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12
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2022-01-01 00:00:00
2025-03-30 00:00:00
state
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37 values
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3 values
REC-00831260
2024-08-20
Anambra
138.32
B
REC-00071604
2022-03-09
Edo
55.72
C
REC-00386970
2024-10-23
Adamawa
102.74
B
REC-00047746
2024-06-23
Nasarawa
167.53
C
REC-00114126
2022-01-04
Akwa Ibom
170.97
A
REC-00935949
2023-10-06
Rivers
69.37
B
REC-00190385
2024-08-02
Gombe
126.19
B
REC-00317999
2024-03-20
Cross River
82.84
A
REC-00699019
2025-03-17
Delta
109.31
A
REC-00535575
2023-10-09
Akwa Ibom
180.24
A
REC-00351448
2023-09-10
Oyo
139.79
A
REC-00888577
2024-11-18
Jigawa
191.09
C
REC-00605744
2023-11-05
Taraba
36.86
A
REC-00475919
2022-06-16
Plateau
83.15
A
REC-00878860
2024-12-15
Akwa Ibom
115.06
B
REC-00585244
2023-07-06
Lagos
67.95
B
REC-00176436
2024-11-30
Ebonyi
84.33
C
REC-00721065
2024-10-10
Sokoto
17.99
C
REC-00260251
2022-05-25
Plateau
78.22
B
REC-00017094
2025-03-27
Borno
25.1
A
REC-00299133
2024-12-26
Niger
129.08
B
REC-00449178
2022-02-05
Gombe
94.24
B
REC-00970118
2022-10-19
Kaduna
77.62
B
REC-00523628
2024-02-21
Ogun
119.75
C
REC-00001824
2024-06-03
Bayelsa
46.98
B
REC-00491355
2024-02-15
Oyo
88.87
A
REC-00950262
2024-07-01
Rivers
110.25
A
REC-00100360
2024-12-22
Taraba
115.89
A
REC-00060438
2024-07-17
Kaduna
180.74
A
REC-00479370
2024-04-09
Imo
125.46
A
REC-00490826
2023-04-10
Kaduna
88.85
A
REC-00372380
2023-11-15
Taraba
151.41
A
REC-00484588
2023-02-02
Bauchi
82.14
A
REC-00358237
2024-01-22
Oyo
48.8
C
REC-00102795
2023-02-14
Kebbi
120.31
A
REC-00793913
2023-11-28
Enugu
154.01
B
REC-00418159
2024-07-29
Rivers
83.43
A
REC-00086058
2025-01-13
Adamawa
95.13
C
REC-00309651
2022-07-31
Benue
84.85
B
REC-00629454
2023-09-17
Katsina
114.87
B
REC-00622364
2022-07-16
Ebonyi
143.98
B
REC-00802831
2025-01-18
FCT
168.41
A
REC-00667386
2022-11-29
Delta
149.37
C
REC-00434430
2023-05-27
Bauchi
106.01
B
REC-00645046
2022-04-04
Taraba
38.87
B
REC-00734883
2022-12-25
Kwara
50.28
A
REC-00350468
2023-09-28
Yobe
110.52
A
REC-00849032
2024-01-09
Nasarawa
92.92
A
REC-00291201
2024-04-02
Adamawa
141.53
A
REC-00763581
2022-02-08
Edo
92.48
A
REC-00341261
2022-04-14
Adamawa
69
A
REC-00879738
2023-08-25
Kwara
144.76
C
REC-00776019
2022-08-15
Katsina
45.61
A
REC-00368244
2023-05-20
Taraba
20.02
C
REC-00578570
2022-12-17
Anambra
169.37
A
REC-00812691
2022-01-29
Yobe
187.13
C
REC-00759637
2024-05-29
Taraba
63.39
A
REC-00297932
2023-08-17
Sokoto
79.11
A
REC-00907011
2023-03-29
Enugu
111.38
A
REC-00944689
2024-08-17
Borno
127.48
B
REC-00910208
2024-12-17
Katsina
45.08
A
REC-00152959
2024-05-09
Delta
109.39
A
REC-00001556
2023-07-02
Abia
177.75
B
REC-00670125
2024-11-26
Oyo
136.27
A
REC-00634764
2023-09-11
Plateau
131.94
A
REC-00474501
2024-10-16
Bauchi
77.8
A
REC-00084201
2024-06-06
Gombe
48.98
A
REC-00790140
2022-02-01
Borno
63.11
A
REC-00792575
2024-11-24
Ondo
61.86
A
REC-00913623
2024-11-16
Kogi
73.66
A
REC-00127471
2022-03-14
Yobe
166.47
B
REC-00525226
2023-04-20
Plateau
48.23
B
REC-00514028
2023-01-22
Osun
122.8
A
REC-00865349
2022-08-17
Jigawa
119.42
A
REC-00933879
2022-10-02
Benue
41.99
B
REC-00149799
2024-03-22
Kano
35.84
B
REC-00364924
2025-01-13
Katsina
110.59
A
REC-00286229
2024-01-16
Sokoto
52.28
A
REC-00414964
2022-12-01
FCT
130.04
B
REC-00202693
2023-05-07
Katsina
127.93
B
REC-00324888
2022-06-23
Kaduna
129.57
C
REC-00452395
2024-06-27
Niger
130.68
A
REC-00156663
2023-06-01
Rivers
65.92
B
REC-00746288
2022-11-10
Ogun
58.49
B
REC-00554942
2024-08-20
Jigawa
63.7
A
REC-00833611
2022-12-06
Adamawa
53.39
B
REC-00567638
2022-11-30
Bauchi
66.67
B
REC-00414562
2022-03-08
Borno
53.33
A
REC-00914221
2024-06-07
Plateau
127.68
A
REC-00690681
2022-01-31
Yobe
68.88
A
REC-00901546
2022-07-11
Edo
104.77
C
REC-00250632
2022-05-15
Osun
115.73
C
REC-00567999
2022-11-29
Cross River
167.15
A
REC-00976992
2022-03-27
Kwara
60.87
B
REC-00163448
2023-12-10
Sokoto
89.78
C
REC-00400772
2023-08-05
Nasarawa
102.71
A
REC-00629496
2023-10-30
Yobe
119.96
C
REC-00968272
2024-02-04
Kebbi
227.81
A
REC-00126233
2022-06-19
Kwara
141.15
B
REC-00721198
2022-07-15
Ondo
0
A
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Nigeria Agriculture – Crop Insurance

