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Document paired visual/text and ImageNet encoder feature datasets

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+ "nonfinite_values": 0
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+ "sha256": "2272ab4d770d12b2cf68c9c9be219f6fc799335ab00f50265ae565f546fa306a"
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+ "sha256": "f24c6a3e72437301b8f783f4f700612ea6224b54d9f5f2baf28f623491d216fb",
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+ "nonfinite_values": 0
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+ },
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+ "sha256": "4b87b5cba1d364e7acb15536722a5bc7e2360101ff3ea660a6dee6ee93e45768",
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+ "nonfinite_values": 0
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+ }
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+ ],
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+ "total_files": 302,
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+ "total_bytes": 123709313038,
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+ "source_lcs_manifest_sha256": "bc439048824c510b471d4c8cf34b143471a49a50260906f210cb8a1723e971ed",
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+ "published_lcs_manifest_sha256": "f934b05aadf9b94039b207812033e48b1e2aefe43e0fd084b5508e6fd103dbed",
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+ "validation": {
2477
+ "all_arrays_finite": true,
2478
+ "vision_and_text_rows_aligned": true,
2479
+ "identical_70_encoder_ids_in_both_sets": true,
2480
+ "imagenet_200_per_class": true,
2481
+ "knn_pool_query_disjoint": true,
2482
+ "knn_shot_subsets_nested": true,
2483
+ "uniar_repaired_array_hash_verified": true
2484
+ },
2485
+ "release_status": "upload_in_progress",
2486
+ "inventory_note": "FILES.json and checksums.sha256 are excluded from the listed file count/hashes to avoid circular hashes."
2487
+ }
LICENSES.md ADDED
@@ -0,0 +1,13 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ # Upstream data and model terms
2
+
3
+ This repository assembles precomputed representations and sample metadata from multiple sources. The artifacts do not have a single newly assigned blanket license. The applicable upstream dataset and encoder terms continue to govern reuse.
4
+
5
+ | Component | Source and terms to consult |
6
+ | --- | --- |
7
+ | LCS-558K sample captions and image identifiers | [LLaVA-Pretrain dataset card](https://huggingface.co/datasets/liuhaotian/LLaVA-Pretrain) and [LLaVA project](https://github.com/haotian-liu/LLaVA) |
8
+ | ImageNet-1K sample labels, identifiers, and derived features | [ImageNet access and source terms](https://www.image-net.org/download.php) and [official ImageNet-1K dataset card](https://huggingface.co/datasets/ILSVRC/imagenet-1k) |
9
+ | Visual features | Source-data terms and the individual encoder/model terms linked in [encoders.json](encoders.json) and the [Model Zoo](https://huggingface.co/336labs/VisionEncoder-to-MLLM-ModelZoo) |
10
+ | Text features | Source-data terms and [Qwen2.5-1.5B-Instruct](https://huggingface.co/Qwen/Qwen2.5-1.5B-Instruct), [Qwen3-1.7B](https://huggingface.co/Qwen/Qwen3-1.7B), and [SmolLM2-1.7B-Instruct](https://huggingface.co/HuggingFaceTB/SmolLM2-1.7B-Instruct) model cards |
11
+ | Evaluation software | [MLLM-VisionEncoder-Eval source repository](https://github.com/JuntaoTang/MLLM-VisionEncoder-Eval) and its applicable license |
12
+
13
+ Raw source images and encoder weights are obtained from their respective upstream releases. Listing upstream download links does not override access conditions or grant new redistribution rights. Cite the paper, source datasets, and the encoders used in your work.
README.md ADDED
@@ -0,0 +1,324 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ ---
2
+ pretty_name: RAVEL Vision Encoder Features
3
+ language:
4
+ - en
5
+ task_categories:
6
+ - image-classification
7
+ - other
8
+ license: other
9
+ license_name: upstream-data-and-model-terms
10
+ license_link: https://huggingface.co/datasets/336labs/VisionEncoder-Features/blob/main/LICENSES.md
11
+ size_categories:
12
+ - 100K<n<1M
13
+ source_datasets:
14
+ - liuhaotian/LLaVA-Pretrain
15
+ - ILSVRC/imagenet-1k
16
+ tags:
17
+ - vision-encoder-evaluation
18
+ - multimodal
19
+ - feature-extraction
20
+ - ravel
21
+ - numpy
22
+ - arxiv:2610.05413
23
+ configs:
24
+ - config_name: lcs558k_n1000_seed42
25
+ default: true
26
+ data_files:
27
+ - split: train
28
+ path: lcs558k/n1000_seed42/samples/samples.jsonl
29
+ - config_name: imagenet1k_train200k
30
+ data_files:
31
+ - split: train
32
+ path: imagenet1k/train200k/samples/samples.jsonl
33
+ ---
34
+
35
+ <h1 align="center">A Strong Baseline for Evaluating Vision Encoders<br>in Multimodal Large Language Models</h1>
36
+
37
+ <p align="center"><strong>RAVEL · Vision Encoder Feature Dataset</strong></p>
38
+
39
+ <p align="center">Yilin Yang · Jun-Tao Tang · Kengyi Wang<br>Siyuan Su · Gaoyong Luo · Mingda Chen</p>
40
+
41
+ <p align="center">
42
+ <a href="https://arxiv.org/abs/2610.05413"><img src="https://img.shields.io/badge/arXiv-2610.05413-b31b1b" alt="Paper"></a>
43
+ <a href="https://github.com/JuntaoTang/MLLM-VisionEncoder-Eval"><img src="https://img.shields.io/badge/GitHub-Code-181717?logo=github" alt="Code"></a>
44
+ <a href="https://huggingface.co/336labs/VisionEncoder-to-MLLM-ModelZoo"><img src="https://img.shields.io/badge/Model_Zoo-Checkpoints-FFD21E" alt="MLLM checkpoints"></a>
45
+ <a href="https://huggingface.co/datasets/336labs/VisionEncoder-Features/tree/main"><img src="https://img.shields.io/badge/Dataset-Features-blue" alt="Feature files"></a>
46
+ <a href="#citation"><img src="https://img.shields.io/badge/Citation-BibTeX-blue" alt="Citation"></a>
47
+ </p>
48
+
49
+ ## Dataset Summary
50
+
51
+ This dataset provides cached representations for the **70 vision encoders / visual tokenizers** evaluated in [A Strong Baseline for Evaluating Vision Encoders in Multimodal Large Language Models](https://arxiv.org/abs/2610.05413). It includes **43 language-supervised, 22 self-supervised, and 5 discrete** encoders, with shared sample order across encoders within each subset.
52
+
53
+ The release contains LCS-558K image patch features for RAVEL and other paired image–text probes, three matching language-model text feature arrays, and ImageNet-1K pooled image features for kNN and linear probes. Each encoder has its own metadata. The original NumPy arrays and storage precision are retained.
54
+
55
+ **Release status:** **Upload in progress.** The full expected inventory is in `FILES.json`; feature files become available as batches are committed.
56
+
57
+ **Resources:** [Paper](https://arxiv.org/abs/2610.05413) · [Evaluation code](https://github.com/JuntaoTang/MLLM-VisionEncoder-Eval) · [MLLM Model Zoo and encoder weights](https://huggingface.co/336labs/VisionEncoder-to-MLLM-ModelZoo) · [Encoder catalog](encoders.json) · [File inventory](FILES.json)
58
+
59
+ ## Dataset Structure
60
+
61
+ | Component | Arrays | Shape | Storage dtype | Size (GiB) |
62
+ | --- | ---: | --- | --- | ---: |
63
+ | LCS-1000 visual patches | 70 | `[1000, T, D]` | float16 | 55.27 |
64
+ | Aligned LLM text vectors | 3 | `[1000, D]` | float32 | 0.02 |
65
+ | ImageNet200k pooled features | 70 | `[200000, D]` | float32 | 59.89 |
66
+
67
+ Total prepared contents, including shared metadata and protocols: approximately **115.21 GiB**. NumPy sizes include their headers; no extra precision conversion was applied.
