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Maximilian Forstenhäusler

2 accepted papers

2026

Advancing SVD-based LLM Compression via Layer-Wise Error Model Search

ICML 2026poster

Low-rank SVD-based compression offers a powerful strategy to reduce the computational costs of Large language models (LLMs); however, existing methods commonly encounter two recurring obstacles: (i) global rank allocation, where uncalibrated error proxies fail to account for complex error propagatio…

Cited by 0SourceScholar
2025

STaRFormer: Semi-Supervised Task-Informed Representation Learning via Dynamic Attention-Based Regional Masking for Sequential Data

NeurIPS 2025poster

Understanding user intent is essential for situational and context-aware decision-making. Motivated by a real-world scenario, this work addresses intent predictions of smart device users in the vicinity of vehicles by modeling sequential spatiotemporal data. However, in real-world scenarios, environ…

Cited by 0SourceScholar