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Junyu Zhu

4 accepted papers

2024

LiteGrasp: A Light Robotic Grasp Detection via Semi-Supervised Knowledge Distillation

RA-L 2024

Grasping detection from single images in robotic applications poses a significant challenge. While contemporary deep learning techniques excel, their success often hinges on large annotated datasets and intricate network architectures. In this letter, we present LiteGrasp, a novel semi-supervised li

Cited by 2SourceScholar
2024

Semi-Supervised Learning for Visual Bird’s Eye View Semantic Segmentation

ICRA 2024poster

Visual bird’s eye view (BEV) semantic segmentation helps autonomous vehicles understand the surrounding environment only from front-view (FV) images, including static elements (e.g., roads) and dynamic elements (e.g., vehicles, pedestrians). However, the high cost of annotation procedures of full-su…

Cited by 4SourcecodeScholar
2023

FG-Depth: Flow-Guided Unsupervised Monocular Depth Estimation

ICRA 2023poster

The great potential of unsupervised monocular depth estimation has been demonstrated by many works due to low annotation cost and impressive accuracy comparable to supervised methods. To further improve the performance, recent works mainly focus on designing more complex network structures and explo…

Cited by 8SourceScholar
2023

Self-Supervised Event-Based Monocular Depth Estimation Using Cross-Modal Consistency

IROS 2023poster

An event camera is a novel vision sensor that can capture per-pixel brightness changes and output a stream of asynchronous “events”. It has advantages over conventional cameras in those scenes with high-speed motions and challenging lighting conditions because of the high temporal resolution, high d…

Cited by 7SourceScholar