68
+
69
+ ```text
70
+ README.md
71
+ LICENSES.md
72
+ encoders.json
73
+ FILES.json
74
+ checksums.sha256
75
+ lcs558k/n1000_seed42/
76
+ samples/
77
+ samples.jsonl
78
+ manifest.json
79
+ images_manifest.json
80
+ source_indices.npy
81
+ vision/
82
+ <tokenizer_id>_patch_n1000_seed42.npy
83
+ <tokenizer_id>_patch_n1000_seed42.json
84
+ text/
85
+ <llm_id>_penultimate_mean_n1000_seed42.npy
86
+ <llm_id>_penultimate_mean_n1000_seed42.audit.json
87
+ imagenet1k/train200k/
88
+ samples/{samples.jsonl,manifest.json}
89
+ features/<rank>_<tokenizer_id>.npy
90
+ metadata/<rank>_<tokenizer_id>.json
91
+ labels.npy
92
+ source_indices.npy
93
+ export_manifest.json
94
+ manifest.tsv
95
+ protocols/{knn_seed42.json,generation_receipt.json}
96
+ ```
97
+
98
+ ### LCS-558K: 1,000 paired examples, seed 42
99
+
100
+ The source is the `blip_laion_cc_sbu_558k.json` alignment annotation set from [LLaVA-Pretrain](https://huggingface.co/datasets/liuhaotian/LLaVA-Pretrain). The cached subset was sampled with `numpy.default_rng(42).choice`, without replacement, retaining the **unsorted sampled order**. The ordered manifest identifies the exact selected records; the original full-source annotation hash/revision is not recorded in every historical audit.
101
+
102
+ Each visual array has shape **`[1000, T, D]`**, stored as **float16**; patch count `T` and dimension `D` depend on the encoder. The text arrays are float32, with one vector per matching caption:
103
+
104
+ | ID | Language model | Shape | Text extraction |
105
+ | --- | --- | --- | --- |
106
+ | `qwen25` | [Qwen2.5-1.5B-Instruct](https://huggingface.co/Qwen/Qwen2.5-1.5B-Instruct) | `[1000, 1536]` | Penultimate hidden state, mean over valid tokens |
107
+ | `qwen3` | [Qwen3-1.7B](https://huggingface.co/Qwen/Qwen3-1.7B) | `[1000, 2048]` | Penultimate hidden state, mean over valid tokens |
108
+ | `smollm2` | [SmolLM2-1.7B-Instruct](https://huggingface.co/HuggingFaceTB/SmolLM2-1.7B-Instruct) | `[1000, 2048]` | Penultimate hidden state, mean over valid tokens |
109
+
110
+ Text extraction uses layer `-2`, right padding, no truncation, bfloat16 inference, and float32 storage. The audits record pinned model revisions, file hashes, extraction settings, and software versions. These are the **mean-token** text features used by the current paper reproduction pipeline.
111
+
112
+ Row `i` in **every visual array and every text array** refers to row `i` of `samples/samples.jsonl`. Keep this order when comparing encoders. Fields are:
113
+
114
+ | Field | Meaning |
115
+ | --- | --- |
116
+ | `row_index` | Zero-based row in the released arrays |
117
+ | `source_index` | Record index in the original LCS alignment annotation list |
118
+ | `image_id` | Image path relative to the upstream image archive |
119
+ | `text_id` | Source text/example identifier |
120
+ | `text` | Caption used for text feature extraction |
121
+
122
+ The full manifest additionally retains the source conversation records and sampling information. Raw images are available from the upstream dataset.
123
+
124
+ ### ImageNet-1K: 200,000 training examples
125
+
126
+ The subset contains **200 examples per class**, across **1,000 classes**, from the official ImageNet-1K training split. All 70 arrays have shape **`[200000, D]`** and are stored as **float32**. Shared `source_indices.npy` is strictly increasing in the original train-index order; `labels.npy` contains integer class IDs `0–999`.
127
+
128
+ The sample table contains `row_index`, `source_index`, and `label`. Each array's readout is recorded in its metadata: for example, CLIP uses its final post-LayerNorm CLS before the visual projection, while the DINO readout concatenates normalized CLS and mean patch features. **Use the per-encoder representation description when interpreting dimensions.** These pooled/readout arrays have different semantics from the LCS patch-token arrays.
129
+
130
+ `protocols/knn_seed42.json` provides the existing deterministic **195-example training pool / 5-example query split per class**, with nested training subsets of **5, 10, 20, 45, 95, and 195** examples per class. Protocol indices address the **released 200,000-row arrays**; source indices identify examples in the original training split. The query split consists of held-out examples from that training subset. Full ImageNet training and validation features are outside this release.
131
+
132
+ ## Download and Use
133
+
134
+ Install `huggingface_hub` and `numpy`; install `datasets` to load the sample tables.
135
+
136
+ ### Download one encoder with aligned text features
137
+
138
+ ```python
139
+ import json
140
+ from pathlib import Path
141
+ import numpy as np
142
+ from huggingface_hub import snapshot_download
143
+
144
+ root = Path(snapshot_download(
145
+ repo_id="336labs/VisionEncoder-Features",
146
+ repo_type="dataset",
147
+ allow_patterns=[
148
+ "encoders.json", "README.md", "LICENSES.md",
149
+ "lcs558k/n1000_seed42/samples/**",
150
+ "lcs558k/n1000_seed42/vision/clip_openai__l14*",
151
+ "lcs558k/n1000_seed42/text/qwen3*",
152
+ ],
153
+ local_dir="VisionEncoder-Features",
154
+ ))
155
+ base = root / "lcs558k/n1000_seed42"
156
+ vision = np.load(base / "vision/clip_openai__l14_patch_n1000_seed42.npy",
157
+ mmap_mode="r", allow_pickle=False)
158
+ text = np.load(base / "text/qwen3_penultimate_mean_n1000_seed42.npy",
159
+ mmap_mode="r", allow_pickle=False)
160
+ samples = json.loads((base / "samples/manifest.json").read_text())["records"]
161
+ assert vision.shape[0] == text.shape[0] == len(samples) == 1000
162
+ ```
163
+
164
+ ### Download pooled ImageNet features
165
+
166
+ ```python
167
+ import json
168
+ from pathlib import Path
169
+ import numpy as np
170
+ from huggingface_hub import snapshot_download
171
+
172
+ root = Path(snapshot_download(
173
+ repo_id="336labs/VisionEncoder-Features",
174
+ repo_type="dataset",
175
+ allow_patterns=[
176
+ "encoders.json", "README.md", "LICENSES.md",
177
+ "imagenet1k/train200k/features/001_clip_openai__l14.npy",
178
+ "imagenet1k/train200k/metadata/001_clip_openai__l14.json",
179
+ "imagenet1k/train200k/labels.npy",
180
+ "imagenet1k/train200k/source_indices.npy",
181
+ "imagenet1k/train200k/samples/**",
182
+ "imagenet1k/train200k/protocols/**",
183
+ ],
184
+ local_dir="VisionEncoder-Features",
185
+ ))
186
+ base = root / "imagenet1k/train200k"
187
+ features = np.load(base / "features/001_clip_openai__l14.npy",
188
+ mmap_mode="r", allow_pickle=False)
189
+ labels = np.load(base / "labels.npy", allow_pickle=False)
190
+ protocol = json.loads((base / "protocols/knn_seed42.json").read_text())
191
+ train_rows = np.asarray(protocol["train_indices_by_shot"]["20"])
192
+ query_rows = np.asarray(protocol["query_indices"])
193
+ ```
194
+
195
+ ### Load the sample tables with Hugging Face Datasets
196
+
197
+ ```python
198
+ from datasets import load_dataset
199
+
200
+ lcs_samples = load_dataset("336labs/VisionEncoder-Features",
201
+ "lcs558k_n1000_seed42", split="train")
202
+ imagenet_samples = load_dataset("336labs/VisionEncoder-Features",
203
+ "imagenet1k_train200k", split="train")
204
+ ```
205
+
206
+ The two dataset configurations expose **sample metadata tables** in the Dataset Viewer and `load_dataset`. Download the large feature arrays separately and load them with NumPy. A complete download uses `snapshot_download` with `repo_type="dataset"` and no `allow_patterns`; selective downloads are usually sufficient.
