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TRECVID 2020 : CFP in the Video Retrieval Evaluation Benchmark
March 11th, 2020
Daniela Lopez de Luise 2020 TREC VIDEO RETRIEVAL EVALUATION (TRECVID 2020) February 2020 - November 2020 Conducted by the National Institute of Standards and Technology (NIST) with additional funding from other US government agencies. I n t r o d u c t i o n: The TREC Video Retrieval Evaluation series (trecvid.nist.gov) promotes progress in content-based analysis of and retrieval from digital video via open, metrics-based evaluation. TRECVID is a laboratory-style evaluation that attempts to model real world situations or significant component tasks involved in such situations. In its 20th annual evaluation cycle TRECVID will evaluate participating systems on 6 different video analysis and retrieval tasks using various types of real world datasets. Below is the main datasets to be used in 2020 across the 6 proposed tasks. D a t a: In TRECVID 2020 NIST will use at least the following data sets: * Vimeo Creative Commons Collection (V3C) The V3C is a large-scale video dataset that has been collected from high-quality web videos with a time span over several years in order to represent true videos in the wild. It consists of 28,450 videos with a duration of 3,801 hours in total. The first part of this dataset (V3C1) has been used by the Video Browser Showdown (VBS) 2019 and the Ad-Hoc Video Search (AVS) task at TRECVID 2019 as well. For both campaigns V3C1 will serve as a basis over three years (VBS 2019-2021 and TRECVID 2019-2021). V3C1 contains 1,000 hours of video content and approximately one million shots that were created by the authors of the dataset using the open-source multimedia retrieval engine Cineast. A subset of approx. 2000 clips from the second part (V3C2) of the V3C collection will be used as testing data for the Video-to-Text (VTT) task in 2020. * IACC.3 The IACC.3 was introduced in 2016 and consists of approximately 4600 Internet Archive videos (144 GB, 600 h) with Creative Commons licenses in MPEG-4/H.264 format with duration ranging from 6.5 min to 9.5 min and a mean duration of almost 7.8 min. Most videos will have some metadata provided by the donor available e.g., title, keywords, and description. * BBC EastEnders Approximately 244 video files (totally 300GB, 464 hours) with associated metadata, each containing a week's worth of BBC EastEnders programs in MPEG-4/H.264 format. * Twitter Vine videos Approximately 8,000 6 sec video clips URLs from the public Twitter stream of Vine videos have been human annotated by video captions from 2016-2019. These Vine videos will be provided as development data for participants of the Video-to-Text (VTT) task. * Gatwick and i-LIDS MCT airport surveillance video The data consist of about 150 hours obtained from airport surveillance video data (courtesy of the UK Home Office). The Linguistic Data Consortium has provided event annotations for the entire corpus. The corpus was divided into development and evaluation subsets. Annotations for 2008 development and test sets are available. * VIRAT dataset The VIRAT Video Dataset is a large-scale surveillance video dataset designed to assess the performance of activity detection algorithms in realistic scenes. The dataset was collected to facilitate both detection of activities and to localize the corresponding spatio-temporal location of objects associated with activities from a large continuous video. The VIRAT dataset are closely aligned with real-world video surveillance analytics. * LADI dataset The Low Altitude Disaster Imagery (LADI) dataset is hosted as part of the AWS Public Dataset program and will be available to participants of the DSDI task as development data. It consists of over 20,000+ annotated images, each at least 4 MB in size. The annotated features were selected based on a recommendation from the public safety community. In total there are 31 features across 5 categories. The dataset was collected between 2015 - 2019 during major natural disaster events (e.g. hurricanes, floodings, earthquakes) across several USA states. The lower altitude criteria is intended to further distinguish the LADI dataset from satellite or "top down" datasets and to support development of computer vision capabilities for small drones operating at low altitudes. A minimum image size was selected to maximize the efficiency of the crowd source workers. For more information about LADI, please refer to the github organization. T a s k s: In TRECVID 2020 NIST will evaluate systems on the following tasks using the [data] indicated: * AVS: Ad-hoc Video Search (automatic, manually-assisted, relevance feedback) [V3C1] The Ad-hoc search task started in TRECVID 2016 and will continue in 2020 to model the end user search use-case, who is looking for segments of video containing persons, objects, activities, locations, etc., and combinations of the former. Given about 30 multimedia topics created at NIST, return for each topic