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Author

Xikai Yang

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#artificial intelligence Preprint Sep 2026

Noisy Test-Time Reinforcement Learning for Code LLMs

The Noisy Test-time Reinforcement Learning framework (NTRL-Code) is proposed, which enables robust self-evolution of code LLMs using only unlabeled noisy data during the testing stage, and employs an abstract-syntax-tree (AST)-based structural aggregation mechanism to estimate a proxy target from multiple candidate pro...

Xi-Kai Yang, Hieu Trung Nguyen, Dun-Yuan Xu et al. · 0 citations
#artificial intelligence Preprint Jun 2026

DeepDiscovery: A Location-Inference Framework for Task-Level Repository Understanding

DeepDiscovery is presented, a task-level repository-understanding method for large industrial codebases that uses a two-stage \textit{Location--Inference} framework to localize high-confidence task anchors and recover broader task-relevant context over multi-relational repository structure under budget constraints.

Jia-Wei He, Wei-Song Sun, Mengyu Shi et al. · 1 citation
#artificial intelligence Open access Jul 2026

Revolutionizing Turn-by-Turn Navigation With Cloud-Edge Deep Learning

This work proposes a novel deep learning framework that leverages the powerful spatiotemporal information processing capabilities of Transformers and the strong multi-task learning abilities of Mixture of Experts to generate real-time, context-aware audio instructions for TBT driving navigation.

Yi-Ming Yang, Hao Fu, Fan-Xiang Zeng et al. · 0 citations

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