207
+
208
+ ## Encoder Catalog
209
+
210
+ `encoders.json` maps all 70 tokenizer IDs to their LCS and ImageNet array paths, metadata, shapes, and upstream encoder sources. Upstream links identify the encoder projects and downloadable weights; an exact historical weight revision is provided only where the original audit recorded one.
211
+
212
+ | Tokenizer ID | Family | LCS `[T, D]` | ImageNet `D` | Feature files |
213
+ | --- | --- | --- | ---: | --- |
214
+ | [`toklip_l_384`](https://huggingface.co/TencentARC/TokLIP) | DISCRETE | `[576, 1152]` | 1152 | [patches](lcs558k/n1000_seed42/vision/toklip_l_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/011_toklip_l_384.npy) |
215
+ | [`toklip_s_256`](https://huggingface.co/TencentARC/TokLIP) | DISCRETE | `[256, 1152]` | 1152 | [patches](lcs558k/n1000_seed42/vision/toklip_s_256_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/012_toklip_s_256.npy) |
216
+ | [`uniar_bsq`](https://huggingface.co/ShareLab-SII/UniAR-SFT/tree/main/bsq_encoder) | DISCRETE | `[1024, 4608]` | 4096 | [patches](lcs558k/n1000_seed42/vision/uniar_bsq_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/013_uniar_bsq.npy) |
217
+ | [`unitok_attn`](https://huggingface.co/FoundationVision/unitok_tokenizer) | DISCRETE | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/unitok_attn_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/014_unitok_attn.npy) |
218
+ | [`vilau_256`](https://huggingface.co/mit-han-lab/vila-u-7b-256) | DISCRETE | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/vilau_256_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/015_vilau_256.npy) |
219
+ | [`clip_openai__l14`](https://huggingface.co/openai/clip-vit-large-patch14) | LANG | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/clip_openai__l14_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/001_clip_openai__l14.npy) |
220
+ | [`mc1_b16_224_2.5b`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[196, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc1_b16_224_2.5b_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/021_mc1_b16_224_2.5b.npy) |
221
+ | [`mc1_b16_224_400m`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[196, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc1_b16_224_400m_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/022_mc1_b16_224_400m.npy) |
222
+ | [`mc1_b32_224_2.5b`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[49, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc1_b32_224_2.5b_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/023_mc1_b32_224_2.5b.npy) |
223
+ | [`mc1_b32_224_400m`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[49, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc1_b32_224_400m_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/024_mc1_b32_224_400m.npy) |
224
+ | [`mc1_g14_224_2.5b`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[256, 1664]` | 1664 | [patches](lcs558k/n1000_seed42/vision/mc1_g14_224_2.5b_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/025_mc1_g14_224_2.5b.npy) |
225
+ | [`mc1_h14_224_2.5b`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[256, 1280]` | 1280 | [patches](lcs558k/n1000_seed42/vision/mc1_h14_224_2.5b_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/026_mc1_h14_224_2.5b.npy) |
226
+ | [`mc1_h14_224_v1.2`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[256, 1280]` | 1280 | [patches](lcs558k/n1000_seed42/vision/mc1_h14_224_v1.2_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/027_mc1_h14_224_v1.2.npy) |
227
+ | [`mc1_l14_224_2.5b`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/mc1_l14_224_2.5b_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/028_mc1_l14_224_2.5b.npy) |
228
+ | [`mc1_l14_224_400m`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/mc1_l14_224_400m_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/029_mc1_l14_224_400m.npy) |
229
+ | [`mc2_b16_224`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[196, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc2_b16_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/030_mc2_b16_224.npy) |
230
+ | [`mc2_b16_384`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[576, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc2_b16_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/031_mc2_b16_384.npy) |
231
+ | [`mc2_b32_224`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[49, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc2_b32_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/032_mc2_b32_224.npy) |
232
+ | [`mc2_b32_224_mt5`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[49, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc2_b32_224_mt5_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/033_mc2_b32_224_mt5.npy) |
233
+ | [`mc2_b32_384`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[144, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/mc2_b32_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/034_mc2_b32_384.npy) |
234
+ | [`mc2_g14_224`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[256, 1664]` | 1664 | [patches](lcs558k/n1000_seed42/vision/mc2_g14_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/035_mc2_g14_224.npy) |
235
+ | [`mc2_g14_378`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[729, 1664]` | 1664 | [patches](lcs558k/n1000_seed42/vision/mc2_g14_378_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/036_mc2_g14_378.npy) |
236
+ | [`mc2_h14_378`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[729, 1280]` | 1280 | [patches](lcs558k/n1000_seed42/vision/mc2_h14_378_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/037_mc2_h14_378.npy) |
237
+ | [`mc2_l14_224`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/mc2_l14_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/038_mc2_l14_224.npy) |
238
+ | [`mc2_m16_224`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[196, 512]` | 512 | [patches](lcs558k/n1000_seed42/vision/mc2_m16_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/039_mc2_m16_224.npy) |
239
+ | [`mc2_m16_224_mt5`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[196, 512]` | 512 | [patches](lcs558k/n1000_seed42/vision/mc2_m16_224_mt5_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/040_mc2_m16_224_mt5.npy) |
240
+ | [`mc2_m16_384`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[576, 512]` | 512 | [patches](lcs558k/n1000_seed42/vision/mc2_m16_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/041_mc2_m16_384.npy) |
241
+ | [`mc2_s16_224`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[196, 384]` | 384 | [patches](lcs558k/n1000_seed42/vision/mc2_s16_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/042_mc2_s16_224.npy) |
242
+ | [`mc2_s16_224_mt5`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[196, 384]` | 384 | [patches](lcs558k/n1000_seed42/vision/mc2_s16_224_mt5_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/043_mc2_s16_224_mt5.npy) |
243
+ | [`mc2_s16_384`](https://github.com/facebookresearch/MetaCLIP#pre-trained-models) | LANG | `[576, 384]` | 384 | [patches](lcs558k/n1000_seed42/vision/mc2_s16_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/044_mc2_s16_384.npy) |
244
+ | [`pe_core_b16_224`](https://huggingface.co/facebook/PE-Core-B16-224) | LANG | `[196, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/pe_core_b16_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/045_pe_core_b16_224.npy) |
245
+ | [`pe_core_g14_448`](https://huggingface.co/facebook/PE-Core-G14-448) | LANG | `[1024, 1536]` | 1536 | [patches](lcs558k/n1000_seed42/vision/pe_core_g14_448_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/046_pe_core_g14_448.npy) |
246
+ | [`pe_lang_l14_448`](https://huggingface.co/facebook/PE-Lang-L14-448) | LANG | `[1024, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/pe_lang_l14_448_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/047_pe_lang_l14_448.npy) |
247
+ | [`siglip2_b16_224`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[196, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/siglip2_b16_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/052_siglip2_b16_224.npy) |
248
+ | [`siglip2_b16_256`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[256, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/siglip2_b16_256_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/053_siglip2_b16_256.npy) |
249
+ | [`siglip2_b16_384`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[576, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/siglip2_b16_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/054_siglip2_b16_384.npy) |
