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<b>BBC Igbo–Pidgin Gold-Standard NLP Corpus</b>

Domain:

natural language processing

Record type:

dataset
Creator:
Byt
Host:avatar

This corpus is a high-quality, manually annotated collection of BBC Igbo and BBC Pidgin news article snippets, designed to support natural language processing research in West African languages. It includes 63 BBC Igbo snippets annotated for intent classification, content quality, and sentiment, alongside 63 BBC Igbo snippets for sentence segmentation. Additionally, it contains 91 BBC Pidgin snippets annotated for intent, quality, and sentiment, and 91 BBC Pidgin snippets annotated for Named Entity Recognition (NER).

All annotations were produced by Bytte AI following consistent, task-specific guidelines and reflect real-world journalistic language. While these are representative samples rather than full datasets, they provide a reliable foundation for benchmarking, model training, and evaluation across multiple NLP tasks in low-resource African languages.

Visit

figshare.com

Tasks

information extractionnamed entity recognitionsentence segmentationsentiment analysistext classification

Languages

Igbo

Tags

Data communicationsArtificial intelligence not elsewhere classifiedData qualityAfrican languagesPidginIgboBBCEditorialBBC DatasetsPidgin datasets+38

Licenses

CC BY 4.0

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BBC Igbo-Pidgin Gold-Standard NLP Corpus

BBC Igbo-Pidgin Gold-Standard NLP Corpus

This corpus contains high-quality BBC Igbo and BBC Pidgin news snippets annotated by Bytte AI for intent, sentiment, content quality, sentence segmentation, and Named Entity Recognition (NER). Comprising 63 Igbo and 91 Pidgin samples per task, it provides a rich