all the shots which meet the video need expressed by it, ranked in order of confidence. Although all evaluated submissions will be for automatic runs, Interactive systems will have the opportunity to participate in the Video Browser Showdown (VBS) in 2021 using the same testing data (V3C1). * ActEV: Activities in Extended Video [VIRAT] ActEV is a series of evaluations to accelerate development of robust, multi-camera, automatic activity detection algorithms for forensic and real-time alerting applications. ActEV is an extension of the annual TRECVID Surveillance Event Detection (SED) evaluation where systems will also detect, and track objects involved in the activities. Each evaluation will challenge systems with new data, system requirements, and/or new activities. * INS: Instance search (interactive, automatic) [BBB EastEnders] An important need in many situations involving video collections (archive video search/reuse, personal video organization/search, surveillance, law enforcement, protection of brand/logo use) is to find more video segments of a certain specific person, object, or place, given a visual example. A new query type started in 2019 asking systems to retrieve specific persons doing specific actions. A set of defined actions with various image/video examples will be given and each topic will include few examples (image and video) of a person and ask systems to find that person doing one of the defined actions. * VTT: Video to Text Description [Vimeo Creative Commons Collections (V3C2)] Automatic annotation of videos using natural language text descriptions has been a long-standing goal of computer vision. The task involves understanding of many concepts such as objects, actions, scenes, person-object relations, temporal order of events and many others. In recent years there have been major advances in computer vision techniques which enabled researchers to start practically to work on solving such problem. Given a set of short video clips and number of reference sets of text descriptions, systems are asked to work and submit results for two subtasks.The core "Description Generation" subtask requires systems to automatically generate a text description (1 sentence) for each video clip. An optional "Matching and Ranking" subtask requires systems to return for each video a ranked list of the most likely text description that correspond (was annotated) to the video from each of the reference sets. * VSUM: Video Summarization [BBC Eastenders Soap Opera]
An important need in many situations involving video collections (archive video search/reuse, personal video organization/search, movies, tv shows, etc.) is to summarize the video in order to reduce the size and concentrate the amount of high value information in the video track. In 2020 we begin a new video summarization track in TRECVID in which the task is to summarize the major life events of specific characters over a number of weeks of programming on the BBC Eastenders TV series. Typically, three characters will be chosen for this task every year, and summaries of their major life events must be between the selected period of the show, which will be specified to participants in advance of the task. * DSDI: Disaster Scene Description and Indexing [Low Altitude Disaster Imagery (LADI)] Computer vision capabilities have rapidly been advancing and are expected to become an important component to incident and disaster response. However, the majority of computer vision capabilities are not meeting public safety needs, such as support for search and rescue, due to the lack of appropriate training data and requirements. In response, the organizers developed a dataset of images collected by the Civil Air Patrol of various natural disasters. Two key distinctions are the low altitude and oblique perspective of the imagery and disaster-related features, which are rarely featured in computer vision benchmarks and datasets. This task invites researchers to work on this new domain to develop new capabilities and close the gap in performance to essentially label short video clips with the correct disaster-related feature(s). In addition to the data, TRECVID will provide uniform scoring procedures, and a forum for organizations interested in comparing their approaches and results. Participants will be encouraged to share resources and intermediate system outputs to lower entry barriers and enable analysis of various components' contributions and interactions. *************************************************** * You are invited to participate in TRECVID 2020 * *************************************************** The evaluation is defined by the Guidelines. A draft version is available: http://www-nlpir.nist.gov/projects/tv2020/index.html and further feedback input from the participants are welcomed till April,2020. You should read the guidelines carefully before applying to participate in one or more tasks: Guidelines P l e a s e n o t e: 1) Dissemination of TRECVID work and results other than in the (publicly available) conference proceedings is welcomed, but the conditions of participation specifically preclude any advertising claims based on TRECVID results. 