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Xiaolin Chang

8 papers hereh-index 228 citations18 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • middle author3
  • last author5

Across the 8 of 8 papers where every author was matched, so the position is known.

fields
  • cs.LG4
  • cs.CR3
  • cs.AI1
same name
  • Xiaolin Chang — 1 paper, h 24
  • Xiaolin Chang — 1 paper, h 1
  • Xiaolin Chang — 1 paper, h 10
  • Xiaolin Chang — 1 paper

Either other researchers who publish under this name, or the same person where the external sources have not merged their records.

identity via Semantic Scholar / OpenAlex

collaborators
Showing cs.LGShow all

4 papers · 1 filter

cs.LG2026

Robust Driving Control for Autonomous Vehicles: An Intelligent General-sum Constrained Adversarial Reinforcement Learning Approach

Junchao Fan, Qi Wei, Ruichen Zhang +4

Deep reinforcement learning (DRL) has demonstrated remarkable success in developing autonomous driving policies. However, its vulnerability to adversarial attacks remains a critica…

cs.LG2026

Sparse Threats, Focused Defense: Criticality-Aware Robust Reinforcement Learning for Safe Autonomous Driving

Qi Wei, Junchao Fan, Zhao Yang +3

Reinforcement learning (RL) has shown considerable potential in autonomous driving (AD), yet its vulnerability to perturbations remains a critical barrier to real-world deployment.…

cs.LG2025

DRAGD: A Federated Unlearning Data Reconstruction Attack Based on Gradient Differences

Bocheng Ju, Junchao Fan, Jiaqi Liu +1

Federated learning enables collaborative machine learning while preserving data privacy. However, the rise of federated unlearning, designed to allow clients to erase their data fr…

cs.LG2025

Sharpening the Spear: Adaptive Expert-Guided Adversarial Attack Against DRL-based Autonomous Driving Policies

Junchao Fan, Xuyang Lei, Xiaolin Chang

Deep reinforcement learning (DRL) has emerged as a promising paradigm for autonomous driving. However, despite their advanced capabilities, DRL-based policies remain highly vulnera…

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