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Junghyup Lee

13 accepted papers

2025

Subnet-Aware Dynamic Supernet Training for Neural Architecture Search

CVPR 2025poster

N-shot neural architecture search (NAS) exploits a supernet containing all candidate subnets for a given search space. The subnets are typically trained with a static training strategy (e.g., using the same learning rate (LR) scheduler and optimizer for all subnets). This, however, does not consider…

Cited by 0SourcePDFScholar
2024

Toward INT4 Fixed-Point Training via Exploring Quantization Error for Gradients

ECCV 2024poster

"Network quantization generally converts full-precision weights and/or activations into low-bit fixed-point values in order to accelerate an inference process. Recent approaches to network quantization further discretize the gradients into low-bit fixed-point values, enabling an efficient training.…

Cited by 0SourcePDFScholar
2022

Decomposed Knowledge Distillation for Class-Incremental Semantic Segmentation

NeurIPS 2022accept

Class-incremental semantic segmentation (CISS) labels each pixel of an image with a corresponding object/stuff class continually. To this end, it is crucial to learn novel classes incrementally without forgetting previously learned knowledge. Current CISS methods typically use a knowledge distillati…

Cited by 38SourcePDFScholar
2022

OIMNet++: Prototypical Normalization and Localization-Aware Learning for Person Search

ECCV 2022poster

"We address the task of person search, that is, localizing and re-identifying query persons from a set of raw scene images. Recent approaches are typically built upon OIMNet, a pioneer work on person search, that learns joint person representations for performing both detection and person re-identif…

2021

Learning by Aligning: Visible-Infrared Person Re-Identification Using Cross-Modal Correspondences

ICCV 2021poster

We address the problem of visible-infrared person re-identification (VI-reID), that is, retrieving a set of person images, captured by visible or infrared cameras, in a cross-modal setting. Two main challenges in VI-reID are intra-class variations across person images, and cross-modal discrepancies…

Cited by 246PDFScholar
2021

Video-Based Person Re-Identification With Spatial and Temporal Memory Networks

ICCV 2021poster

Video-based person re-identification (reID) aims to retrieve person videos with the same identity as a query person across multiple cameras. Spatial and temporal distractors in person videos, such as background clutter and partial occlusions over frames, respectively, make this task much more challe…

Cited by 103PDFcodeScholar
2020

Learning with Privileged Information for Efficient Image Super-Resolution

ECCV 2020poster

Convolutional neural networks (CNNs) have allowed remarkable advances in single image super-resolution (SISR) over the last decade. Most SR methods based on CNNs have focused on achieving performance gains in terms of quality metrics, such as PSNR and SSIM, over classical approaches. They typically…

Cited by 162SourcePDFScholar