2) All system output and results submitted to NIST are published in the Proceedings or on the public portions of TRECVID web site archive. 3) The workshop is open only to participating groups that submit results for at least one task and to selected government personnel from sponsoring agencies and data donors. 4) Each participating group is required to submit before the November workshop a notebook paper describing their experiments and results. This is true even for groups who may not be able to attend the workshop. 5) It is the responsibility of each team contact to make sure that information distributed via the call for participation and the tv20.list@list.nist.gov email list is disseminated to all team members with a need to know. This includes information about deadlines and restrictions on use of data. 6) By applying to participate you indicate your acceptance of the above conditions and obligations. There is a tentative schedule for the tasks included in the Guidelines webpage: Schedule W o r k s h o p f o r m a t Plans are for a 2 and half days workshop at NIST in Gaithersburg, Maryland - just outside Washington, DC. Confirmation and details will be provided to participants as soon as available. The TRECVID workshop is used as a forum both for presentation of results (including failure analyses and system comparisons), and for more lengthy system presentations describing retrieval techniques used, experiments run using the data, and other issues of interest to researchers in information retrieval and computer vision. As there is a limited amount of time for these presentations, the evaluation coordinators and NIST will determine which groups are asked to speak and which groups will present in a poster session. Groups that are interested in having a speaking slot during the workshop will be asked to submit a short abstract before the workshop describing the experiments they performed. Speakers will be selected based on these abstracts. H o w t o r e s p o n d t o t h i s c a l l Organizations wishing to participate in TRECVID 2020 must respond to this call for participation by submitting an on-line application by 1 April (the earlier the better). Only ONE APPLICATION PER TEAM please, regardless of how many organizations the team comprises. *PLEASE* only apply if you are able and fully intend to complete the work for at least one task. Taking the data but not submitting any runs threatens the continued operation of the workshop and the availability of data for the entire community. Here is the application URL: http://ir.nist.gov/tv-submit.open/application.html You will receive an immediate automatic response when your application is received. NIST will respond with more detail to all applications submitted before the end of March. At that point you'll be given the active participant's userid and password, be subscribed to the tv20.list email discussion list, and can participate in finalizing the guidelines as well as sign up to get the data, which is controlled by separate passwords. T R E C V I D 2 0 2 0 e m a i l d i s c u s s i o n l i s t The tv20.list email discussion list (tv20.list@list.nist.gov) will serve as the main forum for discussion and for dissemination information about TRECVID 2020. It is each participant's responsibility to monitor the tv20.list postings. It accepts postings only from the email addresses used to subscribe to it. At the bottom of the guidelines there is a link to an archive of past postings available using the active participant's userid/password. Q u e s t i o n s Any administrative questions about conference participation, application format/content, subscriptions to the tv20.list, etc. should be sent to george.awad at nist.gov. Best regards, TRECVID 2020 organizers team
PhenomUK workshop on 3D point clouds
March 11th, 2020
Daniela Lopez de Luise PhenomUK workshop on feature extraction from 3D point clouds
Wednesday 10th June
STEM Centre, University of Essex
Overview: 3D imaging is increasingly being used in the context of crop imaging, driven in large part by the challenge of high throughput phenotyping (identification of effects on plant structure and function resulting from genotypic differences and environmental conditions). Motivated by applications in crop imaging, this workshop will focus upon the general challenge of feature extraction from 3D point clouds, bringing together those working on challenges of this type in different applications. This free workshop will provide an excellent opportunity for those working on algorithms for 3D point cloud processing to present their work and to explore applications in crop imaging.
Call for abstracts: There is the opportunity to present your work either as an oral presentation or poster. Closing date for abstracts is 24th April 2020. Notification of acceptance is 11th May 2020.
