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Songhao Jiang

4 accepted papers

2025

Global Eye: Breaking the “Fixed Thinking Pattern” during the Instruction Expansion Process

ACL 2025long

An extensive high-quality instruction dataset is crucial for the instruction tuning process of Large Language Models (LLMs). Recent instruction expansion methods have demonstrated their capability to improve the quality and quantity of existing datasets, by prompting high-performance LLM to generate…

Cited by 0SourcePDFScholar
2024

Entropy-Reinforced Planning with Large Language Models for Drug Discovery

ICML 2024poster

The objective of drug discovery is to identify chemical compounds that possess specific pharmaceutical properties toward a binding target. Existing large language models (LLMS) can achieve high token matching scores in terms of likelihood for molecule generation. However, relying solely on LLM decod…

2024

Hit the Nail on the Head: Parameter-Efficient Multi-task Tuning via Human Language Intervention

EMNLP 2024finding

Parameter-Efficient Fine-Tuning (PEFT) on small Pre-trained Language Models (PLMs) has emerged as a promising approach to enhance their multi-tasking capabilities. Prevalent methods simultaneously train additional modules (i.e., one task-shared module and multiple task-specific modules) for adapting…

Cited by 0SourcePDFScholar
2023

Explainable Text Classification via Attentive and Targeted Mixing Data Augmentation

IJCAI 2023poster

Mixing data augmentation methods have been widely used in text classification recently. However, existing methods do not control the quality of augmented data and have low model explainability. To tackle these issues, this paper proposes an explainable text classification solution based on attentive…

Cited by 6SourcePDFScholar