250
+ | [`siglip2_b16_512`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[1024, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/siglip2_b16_512_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/055_siglip2_b16_512.npy) |
251
+ | [`siglip2_b32_256`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[64, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/siglip2_b32_256_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/056_siglip2_b32_256.npy) |
252
+ | [`siglip2_g16_256`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[256, 1536]` | 1536 | [patches](lcs558k/n1000_seed42/vision/siglip2_g16_256_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/057_siglip2_g16_256.npy) |
253
+ | [`siglip2_g16_384`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[576, 1536]` | 1536 | [patches](lcs558k/n1000_seed42/vision/siglip2_g16_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/058_siglip2_g16_384.npy) |
254
+ | [`siglip2_l16_256`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/siglip2_l16_256_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/059_siglip2_l16_256.npy) |
255
+ | [`siglip2_l16_384`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[576, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/siglip2_l16_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/060_siglip2_l16_384.npy) |
256
+ | [`siglip2_l16_512`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[1024, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/siglip2_l16_512_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/061_siglip2_l16_512.npy) |
257
+ | [`siglip2_sm14_224`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[256, 1152]` | 1152 | [patches](lcs558k/n1000_seed42/vision/siglip2_sm14_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/062_siglip2_sm14_224.npy) |
258
+ | [`siglip2_sm14_384`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[729, 1152]` | 1152 | [patches](lcs558k/n1000_seed42/vision/siglip2_sm14_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/063_siglip2_sm14_384.npy) |
259
+ | [`siglip2_sm16_256`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[256, 1152]` | 1152 | [patches](lcs558k/n1000_seed42/vision/siglip2_sm16_256_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/064_siglip2_sm16_256.npy) |
260
+ | [`siglip2_sm16_384`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[576, 1152]` | 1152 | [patches](lcs558k/n1000_seed42/vision/siglip2_sm16_384_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/065_siglip2_sm16_384.npy) |
261
+ | [`siglip2_sm16_512`](https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md) | LANG | `[1024, 1152]` | 1152 | [patches](lcs558k/n1000_seed42/vision/siglip2_sm16_512_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/066_siglip2_sm16_512.npy) |
262
+ | [`dino_vitb16`](https://huggingface.co/facebook/dino-vitb16) | SSL | `[196, 768]` | 1536 | [patches](lcs558k/n1000_seed42/vision/dino_vitb16_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/002_dino_vitb16.npy) |
263
+ | [`dino_vitb8`](https://huggingface.co/facebook/dino-vitb8) | SSL | `[784, 768]` | 1536 | [patches](lcs558k/n1000_seed42/vision/dino_vitb8_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/003_dino_vitb8.npy) |
264
+ | [`dino_vits16`](https://huggingface.co/facebook/dino-vits16) | SSL | `[196, 384]` | 768 | [patches](lcs558k/n1000_seed42/vision/dino_vits16_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/004_dino_vits16.npy) |
265
+ | [`dino_vits8`](https://huggingface.co/facebook/dino-vits8) | SSL | `[784, 384]` | 768 | [patches](lcs558k/n1000_seed42/vision/dino_vits8_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/005_dino_vits8.npy) |
266
+ | [`dinov2_base`](https://huggingface.co/facebook/dinov2-base) | SSL | `[256, 768]` | 1536 | [patches](lcs558k/n1000_seed42/vision/dinov2_base_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/006_dinov2_base.npy) |
267
+ | [`dinov2_giant`](https://huggingface.co/facebook/dinov2-giant) | SSL | `[256, 1536]` | 3072 | [patches](lcs558k/n1000_seed42/vision/dinov2_giant_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/007_dinov2_giant.npy) |
268
+ | [`dinov2_large`](https://huggingface.co/facebook/dinov2-large) | SSL | `[256, 1024]` | 2048 | [patches](lcs558k/n1000_seed42/vision/dinov2_large_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/008_dinov2_large.npy) |
269
+ | [`dinov2_small`](https://huggingface.co/facebook/dinov2-small) | SSL | `[256, 384]` | 768 | [patches](lcs558k/n1000_seed42/vision/dinov2_small_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/009_dinov2_small.npy) |
270
+ | [`dinov3_vitl16`](https://huggingface.co/facebook/dinov3-vitl16-pretrain-lvd1689m) | SSL | `[256, 1024]` | 2048 | [patches](lcs558k/n1000_seed42/vision/dinov3_vitl16_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/010_dinov3_vitl16.npy) |
271
+ | [`eupe_convnext_b`](https://huggingface.co/facebook/EUPE-ConvNeXt-B) | SSL | `[64, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/eupe_convnext_b_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/016_eupe_convnext_b.npy) |
272
+ | [`eupe_vit_b`](https://huggingface.co/facebook/EUPE-ViT-B) | SSL | `[256, 768]` | 1536 | [patches](lcs558k/n1000_seed42/vision/eupe_vit_b_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/017_eupe_vit_b.npy) |
273
+ | [`eupe_vit_s`](https://huggingface.co/facebook/EUPE-ViT-S) | SSL | `[256, 384]` | 768 | [patches](lcs558k/n1000_seed42/vision/eupe_vit_s_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/018_eupe_vit_s.npy) |
274
+ | [`eupe_vit_t`](https://huggingface.co/facebook/EUPE-ViT-T) | SSL | `[256, 192]` | 384 | [patches](lcs558k/n1000_seed42/vision/eupe_vit_t_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/019_eupe_vit_t.npy) |
275
+ | [`ijepa_vith14`](https://github.com/facebookresearch/ijepa) | SSL | `[256, 1280]` | 1280 | [patches](lcs558k/n1000_seed42/vision/ijepa_vith14_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/020_ijepa_vith14.npy) |
276
+ | [`pixio_vitb16`](https://huggingface.co/facebook/pixio-vitb16) | SSL | `[256, 768]` | 768 | [patches](lcs558k/n1000_seed42/vision/pixio_vitb16_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/048_pixio_vitb16.npy) |
277
+ | [`pixio_vith16`](https://huggingface.co/facebook/pixio-vith16) | SSL | `[256, 1280]` | 1280 | [patches](lcs558k/n1000_seed42/vision/pixio_vith16_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/049_pixio_vith16.npy) |
278
+ | [`pixio_vitl16`](https://huggingface.co/facebook/pixio-vitl16) | SSL | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/pixio_vitl16_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/050_pixio_vitl16.npy) |
279
+ | [`raev2_dinov3l_k7`](https://huggingface.co/nyu-visionx/RAEv2-models) | SSL | `[256, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/raev2_dinov3l_k7_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/051_raev2_dinov3l_k7.npy) |
280
+ | [`webssl_dino1b_full2b_224`](https://huggingface.co/facebook/webssl-dino1b-full2b-224) | SSL | `[256, 1536]` | 1536 | [patches](lcs558k/n1000_seed42/vision/webssl_dino1b_full2b_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/067_webssl_dino1b_full2b_224.npy) |
281
+ | [`webssl_mae1b_full2b_224`](https://huggingface.co/facebook/webssl-mae1b-full2b-224) | SSL | `[256, 1536]` | 1536 | [patches](lcs558k/n1000_seed42/vision/webssl_mae1b_full2b_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/068_webssl_mae1b_full2b_224.npy) |
282
+ | [`webssl_mae300m_full2b_224`](https://huggingface.co/facebook/webssl-mae300m-full2b-224) | SSL | `[196, 1024]` | 1024 | [patches](lcs558k/n1000_seed42/vision/webssl_mae300m_full2b_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/069_webssl_mae300m_full2b_224.npy) |
283
+ | [`webssl_mae3b_full2b_224`](https://huggingface.co/facebook/webssl-mae3b-full2b-224) | SSL | `[256, 3072]` | 3072 | [patches](lcs558k/n1000_seed42/vision/webssl_mae3b_full2b_224_patch_n1000_seed42.npy) · [pooled](imagenet1k/train200k/features/070_webssl_mae3b_full2b_224.npy) |
284
+
285
+ ## Dataset Creation and Provenance
286
+
287
+ This release assembles the project's existing feature caches. Feature arrays are published without additional pooling, quantization, or re-extraction. Released metadata uses repository-relative paths for shared samples and arrays. Inaccessible historical local paths are marked `source-local:<filename>`.
