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July 2024
- 2 participants
- 2 messages
PhD Position at Eindhoven University of Technology (TU/e) in the area of Uncertainty in Artificial Intelligence
by Van Camp, Arthur
PhD Position at Eindhoven University of Technology (TU/e) in the area of Uncertainty in Artificial Intelligence
The Uncertainty in Artificial Intelligence Group (https://uai.win.tue.nl<https://uai.win.tue.nl/>) at Eindhoven University of Technology has an open position for a PhD student. The employment is full time for five years, with an intermediate evaluation (go/no-go) after nine months.
The PhD research's more specific area is imprecise probability theory. The research focuses on bringing the theory of choice functions to applications. This project allows for doing fundamental research, with the aim of advancing the theory towards applications.
The candidate should hold a master's degree in mathematics, computer science, or a related field.
Further details about this position, and a link to the application system, can be found at https://jobs.tue.nl/en/vacancy/phd-in-uncertainty-in-artificial-intelligenc….
For further information, please contact Arthur Van Camp (a.van.camp(a)tue.nl<mailto:a.van.camp@tue.nl>).
July 11, 2024
[CfP] Call for Contributions - WSCL @ ECAI 2024 Workshop - Deadline Extension
by Andrea Campagner
(Apologies for multiple postings)
Call for Contributions
Weakly Supervised and Cautious Learning (WSCL) workshop
Bridging machine learning and uncertainty management
Workshop Information
Co-located with the 27th European Conference on Artificial Intelligence
(ECAI 2024)
Location: Santiago de Compostela, Spain
Dates: 19-20th October 2024
Website: https://sites.google.com/unimib.it/wscl2024/
In recent years, machine learning (ML) has been increasingly applied in a
variety of settings, with promise to analyze huge and heterogeneous volumes
of data, improve decisional accuracy, and ease human labor. These systems
have been predominantly built based on the supervised learning paradigm,
which relies on the availability of huge amounts of data, assumed to be
reliably labeled by human experts.
However, with this increasing interest has also come the realization that
the real-world is often far from the idealized perfection assumed in the
supervised paradigm: data can be missing or noisy; supervision can be
costly to obtain or have veracity issues; human users could fail at
appropriating technologies based on ML, due to the incapability of ML
models at reliably conveying their uncertainty.
As a result, recently, increasing interest has been devoted to the
development of techniques capable of dealing with these issues. These
include uncertainty quantification and cautious learning, where the ML
models convey to the users their uncertainty to improve reliability and
reduce cognitive biases; as well as weakly supervised learning and its
variants, such as incomplete supervision, where only a subset of training
data is labeled; imprecise supervision, where the training data is
coarse-grained labeled; and inaccurate supervision, where the labels are
not always true. At the same time, due to the inherently multidisciplinary
nature of these issues, there has been an increasingly deepened dialogue
between ML and
neighboring scientific fields, such as knowledge and uncertainty
representation, as well as human-computer interaction, crowd-sourcing and
active learning.
The aim of this workshop is to explore how machine learning and related
methods can handle weak supervision and provide more cautious and reliable
support in the presence of data imperfection, as well as encourage broad
discussion between ML researchers and experts in neighboring related fields
whose underlying principles and foundations are central to allow the
functioning of systems built on ML in less than perfect real-world
settings.
Topics of Interest
We invite all researchers in AI and neighboring disciplines interested in
the interplay between Machine Learning and Uncertainty to submit their work
to WSCL workshop, which will be held during 19-20 October 2024, as a
satellite event to the 27th European Conference on Artificial Intelligence
(ECAI 2024).
We welcome submissions on topics related to both weakly supervised learning
and uncertainty quantification. More generally, the topics of interest
include:
● Weakly supervised learning (including, learning from noisy data,
multi-instance learning, learning from imprecise data, ...);
● Uncertainty quantification (including, probabilistic and Bayesian machine
learning, conformal prediction, three-way decision, set-valued approaches,
possibilistic and evidential machine learning, ...);
● Uncertainty management and non-standard theories of uncertainty
(including, foundations of probability theory, rough sets, fuzzy sets and
possibility theory, evidence theory and belief functions, imprecise
probabilities and credal sets, ...);
● Conformal prediction and related methods (including, Venn prediction,
online learning, compression models, algorithmic information theory);
● Human-AI interaction and uncertainty communication;
● Active learning;
● Crowd-sourcing and data perspectivism
Submission Instructions
We welcome different types of submissions:
● full original papers (up to 7 pages);
● extended abstracts (up to 4 pages);
● already published work;
● review transfer for papers rejected at ECAI main track.
Each accepted submission, irrespective of the type, will be assigned an
oral presentation slot.
Articles rejected at the main track of the ECAI 2024 conference, but
relevant to the topics of interest of the workshop, may be transferred at
the WSCL workshop based on the ECAI reviews. If you want to take advantage
of this option, aside from submitting your contribution to the workshop,
you should also fill-in the form at https://forms.gle/QPav5rHVMCuSMhFZ9 before
the 11th July 2024
Contributions should be submitted through the chairingtool platform,
available at the following link:
https://chairingtool.com/conferences/WSCL24/MainTrack/
Original submissions (both full papers and extended abstracts) should be
formatted according to the ECAI formatting instructions, using the ECAI
2024 template and formatting requirements specified by ECAI.
The purpose of workshop presentations is to get early feedback on new ideas
and to stimulate discussions between researchers interested in weakly
supervised and cautious learning. As such, there will be no formal
proceedings, but we may post accepted papers on the workshop website for
the benefit of the workshop participants if the authors agree to this (and
the paper has not already been published). Also, depending on the number of
accepted contributions we may decide on organizing a special issue on a
relevant scientific journal.
Key Dates
● Submission deadline: 12th July 2024
● Review Transfer submission deadline: 12th July 2024
● Accept/Reject communications: 18th July 2024
● Early registration deadline: 15th August 2024
● Workshop date: 19-20th October 2024
Organizers
● Andrea Campagner, IRCCS Ospedale Galeazzi Sant’Ambrogio (Milan, Italy),
andrea.campagner(a)unimib.it (primary contact person)
● Davide Ciucci, University of Milano-Bicocca (Milan, Italy),
davide.ciucci(a)unimib.it
● Sébastien Destercke, Heudyasic Laboratory, CNRS (Compiègne, France),
sebastien.destercke(a)hds.utc.fr
●Luciano Sànchez, University of Oviedo(Oviedo,Spain), luciano(a)uniovi.es
July 1, 2024