Specific topics of interest include but are not restricted to:
- generic methods for extraction of features from 3D point clouds including deep learning
- advances in segmentation, tracking, detection, reconstruction and identification methods for 3D point clouds which address unsolved plant phenotyping problems
- advances in feature extraction and related 3D imaging computer vision tasks which address challenges in other applications
Invited Speakers:
- Dr Nick Pears (University of York) “A tour of deep learning on 3D images”
- Dr Gert Kootstra (Wageningen University and Research) “3D digital plant phenotyping”
Further information and submission guidelines:
Please send a 1-page abstract by the deadline to enquiries@phenomuk.net, indicating at the time whether your preference is for an oral or poster presentation. Further information about the workshop is available at https://www.phenomuk.net/phenomuk-workshopfeature-extraction-from-3d-point-cloud/
Organisers:
- Dr Andrew Thompson (National Physical Laboratory)
- Dr Tony Pridmore (University of Nottingham)
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FIRST CALL FOR PAPERS: VII IEEE Latin American Conference on Computational Intelligence, LA-CCI 2020 .AND. XVI IEEE Latin American Summer School on Computational Intelligence, EVIC 2020 (CHILE)
March 11th, 2020
Daniela Lopez de Luise VII IEEE Latin American Conference on Computational Intelligence, LA-CCI 2020.
November 4 – 6, 2020
XVI IEEE Latin American Summer School on Computational Intelligence, EVIC 2020.
November 2 – 4, 2020
Aula Magna – Universidad de La Frontera – Temuco. CHILE
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PAPER SUBMISSION DEADLINE: MAY 29, 2020
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We are pleased to invite you to participate in LA-CCI 2020 which will be held this year in Temuco, Chile, jointly with the XVI Summer School on Computational Intelligence, EVIC 2020, that will be from November 2-4. LA-CCI provides a high-level international forum for scientists, researchers, engineers, professionals and educators as well as for young researchers and students to disseminate their latest research results and exchange views on the future research of Computational Intelligence (please visit http://la-cci.org/ for more information).
Temuco is a southern city surrounded by parks, lakes, volcanic landscapes that give it a natural beauty and touristic charm. It belongs to the Araucanía Region of Chile and has an important influence of native Mapuche people that preserve a distinctive culture.
MAIN TOPICS (NOT LIMITED TO):
(NEW) Ethical, Humane & Sustainable Applications of Computational Intelligence:
– Social & Environmental Responsibility (United Nations Sustainable Development Goals);
– Governability / Democracy protection;
– Privacy, Individualization, Transparency and Safety challenges;
– Human judgment in Machines;
– Social Ethical Computation;
– Responsible Marketing, etc.
(1) Evolutionary & Swarm Computation:
– Evolutionary computation;
– Swarm intelligence;
– Artificial immune systems;
– Novel metaheuristics and hyperheuristics;
– Memetic and Collective intelligence;
– Nature and Bio-inspired methods;
– Artificial life.
(2) Neural & Learning Systems:
– Machine learning;
– Neural Computation (+Weightless Systems);
– Complex systems;
– Wavelets;
– Molecular and quantum computing;
– Brain-machine interfaces;
– Network Sciences;
– Local search methods.
(3) Fuzzy & Stochastic Modeling:
– Fuzzy logic;
– Fuzzy optimization and design;
– Fuzzy pattern recognition;
– Fuzzy control & decision making/support;
– Rough sets;
– Uncertainty analysis;
– Fractals;
– Game theory;
– Social Simulation;
– Multi-agent systems;
– Symbolic Systems;
– Grey systems.
KEY SPEAKERS
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Dr. Carlos A. Coello Coello Affiliation CINVESTAV-Instituto Politécnico Nacional Departamento de Computación Mexico City,MEXICO.
