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id
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12
12
date
stringdate
2022-01-01 00:00:00
2025-03-30 00:00:00
state
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37 values
value
float64
0
100
category
stringclasses
3 values
REC-00355776
2023-11-17
Zamfara
76.6
C
REC-00031807
2024-04-30
Cross River
74.4
B
REC-00912424
2022-04-26
Kaduna
94.2
B
REC-00893205
2024-07-18
Abia
61.5
A
REC-00360689
2024-07-07
Jigawa
97.7
B
REC-00936367
2024-05-01
Oyo
81.6
A
REC-00908758
2024-02-04
Lagos
77.8
B
REC-00878045
2022-02-04
Katsina
48.3
B
REC-00458863
2024-01-05
Bauchi
56.5
B
REC-00667726
2024-03-30
Rivers
64.7
A
REC-00585466
2023-04-19
Rivers
74.4
A
REC-00946024
2022-03-22
Taraba
87.8
A
REC-00520065
2024-09-28
Ogun
63.8
A
REC-00602697
2024-11-16
Benue
59.4
C
REC-00026793
2022-10-29
Katsina
72.9
C
REC-00497093
2025-03-16
Ebonyi
75.8
C
REC-00583994
2024-03-20
Zamfara
65.9
B
REC-00005285
2022-11-11
Niger
64.2
B
REC-00365088
2022-03-26
Oyo
86.4
B
REC-00165182
2025-02-10
Kwara
63.1
A
REC-00320156
2022-04-19
Kano
81.4
B
REC-00917224
2022-05-18
FCT
93.6
B
REC-00616704
2023-11-02
Ekiti
60.5
A
REC-00619547
2023-12-18
Gombe
70.2
A
REC-00559171
2023-10-24
Kaduna
70.6
B
REC-00436530
2024-06-10
Imo
79.6
A
REC-00610177
2022-01-11
Niger
85.4
C
REC-00490409
2023-11-28
Imo
83.4
A
REC-00894194
2024-05-08
Jigawa
48
A
REC-00578385
2022-11-11
Yobe
100
C
REC-00715782
2022-09-04
Sokoto
91.6
C
REC-00885624
2023-06-04
Bauchi
54.5
A
REC-00834804
2023-02-05
FCT
64.2
C
REC-00195191
2022-12-04
Ondo
82.3
A
REC-00904303
2023-10-13
Borno
72.9
A
REC-00778742
2022-12-25
Katsina
70.4
A
REC-00191548
2023-07-28
Osun
55.8
C
REC-00056921
2023-02-14
Enugu
71.4
B
REC-00580190
2025-03-20
Ebonyi
69.3
A
REC-00614635
2024-09-19
Kwara
64.5
B
REC-00777907
2022-12-02
Borno
80.6
A
REC-00256705
2025-01-06
Plateau
75.6
A
REC-00448912
2023-01-15
Osun
71.4
A
REC-00183795
2022-02-06
Delta
58.7
A
REC-00574076
2023-12-21
Zamfara
68.3
B
REC-00326088
2024-06-26
Ebonyi
76.5
A
REC-00188594
2023-09-19
Niger
79.5
B
REC-00284398
2025-02-23
Oyo
79.6
A
REC-00511414
2023-07-29
Benue
59.9
B
REC-00041818
2023-03-08
Rivers
79.5
B
REC-00205112
2023-08-01
Cross River
84.1
A
REC-00388239
2023-06-25
Katsina
79.8
B
REC-00839771
2022-10-25
Sokoto
68.3
A
REC-00136124
2022-02-18
Nasarawa
75.2
B
REC-00293363
2023-07-24
Enugu
54.5
A
REC-00835390
2025-03-14
Ondo
69.8
A
REC-00568261
2022-04-21
Rivers
97.2
C
REC-00988701
2024-05-12
Ebonyi
62.5
A
REC-00794775
2025-03-02
Kebbi
66.1
B
REC-00348930
2025-03-30
Ekiti
68.1
A
REC-00221611
2023-11-14
Yobe
74
A
REC-00803097
2023-05-05
Osun
49
A
REC-00056187
2022-12-29
Oyo
69.7
A
REC-00596833
2022-10-21
Kebbi
74.8
B
REC-00739709
2023-06-22
Edo
75.4
A
REC-00490619
2022-06-12
Bayelsa
60.6
A
REC-00523677
2022-11-22
Bayelsa
63.7
A
REC-00079435
2023-02-23
Lagos
70.4
B
REC-00868458
2022-06-22
Bauchi
56.1
A
REC-00724220
2023-10-09
Sokoto
48.5
C
REC-00566446
2022-07-15
Kwara
67.2
B
REC-00980777
2023-01-06
Zamfara
80.1
C
REC-00597594
2023-03-21
Adamawa
45
B
REC-00383069
2023-05-06
Edo
82.4
A
REC-00189613
2024-04-27
Edo
85
A
REC-00441577
2024-07-24
Katsina
57.3
A
REC-00472201
2025-03-05
Ebonyi
65.7
A
REC-00225836
2025-02-23
Delta
91.5
A
REC-00930705
2025-03-06
Jigawa
82.6
A
REC-00051142
2022-08-06
Cross River
80.8
B
REC-00466687
2023-07-28
Gombe
60.1
A
REC-00433010
2023-04-13
Bauchi
74.2
C
REC-00001366
2023-09-13
Kebbi
98.2
A
REC-00727989
2024-07-12
Zamfara
79.4
A
REC-00805392
2023-10-07
Oyo
64.9
A
REC-00009388
2022-06-23
Plateau
66.3
A
REC-00123305
2023-11-15
Sokoto
96.6
A
REC-00222585
2024-01-02
Nasarawa
73
A
REC-00269427
2022-09-03
Osun
55.9
A
REC-00121834
2023-06-20
Kwara
74.7
A
REC-00266647
2023-11-14
Enugu
93
B
REC-00646828
2024-02-08
Gombe
66.4
A
REC-00719852
2022-06-23
Sokoto
68.4
A
REC-00813793
2023-09-19
Cross River
73.1
C
REC-00492614
2022-02-09
Plateau
93.5
A
REC-00819981
2024-11-26
Lagos
62.1
B
REC-00176354
2023-04-30
Niger
78.8
C
REC-00098520
2023-11-12
Osun
58.3
A
REC-00852803
2023-06-12
Ekiti
82.1
C
REC-00649259
2022-07-02
Benue
51.6
A
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Nigeria Education – Digital Learning