288
+
289
+ SHA-256 hashes of original metadata and original sample manifests are retained separately from the hashes of sanitized release files. For text features, `extraction_identity` preserves the original extraction identity; its manifest hash refers to the original manifest. The top-level `sample_manifest_sha256` refers to the sanitized published manifest, and `source_sample_manifest_sha256` retains the original hash.
290
+
291
+ All arrays passed finite-value checks before upload. Shapes/dtypes and row-order fingerprints were checked; the 70 encoder IDs match across both subsets. The ImageNet subset has exactly 200 examples per class; the kNN pool/query split is disjoint and shot subsets are nested. The repaired UniAR array matches its recorded repaired hash.
292
+
293
+ The dataset inventory records array shapes, dtypes, byte sizes, SHA-256 hashes, and nonfinite-value counts. `checksums.sha256` verifies all listed files; it excludes itself and `FILES.json` to avoid circular hashes. Sources were preserved during publication.
294
+
295
+ ## Intended Uses and Limitations
296
+
297
+ - **RAVEL and alignment probes:** use paired LCS visual and text features, preserving the shared row order. Captions and text embeddings are required for cross-modal probes.
298
+ - **kNN and linear probes:** use ImageNet pooled features with shared labels and the provided split. A full ImageNet linear-probe benchmark additionally requires the appropriate training and validation data.
299
+ - **Historical patch provenance:** the original visual audits do not record a uniform feature-layer specification. Missing extraction-layer, processor, or weight-revision fields remain explicitly unverified in this release. The arrays should be interpreted using available per-encoder metadata and the extraction code, rather than assuming a common layer/readout.
300
+ - **UniAR correction:** the published UniAR array uses the documented legacy BSQ deepstack concatenation. One NaN at `[630, 295, 1051]` was replaced by `1.7109375`, obtained by re-extraction with the official model. Its metadata retains original/repaired hashes, pinned model/source revisions, weight hash, and verification of the remaining 1,151 components in that BSQ vector.
301
+ - **Coverage and bias:** LCS-1000 is a small captioned-image sample; ImageNet200k is a class-balanced training subset. Findings depend on these data sources and selected encoders. Features inherit the content and representation biases of the upstream datasets and models.
302
+ - **Scope:** raw images, complete encoder weights, MLLM checkpoints, PCA/distance caches, and larger-sample feature experiments are available through their respective upstream resources or project releases.
303
+
304
+ ## Licensing and Attribution
305
+
306
+ See [LICENSES.md](LICENSES.md). Use of the artifacts is subject to the applicable source-dataset and encoder terms. Source license information should be checked at the upstream links before reuse or redistribution; this card does not grant new rights over upstream images, captions, or model-derived artifacts.
307
+
308
+ ## Citation
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+
310
+ If you use these feature caches or RAVEL, please cite the paper and the relevant source datasets and encoders:
311
+
312
+ ```bibtex
313
+ @misc{yang2026strong,
314
+ title={A Strong Baseline for Evaluating Vision Encoders in Multimodal Large Language Models},
315
+ author={Yang, Yilin and Tang, Jun-Tao and Wang, Kengyi and Su, Siyuan and Luo, Gaoyong and Chen, Mingda},
316
+ year={2026},
317
+ eprint={2610.05413},
318
+ archivePrefix={arXiv},
319
+ primaryClass={cs.CV},
320
+ url={https://arxiv.org/abs/2610.05413}
321
+ }
322
+ ```
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+
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+ **Questions or corrections:** open a discussion on this dataset or an issue in the [evaluation code repository](https://github.com/JuntaoTang/MLLM-VisionEncoder-Eval).
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+ "imagenet_pooled": {
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+ "file": "imagenet1k/train200k/features/064_siglip2_sm16_256.npy",
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+ "metadata": "imagenet1k/train200k/metadata/064_siglip2_sm16_256.json",
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+ ],
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+ }
2304
+ },
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+ {
2306
+ "tokenizer_id": "siglip2_sm16_384",
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+ "source": {
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+ "category": "LANG",
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+ "display_name": "SigLIP2 So400m/l16 (384)",
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+ "code": [
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+ "https://github.com/google-research/big_vision"
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+ ],
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+ "download_notes": "Official direct checkpoint URL."
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+ },
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+ "lcs_patch": {
2323
+ "file": "lcs558k/n1000_seed42/vision/siglip2_sm16_384_patch_n1000_seed42.npy",
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+ "metadata": "lcs558k/n1000_seed42/vision/siglip2_sm16_384_patch_n1000_seed42.json",
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+ "shape": [
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+ },
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+ "imagenet_pooled": {
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+ "file": "imagenet1k/train200k/features/065_siglip2_sm16_384.npy",
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+ "metadata": "imagenet1k/train200k/metadata/065_siglip2_sm16_384.json",
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+ "shape": [
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+ ],
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+ "dtype": "float32",
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+ "representation": "native SigLIP 2 model(images) [B,D] output after MAP attention pooling"
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+ }
2343
+ },
2344
+ {
2345
+ "tokenizer_id": "siglip2_sm16_512",
2346
+ "source": {
2347
+ "category": "LANG",
2348
+ "display_name": "SigLIP2 So400m/l16 (512)",
2349
+ "upstream_page": [
2350
+ "https://github.com/google-research/big_vision/blob/main/big_vision/configs/proj/image_text/README_siglip2.md"
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+ ],
2352
+ "weights": [
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+ "https://storage.googleapis.com/big_vision/siglip2/siglip2_so400m16_512.npz"
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+ ],
2355
+ "auxiliary_weights": [],
2356
+ "code": [
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+ "https://github.com/google-research/big_vision"
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+ ],
2359
+ "download_notes": "Official direct checkpoint URL."
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+ },
2361
+ "lcs_patch": {
2362
+ "file": "lcs558k/n1000_seed42/vision/siglip2_sm16_512_patch_n1000_seed42.npy",
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+ "metadata": "lcs558k/n1000_seed42/vision/siglip2_sm16_512_patch_n1000_seed42.json",
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+ "shape": [
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+ "dtype": "float16",
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+ "feature_layer_provenance": "not_recorded_in_original_audit"
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+ },
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+ "file": "imagenet1k/train200k/features/066_siglip2_sm16_512.npy",
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+ "metadata": "imagenet1k/train200k/metadata/066_siglip2_sm16_512.json",
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+ "shape": [
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+ ],
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+ "dtype": "float32",
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+ "representation": "native SigLIP 2 model(images) [B,D] output after MAP attention pooling"
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+ }
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+ },
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+ {
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+ "tokenizer_id": "toklip_l_384",
2385
+ "source": {
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+ "category": "DISCRETE",
2387
+ "display_name": "TokLIP-L (384)",
2388
+ "upstream_page": [
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+ "https://huggingface.co/TencentARC/TokLIP"
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+ ],
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+ "weights": [
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+ "https://huggingface.co/TencentARC/TokLIP/resolve/main/TokLIP_L_384.pt?download=true"
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+ ],
2394
+ "auxiliary_weights": [
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2396
+ ],
2397
+ "code": [
2398
+ "https://github.com/TencentARC/TokLIP"
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+ ],
2400
+ "download_notes": "Download TokLIP_L_384.pt and the shared auxiliary tokenizer weight vq_ds16_t2i.pt."
