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REC-00970492
2022-10-17
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REC-00431266
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REC-00872626
2022-09-30
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REC-00556482
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REC-00692872
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REC-00745408
2025-03-26
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2023-10-12
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2023-12-03
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2022-02-12
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2025-03-18
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104.54
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REC-00226961
2023-09-25
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REC-00961136
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2024-04-05
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REC-00039517
2024-03-19
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101.74
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2022-10-08
Niger
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REC-00624685
2022-08-03
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REC-00369093
2022-07-01
Imo
102.16
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REC-00409608
2022-05-27
Plateau
124.4
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REC-00182880
2023-06-30
Ebonyi
113.78
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REC-00988376
2024-01-06
Rivers
108.98
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REC-00163407
2022-07-30
Katsina
69.61
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REC-00920057
2022-07-02
Cross River
30.23
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REC-00807846
2025-02-03
Edo
196.14
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REC-00361355
2023-02-11
Kano
58.82
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REC-00817504
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REC-00107817
2022-09-05
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REC-00419855
2024-08-05
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REC-00526129
2023-12-03
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REC-00472609
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112.45
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REC-00651120
2023-01-03
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REC-00979051
2022-05-15
Kwara
97.75
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REC-00389246
2024-03-06
Kogi
172.36
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REC-00459697
2023-05-02
Imo
99.82
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REC-00971125
2024-01-03
Oyo
155.28
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REC-00996049
2023-11-06
Akwa Ibom
34.76
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REC-00856374
2022-07-28
Yobe
97.56
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REC-00491689
2023-09-01
Niger
45.15
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REC-00055155
2022-07-03
Lagos
147.47
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REC-00459757
2023-11-10
Borno
42.91
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REC-00949641
2024-11-19
Katsina
146.17
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REC-00331582
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Oyo
173.52
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Africa Synth Agriculture Farm Demographics Nigeria | Africa (Electric Sheep Africa metadata inventory)

Size category: 100K<n<1M - Formats: parquet - Sector: agriculture_food - Engineered by Electric Sheep Africa

size sector downloads license

TL;DR

This dataset is part of the Electric Sheep Africa catalog on Hugging Face. It is indexed for African data discovery with standardized metadata, loading guidance, provenance notes, and analyst-oriented context.

What This Dataset Covers

Public datasets help analysts inspect structured evidence, build reproducible workflows, and compare patterns across domains.

Dataset context from the existing Hugging Face card: ⚠️ Synthetic dataset — Parameterized from published SSA literature, not real observations. Not suitable for empirical analysis or policy inference. Nigeria Agriculture – Farm Demographics Dataset Description Synthetic Farm Management & Mechanization data for Nigeria agriculture sector. Category: Farm Management & MechanizationRows: 100,000Format: CSV, ParquetLicense: MITSynthetic: Yes (generated using reference data from FAO, NBS, NiMet, FMARD) Dataset Structure… See the full description on the dataset page: https://huggingface.co/datasets/electricsheepafrica/africa-synth-agriculture-farm-demographics-nigeria.

Dataset Profile

Field Value
Hugging Face repo electricsheepafrica/africa-synth-agriculture-farm-demographics-nigeria
Sector agriculture_food
Topic tags nigeria, agriculture, food-systems, synthetic, farm-management-and-mechanization
Modalities text
Formats parquet
Size category 100K<n<1M
Countries Nigeria
ISO3 coverage NGA
Last modified on HF 2026-04-14 22:21:47+00:00
Inventory snapshot 2026-07-16T16:00:34Z

How To Read This Dataset

  • Start from the repository files and the dataset viewer when available.
  • Treat the README context as a fast orientation layer; confirm variable definitions and units in the data files before modeling.
  • Use explicit country columns when present. When geography is only implied by the title or source metadata, document that assumption in downstream analysis.
  • Preserve missing values until you have a defensible imputation rule.

Usage

from datasets import load_dataset

ds = load_dataset("electricsheepafrica/africa-synth-agriculture-farm-demographics-nigeria")
print(ds)

split_name = next(iter(ds))
table = ds[split_name]
print(table.features)
print(table[:3])

Convert To Pandas When Tabular

from datasets import Dataset

first_split = ds[next(iter(ds))]
if isinstance(first_split, Dataset):
    df = first_split.to_pandas()
    print(df.head())

Data Quality Notes

  • This card was standardized from the Electric Sheep Africa Hugging Face metadata inventory.
  • Exact schema, row counts, and source files should be inspected in the repository data files.
  • Metadata gaps from the inventory: upstream_publisher, language.
  • Do not infer policy meaning from labels alone; confirm definitions, units, and methods in the source material.

Source And Provenance

Suggested Analyses

  • Inspect schema and missingness before modeling.
  • Profile variables by geography, time, and subgroup columns where present.
  • Join with other Electric Sheep Africa datasets using explicit country, year, and indicator fields when available.
  • Build reproducible notebooks that cite both the original source context and the Electric Sheep Africa Hugging Face repo.

Citation

@misc{electric_sheep_africa_africa_synth_agriculture_farm_demographics_nigeria_2026,
  title        = {Africa Synth Agriculture Farm Demographics Nigeria | Africa (Electric Sheep Africa metadata inventory)},
  author       = {Public dataset metadata},
  year         = {2026},
  url          = {https://huggingface.co/datasets/electricsheepafrica/africa-synth-agriculture-farm-demographics-nigeria},
  publisher    = {Hugging Face Datasets, engineered by Electric Sheep Africa},
  howpublished = {\url{https://huggingface.co/datasets/electricsheepafrica/africa-synth-agriculture-farm-demographics-nigeria}}
}

License

Released under mit.

Original source rights remain with the original publisher or data provider. Electric Sheep Africa engineering standardizes discovery metadata, documentation, and usage guidance for analysis on Hugging Face.

About Electric Sheep Africa

Electric Sheep Africa publishes ML-ready African public datasets on Hugging Face.


Provenance: metadata-backed README standardized 2026-08-12 by the Electric Sheep Africa README system. Inventory source: catalog/esa_metadata_inventory/master_metadata.jsonl.

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