ICML 2021 Workshop on Machine Learning for Data (ML4data) — Call for Papers

 

Call for Papers: ICML 2021 Workshop

Machine Learning for Data: Automated Creation, Privacy, Bias

Website: https://sites.google.com/view/ml4data

Virtual conference

Date: July 23 or 24 (TBD), 2021 (submission deadline: June 10, 2021)

 

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

 

Call for Papers:

 

We invite researchers to submit their recent work that studies how ML techniques can be used to facilitate and automate a range of data operations (e.g. ML-assisted labeling, synthesis, selection, augmentation), and the associated challenges of quality, security, privacy, and fairness for which ML techniques can also enable solutions. Topics of interest include but are not limited to:

 

– Methods of using ML to assist human annotators in data labeling.

– Methods of automated data engineering, such as synthesis, augmentation, re-weighting, etc.

– Theories, methods, and studies to characterize, detect, or mitigate data bias.

– Methods of detecting and preserving privacy information in data.

– Systems for automating data operations and analytics.

– Applications based on data-human-machine interactions.

 

Authors are welcome to submit 4-6 page papers, with unlimited space for references and supplementary materials. The submissions should follow the ICML 2021 style and formatting guidelines. The review process is double-blind. The submissions should not have been previously published nor have appeared in the ICML main conference. Work currently under submission to another conference is welcome. Papers can be submitted at the following link: https://cmt3.research.microsoft.com/ICML2021ML4data

 

Submissions will be accepted as contributed talks or poster presentations. Accepted papers will be posted on the workshop website. Accepted papers are free to appear in other journals or conference proceedings. 

 

Key Dates:

 

Submission Deadline: June 10, 2021 (11:59pm AOE)

Acceptance Notification: July 1, 2021

Workshop: July 23 or July 24 (TBD), 2021

 

Speakers:

 

Kamalika Chaudhuri (UCSD)

Aleksandra Korolova (USC) (tentative)

Hoifung Poon (Microsoft)

Alex Ratner (UW)

Dawn Song (UCB)

Eric Xing (CMU)

 

Organizers:

 

Zhiting Hu (UCSD, Amazon)

Willie Neiswanger (Stanford)

Benedikt Boecking (CMU)

Erran Li (Amazon, Columbia)

Yi Xu (Amazon)

Belinda Zeng (Amazon)

 

Workshop Overview:

 

As the use of machine learning (ML) becomes ubiquitous, there is a growing understanding and appreciation for the role that data plays for building successful ML solutions. Classical ML research has been primarily focused on learning algorithms and their guarantees. Recent progress has shown that data is playing an increasingly central role in creating ML solutions, such as the massive text data used for training powerful language models, (semi-)automatic engineering of weak supervision data that enables applications in few-labels settings, and various data augmentation and manipulation techniques that lead to performance boosts on many real world tasks. On the other hand, data is one of the main sources of security, privacy, and bias issues in deploying ML solutions in the real world. 

 

This workshop will focus on the new perspective of machine learning for data — specifically how ML techniques can be used to facilitate and automate a range of data operations (e.g. ML-assisted labeling, synthesis, selection, augmentation), and the associated challenges of quality, security, privacy and fairness for which ML techniques can also enable solutions. In this workshop, we aim to bring together researchers and practitioners working on methodology, theory, applications, and systems to exchange ideas, identify key challenges, and advance the field towards the most exciting and promising future directions.

the 7th International Conference on Advanced Intelligent Systems and Informatics (AISI’21),

the 7th International Conference on Advanced Intelligent Systems and Informatics (AISI’21), 

