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257
dy
listlengths
94
257
eos
listlengths
94
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scale
float64
0
0.01
created_at
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2026-01-22 10:54:54
2026-01-27 15:04:33
session_id
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7 values
177d46ae-164b-49db-a7b6-f39608764793
Gegenspieler
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0.003561
2026-01-22T10:55:13.847Z
60c195af-4292-452a-b47d-12f8392089ba
2a7e7a0b-a382-4e50-91c1-68b1d9484ea9
einerseits
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2026-01-22T10:54:54.261Z
60c195af-4292-452a-b47d-12f8392089ba
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geirrt
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0.007593
2026-01-22T10:55:05.786Z
60c195af-4292-452a-b47d-12f8392089ba
7c9c026f-fd10-4b6c-8219-1b87b61cb440
Gegen
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2026-01-22T10:55:01.136Z
60c195af-4292-452a-b47d-12f8392089ba
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Schultern
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0.00537
2026-01-22T10:55:19.439Z
60c195af-4292-452a-b47d-12f8392089ba
9b95a67b-edc2-40a7-af0f-91df73e467b0
Bürgermeister
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0.00339
2026-01-22T11:22:25.800Z
29bc4536-6c1f-4552-82f2-ef331122de48
6e875abd-547a-47cb-80c3-16b687a52a90
weiße
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0.00419
2026-01-22T11:44:25.303Z
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46b55cf6-2989-492b-8d97-a01a4f96bcc9
Scherz
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0.001909
2026-01-27T14:47:04.916Z
9983f04f-d7b9-48b3-8c15-b4158f5a635e
e2826412-5027-4ffe-ba17-6e517337b274
Bruno
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0.002834
2026-01-27T14:49:14.524Z
75e74720-93f9-49cd-901d-4ae4afa50eb7
f5f5f7c4-0467-45b4-bc05-bbe48875d004
angeblich
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0.001439
2026-01-27T14:51:20.009Z
4e0c1667-1cc8-404d-a1b1-4976aaaa4847
921a7f4a-ff83-4001-9c51-da6a65bcf33e
insbesondere
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0.002521
2026-01-27T15:04:33.984Z
c4b2c219-3630-4503-b364-57b2a8ee3961

v2testing

This dataset contains handwriting stroke data collected using a stylus (S Pen) on a tablet device. Optimized for training RNNs (Recurrent Neural Networks) on handwriting generation/recognition tasks.

Data Format

Data is available in two formats in the data/ directory:

  • Parquet files (*.parquet): Columnar format, optimized for HuggingFace datasets
  • JSONL files (*.jsonl): Line-delimited JSON backup, easy to parse

Both formats contain identical RNN training data with the same batch IDs.

Parquet Schema

Each row in the Parquet files represents a complete handwriting sample:

Column Type Description
id string Unique identifier (UUID)
text string The prompt text that was written
dx list Delta X offsets between consecutive points
dy list Delta Y offsets between consecutive points
eos list End-of-stroke flags (1 = pen lift, 0 = continue)
scale double Scale factor used for normalization
created_at string ISO timestamp of creation
session_id string Collection session identifier

JSONL Format

Each line in the JSONL files is a JSON object with the following structure:

{"id": "uuid", "text": "prompt text", "points": [{"dx": 0, "dy": 0, "eos": 0}, ...], "scale": 1.0}
Field Type Description
id string Unique identifier (UUID)
text string The prompt text that was written
points array Array of point objects with dx, dy, eos
scale number (optional) Scale factor used for normalization

RNN Training Format

The stroke data is stored in the format commonly used for RNN handwriting models:

  • dx/dy: Position deltas from the previous point (first point has dx=dy=0)
  • eos: Binary flag indicating pen lifts (end of stroke)
  • Data is normalized by bounding box for consistent scale

Visualization

Preview SVGs are available in renders_preview/ for HuggingFace Dataset Viewer.

Usage

Using Parquet (Recommended for HuggingFace)

from datasets import load_dataset

# For private repos, use: load_dataset("finnbusse/v2testing", token="YOUR_HF_TOKEN")
dataset = load_dataset("finnbusse/v2testing")

# Access a sample
sample = dataset['train'][0]

# Stroke data is already native Python lists (no JSON parsing needed)
dx = sample['dx']
dy = sample['dy']
eos = sample['eos']

# Reconstruct absolute positions
x, y = 0, 0
positions = []
for dx_i, dy_i, eos_i in zip(dx, dy, eos):
    x += dx_i
    y += dy_i
    positions.append((x, y, eos_i))

Using JSONL (Alternative)

JSONL filenames follow the batch ID pattern: YYYYMMDD_HHMMSS_XXXX.jsonl

import json
import glob

# Read all JSONL files in the data directory
for jsonl_file in glob.glob('data/*.jsonl'):
    with open(jsonl_file, 'r') as f:
        for line in f:
            sample = json.loads(line)
            points = sample['points']
            scale = sample.get('scale', 1.0)  # scale is optional
            # Each point has: dx, dy, eos

Collection Method

Data was collected using a web application with Pointer Events API, capturing stylus input including pressure and tilt when available.

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