activity
20222026
most citedUniParser: A Unified Log Parser for Heterogeneous Log Data

124 citations · 165 across the 77 of their papers we have counts for

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19 papers · 1 filter

cs.AI2026

TreeSeeker: Tree-Structured Trial, Error, and Return in Deep Search

Zhuofan Shi, Mingzhe Ma, Lu Wang +8

Deep search requires agents to answer complex questions through multi-step web search, browsing, evidence comparison, and synthesis. A central challenge is deciding how to search w…

cs.AI2026

Contrastive Attribution in the Wild: An Interpretability Analysis of LLM Failures on Realistic Benchmarks

Rongyuan Tan, Jue Zhang, Zhuozhao Li +3

Interpretability tools are increasingly used to analyze failures of Large Language Models (LLMs), yet prior work largely focuses on short prompts or toy settings, leaving their beh…

cs.AI2026

DoVer: Intervention-Driven Auto Debugging for LLM Multi-Agent Systems

Ming Ma, Jue Zhang, Fangkai Yang +4

Large language model (LLM)-based multi-agent systems are challenging to debug because failures often arise from long, branching interaction traces. The prevailing practice is to le…

cs.AI2025

GUI-360: A Comprehensive Dataset and Benchmark for Computer-Using Agents

Jian Mu, Chaoyun Zhang, Chiming Ni +14

We introduce GUI-360, a large-scale, comprehensive dataset and benchmark suite designed to advance computer-using agents (CUAs). CUAs present unique challenges and is const…

cs.AI2025

From Reasoning to Answer: Empirical, Attention-Based and Mechanistic Insights into Distilled DeepSeek R1 Models

Jue Zhang, Qingwei Lin, Saravan Rajmohan +1

Large Reasoning Models (LRMs) generate explicit reasoning traces alongside final answers, yet the extent to which these traces influence answer generation remains unclear. In this…

cs.AI2025

AdaptFlow: Adaptive Workflow Optimization via Meta-Learning

Runchuan Zhu, Bowen Jiang, Lingrui Mei +8

Recent advances in large language models (LLMs) have sparked growing interest in agentic workflows, which are structured sequences of LLM invocations intended to solve complex task…