11-13 December 2021, Egypt 

http://egyptscience.net/AISI2021/home.html 

Submission Deadline: July 1, 2021 

We welcome your participation and contribution to the 6th International Conference on Advanced Intelligent Systems and Informatics (AISI’21), held in Cairo, Egypt, during December 11-13, 2021. The 7th edition of AISI will be organized by the Scientific Research Group in Egypt (SRGE) in collaboration with VSB-Technical University of Ostrava, Czech Republic, AISI is organized to provide an international forum that brings together those who are actively involved in the areas of interest and to report on up-to-the-minute innovations and developments, to summarize the state-of-the-art, and to exchange ideas and advances in all aspects of informatics and intelligent systems, technologies and applications. All accepted papers will be published in the conference proceedings published by Springer (Approved) in the series of “advances in intelligent systems & computing” 

We are also providing online presentation facilities for the authors who are unable to attend the conference as well as PPT recording is acceptable. For more details check the CFP attached or check the list of topics from herehttp://egyptscience.net/AISI2021/call-for-paper.html 

Paper submission  https://ocs.springer.com/misc/conference/submitpaperto/AISI2021 

Important Dates:  

–       Paper submission:   

–       Acceptance notification:  

–       Camera-ready:   

–       Registration:   

–       Conference dates:   

July 1, 2021 

August 15, 2021 

August 30, 2021 

August 30, 2021 

December 11-13, 2021 

  

Previous AISI series 

AISI2016 

Proceedings of the International Conference on Advanced Intelligent Systems and Informatics 2016 

AISI2017 

Proceedings of the International Conference on Advanced Intelligent Systems and Informatics 2017 

AISI2018 

Proceedings of the International Conference on Advanced Intelligent Systems and Informatics 2018 

AISI2019 

Proceedings of the International Conference on Advanced Intelligent Systems and Informatics 2019 

AISI2020 

Proceedings of the International Conference on Advanced Intelligent Systems and Informatics 2020 

 

General Chair 

Professor Vaclav Snasel, VSB-Technical University of Ostrava, Czech Republic 

Conference Co-chairs 

Professor Ashraf Darwish, Faculty of Science, Helwan University, Egypt 

Professor Tarek Gaber, School of Science, Engineering & Environment, University of Salford, UK. 

Program Chairs 

Professor Kuo-Chi Chang, Fujian University of Technology, China 

Sincerely, 

On behalf of AISI2021 organizing committee

ENIAC 2021 – Call For Papers

CALL FOR PAPERS


The 18th National Meeting on Artificial and Computational Intelligence

Online event, organized by C4AI Center for Artificial Intelligence,

November 29 – December 03, 2021


>>> Deadline for paper submission: August 09, 2021 <<<


ENIAC 2021 is the eighteenth of a series of successful meetings bringing together Artificial Intelligence and Computational Intelligence, supported by Brazilian Special Interest Groups on Artificial Intelligence and Computational Intelligence from Brazilian Computer Society. 

Due to the COVID-19 pandemic and the sanitary and economical related issues, the ENIAC 2021 will be held online as part of BRACIS 2021. Such event provides a forum for researchers, practitioners, educators, and students to present and discuss innovations, trends, experiences and developments in the fields of Artificial Intelligence and Computational Intelligence. In particular, it is the ideal event for undergraduate and postgraduate students to submit and present their first papers! 


ACTIVITIES AND THEMES

Authors are encouraged to submit articles containing new ideas, discussions on existing work, practical studies, and experiments relevant to the field of Artificial and Computational Intelligence, which have not been previously published. The topics of interest include, but are not limited to:

AI in Emerging Countries: Public Policies and the Future of Work
Applications of Artificial Intelligence
Artificial Life
Artificial Neural Networks
Automated Planning and Scheduling
Automated Reasoning
Computational Intelligence
Computer Vision
Data Mining
Data Science
Decision Making in Food Production Networks
Decision Support Systems
Deep Learning
Distributed Artificial Intelligence and Multiagent Systems
Evolutionary Computation and Metaheuristics
Fundamentals of Artificial Intelligence
Fuzzy Systems
Graph-Oriented Machine Learning
Hybrid Intelligent Systems
Intelligent Human-Computer Interfaces
Intelligent Information Systems
Intelligent Robotic
Intelligent Tutoring Systems
Knowledge Acquisition
Knowledge Base Construction
Knowledge-Enhanced Machine Learning
Knowledge Representation and Reasoning
Logic Programming
Machine Learning
Machine Learning for Medical Diagnosis
Model-Based Reasoning
Natural Language Processing
Natural Language Processing in Portuguese
Ontologies
Representation Learning
Software Tools for Artificial Intelligence
Text and Web Mining


