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Wenxuan Ye

5 accepted papers

2026

AlphaAgentEvo: Evolution-Oriented Alpha Mining via Self-Evolving Agentic Reinforcement Learning

ICLR 2026poster

Alpha mining seeks to identify predictive alpha factors that generate excess returns beyond the market from a vast and noisy search space; however, existing approaches struggle to facilitate the systematic evolution of alphas. Traditional methods, such as genetic programming, are unable to interpret…

Cited by 0SourceScholar
2026

Select to Think: Unlocking SLM Potential with Local Sufficiency

ICML 2026poster

Small language models (SLMs) offer computational efficiency for scalable deployment, yet they often fall short of the reasoning capabilities exhibited by their larger counterparts (LLMs). To mitigate this gap, current approaches invoke an LLM to generate tokens at points of reasoning divergence, but…

Cited by 0SourceScholar
2025

Adaptive Few-shot Prompting for Machine Translation with Pre-trained Language Models

AAAI 2025technical

Recently, Large Language Models (LLMs) with in-context learning have demonstrated remarkable potential in handling neural machine translation. However, existing evidence shows that LLMs are prompt-sensitive and it is sub-optimal to apply the fixed prompt to any input for downstream machine translati…

Cited by 0SourcePDFScholar
2024

Adaptive Prompt Routing for Arbitrary Text Style Transfer with Pre-trained Language Models

AAAI 2024technical

Recently, arbitrary text style transfer (TST) has made significant progress with the paradigm of prompt learning. In this paradigm, researchers often design or search for a fixed prompt for any input. However, existing evidence shows that large language models (LLMs) are prompt-sensitive and it is s…

2022

An Approach to Mispronunciation Detection and Diagnosis with Acoustic, Phonetic and Linguistic (APL) Embeddings

ICASSP 2022accepted

Many mispronunciation detection and diagnosis (MD&D) research approaches try to exploit both the acoustic and linguistic features as input. Yet the improvement of the performance is limited, partially due to the shortage of large amount annotated training data at the phoneme level. Phonetic embeddin…

Cited by 0SourceScholar