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Ze-Hao Jin

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#artificial intelligence Review Sep 2026

Safety in Self-Evolving Agents: A Survey

Large language models (LLMs) exhibit strong general capabilities, yet their parameters typically remain fixed after deployment, limiting learning from new interactions. In open-ended environments, this motivates self-evolving agents that continually update reusable state-including model parameters, memories, tool defin...

Jia-Hao Chen, Zhou Feng, Ou-Bo Ma et al. · 0 citations
#artificial intelligence Preprint Sep 2026

Transformers Stop Thinking Too Early, and a Tiny LoRA Fixes It

Pretrained transformers use little of their depth to follow references in context. Thirteen base models reliably follow only 1.4-3.6 lines, and extra pretrained loops add little. A task-trained rank-8 LoRA at one early layer extends this computation with all model weights frozen. Qwen3-8B improves from 15.5% to 99% exa...

Ze-Hao Jin, Rui-Xuan Deng, Jun-Ran Wang · 0 citations
#artificial intelligence Preprint Sep 2026

AcFlow: Controlling Text-to-Image Diffusion Transformers via Learned Conditional Activation Flow

AcFlow is introduced, an inference-time controller that transports intermediate layer image-token activations through a learned concept-conditioned velocity field while keeping the base DiT frozen, and supports the learned velocity field as an adaptive control mechanism.

Jun-Ran Wang, Ze-Hao Jin, Tian-Yu Luan et al. · 0 citations

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