From Good Intentions to Behaviour Change

Probabilistic Feature Diagrams for Behaviour Support Agents

Conference Paper (2019)
Author(s)

Malte S. Kließ (TU Delft - Interactive Intelligence)

Marielle Stoelinga (University of Twente)

M. Birna Van Riemsdijk (University of Twente, TU Delft - Interactive Intelligence)

Research Group
Interactive Intelligence
DOI related publication
https://doi.org/10.1007/978-3-030-33792-6_22
More Info
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Publication Year
2019
Language
English
Research Group
Interactive Intelligence
Volume number
11873
Pages (from-to)
354-369
ISBN (print)
9783030337919

Abstract

Behaviour support technology assists people in organising their daily activities and changing their behaviour. A fundamental notion underlying such supportive technology is that of compliance with behavioural norms: do people indeed perform the desired behaviour? Existing technology employs a rigid implementation of compliance: a norm is either satisfied or not. In practice however, behaviour change norms are less strict: E.g., is a new norm to do sports at least three times a week complied with if it is occasionally only done twice a week? To address this, in this paper we formally specify probabilistic norms through a variant of feature diagrams, enabling a hierarchical decomposition of the desired behaviour and its execution frequencies. Further, we define a new notion of probabilistic norm compliance using a formal hypothesis testing framework. We show that probabilistic norm compliance can be used in a real-world setting by implementing and evaluating our semantics with respect to an existing daily behaviour dataset.

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