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Jiahao Jiang

6 accepted papers

2026

Towards Better IncomLDL: We Are Unaware of Hidden Labels in Advance

AAAI 2026technical

Label distribution learning (LDL) is a novel paradigm that describe the samples by label distribution of a sample. However, acquiring LDL dataset is costly and time-consuming, which leads to the birth of incomplete label distribution learning (IncomLDL). All the previous IncomLDL methods set the de

Cited by 0SourcePDFScholar
2024

BEVNav: Robot Autonomous Navigation via Spatial-Temporal Contrastive Learning in Bird's-Eye View

RA-L 2024

Goal-driven mobile robot navigation in map-less environments requires effective state representations for reliable decision-making. Inspired by the favorable properties of Bird's-Eye View (BEV) in point clouds for visual perception, this paper introduces a novel navigation approach named BEVNav. It

Cited by 10SourceScholar
2023

DMCL: Robot Autonomous Navigation via Depth Image Masked Contrastive Learning

IROS 2023poster

Achieving high performance in deep reinforcement learning relies heavily on the ability to obtain good state representations from pixel inputs. However, learning an observation-space-to-action-space mapping from high-dimensional inputs is challenging in reinforcement learning, particularly when deal…

Cited by 3SourceScholar
2023

ST${2}$: Spatial-Temporal State Transformer for Crowd-Aware Autonomous Navigation

RA-L 2023

Empowering an intelligent agent with the ability of autonomous navigation in complex and dynamic environments is an important and active research topic in embodied artificial intelligence. In this letter, we address this challenging task from the view of exploiting both the spatial and temporal stat

Cited by 34SourceScholar