Information Processing & Management (IP&M) (IF: 6.222) Special Issue on Science Behind Neural Language Models

This is Michal Ptaszynski from Kitami Institute of Technology, Japan.

We are accepting papers for the Information Processing & Management (IP&M) (IF: 6.222) journal Special Issue on Science Behind Neural Language Models. This special issue is also a Thematic Track at Information Processing & Management Conference 2022 (IP&MC2022), meaning, that at least one author of the accepted manuscript will need to attend the IP&MC2022 conference.
For more information about IP&MC2022, please visit:
https://www.elsevier.com/events/conferences/information-processing-and-management-conference

The deadline for manuscript submission is June 15, 2022, but your paper will be reviewed immediately after submission and will be published as soon as it is accepted.

We hope you will consider submitting your paper.
https://www.elsevier.com/events/conferences/information-processing-and-management-conference/author-submission/science-behind-neural-language-models

Info regarding submission:
https://www.elsevier.com/events/conferences/information-processing-and-management-conference/author-submission

Best regards,

Michal PTASZYNSKI, Ph.D., Associate Professor
Department of Computer Science
Kitami Institute of Technology,
165 Koen-cho, Kitami, 090-8507, Japan
TEL/FAX: +81-157-26-9327
michal@mail.kitami-it.ac.jp

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Information Processing & Management (IP&M) (IF: 6.222)
Special Issue on “Science Behind Neural Language Models”
                    &
Information Processing & Management Conference 2022 (IP&MC2022)
Thematic Track on “Science Behind Neural Language Models”

Motivation

  The last several years showed explosive popularity of neural language models, especially large pre-trained language models based on the transformer architecture. The field of Natural Language Processing (NLP) and Computational Linguistics (CL) experienced a shift from simple language models such as Bag-of-Words, and word representations like word2vec, or GloVe, to more contextually-aware language models, such as ELMo, or more recently, BERT, or GPT including their improvements and derivatives. The general high performance obtained by BERT-based models in various tasks even convinced Google to apply it as a default backbone in its search engine query expansion module, thus making BERT-based models a mainstream, and a strong baseline in NLP/CL research. The popularity of large pretrained language models also allowed a major growth of companies providing freely available repositories of such models, and, more recently, the founding of Stanford University’s Center for Resear!
 ch on Foundation Models (CRFM).
   However, despite the overwhelming popularity, and undeniable performance of large pretrained language models, or “foundation models”, the specific inner-workings of those models have been notoriously difficult to analyze and the causes of – usually unexpected and unreasonable – errors they make, difficult to untangle and mitigate. As the neural language models keep gaining in popularity while expanding into the area of multimodality by incorporating visual and speech information, it has become the more important to thoroughly analyze, fully explain and understand the internal mechanisms of neural language models. In other words, the science behind neural language models needs to be developed.   

Aims and scope

   With the above background in mind, we propose the following Information Processing & Management Conference 2022 (IP&MC2022) Thematic Track and Information Processing & Management Journal Special Issue on Science Behind Neural Language Models.
   The TT/SI will focus on topics deepening the knowledge on how the neural language models work. Therefore, instead of taking up basic topics from the fields of CL and NLP, such as improvement of part-of-speech tagging, or standard sentiment analysis, regardless of whether they apply neural language models in practice, we will focus on promoting research that specifically aims at analyzing and understanding the “bells and whistles” of neural language models, for which the generally perceived science has not been established yet.

Target audience

   The TT/SI will aim at the audience of scientists, researchers, scholars, and students performing research on the analysis of pretrained language models, with a specific focus on explainable approaches to language models, analysis of errors such models make, methods for debiasing, detoxification and other methods of improvement of the pretrained language models.
The TT/SI will not accept research on basic NLP/CL topics for which the field has been well established, such as improvement of part-of-speech tagging, sentiment analysis, etc., even if they apply neural language models unless they directly contribute to furthering the understanding and explanation of the inner workings of large scale pretrained language models.

List of Topics

List of Topics
The Thematic Track / Special Issue will invite papers on topics listed, but not limited to the following:
– Neural language model architectures
– Improvement of neural language model generation process
– Methods for fine tuning and optimization of neural language models
– Debiasing neural language models
– Detoxification of neural language models
– Error analysis and probing of neural language models
– Explainable methods for neural language models
– Neural language models and linguistic phenomena
– Lottery Ticket Hypothesis for neural language models
– Multimodality in neural language models
– Generative neural language models
– Inferential neural language models
– Cross-lingual or multilingual neural language models
– Compression of neural language models
– Domain specific neural language models
– Expansion of information embedded in neural language models

Important Dates:

Thematic track manuscript submission due date; authors are welcome to submit early as reviews will be rolling: June 15, 2022
Author notification: July 31, 2022
IP&MC conference presentation and feedback: October 20-23, 2022
Post conference revision due date: January 1, 2023

Submission Guidelines:

Submit your manuscript to the Special Issue category (VSI: IPMC2022 HCICTS) through the online submission system of Information Processing & Management.
https://www.editorialmanager.com/ipm/

Authors will prepare the submission following the Guide for Authors on IP&M journal at (https://www.elsevier.com/journals/information-processing-and-management/0306-4573/guide-for-authors). All papers will be peer-reviewed following the IP&MC2022 reviewing procedures.

