SK
Sietze Kuilman
13 records found
1
Authored
Normative uncertainty and societal preferences
The problem with evaluative standards
Many technological systems these days interact with their environment with increasingly little human intervention. This situation comes with higher stakes and consequences that society needs to manage. No longer are we dealing with 404 pages: AI systems today may cause serious ha
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Chronic lifestyle-related disease is one of the major health problems the world is facing in the twenty-first century. One of the ways to address the problem of chronic lifestyle-related disease is through programs which support lifestyle changes. Research shows the actual benefi
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Contributed
Aggregation of energy consumption forecasts across spatial levels
Using CNN-LSTM forecasts of lower spatial levels to forecast on higher spatial levels
Bottom up load forecasting, is a technique where energy consumption forecasts are made on lower spatial levels, after which the resulting forecasts are aggregated to form forecasts of higher spatial levels. With the current move to renewable energy sources and the importance of r
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Mechanism to detect mismatches and provide recommendations about the users' preference in negotiation support systems
A case study about issue weight mismatches with the pocket negotiator
Negotiation Support Systems (NSSs) can provide help based on the preference setting (domain, issue weights, issue ranking, strategies, etc.) of the users of the systems. However, sometimes the users of the systems might make mistakes in the preference setting. With wrong preferen
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Aggregation and Prediction of Energy Consumption Data
What is the Aggregatino Level at which a Graph Neural Network Performs Optimally?
Electrical load forecasting, namely short-term load forecasting, is essential to power grids’ safe and efficient operations. The need for accurate short-term load forecasting becomes increasingly pressing with increased renewable energy sources, which are stochastic in their powe
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Partial Hierarchy Appliance Modelling In Household Energy Consumption
Utilizing ARMA based methods to improve the prediction of household energy consumption
The ever-evolving power grid is becoming smarter and smarter. Modern houses come with smart meters and energy conscious consumers will buy additional smart meters to place in their home to help monitor their energy consumption. This new smart technology also opens the door to mor
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Improving the Generalisability of Deep Learning NILM Algorithms using One-Shot Transfer Learning
Can one-shot transfer learning be leveraged to enhance the performance of a CNN-based NILM algorithm on unseen data?
Non-Intrusive Load Monitoring (NILM) is a technique used to disaggregate household power consumption data into individual appliance components without the need for dedicated meters for each appliance. This paper focuses on improving the generalizability of NILM algorithms to unse
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Disaggregation of Community Level Energy Data to Individual Households
Using sequence-to-point learning
Non-intrusive load monitoring (NILM) is a well-researched concept that aims to provide insights into individual appliance energy usage without the need for dedicated meters. This paper explores the possibility of applying the NILM concept to disaggregate energy data from a commun
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Fairness by Discussion
An Alternative View on the Fairness of Protocols in Automated Negotiation
The field of automated negotiation promises to improve negotiations, thus, a fair outcome and process should also be considered when building these systems. However, issues exist with computational approaches to fairness with which the field of computer science is mainly concerned.
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Is there a way to incorporate fairness in the opponent modeling component of an automated agent? Since opponent modeling plays an important role in a negotiation strategy, it is reasonable to research how fairness can be integrated into this component, as it influences the outcom
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In this paper, the unintended consequences, also named edge cases in this paper, of integrating fairness into the automated negotiation process are researched. By finding these unintended consequences, we can deal with them accordingly or avoid them, as to not cause any problems
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This paper aims to define the broad concept of fairness and investigate how it can be measured, especially considering fairness in automated negotiations. The report relies on the work on fairness issues that have been derived from the research of C. Albin [1]. Firstly, the paper
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As automated negotiating agents become more and more part of our daily life, additional care needs to be taken that the agents can negotiate fairly. Humans each have their own intrinsic view on fairness, which affects the negotiation processes and the degree to which the outcome
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