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20242026
most citedNigerian Software Engineer or American Data Scientist? GitHub Profile Recruitment Bias in Large Language Models

9 citations · 10 across the 17 of their papers we have counts for

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7 papers · 1 filter

cs.SE2025

Understanding the Characteristics of LLM-Generated Property-Based Tests in Exploring Edge Cases

Hidetake Tanaka, Haruto Tanaka, Kazumasa Shimari +1

As Large Language Models (LLMs) increasingly generate code in software development, ensuring the quality of LLM-generated code has become important. Traditional testing approaches…

cs.CV2025★ 1 cited

Round Outcome Prediction in VALORANT Using Tactical Features from Video Analysis

Nirai Hayakawa, Kazumasa Shimari, Kazuma Yamasaki +3

Recently, research on predicting match outcomes in esports has been actively conducted, but much of it is based on match log data and statistical information. This research targets…

cs.SE2025

eye2vec: Learning Distributed Representations of Eye Movement for Program Comprehension Analysis

Haruhiko Yoshioka, Kazumasa Shimari, Hidetake Uwano +1

This paper presents eye2vec, an infrastructure for analyzing software developers' eye movements while reading source code. In common eye-tracking studies in program comprehension,…

cs.SE2025

Uncovering Intention through LLM-Driven Code Snippet Description Generation

Yusuf Sulistyo Nugroho, Farah Danisha Salam, Brittany Reid +3

Documenting code snippets is essential to pinpoint key areas where both developers and users should pay attention. Examples include usage examples and other Application Programming…

cs.CR2025

Using LLMs for Security Advisory Investigations: How Far Are We?

Bayu Fedra Abdullah, Yusuf Sulistyo Nugroho, Brittany Reid +3

Large Language Models (LLMs) are increasingly used in software security, but their trustworthiness in generating accurate vulnerability advisories remains uncertain. This study inv…

cs.SE2025

Mining for Lags in Updating Critical Security Threats: A Case Study of Log4j Library

Hidetake Tanaka, Kazuma Yamasaki, Momoka Hirose +5

The Log4j-Core vulnerability, known as Log4Shell, exposed significant challenges to dependency management in software ecosystems. When a critical vulnerability is disclosed, it is…