UNDERGRADUATE STUDENT SPECIAL TRACK AND BEST UNDERGRADUATE PAPER AWARD

Following up on ENIAC 2020, we will have a special track for papers whose first author is an Undergraduate student. Such papers will undergo the same reviewing process as papers on the main track. However, the best papers in this track will be invited to make an oral presentation in a special session and will run for the Best Undergraduate Paper Award.


PAPER FORMAT AND SUBMISSION

Manuscripts are limited to twelve (12) pages including text, references, appendices, tables, and figures. Articles may be written either in Portuguese or English, using the SBC article style: 

SBC Template <http://www.sbc.org.br/documentos-da-sbc/summary/169-templates-para-artigos-e-capitulos-de-livros/878-modelosparapublicaodeartigos>

Papers written in Portuguese must have titles and abstracts in English.

Manuscripts that do not follow the formatting guidelines might be rejected without review.

Submissions should be carried out online using the JEMS system: https://jems.sbc.org.br/jems2/

Please select the appropriate track (Undergraduate track for papers whose main author is an Undergraduate student, Main track for the others).

The review process will be double-blind (authors' names and institutions must be omitted in the papers). All submitted papers will be reviewed by at least two experts in the field. Authors of accepted papers will be invited to present their work either in an oral presentation or in a poster session. All accepted papers will likely be published electronically through the SBC Open Lib – SOL. There will be no distinction between papers presented in oral or poster format in the proceedings.


BEST PAPER AWARD AND SPECIAL ISSUE

Authors of selected papers will be invited to present their work in a special session and will run for a Best Paper Award.


IMPORTANT DATES

Paper submission: August 09, 2021
Notification to authors: September 27, 2021
Camera-ready copy due: October 04, 2021

Sparsity in Neural Networks: Advancing Understanding and Practice

[CVML]

We are excited to announce the workshop of “Sparsity in Neural Networks: Advancing Understanding and Practice”. Its inaugural version will take place online at July 8-9, 2021. 

This new workshop will bring together members of many communities working on neural network sparsity to share their perspectives and the latest cutting-edge research. We have assembled an incredible group of speakers, and we are seeking contributed work from the community. 

Attendance is free: please register at the workshop website: https://sites.google.com/view/sparsity-workshop-2021/home 

Submission and review will be handled by OpenReview. The link will be announced on the workshop website soon.

Important Dates

  • June 15, 2021 [AOE time]: Submit an abstract and supporting materials
  • June 25, 2021: Notification of acceptance
  • July 8-9, 2021: Workshop

Topics (including but not limited to)

  • Algorithms for Sparsity
    • Pruning both for post-training inference, and during training
    • Algorithms for fully sparse training (fixed or dynamic), including biologically inspired algorithms
    • Algorithms for ephemeral (activation) sparsity
    • Scaling up sparsity (e.g., large sparsely activated expert models)
  • Systems for Sparsity
    • Libraries, kernels, and compilers for accelerating sparse computation
    • Hardware with support for sparse computation
  • Theory and Science of Sparsity
    • When is overparameterization necessary (or not)
    • Optimization behavior of sparse networks
    • Representation ability of sparse networks
    • Sparsity and generalization
    • The stability of sparse models
    • Forgetting owing to sparsity, including fairness, privacy and bias concerns
    • Connecting neural network sparsity with traditional sparse dictionary modeling
  • Applications for Sparsity
    • Resource-efficient learning at the edge or the cloud
    • Data-efficient learning for sparse models
    • Communication-efficient distributed or federated learning with sparse models 
    • Graph and network science applications

