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Roshanak Mirzaee

4 accepted papers

2023

Disentangling Extraction and Reasoning in Multi-hop Spatial Reasoning

EMNLP 2023long findings

Spatial reasoning over text is challenging as the models not only need to extract the direct spatial information from the text but also reason over those and infer implicit spatial relations. Recent studies highlight the struggles even large language models encounter when it comes to performing spat…

Cited by 0SourcecodeScholar
2023

GLUECons: A Generic Benchmark for Learning under Constraints

AAAI 2023technical

Recent research has shown that integrating domain knowledge into deep learning architectures is effective; It helps reduce the amount of required data, improves the accuracy of the models' decisions, and improves the interpretability of models. However, the research community lacks a convened benchm…

Cited by 19SourcePDFScholar
2022

Transfer Learning with Synthetic Corpora for Spatial Role Labeling and Reasoning

EMNLP 2022main

Recent research shows synthetic data as a source of supervision helps pretrained language models (PLM) transfer learning to new target tasks/domains. However, this idea is less explored for spatial language. We provide two new data resources on multiple spatial language processing tasks. The first d…

2021

SPARTQA: A Textual Question Answering Benchmark for Spatial Reasoning

NAACL 2021long

This paper proposes a question-answering (QA) benchmark for spatial reasoning on natural language text which contains more realistic spatial phenomena not covered by prior work and is challenging for state-of-the-art language models (LM). We propose a distant supervision method to improve on this ta…

Cited by 93SourcePDFScholar