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metadata
license: cc-by-4.0
language:
  - en
task_categories:
  - tabular-classification
  - tabular-regression
multilinguality: monolingual
size_categories:
  - 10K<n<100K
tags:
  - tabular
  - csv
  - africa
  - central-african-republic
  - official-statistics
  - open-data
configs:
  - config_name: default
    data_files:
      - split: train
        path: data/train-00000-of-00001.parquet
pretty_name: >-
  LitPop: Humanitarian Response Plan (HRP) Countries Exposure Data for Disaster
  Risk Assessment | Africa (Central African Republic official open data)

LitPop: Humanitarian Response Plan (HRP) Countries Exposure Data for Disaster Risk Assessment | Africa (Central African Republic official open data)

29,365 rows - 1 Africa country - not-applicable - Repackaged by Electric Sheep Africa

rows countries years indicators license

TL;DR

This dataset packages one official CSV resource from Central African Republic as ML-ready Parquet. The source file is the provenance boundary; all usable indicators or tabular columns from the resource stay together in this repo.

About the source

Geographic coverage

1 Africa country:

Country Rows First year Last year Name
CAF 29,365 n/a n/a Central African Republic

Indicators or Resource Contents

  • This source file is packaged as a normalized tabular resource.

Schema

Column Type Description Example
source_record_id string Stable row identifier for tabular resources. 8f36d62b-5067-44f4-845f-c9508d7894d9:0
country_iso3 category ISO3 country code. CAF
country_name category Country name. Central African Republic
country_name_2 string Source column. #country
admin1_name string Source column. #adm1+name
latitude float64 Source column. ``
longitude float64 Source column. ``
aggregation string Source column. ``
indicator string Source column. #indicator+name
value float64 Numeric observation value. ``
source_period_start_year Int64 First year inferred from source resource metadata. ``
source_period_end_year Int64 Last year inferred from source resource metadata. ``
source_period_label string Human-readable period inferred from source resource metadata. ``
source_provider category Publishing organization. ETH Zürich - Weather and Climate Risks
source_dataset category Source package title. LitPop: Humanitarian Response Plan (HRP) Countries Exposure Data for Dis
source_resource category Source resource title. south-sudan-admin1-litpop.csv
source_package_id category CKAN package UUID. 3527869c-8fe9-4289-9d57-1811e789bf60
source_resource_id category CKAN resource UUID. 8f36d62b-5067-44f4-845f-c9508d7894d9
source_url category Original source resource URL. https://data.humdata.org/dataset/3527869c-8fe9-4289-9d57-1811e789bf60/re
license_id category Source license identifier. cc-by
retrieved_at category UTC retrieval timestamp. 2026-08-14T23:28:30Z

Usage

from datasets import load_dataset

ds = load_dataset("electricsheepafrica/africa-central-african-republic-litpop-humanitarian-response-plan-hrp-countries-exposure-d-d791f")
df = ds["train"].to_pandas()
print(df.head())

Filter to one country

sample_country = df[df["country_iso3"] == "CAF"]

Work with indicators

if "indicator_id" in df.columns:
    print(df["indicator_id"].value_counts().head())
    sample = df.sort_values([c for c in ["indicator_id", "year"] if c in df.columns])

Citation

@misc{electric_sheep_africa_africa_central_african_republic_litpop_humanitarian_response_plan_hrp_countries_2026,
  title        = {LitPop: Humanitarian Response Plan (HRP) Countries Exposure Data for Disaster Risk Assessment | Africa (Central African Republic official open data)},
  author       = {ETH Zürich - Weather and Climate Risks},
  year         = {2026},
  url          = {https://data.humdata.org/dataset/climada-litpop-dataset},
  publisher    = {HuggingFace Datasets, repackaged by Electric Sheep Africa},
  howpublished = {\url{https://huggingface.co/datasets/electricsheepafrica/africa-central-african-republic-litpop-humanitarian-response-plan-hrp-countries-exposure-d-d791f}}
}

License

Released under CC BY 4.0.

Original data (c) ETH Zürich - Weather and Climate Risks. When using this dataset, please cite both the original source above and the Electric Sheep Africa repackaging.

About Electric Sheep

Electric Sheep Africa is part of the Electric Sheep mission: a unified, ML-ready data layer for Africa on Hugging Face. We pull data from authoritative open sources, normalize the schemas, package as Parquet, and publish with consistent dataset cards so researchers and developers can use load_dataset() to start working in seconds.

Browse the full collection: huggingface.co/electricsheepafrica


Provenance: ingested 2026-08-15 via the Electric Sheep pipeline. Source URL: https://data.humdata.org/dataset/3527869c-8fe9-4289-9d57-1811e789bf60/resource/8f36d62b-5067-44f4-845f-c9508d7894d9/download/south-sudan-admin1-litpop.csv