concept-bottleneck-models

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ReCBM: Uncertainty-Gated Relational Reasoning for Concept Bottleneck Models

arXiv cs.AI · 2026-08-12 Cached

ReCBM proposes an uncertainty-gated relational reasoning framework for Concept Bottleneck Models, introducing concept relations like co-occurrence, implication, and exclusion to recover unreliable or missing concept states and improve interpretability and downstream predictions.

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Hoeffding Concept Bottleneck Models with Applications to Overhead Images

arXiv cs.LG · 2026-06-02 Cached

Introduces Hoeffding Concept Bottleneck Models (HCBM), a nonlinear and sparse aggregation of concept scores using Hoeffding functional decomposition of gradient-boosted trees, for improved explainability and accuracy in classification and object detection tasks, with applications to overhead images.

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CLIF: Concept-Level Influence Functions for Transparent Bottleneck Models

arXiv cs.CL · 2026-05-20 Cached

This paper proposes CLIF, a method using influence functions to interpret NLP models at both sample and concept levels within Concept Bottleneck Models, enabling transparent debugging and concept-level analysis.

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Towards Fine-Grained and Verifiable Concept Bottleneck Models

arXiv cs.LG · 2026-05-15 Cached

This paper proposes a fine-grained concept bottleneck model framework that grounds each concept in localized visual evidence, enabling direct verification of concept correctness and improving transparency in medical imaging tasks.

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