The authors of accepted papers will be obligated to participate in IP&MC 2022 and present the paper to the community to receive feedback. The accepted papers will be invited for revision after receiving feedback on the IP&MC 2022 conference. The submissions will be given premium handling at IP&M following its peer-review procedure and, (if accepted), published in IP&M as full journal articles, with also an option for a short conference version at IP&MC2022.

Please see this infographic for the manuscript flow:
https://www.elsevier.com/__data/assets/pdf_file/0003/1211934/IPMC2022Timeline10Oct2022.pdf

For more information about IP&MC2022, please visit https://www.elsevier.com/events/conferences/information-processing-and-management-conference.

Thematic Track / Special Issue Editors:

Managing Guest Editor:
Michal Ptaszynski (Kitami Institute of Technology)

Guest Editors:
Rafal Rzepka (Hokkaido University)
Anna Rogers (University of Copenhagen)
Karol Nowakowski (Tohoku University of Community Service and Science)

For further information, please feel free to contact Michal Ptaszynski directly.

IAS-17 new deadline for paper submission – January 31, 2022

*IAS-17 – NEW DEADLINE FOR PAPER SUBMISSIONS: JANUARY 31, 2022*

 

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IAS-17                 : 17th International Conference on Intelligent Autonomous Systems

Venue                 : Hotel Dubrovnik, Zagreb, Croatia

Dates                  : June 13-16, 2022

Website             : https://www.ias-17.org

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Dear Colleagues,

 

We kindly invite you to submit a paper, organize an invited session, workshop, or tutorial, and participate in the 17th International Conference on Intelligent Autonomous Systems (IAS-17), which will be held on June 13-16, 2022 in Zagreb, Croatia.

 

The IAS-17 Scope and Objective:

 

The main objective of IAS-17 is to provide an inspiring forum of scientists, engineers, and students coming from all around the world to present and discuss the latest scientific results, technologies, and ideas enabling Intelligent Autonomous Systems to perform in a safe, skilful, and robust manner handling uncertainty and unforeseen events. Contributions on basic research as well as on relevant applications are expected.

 

Topics of interests include, but are not limited to the following:

  • Industrial Mobile Robots
  • Collaborative Robots/Cobots
  • Household Robots
  • Intelligent Machinery
  • Climbing Robots
  • Outdoor and Field Robots
  • Autonomous Vehicles
  • Healthcare Robots
  • Applied Robots
  • Flying Robots
  • On-Water/Underwater Robots
  • Robot Vision
  • Advanced Obstacle Avoidance
  • Robot Simulations
  • Human-Robot Interaction
  • Semantic Modelling
  • Intelligent Systems Proving Grounds
  • Augmented Robotics
  • Data Fusion and Machine Learning
  • Localisation and SLAM
  • Robots for Industry 4.0
  • Intelligent Perception

 

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IMPORTANT DATES:

 

Submission of full papers: January 10, 2022  January 31, 2022

Notification of paper acceptance: March 14, 2022

Submission of final papers and early registration: April 11, 2022

Submission of invited sessions: December 13, 2021

Submission of workshop and tutorial proposals: December 23, 2021

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Sincerely yours,

Stefano Ghidoni


on behalf of:

 

Ivan Petrović, General Chair, ivan.petrovic@fer.hr  

Emanuelle Menegatti, General Co-chair,  emg@dei.unipd.it

Ivan Marković, Programme Chair, ivan.markovic@fer.hr

https://www.ias-17.org

 

Call for application Master intership in machine learning and signal processing (5-6 months; start: march 2022)

Internship title: Prosodic salience in oral corpora: the contribution of machine learning and signal processing for their identification

 

Context & objective and its expected results:

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

The highlighting of certain elements of an utterance determines the semantic and pragmatic interpretation in the corresponding sentence.

This emphasis is objectified by attention markers (salience), which in the case of oral corpora is limited to a few prosodic features [1].

The originality of the subject is to explore the contribution of signal processing and other communities working on salience [2] to identify new prosodic features useful for the identification of prosodic salience occurrences in oral corpora, in association with current machine learning approaches.