This workshop is non-archival, and it will not have proceedings. We permit under-review or concurrent submissions. Submissions will receive one of three possible decisions:

  • Accept (Spotlight Presentation). The authors will be invited to present the work during the main conference, with live Q&A.
  • Accept (Poster Presentation). The authors will be invited to present their work as a poster during the workshop’s interactive poster sessions.
  • Reject. The paper will not be presented at the workshop.

Eligible Work

  • The latest research innovations at all stages of the research process, from work-in-progress to recently published papers
    • We define “recent” as presented within one year of the workshop, e.g., the manuscript is first publicly available on arxiv or else no earlier than July 9, 2020.
  • Position or survey papers on any topics relevant to this workshop (see above)

Required materials
  1. One mandatory abstract (250 words or fewer) describing the work
  2. One or more of the following accompanying materials that describe the work in further detail. Higher quality accompanying materials improve the likelihood of acceptance and of spotlighting work with an oral presentation.
    1. A poster (in PDF form) presenting results of work-in-progress.
    2. A link to a blog post (e.g., distill.pub, Medium) describing results.
    3. A workshop paper of approximately four pages in length presenting results of work-in-progress. Papers should be submitted using the NeurIPS 2021 format.
    4. A position paper with no page limit.
    5. A published paper in the form that it was published. We will only consider papers that were published in the year prior to this workshop.

We hope you will join us in attendance!

Best Regards,

On behalf of the organizer team (Ari, Atlas, Jonathan, Utku, Michela, Siddhant, Elena, Chang, Trevor, Decebal, and Erich)

Acceso a 7172 cursos de Coursera+

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Machine Learning con Sergio Donzelli

Seminario gratuito online
Miércoles 26 de mayo de 18.30 a 19.15
Se transmite por youtube

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Machine Learning a fondo 

Comienzo: Jueves 27 de Mayo

Horas: 18 en seis clases de tres horas

Horario: Jueves de 18.30 a 21.30 – Hora de Buenos Aires GMT-3

Modalidad: a distancia 

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Finanzas para no financieros
Seminario online gratuito
Sábado 29 de mayo de 9 a 13, hora de Buenos Aires, Argentina GMT-3

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Python: taller práctico orientado al análisis de datos

Taller gratuito

Modalidad: online 

Martes 1 de Junio de 18.30 a 21.30

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Viernes 4 de junio de  18.30 a 21.30,  hora de Buenos Aires, Argentina GMT-3

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Secuencias, series de tiempo y predicciones

Este curso forma parte de Certificado profesional de DeepLearning.AI desarrollador de TensorFlow

CURSO  ON-LINE

Se otorga certificación oficial de Coursera

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Horas: 16, en cuatro clases de cuatro horas

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Curso online
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Horas: 16 en cuatro clases de cuatro horas
Comienzo: sábado 5 de junio
Todos los alumnos serán invitados al Programa de Aprendizaje Tu Éxito Profesional que incluye:
“Career Success – Programa especializado – 10 cursos”.
Podrán obtener un certificado oficial de la Universidad de California, Irvine.

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Análisis de datos con Python

Curso a distancia

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Aprendizaje Reforzado – Universidad de Alberta

Especialización de Coursera

Es un curso de 6 meses

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Smart Cities – Ciudades Inteligentes

Administración Inteligente de Infraestructuras Urbanas

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Horario: Sábados de 9 a 13 – Hora de Buenos Aires, Argentina GMT-3

Modalidad: a distancia 

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Tensorflow: técnicas avanzadas
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Django para todos
Especialización de Coursera
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Comienzo: jueves 8 de julio
Se otorga certificación oficial de la Universidad de Michigan

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