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MassCount-CF
Synthetic counterfactual counting corpus for identifying an additive neural-mass cardinality coordinate in vision-language models (NMCA). Companion dataset to "Counting Requires Mass: An Algebraic and Causal Account of Numerosity in Vision-Language Models."
Corpus version: masscount-cf-1.0.0
Master scenes: 99,989
Delivered images (this upload): 326,623
Object instances: 28,617,018
Structure
Scene graphs are the durable artifact; pixels are regenerable from them at any
resolution via the generator (generate.py in the companion repo). Each row
in scenes/*.parquet is one scene with per-state geometric descriptors
(hull area, coverage, nearest-neighbour statistics, Ripley's K); each row in
objects/*.parquet is one placed object with normalized [0,1]^2 coordinates.
versions/masscount-cf-1.0.0/
scenes/shard_*.parquet one row per scene, with descriptors + split
objects/shard_*.parquet one row per placed object
graph_report.json integrity report: dedup, split-leak, dupe counts
manifest.json the exact build manifest for this version
images/{resolution}/{shard}/*.webp (present only if uploaded with images)
Families
| family | scenes |
|---|---|
| chain | 44,400 |
| nuisance | 19,915 |
| union_part | 7,500 |
| instance_rep | 4,800 |
| heldout_natural_bg | 4,000 |
| heldout_distractor_only | 4,000 |
| heldout_cutout | 4,000 |
| union | 3,750 |
| tile | 3,600 |
| dewind | 2,820 |
| tile_base | 1,200 |
| chain_origin | 4 |
Splits
Grouped by parent_chain_id, never by image, following the category-disjoint
protocol of FSC-147 (Ranjan et al. 2021, CVPR). reference is a small set of
shared calibration-origin scenes (X_0 per chain band) and is not a model
evaluation split.
| split | scenes |
|---|---|
| test | 62,499 |
| train | 31,154 |
| val | 6,332 |
| reference | 4 |
Integrity
This version passed, at upload time:
- unique scene_id: True
- unique content_hash (excluding the
referencesplit): True - cross-split content duplicates: 0 (must be 0)
- chains split across train/val/test: 0 (must be 0)
Citation
If you use this corpus, please cite the accompanying paper.
License
CC-BY-4.0. All content is synthetically generated; no real images or copyrighted material are included, with the exception of any user-supplied cutout asset library, which is the uploader's responsibility to license correctly.
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