2nd Edition of ImageCLEF Coral Annotation Challenge (@ CLEF 2020)

The 2nd Edition of the ImageCLEF Coral Annotation Challenge 2019

Website: https://www.imageclef.org/2020/coral 

Motivation

The increasing use of structure-from-motion photogrammetry for modelling large-scale environments from action cameras attached to drones has driven the next-generation of visualisation techniques that can be used in augmented and virtual reality headsets. It has also created a need to have such models labelled, with objects such as people, buildings, vehicles, terrain, etc. all essential for machine learning techniques to automatically identify as areas of interest and to label them appropriately. However, the complexity of the images makes impossible for human annotators to assess the contents of images on a large scale.

Advances in automatically annotating images for complexity and benthic composition have been promising, and we are interested in automatically identify areas of interest and to label them appropriately for monitoring coral reefs. Coral reefs are in danger of being lost within the next 30 years, and with them the ecosystems they support. This catastrophe will not only see the extinction of many marine species, but also create a humanitarian crisis on a global scale for the billions of humans who rely on reef services. By monitoring the changes and composition of coral reefs we can help prioritise conservation efforts.

Data

The data for this task originates from a growing, large-scale collection of images taken from coral reefs around the world as part of a coral reef monitoring project with the Marine Technology Research Unit at the University of Essex (currently containing over 2TB of image data of benthic reef structure).

 
 Challenge description

Participants will be require to annotate and localise coral reef images by labelling the images with types of benthic substrate together. Each image is provided with possible class types. 

Preliminary Schedule

  • 21.01.2020: Registration opens for all ImageCLEF tasks (until 27.04.2020)
  • 21.01.2020: training release starts
  • 16.03.2020: Test data release starts
  • 11.05.2020: Deadline for submitting the participants runs
  • 18.05.2020: Release of the processed results by the task organizers
  • 25.05.2020: Deadline for submission of working notes papers by the participants
  • 15.06.2020: Notification of acceptance of the working notes papers
  • 29.06.2020: Camera-ready working notes papers
  • 22-25.09.2020: CLEF 2020, Thessaloniki, Greece

 

Participant Registration

Please refer to the general  ImageCLEF registration instructions

 

Organizing Committee

  • Jon Chamberlain <jchamp(at)essex.ac.uk>,University of Essex, UK
  • Adrian Clark <alien(at)essex.ac.uk>,University of Essex, UK
  • Antonio Campello <a.campello(at)wellcome.ac.uk>,Wellcome Trust, UK
  • Alba García Seco de Herrera <alba.garcia(at)essex.ac.uk>,University of Essex, UK

 

For more details and updates, please visit the task website at: https://www.imageclef.org/2020/coral 

And join our mailing list: https://groups.google.com/d/forum/imageclefcoral  

 

Dr Alba García Seco de Herrera PhD

Lecturer

Department of Computer Science and Electronic Engineering (CSEE)

University of Essex

 

T +44 (0) 1206 872907

alba.garcia@essex.ac.uk

 https://www.essex.ac.uk/

 

WE ARE ESSEX 


Image and Vision Computing

Image and Vision Computing

CALL FOR PAPERS

Special Issue on Advances in Domain Adaptation for Computer Vision

 

Aim and Scope: 

In daily routines, humans, not only learn and apply knowledge for visual tasks but also have intrinsic abilities to transfer knowledge between related vision tasks. For example, if a new vision task is relevant to any previous learning, it is possible to transfer the learned knowledge for handling the new vision task. In developing new computer vision algorithms, it is desired to utilize these capabilities to make the algorithms adaptable. Generally, traditional computer vision methods do not adapt to a new task and have to learn the new task from the beginning. These methods do not consider that the two visual tasks may be related and the knowledge gained in one may be applied to learn the other one efficiently in lesser time. Domain adaptation for computer vision is the area of research, which attempts to mimic this human behavior by transferring the knowledge learned in one or more source domains and use it for learning the related visual processing task in the target domain. Recent advances in domain adaptation, particularly in cotraining, transfer learning, and online learning have benefited computer vision research significantly. For example, learning from high-resolution source domain images and transferring the knowledge to learning low-resolution target domain information. This special issue will focus on the recent advances in domain adaptation for different computer vision tasks. 


 Topics of interest include, but are not limited to: 

·       Domain adaptation for machine learning frameworks for learning deep representations 

·       Domain adaptation for face detection/recognition and tracking

·       Domain adaptation for object detection/ recognition and tracking

·       Domain adaptation and hybrid models for real-time computer vision tasks

·       Domain adaptation for human pose detection/recognition and estimation 

·       Domain adaptation for event/action detection and recognition

·       Domain adaptation for few-shot learning

·       Domain adaptation for deep neural network optimization


Important Dates: 

Paper submission due: May 31, 2020 

First notification: July 31, 2020 

Revision submission due: September 30, 2020 

Final decision: November 30, 2020 


Paper evaluation and submission: 

Submitted papers should present original, unpublished work, relevant to one of the topics of the Special Issue. All submitted papers will be evaluated on the basis of relevance, the significance of contribution, technical quality, and quality of presentation, by at least two independent reviewers (the papers will be reviewed following standard peer-review procedures of the Journal). Each paper will be reviewed rigorously and possibly in two rounds. Prospective authors should follow the formatting and Instructions of Image and Vision Computing at https://www.elsevier.com/journals/image-and-vision-computing/0262-8856/guide-for-authors, and invited to submit their papers directly via the online submission system at https://www.editorialmanager.com/IMAVIS/default.aspx. When submitting your manuscript please select the article type "VSI: Advances in Domain Adaptation for Computer Vision (ADACV)" Please submit your manuscript before the submission deadline. https://www.journals.elsevier.com/image-and-vision-computing/call-for-papers/advances-in-domain-adaptation-for-computer-vision 


Guest Editors:

Dr. Pourya Shamsolmoali 

Institute of Image Processing & Pattern Recognition, Shanghai Jiao Tong University, Shanghai, China. 

