microsoft_table-transformer-structure-recognition
microsoft · View on Hugging Face ↗
Model card
The complete upstream card, rendered from this payload's README.md — the same hash-verified bytes the torrent distributes. Images and off-site links are removed; the original card on Hugging Face carries them.
license: mit widget:
- src: https://documentation.tricentis.com/tosca/1420/en/content/tbox/images/table.png example_title: Table
Table Transformer (fine-tuned for Table Structure Recognition)
Table Transformer (DETR) model trained on PubTables1M. It was introduced in the paper PubTables-1M: Towards Comprehensive Table Extraction From Unstructured Documents by Smock et al. and first released in this repository.
Disclaimer: The team releasing Table Transformer did not write a model card for this model so this model card has been written by the Hugging Face team.
Model description
The Table Transformer is equivalent to DETR, a Transformer-based object detection model. Note that the authors decided to use the "normalize before" setting of DETR, which means that layernorm is applied before self- and cross-attention.
Usage
You can use the raw model for detecting the structure (like rows, columns) in tables. See the documentation for more info.
Magnet link
Opens the swarm directly in your torrent client — no file download needed. Copy-paste works too:
magnet:?xt=urn:btih:940fc4ff3848fb329d4c8be1fee3185e40b52bcf&dn=microsoft_table-transformer-structure-recognitionOpen magnet in torrent client · infohash 940fc4ff3848fb329d4c8be1fee3185e40b52bcf
Files & hashes
| Path | Size | sha1 | sha256 |
|---|---|---|---|
| README.md | 1.2 KB (1,203 B) | 30ec75aed464edcc8d3ddfd4d1d2176302213452 | 75ccc86265a2ca9f3e50adbbc07c0a7433c5bd380ead2ccc61c3c5c612c183c0 |
| config.json | 1.4 KB (1,469 B) | b784cf6d3759e23c6af6d5c52a9db9e34a7b5aaa | 9fa1108c9fbfac69086d23bdd26b9a2242a56a72766fed98c6dfaeaae59ebf76 |
| model.safetensors | 110.1 MB (115,434,268 B) | c587cadc215d4e56952397fb256c75f32d55c46b | f581da65a586591124cac9545b09b93e4e8bf28ce3a8357af6ac15ce94fce16b |
| preprocessor_config.json | 274 B (274 B) | 3cf68cfe0f9b5ef223c0e71613930b758ddaae4d | 4bd6700976c66662678a521e529b06dca36df041c9d411884cb92e81bc5a6818 |
| pytorch_model.bin | 110.2 MB (115,509,981 B) | 8c27c45be3577bdbb5354954c76403b93672faed | ec887aff5bf24e943a1c090b477e1366b62b6d30c0d9be00759c18f16a688579 |
Cite this release
- Canonical URL
- https://aiseedbank.org/models/microsoft_table-transformer-structure-recognition/
- Slug
- microsoft_table-transformer-structure-recognition
- Infohash
- 940fc4ff3848fb329d4c8be1fee3185e40b52bcf
- License
- mit
- Signing key fingerprint
- 85a3b32c3712427b
Every file carries a locally computed sha256 — verify a download against the signed sums: microsoft_table-transformer-structure-recognition.SHA256SUMS (+ minisign signature).
Provenance
| Upstream repository | microsoft/table-transformer-structure-recognition |
|---|---|
| Revision (pinned) | f4d4bdc85c3fe4b1fa49658882a5d38bbdd0f343 |
| Fetched at | 2026-09-04T02:46:33Z |
| License at fetch | mit |
| Snapshot tool | huggingface · seedbank 0.1.0 |
Trackers
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✓ verified · rehash-vs-hf-metadata at 2026-09-04T02:46:37Z
mit220.2 MB (230,947,195 bytes)transformerspytorchsafetensorstable-transformerobject-detectionendpoints_compatiblepaper: 2110.00061