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---
license: other
language:
- en
task_categories:
- tabular-classification
- tabular-regression
multilinguality: monolingual
size_categories:
- n<1K
tags:
- tabular
- zip
- africa
- nigeria
- official-statistics
- open-data
pretty_name: "Sectorial Distribution of Value Added Tax | Africa (Nigeria official open data)"
---

# Sectorial Distribution of Value Added Tax | Africa (Nigeria official open data)

33 rows - 1 Africa country - 2025 - Repackaged by [Electric Sheep Africa](https://huggingface.co/electricsheepafrica)

![rows](https://img.shields.io/badge/rows-33-blue)
![countries](https://img.shields.io/badge/countries-1-green)
![years](https://img.shields.io/badge/years-2025-orange)
![indicators](https://img.shields.io/badge/indicators-0-purple)
![license](https://img.shields.io/badge/license-other-lightgrey)

## TL;DR

This dataset packages one official `ZIP` resource from **Nigeria** 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

- **Source:** [Sectorial Distribution of Value Added Tax](https://microdata.nigerianstat.gov.ng/index.php/catalog/144/related-materials)
- **Publisher:** National Bureau of Statistics, Nigeria
- **Resource:** [Q3 2025 Value Added Tax Report](https://microdata.nigerianstat.gov.ng/index.php/catalog/144/download/1367)
- **Format:** `ZIP`
- **License:** [Other open license]()
- **Packaging mode:** `tabular_resource`

## Geographic coverage

1 Africa country:

| Country | Rows | First year | Last year | Name |
|---------|-----:|-----------:|----------:|------|
| `NGA` | 33 | 2025 | 2025 | `Nigeria` |

## 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. | `nbs-nada-144-1367:0` |
| `country_iso3` | `string` | ISO3 country code. | `NGA` |
| `country_name` | `string` | Country name. | `Nigeria` |
| `year` | `Int64` | Observation year. | `2025` |
| `s_no` | `float64` | Source column. | `1.0` |
| `classification` | `string` | Source column. | `Agricultural and Plantations` |
| `value_added_tax` | `float64` | Source column. | `986040359.3600004` |
| `value_added_tax_2` | `float64` | Source column. | `760027461.81` |
| `s_no_2` | `float64` | Source column. | `1.0` |
| `classification_2` | `string` | Source column. | `Accommodation and food service activities` |
| `vat` | `float64` | Source column. | `3705451942.290017` |
| `vat_2` | `float64` | Source column. | `4240103965.4800186` |
| `s_no_3` | `float64` | Source column. | `1.0` |
| `classification_3` | `string` | Source column. | `Accommodation and food service activities` |
| `vat_3` | `float64` | Source column. | `3682274009.360012` |
| `vat_4` | `float64` | Source column. | `5244847632.839991` |
| `vat_5` | `float64` | Source column. | `5475499410.829984` |
| `vat_6` | `float64` | Source column. | `5075921853.713215` |
| `total` | `float64` | Source column. | `19478542906.7432` |
| `vat_7` | `float64` | Source column. | `5569337421.519998` |
| `vat_8` | `float64` | Source column. | `5600239661.9800005` |
| `vat_9` | `float64` | Source column. | `6256635920.549988` |
| `vat_10` | `float64` | Source column. | `7186395308.54` |
| `total_2` | `float64` | Source column. | `24612608312.58999` |
| `vat_11` | `float64` | Source column. | `11437027539.30998` |
| `vat_12` | `float64` | Source column. | `10341770557.289972` |
| `vat_13` | `float64` | Source column. | `11795487600.829931` |
| `vat_14` | `float64` | Source column. | `13048682612.53996` |
| `total_3` | `float64` | Source column. | `46622968309.96985` |
| `vat_15` | `float64` | Source column. | `13576714797.349953` |
| `vat_16` | `float64` | Source column. | `11992652204.309977` |
| `vat_17` | `float64` | Source column. | `13239844086.47992` |
| `qonq` | `float64` | Source column. | `10.399633549964244` |
| `yony` | `float64` | Source column. | `12.244991767431156` |
| `share` | `float64` | Source column. | `1.1787937509132425` |
| `source_period_start_year` | `Int64` | First year inferred from source resource metadata. | `2025` |
| `source_period_end_year` | `Int64` | Last year inferred from source resource metadata. | `2025` |
| `source_period_label` | `string` | Human-readable period inferred from source resource metadata. | `2025` |
| `source_provider` | `string` | Publishing organization. | `National Bureau of Statistics, Nigeria` |
| `source_dataset` | `string` | Source package title. | `Sectorial Distribution of Value Added Tax` |
| `source_resource` | `string` | Source resource title. | `Q3 2025 Value Added Tax Report` |
| `source_package_id` | `string` | CKAN package UUID. | `NGA-NBS-VAT` |
| `source_resource_id` | `string` | CKAN resource UUID. | `nbs-nada-144-1367` |
| `source_url` | `string` | Original source resource URL. | `https://microdata.nigerianstat.gov.ng/index.php/catalog/144/download/136` |
| `license_id` | `string` | Source license identifier. | `other-open` |
| `retrieved_at` | `string` | UTC retrieval timestamp. | `2026-07-19T04:13:01Z` |

## Usage

```python
from datasets import load_dataset

ds = load_dataset("electricsheepafrica/africa-nigeria-sectorial-distribution-of-value-added-tax-93738320")
df = ds["train"].to_pandas()
print(df.head())
```

### Filter to one country

```python
sample_country = df[df["country_iso3"] == "NGA"]
```

### Work with indicators

```python
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

```bibtex
@misc{electric_sheep_africa_africa_nigeria_sectorial_distribution_of_value_added_tax_93738320_2025,
  title        = {Sectorial Distribution of Value Added Tax | Africa (Nigeria official open data)},
  author       = {National Bureau of Statistics, Nigeria},
  year         = {2025},
  url          = {https://microdata.nigerianstat.gov.ng/index.php/catalog/144/related-materials},
  publisher    = {HuggingFace Datasets, repackaged by Electric Sheep Africa},
  howpublished = {\url{https://huggingface.co/datasets/electricsheepafrica/africa-nigeria-sectorial-distribution-of-value-added-tax-93738320}}
}
```

## License

Released under [Other open license]().

Original data (c) National Bureau of Statistics, Nigeria. 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](https://huggingface.co/electricsheepafrica)

---

Provenance: ingested 2026-07-19 via the Electric Sheep pipeline. Source URL:
https://microdata.nigerianstat.gov.ng/index.php/catalog/144/download/1367