotated datasets.

 

This issue is looking for such breakthroughs focusing on the advances in remote sensing using computer vision, deep learning and artificial intelligence. Although broad in scope, contributions with a specific focus are expected.

 

For this special issue, we welcome the most recent advancements related, but not limited to:

 

* Deep learning architecture for remote sensing

* Machine learning for remote sensing

* Computer vision method for remote sensing

* Classification / Detection / Regression

* Unsupervised feature learning for remote sensing

* Domain adaptation and transfer learning with computer vision and deep learning for remote sensing

* Anomaly/novelty detection for remote sensing

* New dataset and task for remote sensing

* Remote sensing data analysis

* New remote sensing application

* Synthetic remote sensing data generation

* Real-time remote sensing

* Deep learning-based image registration

 

Dr. Hyungtae Lee

Dr. Sungmin Eum

Dr. Claudio Piciarelli

Guest Editors

ECCV 2020: call for academic research demos

We're pleased to invite academic and industrial researchers to submit
applications for virtual demonstrations during ECCV2020. Since the
conference has become virtual, so will the demos. Virtual demos will
consist of a pre-recorded demo video and a live Q&A session via video
chat. During the Q&A session you have the possibility to run live
demos too. This is a unique opportunity to showcase research results
and computer vision systems to the conference attendees.

All researchers in computer vision and related disciplines are invited
to submit an application to present demonstrations at ECCV 2020.

More information: https://eccv2020.eu/academic-demos/
Submission form: https://forms.gle/MReMsr2oQaBTra266
Submission deadline: Friday July 24

Contact: eccv20demos@eccv2020.eu

11th International Conference on Pattern Recognition Systems

ICPRS 2021 : 11th International Conference on Pattern Recognition Systems

Link: http://www.icprs.org

When Mar 15, 2021 – Mar 19, 2021
Where Virtual
Submission Deadline Sep 25, 2020
Notification Due Nov 27, 2020
Final Version Due Dec 28, 2020

The 11th International Conference on Pattern Recognition Systems (ICPRS-21) is an annual event that follows ICPRS-19, ICPRS-18, ICPRS-17 and ICPRS-16, a continuation of the successful Chilean Conference on Pattern Recognition that reached its 6th edition in 2014. In 2021 it is organised by the Universidad de Talca (Chile) and the Chilean Association for Pattern Recognition (ACHiRP, a member of the IAPR) and it is expected to be endorsed by the IAPR (tbc) and sponsored by the Vision and Imaging Professional Network of the Institution of Engineering and Technology (IET). As in previous years, papers will be published in electronic proceedings. Papers deemed to be of the required standard AND presented at the conference, will be normally indexed in IEEE Xplore and Scopus. All paper submissions need to be submitted via Conftool to be peer-reviewed by an international panel of experts. Excellent papers will be encouraged to submit extended versions for consideration in a JCR-indexed journal (tba). There will be a good set of keynote talks.

An innovative aspect of this conference is that it will be mainly virtual so that authors, invited speakers and delegates will be able to attend through a webinar system.

Another innovations is that there will be a special category of “Student Papers”, where the first author must be a student (undergraduate or postgraduate). There will be a special prize for best student paper.

All paper submissions will be submitted on-line to be peer-reviewed by an international panel of experts. Please note that all papers will be checked by a plagiarism detecting software so that papers that exceed a threshold of coincidence will not be passed on for reviews.

There will be delegate fee discounts for authors, students and members of the sponsoring organisations.

Prospective authors are invited to submit full papers papers describing novel and previously unpublished results on all aspects of Pattern Recognition Systems, from academia, industry, NGOs and others, to be selected for oral presentations or posters, on topics including, but not limited to:

  • Artificial Intelligence Techniques in Pattern Recognition
  • Bioinformatics Clustering
  • Biometrics (including face recognition)
  • Computer Vision
  • Data Mining and Big Data
  • Deep Learning and Neural Networks for Pattern Recognition
  • Document Processing and Recognition
  • Fuzzy and Hybrid Techniques in PR
  • High Performance Computing for Pattern Recognition
  • Image Processing and Analysis
  • Kernel Machines
  • Mathematical Morphology
  • Mathematical Theory of Pattern Recognition
  • Natural Language Processing and Recognition
  • Object Detection, Tracking and Recognition
  • Pattern Recognition Principles
  • Real Systems, Applications and Case Studies of Pattern Recognition (e.g. health, environment, weather prediction,natural disasters, transportation, etc.)
  • Robotics
  • Remote Sensing
  • Shape and Texture Analysis
  • Social Media and HCI
  • Signal Processing and Analysis
  • Statistical Pattern Recognition
  • Syntactical and Structural Pattern Recognition
  • Voice and Speech Recognition

                                
							

