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David Leake

3 accepted papers

2026

NN-kNN for Regression: Accurate Prediction from Interpretable Retrieval

IJCAI 2026

Neural Network k-Nearest Neighbor (NN-kNN) was proposed as an interpretable network model that learns feature weights and similarity to retrieve relevant cases for classification. This paper extends it to regression with the goal of generating accurate predictions based on neighboring cases with sim

Cited by 0Scholar
2025

EnergyCompress: A General Case Base Learning Strategy

IJCAI 2025

Case-based prediction (CBP) methods do not learn a model of the target decision function but instead perform an inference process that depends on two similarity measures and a reference case base. This paper proposes a strategy, called EnergyCompress, to learn an effective case base by selecting rel