Code for the paper: Discover-then-Name: Task-Agnostic Concept Bottlenecks via Automated Concept Discovery. ECCV 2024.
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Updated
Nov 3, 2024 - Python
Code for the paper: Discover-then-Name: Task-Agnostic Concept Bottlenecks via Automated Concept Discovery. ECCV 2024.
Tools for Formal Concept Analysis
[ECCV 2024 Oral] ConceptExpress: Harnessing Diffusion Models for Single-image Unsupervised Concept Extraction
System for Medical Concept Extraction and Linking
Retrospective Extraction of Visual and Logical Insights for Ontology-based interpretation of Neural Networks
Concept Explorer is an educational web app designed to make exploring concepts as exciting as exploring the physical world. It uses AI-powered data generated by the Concept Generator project to provide engaging and interactive concept exploration.
Concept Generator utilizes ChatGPT 3.5 to generate multifaceted data about concepts, which are fundamental building blocks in thinking. The project yields three types of data: Relational, Comparative, and Descriptive. It's designed for learners, educators, researchers, and anyone curious about the intricacies of human thought.
Explainability of Deep Learning Models
REST-API for LearningMiner.
CoCo-Ex extracts meaningful concepts from natural language texts and maps them to conjunct concept nodes in ConceptNet, utilizing the maximum of relational information stored in the ConceptNet knowledge graph.
CoCo-Ex extracts meaningful concepts from natural language texts and maps them to conjunct concept nodes in ConceptNet, utilizing the maximum of relational information stored in the ConceptNet knowledge graph.
Library implementing state-of-the-art Concept-based and Disentanglement Learning methods for Explainable AI
The replication package of STRICT: Search Term Identification for Concept Location using Graph-Based Term Weighting
A toolkit to do concept expansion via search engine snippet
Web Of Things Ontology Inspection
MEME: Generating RNN Model Explanations via Model Extraction
CME: Concept-based Model Extraction
Clinical text-mining/machine learning project I did as part of my masters thesis at LIG.
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