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100
train_0000
[ { "t": 0, "x": -89.17626953125, "y": 37.005104064941406 }, { "t": 0, "x": 23.762727737426758, "y": 37.99748992919922 }, { "t": 0, "x": 130.3963623046875, "y": 33.580413818359375 }, { "t": 0, "x": 120.59973907470703, "y": 15.478597640991211 }, { "t"...
train_0001
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train_0002
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train_0003
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train_0004
[ { "t": 0, "x": -70.93087005615234, "y": 41.63767623901367 }, { "t": 1, "x": -122.14391326904297, "y": 37.4243049621582 }, { "t": 3, "x": -73.93135070800781, "y": 40.6971321105957 }, { "t": 3, "x": -87.68122863769531, "y": 41.84260177612305 }, { "t"...
train_0005
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train_0006
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train_0007
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train_0008
[ { "t": 0, "x": -73.93135070800781, "y": 40.6971321105957 }, { "t": 2, "x": -122.14391326904297, "y": 37.4243049621582 }, { "t": 2, "x": -66.06112670898438, "y": 18.386932373046875 }, { "t": 3, "x": -118.40737915039062, "y": 34.09786605834961 }, { "...
train_0009
[ { "t": 0, "x": -122.03095245361328, "y": 36.97402572631836 }, { "t": 1, "x": -118.40737915039062, "y": 34.09786605834961 }, { "t": 2, "x": -73.93135070800781, "y": 40.6971321105957 }, { "t": 5, "x": -121.88579559326172, "y": 37.33847427368164 }, { ...
train_0010
[ { "t": 0, "x": 35.203399658203125, "y": 31.77159881591797 }, { "t": 1, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 1, "x": -73.75525665283203, "y": 42.65144348144531 }, { "t": 2, "x": -7.46790885925293, "y": 54.81916427612305 }, { "t"...
train_0011
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train_0012
[ { "t": 0, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 0, "x": 37.28712463378906, "y": 41.127098083496094 }, { "t": 1, "x": 120.5418701171875, "y": 15.18591594696045 }, { "t": 2, "x": 18.06448745727539, "y": 59.332786560058594 }, { "t"...
train_0013
[ { "t": 0, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 0, "x": 34.88822937011719, "y": 32.00436019897461 }, { "t": 0, "x": 51.405189514160156, "y": 35.72453308105469 }, { "t": 0, "x": 51.405189514160156, "y": 35.72453308105469 }, { "t"...
train_0014
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train_0015
[ { "t": 0, "x": -75.69894409179688, "y": 45.42094421386719 }, { "t": 0, "x": -75.69894409179688, "y": 45.42094421386719 }, { "t": 0, "x": -75.69894409179688, "y": 45.42094421386719 }, { "t": 0, "x": -75.69894409179688, "y": 45.42094421386719 }, { "t...
train_0016
[ { "t": 0, "x": 8.644190788269043, "y": 50.11796951293945 }, { "t": 3, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 4, "x": 2.1509130001068115, "y": 41.400634765625 }, { "t": 4, "x": -7.312045097351074, "y": 55.01156234741211 }, { "t": ...
train_0017
[ { "t": 0, "x": -73.93135070800781, "y": 40.6971321105957 }, { "t": 4, "x": -7.46790885925293, "y": 54.81916427612305 }, { "t": 4, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 5, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t":...
train_0018
[ { "t": 0, "x": -7.312045097351074, "y": 55.01156234741211 }, { "t": 1, "x": 9.829218864440918, "y": 44.10673522949219 }, { "t": 3, "x": 35.37096405029297, "y": 33.55043411254883 }, { "t": 3, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t":...
train_0019
[ { "t": 0, "x": 2.1509130001068115, "y": 41.400634765625 }, { "t": 0, "x": -77.09691619873047, "y": 38.98637008666992 }, { "t": 0, "x": -0.37680500745773315, "y": 39.470237731933594 }, { "t": 0, "x": -3.696263074874878, "y": 40.46559524536133 }, { "...
train_0020
[ { "t": 0, "x": -58.444435119628906, "y": -34.617679595947266 }, { "t": 0, "x": 9.015253067016602, "y": 48.685665130615234 }, { "t": 0, "x": -73.93135070800781, "y": 40.6971321105957 }, { "t": 0, "x": -69.95116424560547, "y": 18.4567928314209 }, { "...
train_0021
[ { "t": 0, "x": -122.44335174560547, "y": 37.75536346435547 }, { "t": 0, "x": -3.696263074874878, "y": 40.46559524536133 }, { "t": 0, "x": -122.44335174560547, "y": 37.75536346435547 }, { "t": 0, "x": -5.956210136413574, "y": 54.60771179199219 }, { ...
train_0022
[ { "t": 0, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 2, "x": 1.4442089796066284, "y": 43.604652404785156 }, { "t": 2, "x": 24.05712127685547, "y": 37.714962005615234 }, { "t": 3, "x": -7.312045097351074, "y": 55.01156234741211 }, { "...
train_0023
[ { "t": 0, "x": -6.670300006866455, "y": 54.69200897216797 }, { "t": 0, "x": 8.933988571166992, "y": 44.40706253051758 }, { "t": 2, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 3, "x": -7.562948226928711, "y": 54.190673828125 }, { "t": ...
train_0024
[ { "t": 0, "x": 8.53918170928955, "y": 47.368648529052734 }, { "t": 0, "x": -6.328597068786621, "y": 54.4633674621582 }, { "t": 1, "x": -58.444435119628906, "y": -34.617679595947266 }, { "t": 1, "x": -58.444435119628906, "y": -34.617679595947266 }, { ...
train_0025
[ { "t": 0, "x": -6.931393146514893, "y": 54.59456253051758 }, { "t": 0, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 0, "x": -58.444435119628906, "y": -34.617679595947266 }, { "t": 0, "x": -58.444435119628906, "y": -34.617679595947266 }, { ...
train_0026
[ { "t": 0, "x": 13.401850700378418, "y": 52.501529693603516 }, { "t": 0, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t": 0, "x": 8.644190788269043, "y": 50.11796951293945 }, { "t": 0, "x": -118.40737915039062, "y": 34.09786605834961 }, { "...
train_0027
[ { "t": 0, "x": -3.696263074874878, "y": 40.46559524536133 }, { "t": 0, "x": -0.14004099369049072, "y": 51.50438690185547 }, { "t": 0, "x": 73.06907653808594, "y": 33.59401321411133 }, { "t": 0, "x": -3.696263074874878, "y": 40.46559524536133 }, { "...
train_0028
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train_0029
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train_0030
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train_0031
[ { "t": 0, "x": -0.14004099369049072, "y": 51.50438690185547 }, { "t": 0, "x": -90.52906799316406, "y": 14.622868537902832 }, { "t": 1, "x": -6.690752029418945, "y": 54.44661331176758 }, { "t": 1, "x": -3.696263074874878, "y": 40.46559524536133 }, { ...
train_0032
[ { "t": 0, "x": -3.020251989364624, "y": 43.32066345214844 }, { "t": 0, "x": 2.342329978942871, "y": 48.85664367675781 }, { "t": 2, "x": -122.33130645751953, "y": 47.61078643798828 }, { "t": 2, "x": -5.956210136413574, "y": 54.60771179199219 }, { "t...
train_0033
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train_0034
[ { "t": 0, "x": 16.37381935119629, "y": 48.20817565917969 }, { "t": 0, "x": -0.14004099369049072, "y": 51.50438690185547 }, { "t": 0, "x": 38.933650970458984, "y": 15.333513259887695 }, { "t": 0, "x": -5.956210136413574, "y": 54.60771179199219 }, { ...
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Global Terrorism Database (GTD) STPP Benchmark Dataset

