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Expert Prediction, Symbolic Learning, and Neural Networks: An Experiment on Greyhound Racing

Descripción
  • For our research, we investigated a different problem-solving scenario called game playing, which is unstructured, complex, and seldom-studied. We considered several real-life game-playing scenarios and decided on greyhound racing. The large amount of historical information involved in the search poses a challenge for both human experts and machine-learning algorithms. The questions then become: Can machine-learning techniques reduce the uncertainty in a complex game-playing scenario? Can these methods outperform human experts in prediction? Our research sought to answer these questions.
Autor
  • Chen, Hsinchun
  • Buntin, P.
  • She, Linlin
  • Sutjahjo, S.
  • Sommer, C.
  • Neely, D.
Fecha
  • 1994-12-01
Tipo
  • Journal Article (Paginated)
    Identificador