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+ },
2402
+ "lcs_patch": {
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+ "file": "lcs558k/n1000_seed42/vision/toklip_l_384_patch_n1000_seed42.npy",
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+ "metadata": "lcs558k/n1000_seed42/vision/toklip_l_384_patch_n1000_seed42.json",
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+ "shape": [
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+ },
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+ "file": "imagenet1k/train200k/features/011_toklip_l_384.npy",
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+ "metadata": "imagenet1k/train200k/metadata/011_toklip_l_384.json",
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+ "shape": [
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+ 200000,
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+ 1152
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+ ],
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+ "dtype": "float32",
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+ "representation": "mean of final normalized TokLIP semantic tokens; forward_head is not used"
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+ }
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+ },
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+ {
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+ "tokenizer_id": "toklip_s_256",
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+ "source": {
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+ "category": "DISCRETE",
2428
+ "display_name": "TokLIP-S (256)",
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+ "upstream_page": [
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+ "https://huggingface.co/TencentARC/TokLIP"
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+ ],
2432
+ "weights": [
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+ ],
2435
+ "auxiliary_weights": [
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+ "https://huggingface.co/peizesun/llamagen_t2i/resolve/main/vq_ds16_t2i.pt?download=true"
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+ ],
2438
+ "code": [
2439
+ "https://github.com/TencentARC/TokLIP"
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+ ],
2441
+ "download_notes": "Download TokLIP_S_256.pt and the shared auxiliary tokenizer weight vq_ds16_t2i.pt."
2442
+ },
2443
+ "lcs_patch": {
2444
+ "file": "lcs558k/n1000_seed42/vision/toklip_s_256_patch_n1000_seed42.npy",
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+ "metadata": "lcs558k/n1000_seed42/vision/toklip_s_256_patch_n1000_seed42.json",
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+ "shape": [
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+ 1152
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+ },
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+ "file": "imagenet1k/train200k/features/012_toklip_s_256.npy",
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+ "metadata": "imagenet1k/train200k/metadata/012_toklip_s_256.json",
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+ "shape": [
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+ 200000,
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+ 1152
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+ ],
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+ "dtype": "float32",
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+ "representation": "mean of final normalized TokLIP semantic tokens; forward_head is not used"
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+ }
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+ {
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+ "tokenizer_id": "uniar_bsq",
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+ "source": {
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+ "category": "DISCRETE",
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+ "display_name": "UniAR-BSQ",
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+ "upstream_page": [
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+ "https://huggingface.co/ShareLab-SII/UniAR-SFT/tree/main/bsq_encoder"
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+ ],
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+ "weights": [
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+ "https://huggingface.co/ShareLab-SII/UniAR-SFT/resolve/main/bsq_encoder/model.safetensors?download=true"
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+ ],
2476
+ "auxiliary_weights": [],
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+ "code": [
2478
+ "https://github.com/ShareLab-SII/UniAR"
2479
+ ],
2480
+ "download_notes": "Current official public location. The older local registry recorded FoundationVision/UniAR; keep the full bsq_encoder directory, not only model.safetensors."
2481
+ },
2482
+ "lcs_patch": {
2483
+ "file": "lcs558k/n1000_seed42/vision/uniar_bsq_patch_n1000_seed42.npy",
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+ "metadata": "lcs558k/n1000_seed42/vision/uniar_bsq_patch_n1000_seed42.json",
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+ "dtype": "float16",
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+ },
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+ "imagenet_pooled": {
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+ "file": "imagenet1k/train200k/features/013_uniar_bsq.npy",
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+ "metadata": "imagenet1k/train200k/metadata/013_uniar_bsq.json",
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+ "shape": [
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+ ],
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+ "representation": "mean of UniAR block 27 tokens after 64-bit BSQ quantize/dequantize, BSQ output projection, and the official 2x2 patch merger"
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+ }
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+ },
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+ {
2505
+ "tokenizer_id": "unitok_attn",
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+ "source": {
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+ "category": "DISCRETE",
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+ "display_name": "UniTok-Attn (256)",
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+ "upstream_page": [
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+ "https://huggingface.co/FoundationVision/unitok_tokenizer"
2511
+ ],
2512
+ "weights": [
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+ "https://huggingface.co/FoundationVision/unitok_tokenizer/resolve/main/unitok_tokenizer.pth?download=true"
2514
+ ],
2515
+ "auxiliary_weights": [],
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+ "code": [
2517
+ "https://github.com/FoundationVision/UniTok"
2518
+ ],
2519
+ "download_notes": "Official Hugging Face checkpoint file."
2520
+ },
2521
+ "lcs_patch": {
2522
+ "file": "lcs558k/n1000_seed42/vision/unitok_attn_patch_n1000_seed42.npy",
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+ "metadata": "lcs558k/n1000_seed42/vision/unitok_attn_patch_n1000_seed42.json",
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+ "shape": [
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+ 1000,
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+ 256,
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+ ],
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+ "dtype": "float16",
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+ },
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+ "imagenet_pooled": {
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+ "file": "imagenet1k/train200k/features/014_unitok_attn.npy",
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+ "metadata": "imagenet1k/train200k/metadata/014_unitok_attn.json",
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+ "shape": [
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+ 200000,
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+ ],
2539
+ "dtype": "float32",
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+ "representation": "quantize/dequantize -> post_quant_proj -> token mean -> fc_norm, before UniTok projection"
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+ }
2542
+ },
2543
+ {
2544
+ "tokenizer_id": "vilau_256",
2545
+ "source": {
2546
+ "category": "DISCRETE",
2547
+ "display_name": "VILA-U (256)",
2548
+ "upstream_page": [
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+ "https://huggingface.co/mit-han-lab/vila-u-7b-256"
2550
+ ],
2551
+ "weights": [
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2553
+ ],
2554
+ "auxiliary_weights": [],
2555
+ "code": [
2556
+ "https://github.com/mit-han-lab/vila-u"
2557
+ ],
2558
+ "download_notes": "Official Hugging Face model; downloading the full repository is safer when config files are required."
2559
+ },
2560
+ "lcs_patch": {
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+ "file": "lcs558k/n1000_seed42/vision/vilau_256_patch_n1000_seed42.npy",
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+ "metadata": "lcs558k/n1000_seed42/vision/vilau_256_patch_n1000_seed42.json",
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+ "shape": [
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+ 1000,
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+ ],
2568
+ "dtype": "float16",
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+ "feature_layer_provenance": "not_recorded_in_original_audit"
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+ },
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+ "imagenet_pooled": {
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+ "file": "imagenet1k/train200k/features/015_vilau_256.npy",
2573
+ "metadata": "imagenet1k/train200k/metadata/015_vilau_256.json",
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+ "shape": [
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+ 200000,
2576
+ 1024
2577
+ ],
2578
+ "dtype": "float32",
2579
+ "representation": "mean of the penultimate VILA-U SigLIP encoder-block tokens"
2580
+ }
2581
+ },
2582
+ {
2583
+ "tokenizer_id": "webssl_dino1b_full2b_224",
2584
+ "source": {
2585
+ "category": "SSL",
2586
+ "display_name": "Web-SSL DINO 1B (224)",
2587
+ "upstream_page": [
2588
+ "https://huggingface.co/facebook/webssl-dino1b-full2b-224"
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+ ],
2590
+ "weights": [],
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+ "auxiliary_weights": [],
2592
+ "code": [
2593
+ "https://github.com/facebookresearch/web-ssl"
2594
+ ],
2595
+ "download_notes": "Multi-file Hugging Face repository; download the complete snapshot."
