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3 months ago

A Divide-and-Conquer Approach to the Summarization of Long Documents

Alexios Gidiotis Grigorios Tsoumakas

A Divide-and-Conquer Approach to the Summarization of Long Documents

Abstract

We present a novel divide-and-conquer method for the neural summarization of long documents. Our method exploits the discourse structure of the document and uses sentence similarity to split the problem into an ensemble of smaller summarization problems. In particular, we break a long document and its summary into multiple source-target pairs, which are used for training a model that learns to summarize each part of the document separately. These partial summaries are then combined in order to produce a final complete summary. With this approach we can decompose the problem of long document summarization into smaller and simpler problems, reducing computational complexity and creating more training examples, which at the same time contain less noise in the target summaries compared to the standard approach. We demonstrate that this approach paired with different summarization models, including sequence-to-sequence RNNs and Transformers, can lead to improved summarization performance. Our best models achieve results that are on par with the state-of-the-art in two two publicly available datasets of academic articles.

Code Repositories

AlexGidiotis/DANCER-summ
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
text-summarization-on-arxivDANCER LSTM
ROUGE-1: 41.87
ROUGE-2: 15.92
ROUGE-L: 37.61
text-summarization-on-arxivDANCER PEGASUS
ROUGE-1: 45.01
ROUGE-2: 17.6
ROUGE-L: 40.56
text-summarization-on-arxivDANCER RUM
ROUGE-1: 42.7
ROUGE-2: 16.54
ROUGE-L: 38.44
text-summarization-on-pubmed-1DANCER RUM
ROUGE-1: 43.98
ROUGE-2: 17.65
ROUGE-L: 40.25
text-summarization-on-pubmed-1DANCER PEGASUS
ROUGE-1: 46.34
ROUGE-2: 19.97
ROUGE-L: 42.42
text-summarization-on-pubmed-1DANCER LSTM
ROUGE-1: 44.09
ROUGE-2: 17.69
ROUGE-L: 40.27

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A Divide-and-Conquer Approach to the Summarization of Long Documents | Papers | HyperAI