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Zhiming Mao

4 accepted papers

2024

Visually Guided Generative Text-Layout Pre-training for Document Intelligence

NAACL 2024long

Prior study shows that pre-training techniques can boost the performance of visual document understanding (VDU), which typically requires models to gain abilities to perceive and reason both document texts and layouts (e.g., locations of texts and table-cells). To this end, we propose visually guide…

2023

UniTRec: A Unified Text-to-Text Transformer and Joint Contrastive Learning Framework for Text-based Recommendation

ACL 2023short

Prior study has shown that pretrained language models (PLM) can boost the performance of text-based recommendation. In contrast to previous works that either use PLM to encode user history as a whole input text, or impose an additional aggregation network to fuse multi-turn history representations,…

2022

DIGAT: Modeling News Recommendation with Dual-Graph Interaction

EMNLP 2022finding

News recommendation (NR) is essential for online news services. Existing NR methods typically adopt a news-user representation learning framework, facing two potential limitations. First, in news encoder, single candidate news encoding suffers from an insufficient semantic information problem. Secon…

2021

Neural News Recommendation with Collaborative News Encoding and Structural User Encoding

EMNLP 2021finding

Automatic news recommendation has gained much attention from the academic community and industry. Recent studies reveal that the key to this task lies within the effective representation learning of both news and users. Existing works typically encode news title and content separately while neglecti…