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Kevin Miller

4 accepted papers

2025

SPARC: Score Prompting and Adaptive Fusion for Zero-Shot Multi-Label Recognition in Vision-Language Models

CVPR 2025poster

Zero-shot multi-label recognition (MLR) with Vision-Language Models (VLMs) faces significant challenges without training data, model tuning, or architectural modifications. Existing approaches require prompt tuning or architectural adaptations, limiting zero-shot applicability. Our work proposes a n…

2025

Scaling Up Temporal Domain Generalization via Temporal Experts Averaging

EMNLP 2025

Temporal Domain Generalization (TDG) aims to generalize across temporal distribution shifts, e.g., lexical change over time. Prior work often addresses this by predicting future model weights. However, full model prediction is prohibitively expensive for even reasonably sized models. Thus, recent me

2023

Cluster-aware Semi-supervised Learning: Relational Knowledge Distillation Provably Learns Clustering

NeurIPS 2023poster

Despite the empirical success and practical significance of (relational) knowledge distillation that matches (the relations of) features between teacher and student models, the corresponding theoretical interpretations remain limited for various knowledge distillation paradigms. In this work, we tak…

Cited by 6SourcePDFScholar
2017

Pre-processing and classification of hyperspectral imagery via selective inpainting

ICASSP 2017accepted

We propose a semi-supervised algorithm for processing and classification of hyperspectral imagery. For initialization, we keep 20% of the data intact, and use Principal Component Analysis to discard voxels from noisier bands and pixels. Then, we use either an Accelerated Proximal Gradient algorithm…

Cited by 0SourceScholar