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Shunlong Wu

4 accepted papers

2026

AgentSteerTTS: A Multi-Agent Closed-Loop Framework for Composite-Instruction Text-to-Speech

ICML 2026poster

While existing text-to-speech (TTS) models exhibit high expressiveness, fine-grained control over composite instructions remains challenging due to the structural mismatch between discrete textual intents and continuous acoustic realizations. Inspired by human cognitive decoupling, we introduce Agen…

Cited by 0SourceScholar
2026

LongHorizonUI: A Unified Framework for Robust long-horizon Task Automation of GUI Agent

ICLR 2026poster

Although agents based on multimodal large language models (MLLMs) demonstrate proficiency in general short-term graphical user interface (GUI) tasks, their robustness remains a significant challenge for handling complex long-horizon tasks in dynamic environments . In response, the LongHorizonUI fram…

Cited by 0SourcecodeScholar
2026

SEMANTICACHE: EFFICIENT KV CACHE COMPRESSION VIA SEMANTIC CHUNKING AND CLUSTERED MERGING

ICASSP 2026oral

Existing KV cache compression methods generally operate on discrete tokens or non-semantic chunks. However, such approaches often lead to semantic fragmentation, where linguistically coherent units are disrupted, causing irreversible information loss and degradation in model performance. To address…

Cited by 0SourcePDFScholar
2025

DAST: Context-Aware Compression in LLMs via Dynamic Allocation of Soft Tokens

ACL 2025finding

Large Language Models (LLMs) face computational inefficiencies and redundant processing when handling long context inputs, prompting a focus on compression techniques. While existing semantic vector-based compression methods achieve promising performance, these methods fail to account for the intrin…

Cited by 0SourcePDFScholar