Topic Evolutionary & Swarm Computation
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Short Biography Carlos A. Coello Coello received the Ph.D. degree in computer science from Tulane University, New Orleans, LA, USA, in 1996. He is a Professor (CINVESTAV-3F Researcher) with the Department of Computer Science of CINVESTAV-IPN, Mexico City, Mexico. He has authored and co-authored over 450 technical papers and book chapters. His publications currently report over 33 000 citations in Google Scholar with an H-index of 70. His current research interests include evolutionary multiobjective optimization and constraint-handling techniques for evolutionary algorithms. Dr. Coello Coello was a recipient of the 2007 National Research Award from the Mexican Academy of Sciences in the area of exact sciences, the 2013 IEEE Kiyo Tomiyasu Award, and the 2012 National Medal of Science and Arts in the area of Physical, Mathematical and Natural Sciences. |
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Dr. Alice E. Smith Affiliation Department of Computer Science and Software Engineering Auburn University, Auburn, AL, USA
Topic: Stochastic Modelling
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Short Biography Alice E. Smith is the Joe W. Forehand/Accenture Professor of Industrial and Systems Engineering at Auburn University with a joint appointment in Computer Science and Software Engineering. She holds a bachelor’s degree in civil engineering from Rice University, an MBA from Saint Louis University and a doctorate in engineering management and systems engineering from Missouri University of Science and Technology. She has authored papers with over $2,000 ISI Web of Science citations and has been a principal investigator on projects with funding totaling over $6 million. She is an area editor of INFORMS Journal on Computing and Computers & Operations Research and an associated editor of IEEE Transactions on Evolutionary Computation. |
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Dr. Hava Siegelmann
Affiliation University of Massachusetts Amherst Department of Computer Science MA,USA.
Topic Neural & Learning System |
Short Biography Dr. Hava Siegelmann earned a Ph.D. from Rutgers University, an M.S. from The Hebrew University, and a B.A. from Technion, all in computer science. Her academic distinctions include the Rutgers Doctoral Fellowship of Excellence. In 2015, the National Institutes of Health named Siegelmann one of 16 presidential BRAIN Initiative awardees for her work on energy- constrained brain activation. She is the 2016 recipient of the Hebb Award of the International Neural Network Society as well as the 2017-9 IEEE distinguished lecturer. Dr. Siegelmann also serves as a core member of the university’s Neuroscience and Behavior program and of the BINDS lab (Biologically Inspired Neural and Dynamical Systems), focused on biological learning mechanisms. She co-originated “support vector clustering” with Vladimir Vapnik, which has become one of the most widely used clustering algorithms in industry. She also created a sub-field of computation with her discovery of Super-Turing computation. |
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Dr. Piero P. Bonissone Affiliation GE Global Research One Research Circle Niskayuna, NY 12309, USA
Topic Fuzzy Modelling
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Short Biography Piero Bonissone received the BS degree in EE/ME from the University of Mexico City, in 1975, the M.S. in ME from UC Berkeley, in 1978, and the PhD in EECS from UC Berkeley, in 1979. He was a computer scientist at the General Electric Corporate Research and Development Center (GE CRD) since 1979. Dr. Bonissone has carried out research and projects in Artificial Intelligence, expert systems, simulation, fuzzy sets, soft computing, and data mining. In 1989 he received the Dushman Award from GE CRD for his work on reasoning with uncertainty. Dr. Bonissone has published more than a hundred articles in the area of expert systems, approximate reasoning, fuzzy sets, pattern recognition, decision analysis, and soft computing. He received seven patents from the U.S. Patent Office for his work on reasoning with uncertainty and fuzzy control. |
XVI IEEE LATIN AMERICAN SUMMER SCHOOL ON COMPUTATIONAL INTELLIGENCE
The Latin American Summer School on Computational Intelligence (EVIC) is an annual event held in Chile since 2004 with the objective of disseminating the foundations and recent advances of Computational Intelligence, Artificial Intelligence, Machine Learning, Data Science, Intelligent Control, among others, to the universities and business public of Chile and Latin America. EVIC is organized by the Chilean chapter of the IEEE CIS.
LA-CCI POSTGRADUATE THESES CONTEST (PTC)
The Postgraduate Theses Contest (PTC) promotes the integration and cooperation of young researchers in Computational Intelligence areas, providing greater visibility of the work done. Among the registered participants, the PTC will select and award the best doctoral thesis and the best master’s thesis on Computational Intelligence.
A valid thesis or dissertation has to completed, duly defended and approved during the period January 2018 to June 2020.The theses will be evaluated based on their:
(1) Scientific and technological contributions, generated by the work;
(2) Potential impact on society; and,
(3) Potential impact on the state of the art on Computational Intelligence & associated areas.
ROUND TABLES AND OUTREACH ACTIVITIES
· Social challenges (ethics, human rights, indigenous, education), environment and CI applications.
· CI and development.
· Invitation to school teachers and students of the region to talk about the advances, opportunities of CI and answer their questions.
