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Jihun Yi

4 accepted papers

2024

Interactive Text-to-Image Retrieval with Large Language Models: A Plug-and-Play Approach

ACL 2024long

In this paper, we primarily address the issue of dialogue-form context query within the interactive text-to-image retrieval task. Our methodology, PlugIR, actively utilizes the general instruction-following capability of LLMs in two ways. First, by reformulating the dialogue-form context, we elimina…

2021

BBAM: Bounding Box Attribution Map for Weakly Supervised Semantic and Instance Segmentation

CVPR 2021poster

Weakly supervised segmentation methods using bounding box annotations focus on obtaining a pixel-level mask from each box containing an object. Existing methods typically depend on a class-agnostic mask generator, which operates on the low-level information intrinsic to an image. In this work, we ut…

Cited by 232PDFcodeScholar
2021

Removing Undesirable Feature Contributions Using Out-of-Distribution Data

ICLR 2021poster

Several data augmentation methods deploy unlabeled-in-distribution (UID) data to bridge the gap between the training and inference of neural networks. However, these methods have clear limitations in terms of availability of UID data and dependence of algorithms on pseudo-labels. Herein, we propose…

2020

iCaps: An Interpretable Classifier via Disentangled Capsule Networks

ECCV 2020poster

We propose an interpretable Capsule Network, iCaps, for image classification. A capsule is a group of neurons nested inside each layer, and the one in the last layer is called a class capsule, which is a vector whose norm indicates a predicted probability for the class. Using the class capsule, exis…

Cited by 15SourcePDFScholar