2596
+ },
2597
+ "lcs_patch": {
2598
+ "file": "lcs558k/n1000_seed42/vision/webssl_dino1b_full2b_224_patch_n1000_seed42.npy",
2599
+ "metadata": "lcs558k/n1000_seed42/vision/webssl_dino1b_full2b_224_patch_n1000_seed42.json",
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+ "shape": [
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+ "dtype": "float16",
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+ "feature_layer_provenance": "not_recorded_in_original_audit"
2607
+ },
2608
+ "imagenet_pooled": {
2609
+ "file": "imagenet1k/train200k/features/067_webssl_dino1b_full2b_224.npy",
2610
+ "metadata": "imagenet1k/train200k/metadata/067_webssl_dino1b_full2b_224.json",
2611
+ "shape": [
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+ 200000,
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+ 1536
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+ ],
2615
+ "dtype": "float32",
2616
+ "representation": "final normalized WebSSL-DINO encoder CLS token"
2617
+ }
2618
+ },
2619
+ {
2620
+ "tokenizer_id": "webssl_mae1b_full2b_224",
2621
+ "source": {
2622
+ "category": "SSL",
2623
+ "display_name": "Web-SSL MAE 1B (224)",
2624
+ "upstream_page": [
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+ "https://huggingface.co/facebook/webssl-mae1b-full2b-224"
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+ ],
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+ "weights": [
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2629
+ ],
2630
+ "auxiliary_weights": [],
2631
+ "code": [
2632
+ "https://github.com/facebookresearch/web-ssl"
2633
+ ],
2634
+ "download_notes": "Official Hugging Face model; downloading the full repository is safer when config files are required."
2635
+ },
2636
+ "lcs_patch": {
2637
+ "file": "lcs558k/n1000_seed42/vision/webssl_mae1b_full2b_224_patch_n1000_seed42.npy",
2638
+ "metadata": "lcs558k/n1000_seed42/vision/webssl_mae1b_full2b_224_patch_n1000_seed42.json",
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+ "shape": [
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+ 1000,
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+ ],
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+ "dtype": "float16",
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+ "feature_layer_provenance": "not_recorded_in_original_audit"
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+ },
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+ "imagenet_pooled": {
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+ "file": "imagenet1k/train200k/features/068_webssl_mae1b_full2b_224.npy",
2649
+ "metadata": "imagenet1k/train200k/metadata/068_webssl_mae1b_full2b_224.json",
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+ "shape": [
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+ 200000,
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+ 1536
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+ ],
2654
+ "dtype": "float32",
2655
+ "representation": "final normalized WebSSL-MAE encoder CLS token"
2656
+ }
2657
+ },
2658
+ {
2659
+ "tokenizer_id": "webssl_mae300m_full2b_224",
2660
+ "source": {
2661
+ "category": "SSL",
2662
+ "display_name": "Web-SSL MAE 300M (224)",
2663
+ "upstream_page": [
2664
+ "https://huggingface.co/facebook/webssl-mae300m-full2b-224"
2665
+ ],
2666
+ "weights": [
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+ "https://huggingface.co/facebook/webssl-mae300m-full2b-224/resolve/main/model.safetensors?download=true"
2668
+ ],
2669
+ "auxiliary_weights": [],
2670
+ "code": [
2671
+ "https://github.com/facebookresearch/web-ssl"
2672
+ ],
2673
+ "download_notes": "Official Hugging Face model; downloading the full repository is safer when config files are required."
2674
+ },
2675
+ "lcs_patch": {
2676
+ "file": "lcs558k/n1000_seed42/vision/webssl_mae300m_full2b_224_patch_n1000_seed42.npy",
2677
+ "metadata": "lcs558k/n1000_seed42/vision/webssl_mae300m_full2b_224_patch_n1000_seed42.json",
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+ "shape": [
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+ 1000,
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+ ],
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+ "dtype": "float16",
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+ "feature_layer_provenance": "not_recorded_in_original_audit"
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+ },
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+ "imagenet_pooled": {
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+ "file": "imagenet1k/train200k/features/069_webssl_mae300m_full2b_224.npy",
2688
+ "metadata": "imagenet1k/train200k/metadata/069_webssl_mae300m_full2b_224.json",
2689
+ "shape": [
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+ 200000,
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+ ],
2693
+ "dtype": "float32",
2694
+ "representation": "final normalized WebSSL-MAE encoder CLS token"
2695
+ }
2696
+ },
2697
+ {
2698
+ "tokenizer_id": "webssl_mae3b_full2b_224",
2699
+ "source": {
2700
+ "category": "SSL",
2701
+ "display_name": "Web-SSL MAE 3B (224)",
2702
+ "upstream_page": [
2703
+ "https://huggingface.co/facebook/webssl-mae3b-full2b-224"
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+ ],
2705
+ "weights": [],
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+ "auxiliary_weights": [],
2707
+ "code": [
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+ "https://github.com/facebookresearch/web-ssl"
2709
+ ],
2710
+ "download_notes": "Sharded or multi-file Hugging Face model; download the complete repository snapshot."
2711
+ },
2712
+ "lcs_patch": {
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+ "file": "lcs558k/n1000_seed42/vision/webssl_mae3b_full2b_224_patch_n1000_seed42.npy",
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+ },
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+ "imagenet_pooled": {
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+ "file": "imagenet1k/train200k/features/070_webssl_mae3b_full2b_224.npy",
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+ "metadata": "imagenet1k/train200k/metadata/070_webssl_mae3b_full2b_224.json",
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+ "shape": [
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+ "dtype": "float32",
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+ "representation": "final normalized WebSSL-MAE encoder CLS token"
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+ }
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+ }
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+ ],
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+ "count": 70
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1
+ rank tokenizer model feature_dim dtype rows feature_file representation
2
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3
+ 2 dino_vitb16 dinov1_vitb16 1536 float32 200000 features/002_dino_vitb16.npy concat(final normalized CLS, mean(final normalized patch tokens)); excludes 0 register token(s)
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+ 3 dino_vitb8 dinov1_vitb8 1536 float32 200000 features/003_dino_vitb8.npy concat(final normalized CLS, mean(final normalized patch tokens)); excludes 0 register token(s)
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+ 4 dino_vits16 dinov1_vits16 768 float32 200000 features/004_dino_vits16.npy concat(final normalized CLS, mean(final normalized patch tokens)); excludes 0 register token(s)
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+ 7 dinov2_giant dinov2_giant 3072 float32 200000 features/007_dinov2_giant.npy concat(final normalized CLS, mean(final normalized patch tokens)); excludes 0 register token(s)
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13
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+ 17 eupe_vit_b eupe_vit_b 1536 float32 200000 features/017_eupe_vit_b.npy concat(final normalized EUPE CLS, mean(final normalized patch tokens)); excludes 4 storage tokens
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+ 18 eupe_vit_s eupe_vit_s 768 float32 200000 features/018_eupe_vit_s.npy concat(final normalized EUPE CLS, mean(final normalized patch tokens)); excludes 4 storage tokens
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+ 22 mc1_b16_224_400m mc1_b16_224_400m 768 float32 200000 features/022_mc1_b16_224_400m.npy final normalized CLS before the MetaCLIP 768-to-512 projection