A benchmark-ready Spatio-Temporal Point Process (STPP) dataset derived from the Global Terrorism Database (~200k records), following the standard split semantics for Neural STPP evaluation.

Dataset Description

Each record represents a sequence of events. The dataset covers historical terrorism incidents, partitioned sequentially into train / val / test subsets (70% / 15% / 15% ratio).

Source Format

Raw data was obtained from Kaggle (START-UMD/gtd). Each sequence maps to a (N, 3) float64 array with columns [t, x, y].

Sequence Unit

One sequence corresponds to a chunk of contiguous events. No new windowing or segmentation was applied. The dataset unit aligns with benchmark STPP formulations.

Event Schema

Field Type Description
t float Time of event
x float Longitude or X coordinate
y float Latitude or Y coordinate

Values are exported as-is — no normalization applied. The Neural STPP codebase applies StdScaler normalization at training time, not during preprocessing.

Split Semantics

Split Sequences Events Ratio
train 1,230 122,936 70%
val 272 27,136 15%
test 271 27,062 15%

Split logic mirrors a sequential temporal split sequential_split_ratio_(0.7, 0.15, 0.15) — no random splitting, no reshuffling.

File Structure

gtd/
├── train.jsonl        # 1230 sequences
├── val.jsonl          # 272 sequences
├── test.jsonl         # 271 sequences
├── dataset_meta.json  # Task/schema metadata
└── README.md

JSONL Row Schema

Each line in a .jsonl file is a JSON object:

{
  "sequence_id": "seq_0",
  "events": [
    {"t": 1.062, "x": -87.629, "y": 41.878},
    {"t": 2.318, "x": -87.630, "y": 41.879}
  ]
}

Example (Python)

import json

with open("train.jsonl") as f:
    for line in f:
        seq = json.loads(line)
        sid    = seq["sequence_id"]
        events = seq["events"]        # list of {"t", "x", "y"} dicts
        t = [e["t"] for e in events]
        x = [e["x"] for e in events]
        y = [e["y"] for e in events]

Source & License

Source data: Kaggle URL: https://www.kaggle.com/datasets/START-UMD/gtd

Version 1.0.0 Time Ordering Fix

Version 1.0.0 applies a deterministic data-level repair: events are stable-sorted by t globally before chunking. Validation ensures non-decreasing timestamps for every sequence in train/val/test.

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