Previous works have enabled the development of expertise on the prosodic characterisation of utterances for the purposes of automatic conviction detection or automatic classification of conviction [3, 4, 5] or injunction [6].

 

Internship Objectives.

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

The first task is a bibliographical study of the features used in linguistics for prosodic salience, as well as on salience markers used in other fields.

A second task will be the development of an automatic system for identifying prosodic salience occurrences, by learning a set of the occurrences identified by expert linguists.

This system could be hybrid, with or without deep learning, with the objective of evaluating the relevance of the markers.

The third task will be the confrontation of this system with a wide large oral corpus, as well as with a corpus being created for reading to children.

 

Required profile

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

The candidate should have a background in machine learning and signal processing with an interest in audio speech processing.

A taste for programming and data processing is appreciated.

The application must include

– a CV

– a letter of motivation

– transcripts of grades from M1 (or equivalent level) and if possible M2

 

* Working place : PRISME Laboratory, University of Orleans, France

* Gratuity about 550 euros / month

* Duration : 5 up 6 months (suitable start: March 2022)

* Contacts : Philippe.ravier@univ-orleans.fr

 

Bibliography

[1] R. GODEMENT-BERLINE, Contribution à l'étude de la focalisation prosodique en français, Actes de la conférence conjointe JEP-TALN-RECITAL, pp. 164-172, 2016.

[2] F. LANDRAGIN, De la saillance visuelle à la saillance linguistique, Saillance. Aspects linguistiques et communicatifs de la mise en évidence dans un texte, Presses Universitaires de Franche-Comté, pp.67-84, 2011, Annales Littéraires de l’Université de Franche-Comté.

[3] A. HACINE-GHARBI, M. PETIT, P. RAVIER, F. NEMO, Prosody Based Automatic Classification of the Uses of French ‘oui’ as Convinced or Unconvinced Uses, 4th International Conference on Pattern Recognition Applications and Methods, ICPRAM, pp. 349- 354, Lisbonne, Portugal, 10-12 January, 2015.

[4] A. HACINE-GHARBI, P. RAVIER, F. NEMO, Local and Global Feature Selection for Prosodic Classification of the Word’s Uses, 6th International Conference on Pattern Recognition Applications and Methods, ICPRAM, pp. 711- 717, Porto, Portugal, February 2017.

[5] A. HACINE-GHARBI, P. RAVIER, Automatic classification of French spontaneous oral speech into injunction and no-injunction classes, 9th International Conference on Pattern Recognition Applications and Methods, ICPRAM, La Valetta, Malta, February 2020.

[6] A. BOUGRINE, P. RAVIER, A. HACINE-GHARBI, H. OUACHOUR LSTM Network based on Prosodic Features for the Classification of Injunction in French Oral Utterances, 11th International Conference on Pattern Recognition Applications and Methods, ICPRAM, Vienna, Austria, (virtual) February 2022

 

Call for papers – IEEE JOURNAL OF SELECTED TOPICS IN SIGNAL PROCESSING (J-STSP)

Dear Colleagues,

Sorry for multiple postings.

Put this on your agenda!


IEEE JOURNAL OF SELECTED TOPICS


IN SIGNAL PROCESSING (J-STSP)


 


 Special issue on “Biometrics at a distance in the Deep Learning era


 


 


Call for papers


Biometrics at a distance (e.g., gait recognition, person re-identification, etc.) is a particular case of biometric analysis that usually does not require the conscious participation of the target subject, being non-invasive at the same time. However, the sample acquisition is almost always affected by adverse conditions, e.g., the lack of details due to the distance itself, so that the robustness to distortions of adopted biometric methods is of paramount importance. This is a well-established topic in the field of information forensics and security. With the arrival of the Deep Learning era, new approaches have started to emerge in dealing with this task. However, in contrast to other computer vision and machine learning problems, as general image/video classification, one of the main challenges that has to be addressed in this type of biometric problem, amongst others, is the lack or limited amount of available annotated data sets for effectively training deep models.


The aim of this special issue is to gather and promote novel deep-learning based approaches for addressing the task of biometrics at a distance. Specifically, we are interested in works that propose new methods to improve the recognition accuracy, the computational burden and/or the scalability of the domain of application for biometrics, being the application of the deep learning paradigm the main component. Special attention will be paid to privacy protection and data security in the context of biometrics. In addition, new large realistic annotated datasets for the related tasks are welcome.