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+ 23 mc1_b32_224_2.5b mc1_b32_224_2.5b 768 float32 200000 features/023_mc1_b32_224_2.5b.npy final normalized CLS before the MetaCLIP 768-to-512 projection
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+ 24 mc1_b32_224_400m mc1_b32_224_400m 768 float32 200000 features/024_mc1_b32_224_400m.npy final normalized CLS before the MetaCLIP 768-to-512 projection
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+ 25 mc1_g14_224_2.5b mc1_g14_224_2.5b 1664 float32 200000 features/025_mc1_g14_224_2.5b.npy final normalized CLS before the MetaCLIP 1664-to-1280 projection
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+ 26 mc1_h14_224_2.5b mc1_h14_224_2.5b 1280 float32 200000 features/026_mc1_h14_224_2.5b.npy final normalized CLS before the MetaCLIP 1280-to-1024 projection
28
+ 27 mc1_h14_224_v1.2 mc1_h14_224_v1.2 1280 float32 200000 features/027_mc1_h14_224_v1.2.npy final normalized CLS before the MetaCLIP 1280-to-1024 projection
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+ 28 mc1_l14_224_2.5b mc1_l14_224_2.5b 1024 float32 200000 features/028_mc1_l14_224_2.5b.npy final normalized CLS before the MetaCLIP 1024-to-768 projection
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+ 29 mc1_l14_224_400m mc1_l14_224_400m 1024 float32 200000 features/029_mc1_l14_224_400m.npy final normalized CLS before the MetaCLIP 1024-to-768 projection
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+ 30 mc2_b16_224 mc2_b16_224 768 float32 200000 features/030_mc2_b16_224.npy final normalized CLS before the MetaCLIP 2 768-to-512 projection
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+ 31 mc2_b16_384 mc2_b16_384 768 float32 200000 features/031_mc2_b16_384.npy final normalized CLS before the MetaCLIP 2 768-to-512 projection
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+ 32 mc2_b32_224 mc2_b32_224 768 float32 200000 features/032_mc2_b32_224.npy final normalized CLS before the MetaCLIP 2 768-to-512 projection
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+ 33 mc2_b32_224_mt5 mc2_b32_224_mt5 768 float32 200000 features/033_mc2_b32_224_mt5.npy final normalized CLS before the MetaCLIP 2 768-to-512 projection
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+ 34 mc2_b32_384 mc2_b32_384 768 float32 200000 features/034_mc2_b32_384.npy final normalized CLS before the MetaCLIP 2 768-to-512 projection
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+ 35 mc2_g14_224 mc2_g14_224 1664 float32 200000 features/035_mc2_g14_224.npy final normalized CLS before the MetaCLIP 2 1664-to-1280 projection
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+ 36 mc2_g14_378 mc2_g14_378 1664 float32 200000 features/036_mc2_g14_378.npy final normalized CLS before the MetaCLIP 2 1664-to-1280 projection
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+ 37 mc2_h14_378 mc2_h14_378 1280 float32 200000 features/037_mc2_h14_378.npy final normalized CLS before the MetaCLIP 2 1280-to-1024 projection
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+ 38 mc2_l14_224 mc2_l14_224 1024 float32 200000 features/038_mc2_l14_224.npy final normalized CLS before the MetaCLIP 2 1024-to-768 projection
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+ 39 mc2_m16_224 mc2_m16_224 512 float32 200000 features/039_mc2_m16_224.npy final normalized CLS before the MetaCLIP 2 512-to-512 projection
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+ 40 mc2_m16_224_mt5 mc2_m16_224_mt5 512 float32 200000 features/040_mc2_m16_224_mt5.npy final normalized CLS before the MetaCLIP 2 512-to-512 projection
42
+ 41 mc2_m16_384 mc2_m16_384 512 float32 200000 features/041_mc2_m16_384.npy final normalized CLS before the MetaCLIP 2 512-to-512 projection
43
+ 42 mc2_s16_224 mc2_s16_224 384 float32 200000 features/042_mc2_s16_224.npy final normalized CLS before the MetaCLIP 2 384-to-384 projection
44
+ 43 mc2_s16_224_mt5 mc2_s16_224_mt5 384 float32 200000 features/043_mc2_s16_224_mt5.npy final normalized CLS before the MetaCLIP 2 384-to-384 projection
45
+ 44 mc2_s16_384 mc2_s16_384 384 float32 200000 features/044_mc2_s16_384.npy final normalized CLS before the MetaCLIP 2 384-to-384 projection
46
+ 45 pe_core_b16_224 pe_core_b16_224 768 float32 200000 features/045_pe_core_b16_224.npy PE-Core learned attention-pool output before the released CLIP projection
47
+ 46 pe_core_g14_448 pe_core_g14_448 1536 float32 200000 features/046_pe_core_g14_448.npy PE-Core learned attention-pool output before the released CLIP projection
48
+ 47 pe_lang_l14_448 pe_lang_l14_448 1024 float32 200000 features/047_pe_lang_l14_448.npy mean of last-layer Perception Encoder patch tokens, excluding any CLS token
49
+ 48 pixio_vitb16 pixio_vitb16 768 float32 200000 features/048_pixio_vitb16.npy mean of the eight final-LayerNorm Pixio CLS tokens
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+ 49 pixio_vith16 pixio_vith16 1280 float32 200000 features/049_pixio_vith16.npy mean of the eight final-LayerNorm Pixio CLS tokens
51
+ 50 pixio_vitl16 pixio_vitl16 1024 float32 200000 features/050_pixio_vitl16.npy mean of the eight final-LayerNorm Pixio CLS tokens
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53
+ 52 siglip2_b16_224 siglip2_b16_224 768 float32 200000 features/052_siglip2_b16_224.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
54
+ 53 siglip2_b16_256 siglip2_b16_256 768 float32 200000 features/053_siglip2_b16_256.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
55
+ 54 siglip2_b16_384 siglip2_b16_384 768 float32 200000 features/054_siglip2_b16_384.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
56
+ 55 siglip2_b16_512 siglip2_b16_512 768 float32 200000 features/055_siglip2_b16_512.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
57
+ 56 siglip2_b32_256 siglip2_b32_256 768 float32 200000 features/056_siglip2_b32_256.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
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+ 57 siglip2_g16_256 siglip2_g16_256 1536 float32 200000 features/057_siglip2_g16_256.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
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+ 58 siglip2_g16_384 siglip2_g16_384 1536 float32 200000 features/058_siglip2_g16_384.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
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+ 59 siglip2_l16_256 siglip2_l16_256 1024 float32 200000 features/059_siglip2_l16_256.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
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+ 60 siglip2_l16_384 siglip2_l16_384 1024 float32 200000 features/060_siglip2_l16_384.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
62
+ 61 siglip2_l16_512 siglip2_l16_512 1024 float32 200000 features/061_siglip2_l16_512.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
63
+ 62 siglip2_sm14_224 siglip2_sm14_224 1152 float32 200000 features/062_siglip2_sm14_224.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
64
+ 63 siglip2_sm14_384 siglip2_sm14_384 1152 float32 200000 features/063_siglip2_sm14_384.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
65
+ 64 siglip2_sm16_256 siglip2_sm16_256 1152 float32 200000 features/064_siglip2_sm16_256.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
66
+ 65 siglip2_sm16_384 siglip2_sm16_384 1152 float32 200000 features/065_siglip2_sm16_384.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
67
+ 66 siglip2_sm16_512 siglip2_sm16_512 1152 float32 200000 features/066_siglip2_sm16_512.npy native SigLIP 2 model(images) [B,D] output after MAP attention pooling
68
+ 67 webssl_dino1b_full2b_224 webssl_dino1b_full2b_224 1536 float32 200000 features/067_webssl_dino1b_full2b_224.npy final normalized WebSSL-DINO encoder CLS token
69
+ 68 webssl_mae1b_full2b_224 webssl_mae1b_full2b_224 1536 float32 200000 features/068_webssl_mae1b_full2b_224.npy final normalized WebSSL-MAE encoder CLS token
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+ 69 webssl_mae300m_full2b_224 webssl_mae300m_full2b_224 1024 float32 200000 features/069_webssl_mae300m_full2b_224.npy final normalized WebSSL-MAE encoder CLS token
71
+ 70 webssl_mae3b_full2b_224 webssl_mae3b_full2b_224 3072 float32 200000 features/070_webssl_mae3b_full2b_224.npy final normalized WebSSL-MAE encoder CLS token
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