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country_id
int64
243
243
month_id
int64
555
589
name
stringclasses
1 value
gwcode
int64
600
600
isoab
stringclasses
1 value
year
int64
2.03k
2.03k
month
int64
1
12
main_mean_ln
float64
0.15
0.37
main_mean
float64
0.16
0.45
main_dich
float64
0
0
esa_source
stringclasses
1 value
esa_processed
stringdate
2026-04-06 00:00:00
2026-04-06 00:00:00
243
563
Morocco
600
MAR
2,026
11
0.1662
0.1808
0
HDX
2026-04-06
243
572
Morocco
600
MAR
2,027
8
0.2271
0.2549
0
HDX
2026-04-06
243
564
Morocco
600
MAR
2,026
12
0.1746
0.1908
0
HDX
2026-04-06
243
589
Morocco
600
MAR
2,029
1
0.3739
0.4535
0
HDX
2026-04-06
243
555
Morocco
600
MAR
2,026
3
0.1497
0.1615
0
HDX
2026-04-06
243
559
Morocco
600
MAR
2,026
7
0.1586
0.1719
0
HDX
2026-04-06
243
584
Morocco
600
MAR
2,028
8
0.298
0.3472
0
HDX
2026-04-06
243
570
Morocco
600
MAR
2,027
6
0.2021
0.224
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HDX
2026-04-06
243
574
Morocco
600
MAR
2,027
10
0.1603
0.1738
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HDX
2026-04-06
243
560
Morocco
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MAR
2,026
8
0.1657
0.1802
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HDX
2026-04-06
243
566
Morocco
600
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2,027
2
0.1773
0.194
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HDX
2026-04-06
243
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Morocco
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2,026
4
0.1579
0.171
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HDX
2026-04-06
243
579
Morocco
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2,028
3
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HDX
2026-04-06
243
557
Morocco
600
MAR
2,026
5
0.154
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0
HDX
2026-04-06
243
588
Morocco
600
MAR
2,028
12
0.353
0.4233
0
HDX
2026-04-06
243
558
Morocco
600
MAR
2,026
6
0.1515
0.1636
0
HDX
2026-04-06
243
587
Morocco
600
MAR
2,028
11
0.2672
0.3063
0
HDX
2026-04-06
243
578
Morocco
600
MAR
2,028
2
0.1792
0.1963
0
HDX
2026-04-06
243
582
Morocco
600
MAR
2,028
6
0.2167
0.2419
0
HDX
2026-04-06
243
565
Morocco
600
MAR
2,027
1
0.1899
0.2092
0
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2026-04-06
243
577
Morocco
600
MAR
2,028
1
0.2113
0.2353
0
HDX
2026-04-06
243
573
Morocco
600
MAR
2,027
9
0.2349
0.2648
0
HDX
2026-04-06
243
580
Morocco
600
MAR
2,028
4
0.189
0.208
0
HDX
2026-04-06
243
561
Morocco
600
MAR
2,026
9
0.1725
0.1883
0
HDX
2026-04-06
243
575
Morocco
600
MAR
2,027
11
0.1769
0.1935
0
HDX
2026-04-06
243
562
Morocco
600
MAR
2,026
10
0.1813
0.1987
0
HDX
2026-04-06
243
569
Morocco
600
MAR
2,027
5
0.1872
0.2059
0
HDX
2026-04-06
243
583
Morocco
600
MAR
2,028
7
0.2562
0.292
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HDX
2026-04-06

Morocco - VIEWS conflict forecasts

Publisher: Violence & Impacts Early-Warning System · Source: HDX · License: cc-by-sa · Updated: 2026-04-01


Abstract

The Violence & Impacts Early-Warning System (VIEWS) is an award-winning conflict prediction system that generates monthly forecasts for violent conflicts across the world up to three years in advance. It is supported by the iterative research and development activities undertaken by the VIEWS consortium.

Each row in this dataset represents country-level aggregates. Data was last updated on HDX on 2026-04-01. Geographic scope: MAR.

Curated into ML-ready Parquet format by Electric Sheep Africa.


Dataset Characteristics

Domain Conflict and security
Unit of observation Country-level aggregates
Rows (total) 36
Columns 12 (8 numeric, 4 categorical, 0 datetime)
Train split 28 rows
Test split 7 rows
Geographic scope MAR
Publisher Violence & Impacts Early-Warning System
HDX last updated 2026-04-01

Variables

Geographiccountry_id (range 243.0–243.0), isoab (MAR), year (range 2026.0–2029.0).

Temporalmonth_id (range 555.0–590.0), month (range 1.0–12.0).

Identifier / Metadataname (Morocco), gwcode (range 600.0–600.0), esa_source (HDX), esa_processed (2026-04-06).

Othermain_mean_ln (range 0.1497–0.3868), main_mean (range 0.1615–0.4723), main_dich (range 0.0–0.0).


Quick Start

from datasets import load_dataset

ds    = load_dataset("electricsheepafrica/africa-mar-views-conflict-forecasts")
train = ds["train"].to_pandas()
test  = ds["test"].to_pandas()

print(train.shape)
train.head()

Schema

Column Type Null % Range / Sample Values
country_id int64 0.0% 243.0 – 243.0 (mean 243.0)
month_id int64 0.0% 555.0 – 590.0 (mean 572.5)
name object 0.0% Morocco
gwcode int64 0.0% 600.0 – 600.0 (mean 600.0)
isoab object 0.0% MAR
year int64 0.0% 2026.0 – 2029.0 (mean 2027.1667)
month int64 0.0% 1.0 – 12.0 (mean 6.5)
main_mean_ln float64 0.0% 0.1497 – 0.3868 (mean 0.2149)
main_mean float64 0.0% 0.1615 – 0.4723 (mean 0.2425)
main_dich float64 0.0% 0.0 – 0.0 (mean 0.0)
esa_source object 0.0% HDX
esa_processed object 0.0% 2026-04-06

Numeric Summary

Column Min Max Mean Median
country_id 243.0 243.0 243.0 243.0
month_id 555.0 590.0 572.5 572.5
gwcode 600.0 600.0 600.0 600.0
year 2026.0 2029.0 2027.1667 2027.0
month 1.0 12.0 6.5 6.5
main_mean_ln 0.1497 0.3868 0.2149 0.1895
main_mean 0.1615 0.4723 0.2425 0.2086
main_dich 0.0 0.0 0.0 0.0

Curation

Raw data was downloaded from HDX via the CKAN API and converted to Parquet. Column names were lowercased and standardised to snake_case. Common missing-value markers (N/A, null, none, -, unknown, no data, #N/A) were unified to NaN. The dataset was split 80/20 into train and test partitions using a fixed random seed (42) and saved as Snappy-compressed Parquet.


Limitations

  • Data originates from Violence & Impacts Early-Warning System and has not been independently validated by ESA.
  • Automated cleaning cannot correct for misreported values, definitional inconsistencies, or sampling bias in the original collection.
  • Refer to the original HDX dataset page for the publisher's own methodology notes and caveats.

Citation

@dataset{hdx_africa_mar_views_conflict_forecasts,
  title     = {Morocco - VIEWS conflict forecasts},
  author    = {Violence & Impacts Early-Warning System},
  year      = {2026},
  url       = {https://data.humdata.org/dataset/mar-views-conflict-forecasts},
  note      = {Repackaged for machine learning by Electric Sheep Africa (https://huggingface.co/electricsheepafrica)}
}

Electric Sheep Africa — Africa's ML dataset infrastructure. Lagos, Nigeria.

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