Firm Deadline July 08 – IEEE CAMAD’20 – SS on Emerging ML and Data-driven Approches for Network Optimization – REDUCED REGISTRATION FEES and Virtual Presentation

SS on Emerging ML and Data-driven Approches for Network Optimization

IEEE CAMAD 2020 (held VIRTUALLY)

https://camad2020.ieee-camad.org/

* * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * *
* *

Reduced Registration fees (in USD):

Full – Member ComSoc    200,00
Full – Member IEEE      250,00
Full – Non Member       300,00
Full – Non-Author ComSoc        25,00
Full – Non-Author IEEE  30,00
Full- Non-Author Non Member     60,00
Student – Member IEEE   15,00
Student – Non Member    20,00
Life Member     30,00

** IMPORTANT DATES **

Submission Deadline: July 8th (Firm)
Notification Acceptance: August 8th
Camera-Ready due: August 15th

***

The foundation of 5G and beyond mobile networks lies in the convergence
between networking and computing. The most appealing realization of such
convergence is the application of artificial intelligence (AI) and
machine learning (ML) to optimize network functions. The latter has
generated an increasing interest from academia and industry paving the
path for the transformation from the 5G paradigm “connected things” into
a “connected intelligence” vision for beyond 5G and 6G mobile networks.
To this end, the role of AI/ML is to support zero-touch configuration
and orchestration, thereby enabling self-configuration and
self-optimization of the mobile network. Mobile networks are indeed
becoming increasingly complex, heterogeneous, dynamic and dense, which
makes extremely hard to model correctly their behavior. Model-free
solutions that AI enable can overcome such challenge.

This Special Session seeks contributions from experts in areas such as
network programming, distributed systems, machine learning, data
science, data structures and algorithms, and optimization to discuss the
latest research ideas and results on the application of AI/ML to
networking. Specifically, this Special Session welcomes contributions in
the following major areas (indicative list, other related topics will
also be considered):

– Machine learning (ML) and big data analytics in networking
– Case studies showing (dis)advantages of AI/ML techniques for
networking over traditional ones
– Edge-driven data analytics and applications to smart cities
– AI/ML assisted network optimization
– Resource-efficient machine learning for mobile networks
– Measurements and analysis of network traffic for AI/ML systems
– Efficient ML data structures, algorithms and network protocols to
process network monitoring data
– Approaches for privacy-aware network traffic data collection
– Architectures for federated learning and its applications to
networking
– Energy-efficient federated learning
– Incentive mechanisms of federated learning
– In-network computation for next generation wireless networks

** SUBMISSION INSTRUCTIONS **

Prospective authors are invited to submit a full paper of not more than
six (6) IEEE style pages including results, figures and references.
Papers should be submitted via EDAS. Papers submitted to the conference,
must describe unpublished work that has not been submitted for
publication elsewhere. All submitted papers will be reviewed by at least
three TPC members, while submission implies that at least one of the
authors will register and present the paper at the conference.
Electronic submission will be carried out through the EDAS web site at
the following link: https://edas.info/newPaper.php?c=27371&track=101982

All accepted papers will be included in the conference proceedings and
IEEE digital library (http://ieeexplore.ieee.org/).

**** COVID-19 Restrictions ****

As you may be aware, the World Health Organization officially declared
the novel coronavirus COVID-19 a pandemic. This global health crisis is
a unique challenge that has impacted many members of the IEEE family. We
would like to express our concern and support for all the members of the
IEEE community, our professional team, our families and all others
affected by this outbreak.

Governments around the world are now issuing restrictions on travel,
gatherings, and meetings in an effort to limit and slow the spread of
the virus. The health and safety of the IEEE community is our first
priority and IEEE is supporting these efforts.

Following the advice and guidelines from healthcare officials and local
authorities, the IEEE CAMAD 2020 will now be held virtually on 14-16
September.

IEEE publications continue to accept submissions and publish impactful
cutting-edge research. Our online publications remain available to
researchers and students around the world.

Accepted papers for the IEEE CAMAD 2020 will be submitted for inclusion
in IEEE Xplore Digital Library after they are presented at the virtual
conference. Information and instructions on how to prepare for a virtual
presentation will be sent separately.

Registration fees for the IEEE CAMAD 2020 have been adjusted. Authors
and non-authors who have registered at the original fees will be
refunded the price difference.

We extend our heartfelt thanks and appreciation to all of our technical
community for your understanding and community engagement. Although the
IEEE CAMAD 2020 cannot be held physically, the integrity and quality of
the research and content will remain and now be experienced in the
virtual environment. Thank you for your support of our shared mission to
advance technology for humanity.

** ORGANIZERS **
Claudio Fiandrino (IMDEA Networks Institute, Spain)
Andrea Capponi (University of Luxembourg)

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