paraqa-sparqltotext / README.md
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metadata
dataset_info:
  features:
    - name: uid
      dtype: string
    - name: query
      dtype: string
    - name: question
      dtype: string
    - name: simplified_query
      dtype: string
    - name: answer
      dtype: string
    - name: verbalized_answer
      dtype: string
    - name: verbalized_answer_2
      dtype: string
    - name: verbalized_answer_3
      dtype: string
    - name: verbalized_answer_4
      dtype: string
    - name: verbalized_answer_5
      dtype: string
    - name: verbalized_answer_6
      dtype: string
    - name: verbalized_answer_7
      dtype: string
    - name: verbalized_answer_8
      dtype: string
  splits:
    - name: train
      num_bytes: 2540548
      num_examples: 3500
    - name: validation
      num_bytes: 369571
      num_examples: 500
    - name: test
      num_bytes: 722302
      num_examples: 1000
  download_size: 1750172
  dataset_size: 3632421
task_categories:
  - conversational
  - question-answering
  - text-generation
  - text2text-generation
tags:
  - qa
  - knowledge-graph
  - sparql

Dataset Card for ParaQA-SPARQLtoText

Table of Contents

Dataset Description

Dataset Summary

Special version of ParaQA with SPARQL queries formatted for the SPARQL-to-Text task

New field simplified_query

New field is named "simplified_query". It results from applying the following step on the field "query":

  • Replacing URIs with a simpler format with prefix "resource:", "property:" and "ontology:".

  • Spacing the delimiters (, {, ., }, ).

  • Randomizing the variables names

  • Shuffling the clauses

New split "valid"

A validation set was randonly extracted from the test set to represent 10% of the whole dataset.

Languages

  • English

Dataset Structure

Types of questions

Comparison of question types compared to related datasets:

SimpleQuestions ParaQA LC-QuAD 2.0 CSQA WebNLQ-QA
Number of triplets in query 1
2
More
Logical connector between triplets Conjunction
Disjunction
Exclusion
Topology of the query graph Direct
Sibling
Chain
Mixed
Other
Variable typing in the query None
Target variable
Internal variable
Comparisons clauses None
String
Number
Date
Superlative clauses No
Yes
Answer type Entity (open)
Entity (closed)
Number
Boolean
Answer cardinality 0 (unanswerable)
1
More
Number of target variables 0 (⇒ ASK verb)
1
2
Dialogue context Self-sufficient
Coreference
Ellipsis
Meaning Meaningful
Non-sense

Data splits

Text verbalization is only available for a subset of the test set, referred to as challenge set. Other sample only contain dialogues in the form of follow-up sparql queries.

Train Validation Test
Questions 3,500 500 1,000
NL question per query 1
Characters per query 103 (± 27)
Tokens per question 10.3 (± 3.7)

Additional information

Related datasets

This corpus is part of a set of 5 datasets released for SPARQL-to-Text generation, namely:

Licencing information

  • Content from original dataset: CC-BY 4.0
  • New content: CC BY-SA 4.0

Citation information

This version of the corpus (with normalized SPARQL queries)

@inproceedings{lecorve2022sparql2text,
  title={SPARQL-to-Text Question Generation for Knowledge-Based Conversational Applications},
  author={Lecorv\'e, Gw\'enol\'e and Veyret, Morgan and Brabant, Quentin and Rojas-Barahona, Lina M.},
  journal={Proceedings of the Conference of the Asia-Pacific Chapter of the Association for Computational Linguistics and the International Joint Conference on Natural Language Processing (AACL-IJCNLP)},
  year={2022}
}

Original version

@inproceedings{kacupaj2021paraqa,
  title={Paraqa: a question answering dataset with paraphrase responses for single-turn conversation},
  author={Kacupaj, Endri and Banerjee, Barshana and Singh, Kuldeep and Lehmann, Jens},
  booktitle={European semantic web conference},
  pages={598--613},
  year={2021},
  organization={Springer}
}