 


Topics The topics of interest for this special issue include, but are not limited to, the following ones:


 


* Gait recognition with Deep Learning


* Face recognition (low resolution) at a distance with Deep Learning


* Person re-identification with Deep Learning


* Soft biometrics at a distance with Deep Learning


* Multimodal biometrics at a distance with Deep Learning


* Heterogeneous and cross-modal biometrics at a distance with Deep Learning


* Information fusion for biometrics with Deep Learning


* Incremental learning for biometrics at a distance with Deep Learning


* Semi- and weakly-supervised learning for biometrics at a distance with Deep Learning


* Algorithms for effective transfer learning applied to biometrics at a distance


* Multi-task learning applied to biometrics at a distance


* Processing and enhancement of low-quality biometric data


* Privacy protection and data security applied to Biometrics at a distance


 


Important Dates


* Paper submission due: 31/July/2022


* First review due: 30/September/2022


* Revised manuscript due: 30/November/2022


* Second review due: 15/January/2023


* Final manuscript due: 28/February/2023


 


Guest Editors


Manuel J. Marin-Jimenez (Lead GE), University of Cordoba, Spain. Email: mjmarin@uco.es


Shiqi Yu, SUSTech, China. Email: yusq@sustech.edu.cn


Yasushi Makihara, Osaka University, Japan. Email: makihara@am.sanken.osaka-u.ac.jp


Vishal Patel, Johns Hopkins University, USA. Email: vpatel36@jhu.edu


Maria de Marsico, Sapienza Università di Roma, Italy. Email: demarsico@di.uniroma1.it


Maneet Singh, AI Garage-Mastercard, India. Email: maneets@iiitd.ac.in


Call for Workshops & Tutorials at RSS 2022 – Deadline Feb 18, 2022

The Organizing Committee for the 2022 Robotics: Science and Systems Conference (RSS 2022) requests proposals for full and half-day workshops and tutorials. 

The RSS workshops and tutorials provide high-quality, topically-focused forums for researchers at the forefront of robotics. This year these events will take place on June 27 and July 1. Workshops and tutorials are intended to supplement the primary conference; as such we seek workshops that will provide a complement to the research in the proceedings being presented in the primary single-track event and tutorials that could support researchers new to the field in quickly gaining the necessary skills and knowledge.


The RSS conference is planned as a hybrid event and at this time we expect that workshops/tutorials will follow suit with a combination of in-person and virtual activities. However, the COVID-19 situation is fluid, and the conference organizers will make more details available at a later date.


We are looking for workshops and tutorials that promote discussion and interaction among the participants. We will select workshops and tutorials based on their educational value, interest, and relevance. Specifically, we welcome and will give priority to:

•              Fully elaborated proposals with confirmed, high-quality, diverse invited speakers as well as solicited posters or presentations. Specifically, we encourage organizers to consider, among others, the diversity of presenters in terms of:

o             Seniority and academic rank (consider inviting senior Ph.D. students and postdocs whose work you appreciate instead of just professors and senior researchers)

o             Gender

o             Race and ethnicity

o             Geographic location

o             Industry, government, and academia

•              Innovative event structures that will encourage discussion and interaction among the participants. Previous examples include structured debates or groupings of senior and junior researchers for brainstorming of new topics for research.

•              Proposals from communities that have not traditionally participated at RSS but are relevant to robotics science, robotics systems, the practice, and the philosophy of the discipline.

•              Tutorials focusing on tools commonly used in work presented at RSS or showcasing new libraries which the community can leverage.

•              Workshops that will encourage analysis and reflection on topics and issues that formulate challenge problems and that promote discussion, debates, and long-term vision.


In order to ensure participation in the workshops we highly recommend speakers agree to participate in no more than 2 accepted workshops and tutorials. We ask workshop organizers to explicitly remind and verify this recommendation with the invited speakers.

In addition to traditional workshops, there will be a special “outlier” track that pushes the boundaries of academic workshops by examining ideas that are (i) important for the field, and (ii) poorly treated by the formal peer-review process. The track will explore unconventional formats and topics that eschew current orthodoxy.


Submissions

We expect proposals to be approximately 2–3 pages in length and no more than 5 pages. The proposal template can be found at:        

https://docs.google.com/document/d/1XXnRBdTjt46K45I1NUdPjWEp01luKlTLEtfHlgc_n3c/edit 

Workshop proposals should be submitted via Easy Chair a
https://easychair.org/my/conference?conf=2022rssworkshop


Please contact the workshop chairs for any clarifications:               

Shuran Song, Columbia University, shurans@cs.columbia.edu      

Katja Mombaur, University of Waterloo, katja.mombaur@uwaterloo.ca


Important Dates

•              Workshop Proposal Submission Deadline: February 18th, 2022

•              Acceptance Notification: March 4th, 2022

•              Workshop dates: June 27 and July 1, 2022


More details: https://roboticsconference.org/information/cfw/

 

 

 

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