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Qian Liu; Bei Chen; Jian-Guang Lou; Bin Zhou; Dongmei Zhang

Abstract
Recent years the task of incomplete utterance rewriting has raised a large attention. Previous works usually shape it as a machine translation task and employ sequence to sequence based architecture with copy mechanism. In this paper, we present a novel and extensive approach, which formulates it as a semantic segmentation task. Instead of generating from scratch, such a formulation introduces edit operations and shapes the problem as prediction of a word-level edit matrix. Benefiting from being able to capture both local and global information, our approach achieves state-of-the-art performance on several public datasets. Furthermore, our approach is four times faster than the standard approach in inference.
Code Repositories
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| dialogue-rewriting-on-multi-rewrite | RUN+BERT | Rewriting F3: 47.7 |
| dialogue-rewriting-on-rewrite | RUN+BERT | ROUGE-L: 93.5 |
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