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Hailfinder

Tools for and experiences with Bayesian normative modeling

Bibliographic Data

ID18922129
AuthorsWard Edwards (University of California, Los Angeles, corresponding author)
Year1998
Volume53
Issue4
Pages416-428
Publication date1998-01-01
Peer ReviewedYes
Open AccessNo
TypeARTICLE
VenueAmerican Psychologist (JOURNAL)
Journal identifiersISSN: 0003-066X • E-ISSN: 1935-990X
PublisherAmerican Psychological Association (PUBLISHER • US)
DOI10.1037//0003-066x.53.4.416
PMID9572005
OpenAlexW2152898342
LanguageEN
Citations received1

Bayes Nets (BNs) and Influence Diagrams (IDs), new tools that use graphic user interfaces to facilitate representation of complex inference and decision structures, will be the core elements of new computer technologies that will make the 21st century the Century of Bayes. BNs are a way of representing a set of related uncertainties. They facilitate Bayesian inference by separating structural information from parameters. Hailfinder is a BN that predicts severe summer weather in Eastern Colorado. Its design led to a number of novel ideas about how to build such BNs. Issues addressed included representation of spatial location, categorization of days, system boundaries, pruning, and methods for eliciting and checking on the appropriateness of conditional probabilities. The technology of BNs is improving rapidly. Especially important is the emergence of ways of reusing fragments of BNs. BNs and IDs are not just important design tools; they also represent a major enhancement of the understanding about how important intellectual tasks typically performed by people should and can be performed

Bayes' theorem · Bayesian inference · Bayesian network · Bayesian probability · Categorization · Data science · Human–computer interaction · Inference · Machine learning · Normative · Pruning · Representation (politics) · Set (abstract data type) · Artificial Intelligence · Bayesian Modeling and Causal Inference · Computer Science · Data Visualization and Analytics · Semantic Web and Ontologies

  • From Prediction to Learning

    Richard K Herrmann, Richard Herrmann et al.•International Security•2007

Unique citing works1
Citations per year0,05
Citation span2007 - 2007 (1)
Citation velocityhistorical
Highly citedNo
Citation typesNeutral: 1

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