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Samuel Broscheit

3 accepted papers

2022

Distributionally Robust Finetuning BERT for Covariate Drift in Spoken Language Understanding

ACL 2022long

In this study, we investigate robustness against covariate drift in spoken language understanding (SLU). Covariate drift can occur in SLUwhen there is a drift between training and testing regarding what users request or how they request it. To study this we propose a method that exploits natural var…

2021

Unsupervised Multi-View Post-OCR Error Correction With Language Models

EMNLP 2021main

We investigate post-OCR correction in a setting where we have access to different OCR views of the same document. The goal of this study is to understand if a pretrained language model (LM) can be used in an unsupervised way to reconcile the different OCR views such that their combination contains f…

2020

You CAN Teach an Old Dog New Tricks! On Training Knowledge Graph Embeddings

ICLR 2020poster

Knowledge graph embedding (KGE) models learn algebraic representations of the entities and relations in a knowledge graph. A vast number of KGE techniques for multi-relational link prediction have been proposed in the recent literature, often with state-of-the-art performance. These approaches diffe…

Cited by 273SourceScholar