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Matthias Stürmer

6 accepted papers

2025

From Citations to Criticality: Predicting Legal Decision Influence in the Multilingual Swiss Jurisprudence

ACL 2025short

Many court systems are overwhelmed all over the world, leading to huge backlogs of pending cases. Effective triage systems, like those in emergency rooms, could ensure proper prioritization of open cases, optimizing time and resource allocation in the court system. In this work, we introduce the Cri…

Cited by 0SourcePDFScholar
2024

Anonymity at Risk? Assessing Re-Identification Capabilities of Large Language Models in Court Decisions

NAACL 2024findings

Anonymity in court rulings is a critical aspect of privacy protection in the European Union and Switzerland but with the advent of LLMs, concerns about large-scale re-identification of anonymized persons are growing. In accordance with the Federal Supreme Court of Switzerland (FSCS), we study re-ide…

Cited by 2SourcePDFScholar
2024

MultiLegalPile: A 689GB Multilingual Legal Corpus

ACL 2024long

Large, high-quality datasets are crucial for training Large Language Models (LLMs). However, so far, few datasets are available for specialized critical domains such as law and the available ones are often small and only in English. To fill this gap, we curate and release MultiLegalPile, a 689GB cor…

2024

Resolving Legalese: A Multilingual Exploration of Negation Scope Resolution in Legal Documents

COLING 2024main

Resolving the scope of a negation within a sentence is a challenging NLP task. The complexity of legal texts and the lack of annotated in-domain negation corpora pose challenges for state-of-the-art (SotA) models when performing negation scope resolution on multilingual legal data. Our experiments d…

2024

Towards Explainability and Fairness in Swiss Judgement Prediction: Benchmarking on a Multilingual Dataset

COLING 2024main

The assessment of explainability in Legal Judgement Prediction (LJP) systems is of paramount importance in building trustworthy and transparent systems, particularly considering the reliance of these systems on factors that may lack legal relevance or involve sensitive attributes. This study delves…

Cited by 7SourcePDFScholar
2023

LEXTREME: A Multi-Lingual and Multi-Task Benchmark for the Legal Domain

EMNLP 2023long findings

Lately, propelled by phenomenal advances around the transformer architecture, the legal NLP field has enjoyed spectacular growth. To measure progress, well-curated and challenging benchmarks are crucial. Previous efforts have produced numerous benchmarks for general NLP models, typically based on ne…

Cited by 0SourcecodeScholar