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Balreet Grewal

Publications and source records attributed to Balreet Grewal.

3 recordsLinked to original sources

Automatic Model Card Generation Using an LLM

Model cards are structured documents that summarize key information about machine learning models to improve transparency, usability, and accountability. However, they often lack a consistent structure, and many models provide no model cards, making comparison and interpretation difficult. This paper presents two contributions. First, we propose MCTidy, an LLM-based approach that reorganizes existing model cards into a standardized template to improve clarity and comparability. Second, we introduce MCGenie, an LLM-based system that generates model cards directly from model repository data. We apply MCTidy to 48 Hugging Face model cards and evaluate information retention, section alignment, hallucination, and stability. Our findings show high information retention with minimal textual loss, accurate section assignment, rare hallucinations primarily in descriptive sections, and strong stability across runs. We assess MCGenie by generating model cards for the same 48 models and assessing semantic similarity, factual correctness, and sensitivity to input resources. The generated model cards achieved high semantic similarity (mean around 0.9); over half were fully correct, and most remaining errors were minor. Generation quality depended strongly on the availability of supporting resources, particularly associated papers. Overall, our findings demonstrate the potential of LLM-based methods to enable scalable, standardized model card documentation.

cs.SE

XBIDetective: Leveraging Vision Language Models for Identifying Cross-Browser Visual Inconsistencies

Browser rendering bugs can be challenging to detect for browser developers, as they may be triggered by very specific conditions that are exhibited on only a very small subset of websites. Cross-browser inconsistencies (XBIs), variations in how a website is interpreted and displayed on different browsers, can be helpful guides to detect such rendering bugs. Although visual and Document Object Model (DOM)-based analysis techniques exist for detecting XBIs, they often struggle with dynamic and interactive elements. In this study, we discuss our industry experience with using vision language models (VLMs) to identify XBIs. We present the XBIDetective tool which automatically captures screenshots of a website in Mozilla Firefox and Google Chrome, and analyzes them with a VLM for XBIs. We evaluate XBIDetective's performance with an off-the-shelf and a fine-tuned VLM on 1,052 websites. We show that XBIDetective can identify cross-browser discrepancies with 79% accuracy and detect dynamic elements and advertisements with 84% and 85% accuracy, respectively, when using the fine-tuned VLM. We discuss important lessons learned, and we present several potential practical use cases for XBIDetective, including automated regression testing, large-scale monitoring of websites, and rapid triaging of XBI bug reports.

cs.SE

An Empirical Study of Delayed Games on Steam

The gaming industry is rapidly expanding. With over 2.7 billion players worldwide, game development has become increasingly challenging. To meet the ever-changing demands and expectations of players and due to unforeseen hindrances in the development process, game developers may require to delay the release of their game. We conducted an empirical study of 23,485 games on the Steam platform to analyze how often, and which games delayed their release date. We find that delaying a release is common: 48% of the studied games had a delayed initial release. Games delayed their release by a median of 14 days. Games for which a release date range (e.g., "Q1 2019") was specified, rather than a specific date were more likely to release within that range. Across different game genres, the percentage of games that delay release is similar (ranging from 48% to 52%). Finally, games with a delayed release are rated lower than games that release on time, but the difference is negligible.

cs.GT