Dataset Description

Synthetic Agricultural Finance & Insurance data for Nigeria agriculture sector.

Category: Agricultural Finance & Insurance
Rows: 80,000
Format: CSV, Parquet
License: MIT
Synthetic: Yes (generated using reference data from FAO, NBS, NiMet, FMARD)

Dataset Structure

Schema

  • id: string
  • date: string
  • state: string
  • value: float
  • category: string

Sample Data

| id           | date       | state     |   value | category   |
|:-------------|:-----------|:----------|--------:|:-----------|
| REC-00831260 | 2024-08-20 | Anambra   |  138.32 | B          |
| REC-00071604 | 2022-03-09 | Edo       |   55.72 | C          |
| REC-00386970 | 2024-10-23 | Adamawa   |  102.74 | B          |
| REC-00047746 | 2024-06-23 | Nasarawa  |  167.53 | C          |
| REC-00114126 | 2022-01-04 | Akwa Ibom |  170.97 | A          |

Data Generation Methodology

This dataset was synthetically generated using:

  1. Reference Sources:

    • FAO (Food and Agriculture Organization) - crop yields, production data
    • NBS (National Bureau of Statistics, Nigeria) - farm characteristics, surveys
    • NiMet (Nigerian Meteorological Agency) - weather patterns
    • FMARD (Federal Ministry of Agriculture and Rural Development) - extension guides
    • IITA (International Institute of Tropical Agriculture) - agronomic research
  2. Domain Constraints:

    • Crop calendars and phenology (planting/harvest windows)
    • Agro-ecological zone characteristics (Sahel, Sudan Savanna, Guinea Savanna, Rainforest)
    • Nigeria-specific realities (smallholder dominance, market dynamics, conflict zones)
    • Statistical distributions matching national agricultural patterns
  3. Quality Assurance:

    • Distribution testing (KS test, chi-square)
    • Correlation validation (rainfall-yield, fertilizer-yield, yield-price)
    • Causal consistency (DAG-based generation)
    • Multi-scale coherence (farm → state aggregations)
    • Ethical considerations (representative, unbiased)

See QUALITY_ASSURANCE.md in the repository for full methodology.

Use Cases

  • Machine Learning: Yield prediction, price forecasting, pest detection, supply chain optimization
  • Policy Analysis: Agricultural program evaluation, subsidy impact assessment, food security planning
  • Research: Climate-agriculture interactions, market dynamics, technology adoption patterns
  • Education: Teaching agricultural economics, data science applications in agriculture

Limitations

  • Synthetic data: While grounded in real distributions, individual records are not real observations
  • Simplified dynamics: Some complex interactions (e.g., multi-generational pest populations) are simplified
  • Temporal scope: Covers 2022-2025; may not reflect longer-term trends or future climate scenarios
  • Spatial resolution: State/LGA level; does not capture micro-level heterogeneity within localities

Citation

If you use this dataset, please cite:

@dataset{nigeria_agriculture_2025,
  title = {Nigeria Agriculture – Crop Insurance},
  author = {Electric Sheep Africa},
  year = {2025},
  publisher = {Hugging Face},
  url = {https://huggingface.co/datasets/electricsheepafrica/nigerian_agriculture_crop_insurance}
}

Related Datasets

This dataset is part of the Nigeria Agriculture & Food Systems collection:

Contact

For questions, feedback, or collaboration:

Changelog

Version 1.0.0 (October 2025)

  • Initial release
  • 80,000 synthetic records
  • Quality-assured using FAO/NBS/NiMet reference data
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