IMPORTANT DATES
Paper submissions: 29 May 2020
Acceptance notification: 3 August 2020
Final paper submission: 31 August 2020
Early Registration: 30 September 2020
Theses Contest Deadline: July 31, 2020
Theses Contest Result Notification: August 31, 2020
EVIC Poster Deadline: 2 October 2020
EVIC Poster Notification: 9 October 2020
SUBMISSIONS
Paper length will be up to 6 pages. Papers must be written in MS-Word or Latex.
Papers must be written in English. Papers will be submitted using the Easychair System.
POST-PROCEEDINGS
Presented papers will be published in the conference proceedings and made available via the IEEE Xplore Digital Library, and (per IEEE’s policy) submitted to the Scopus database for indexing. At least one paper author must register and present the paper at the event.
STEERING COMMITTEE
1. Fernando Buarque de Lima Neto–Universidade de Pernambuco (Brazil) Founder & Board of Directors of LA-CIS] [*** Steering Committee Coordinator]
2. Gary Fogel, Chief Executive Officer of Natural Selection, Inc. (USA)
3. Cristian Rodriguez Rivero–Universidad Nacional de Córdoba (Argentina) [Founder & Board of Directors of LA-CIS] [Past-General Chair of LA-CCI 2014 – Bariloche, Argentina]
4. Yván Jesús Túpac Valdivia – Universidad Católica San Pablo (Peru) [Founder & Board of Directors of LA-CIS] [Past-General Chair of LA-CCI 2017 – Arequipa, Peru]
5. Carmelo José Albanez Bastos-Filho – Universidade de Pernambuco (Brazil) [Founder Member of LA-CIS]
6. Heitor Silvério Lópes – Universidade Federal Tecnológica do Paraná (Brazil) [Past-General Chair of LA-CCI 2015 – Curitiba, Brazil]
7. Alvaro David Orjuela-Cañón – Universidad del Rosario (Colombia) [Past-General Chair of LA-CCI 2016 – Cartagena, Colombia]
8. Alma Yolanda Alanis Garcia – Universidad de Guadalajara (Mexico) [Past-General Chair of LA-CCI 2018 – Guadalajara, Mexico]
9. Otilia Maria Alejandro Molina – Escuela Superior Politecnica del Litoral, ESPOL (Ecuador) [Past-General Chair of LA-CCI 2019 – Guayaquil, Ecuador]
10. Gloria Millaray Curilem Saldías – Universidad de la Frontera (Chile) [*** This edition General Chair of LA-CCI 2020 – Temuco, Chile]
Invited Members: Héctor Cancela /Martin Pedemonte – Universidad de la Republica (Uruguay) [*** Next General Chairs of LA-CCI 2021 – Montevideo]
LOCAL ORGANIZING COMMITTEE
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GENERAL CHAIRS |
Millaray Curilem, Universidad de La Frontera, Temuco Doris Sáez-Hueichapan, Universidad de Chile, Santiago Nelson Aros, Universidad de La Frontera, Temuco |
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HONORARY CHAIR |
Pablo Estévez, Universidad de Chile, Santiago |
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PROGRAM CHAIR |
Cesar San Martin, Universidad de La Frontera, Temuco |
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SUMMER SCHOOL CHAIR |
Fernando Huenupan, Universidad de La Frontera, Temuco |
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PUBLICATION CHAIR |
Daniel Sbarbaro, Universidad de Concepción, Concepción (UDEC) |
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SPONSORS CHAIR |
Gonzalo Acuña, Universidad de Santiago de Chile, Santiago |
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TOPICS CHAIR |
Claudio Held, Universidad de Chile, Santiago Felipe Tobar, Universidad de Chile, Santiago María Cristina Riff, Universidad Técnica Federico Santa María, Valparaíso Pablo Huijse, Universidad Austral de Chile, Valdivia |
CONTACT
Please feel free to contact any of the Program Chairs in case you have any questions about the Conference at {cesar.sanmartin@ufrontera.cl, nelson.aros@ufrontera.cl}.
Boost your EAI index by submitting to INISCOM 2020!
March 11th, 2020
Daniela Lopez de Luise
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