Email: pshams@sjtu.edu.cn 


Prof. Salvador Garcaí 

Department of Computer Science and Artificial Intelligence, University of Granada, Granada, Spain. 

Email: salvagl@decsai.ugr.es 


Dr. Huiyu Zhou 

Department of Informatics, University of Leicester, Leicester, UK. 

Email: hz143@leicester.ac.uk 


Prof. M. Emre Celebi 

Department of Computer Science, University of Central Arkansas, Conway, Arkansas, USA. 

 Email: ecelebi@uca.edu 


 

IWCIA2020 – EXTENDED submission deadline to January 31, 2020

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20th International Workshop on Combinatorial Image Analysis | 16 – 18 July 2020 | Novi Sad, Serbia. 

============================== ============================

Important Dates :
Submission: 31 January, 2020
Notification: 8 March, 2020
Revised submission: 5 April 2020
Conference dates: 16-18 July 2020
 

Publication : The accepted papers will be included in the workshop proceedings published by Springer Verlag in Lecture Notes in Computer Science Series.

                    After the Workshop, the authors will be invited to submit extended versions of their works for publication in a special journal issue:

                         Journal of Combinatorial Optimization of Springer https://www.springer.com/journal/10878 has already been arranged.

Venue : Rectorship building of the University of Novi Sad, Novi Sad, Serbia.

The topics of interest include but are not limited to the following :
 

  • Combinatorial problems in the discrete plane and space; Lattice polygons and polytopes
  • Digital/combinatorial geometry and topology
  • Digital manifolds; Geometry of digital curves and surfaces
  • Analysis and processing of digital surfaces with singularities (such as “pinched digital surfaces”)
  • Homotopy of digital manifolds; thinning algorithms and skeletons
  • Boundary tracking of digital solids; Geometric characteristics of object boundaries
  • Multigrid convergence analysis of metric-based descriptors
  • Tilings and patterns; Combinatorial pattern matching
  • Computational geometry and imaging sciences
  • Integer programming, linear programming, and graph theoretic models and approaches to problems of image analysis
  • Image representation, segmentation, grouping, and reconstruction
  • Processing “very large” digital pictures; Methods for image compression
  • Parallel architectures and algorithms
  • Fuzzy and stochastic image analysis
  • Discrete tomography
  • Grammars and models for image or scene analysis and recognition; cellular automata
  • Mathematical morphology and image analysis
  • Applications in medical imaging, biometrics, computer vision, image understanding, robotics, metrology, and others.


For any questions, please write an e-mail to iwcia2020@uns.ac.rs.
                                
							

EUSIPCO2020 Special Session — Bias in Biometrics

Dear Colleagues,

A special session on the topic of "Bias in Biometrics" is going to be held at the 28th European Signal Processing Conference (EUSIPCO2020). This conference is a flagship conference of the European Association for Signal Processing (EURASIP) and will take place between August 24th and 28th in Amsterdam, The Netherlands.

The special session is jointly organised by researchers from Hochschule Darmstadt (Pawel Drozdowski), Inria Sophia Antipolis (Dr. Antitza Dantcheva), and Fraunhofer Institute for Computer Graphics Research IGD (Dr. Naser Damer).

Topics of interest include, but are not limited to:

* Transparency, explainability, accountability, and fairness in biometrics.
* Estimation of inherent biases in biometric algorithms, including recognition, classification, and quality assessment w.r.t. factors such as sex, age, ethnicity, and image acquisition conditions.
* Bias-aware, bias-mitigating, and bias-free biometric algorithms.
* Balanced training and testing datasets.
* Differential performance in biometric systems.

The deadline for submissions is on the 21st of February 2020. Submission information is available at the conference website: https://eusipco2020.org/authors-information/

The special session announcement is available here: https://dasec.h-da.de/wp-content/uploads/2020/01/EUSIPCO2020-ss_bias_in_biometrics.pdf

Kind regards,

Pawel Drozdowski, Antitza Dantcheva, Naser Damer

Cursos y talleres 2020 – Información completa y actualizada

Estimados, les envío tres archivos adjuntos para completar la información sobre los Cursos y Talleres 2020.
En el primer archivo van a encontrar la lista actualizada de los veinticinco cursos o talleres, de los cuales veintidós comenzarán en la primera semana de marzo y tres en la primera de abril. Allí podrán ver nombre y contacto de cada profesor, horario del curso o taller, sala a utilizarse y fecha de inicio.
En el segundo está la grilla de los cursos por día, franja horaria y sala o taller donde se desarrollarán las clases.
En el tercero encontrarán una planilla con los aranceles de cada curso o taller, consensuados con los profesores, los cupos máximos de alumnos, las fechas de inicio y la duración (trimestrales, cuatrimestrales o anuales).
Cualquier duda que tengan pueden consultarme.
Saludos,

Julián Ezquerro

Área de Gestión Cultural
Museo Histórico Sarmiento

Cuba 2079 (1428) C.A.B.A

Tel.: 4782-2354 /4783-7555 int. 109

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