Dataset Description

Synthetic E-Learning & Technology data for Nigeria education sector.

Category: E-Learning & Technology
Rows: 180,000
Format: CSV, Parquet
License: MIT
Synthetic: Yes (generated using reference data from WAEC, JAMB, UBEC, NBS, UNESCO)

Dataset Structure

Schema

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

Sample Data

| id           | date       | state       |   value | category   |
|:-------------|:-----------|:------------|--------:|:-----------|
| REC-00355776 | 2023-11-17 | Zamfara     |    76.6 | C          |
| REC-00031807 | 2024-04-30 | Cross River |    74.4 | B          |
| REC-00912424 | 2022-04-26 | Kaduna      |    94.2 | B          |
| REC-00893205 | 2024-07-18 | Abia        |    61.5 | A          |
| REC-00360689 | 2024-07-07 | Jigawa      |    97.7 | B          |

Data Generation Methodology

This dataset was synthetically generated using:

  1. Reference Sources:

    • WAEC (West African Examinations Council) - exam results, pass rates, grade distributions
    • JAMB (Joint Admissions and Matriculation Board) - UTME scores, subject combinations
    • UBEC (Universal Basic Education Commission) - enrollment, infrastructure, teacher data
    • NBS (National Bureau of Statistics) - education surveys, literacy rates
    • UNESCO - Nigeria education statistics, enrollment ratios
    • UNICEF - Out-of-school children, gender parity indices
  2. Domain Constraints:

    • WAEC grading system (A1-F9) with official score ranges
    • JAMB UTME scoring (0-400 points, 4 subjects)
    • Nigerian curriculum structure (Primary, JSS, SSS)
    • Academic calendar (3 terms: Sep-Dec, Jan-Apr, May-Jul)
    • Regional disparities (North-South education gap)
    • Gender parity indices by region and level
  3. Quality Assurance:

    • Distribution testing (WAEC grade distributions match national patterns)
    • Correlation validation (attendance-performance, teacher quality-outcomes)
    • Causal consistency (educational outcome models)
    • Multi-scale coherence (student β†’ school β†’ state aggregations)
    • Ethical considerations (representative, unbiased, privacy-preserving)

See QUALITY_ASSURANCE.md in the repository for full methodology.

Use Cases

  • Machine Learning: Performance prediction, dropout forecasting, admission modeling, resource allocation
  • Policy Analysis: Education program evaluation, gender parity assessment, regional disparity studies
  • Research: Teacher effectiveness, infrastructure impact, exam performance patterns
  • Education Planning: School placement, teacher deployment, budget allocation

Limitations

  • Synthetic data: While grounded in real distributions from WAEC/JAMB/UBEC, individual records are not real observations
  • Simplified dynamics: Some complex interactions (e.g., peer effects, teacher-student matching) are simplified
  • Temporal scope: Covers 2022-2025; may not reflect longer-term trends or future policy changes
  • Spatial resolution: State/LGA level; does not capture micro-level heterogeneity within localities

Citation

If you use this dataset, please cite:

@dataset{nigeria_education_2025,
  title = {Nigeria Education – Digital Learning},
  author = {Electric Sheep Africa},
  year = {2025},
  publisher = {Hugging Face},
  url = {https://huggingface.co/datasets/electricsheepafrica/nigerian_education_digital_learning}
}

Related Datasets

This dataset is part of the Nigeria Education Sector collection:

Contact

For questions, feedback, or collaboration:

Changelog

Version 1.0.0 (October 2025)

  • Initial release
  • 180,000 synthetic records
  • Quality-assured using WAEC/JAMB/UBEC/NBS reference data
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