Feature Extraction
sentence-transformers
Safetensors
Arabic
eurobert
loss:MatryoshkaLoss
loss:MultipleNegativesRankingLoss
EuroBert
Arabic
custom_code
Eval Results (legacy)
Instructions to use Omartificial-Intelligence-Space/AraEuroBert-210M with libraries, inference providers, notebooks, and local apps. Follow these links to get started.
- Libraries
- sentence-transformers
How to use Omartificial-Intelligence-Space/AraEuroBert-210M with sentence-transformers:
from sentence_transformers import SentenceTransformer model = SentenceTransformer("Omartificial-Intelligence-Space/AraEuroBert-210M", trust_remote_code=True) sentences = [ "امرأة شقراء تطل على مشهد (سياتل سبيس نيدل)", "رجل يستمتع بمناظر جسر البوابة الذهبية", "فتاة بالخارج تلعب في الثلج", "شخص ما يأخذ في نظرة إبرة الفضاء." ] embeddings = model.encode(sentences) similarities = model.similarity(embeddings, embeddings) print(similarities.shape) # [4, 4] - Notebooks
- Google Colab
- Kaggle
upload files
Browse files- .gitattributes +1 -0
- 1_Pooling/config.json +10 -0
- README.md +558 -0
- config.json +45 -0
- config_sentence_transformers.json +10 -0
- configuration_eurobert.py +216 -0
- model.safetensors +3 -0
- modules.json +14 -0
- optimizer.pt +3 -0
- rng_state.pth +3 -0
- scheduler.pt +3 -0
- sentence_bert_config.json +4 -0
- special_tokens_map.json +30 -0
- tokenizer.json +3 -0
- tokenizer_config.json +2069 -0
- trainer_state.json +591 -0
- training_args.bin +3 -0
.gitattributes
CHANGED
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@@ -33,3 +33,4 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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*tfevents* filter=lfs diff=lfs merge=lfs -text
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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*tfevents* filter=lfs diff=lfs merge=lfs -text
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tokenizer.json filter=lfs diff=lfs merge=lfs -text
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1_Pooling/config.json
ADDED
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@@ -0,0 +1,10 @@
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{
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"word_embedding_dimension": 768,
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"pooling_mode_cls_token": false,
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"pooling_mode_mean_tokens": true,
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"pooling_mode_max_tokens": false,
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"pooling_mode_mean_sqrt_len_tokens": false,
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"pooling_mode_weightedmean_tokens": false,
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"pooling_mode_lasttoken": false,
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"include_prompt": true
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}
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README.md
ADDED
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@@ -0,0 +1,558 @@
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| 1 |
+
---
|
| 2 |
+
tags:
|
| 3 |
+
- sentence-transformers
|
| 4 |
+
- sentence-similarity
|
| 5 |
+
- feature-extraction
|
| 6 |
+
- generated_from_trainer
|
| 7 |
+
- dataset_size:1000000
|
| 8 |
+
- loss:MatryoshkaLoss
|
| 9 |
+
- loss:MultipleNegativesRankingLoss
|
| 10 |
+
base_model: EuroBERT/EuroBERT-210m
|
| 11 |
+
widget:
|
| 12 |
+
- source_sentence: امرأة شقراء تطل على مشهد (سياتل سبيس نيدل)
|
| 13 |
+
sentences:
|
| 14 |
+
- رجل يستمتع بمناظر جسر البوابة الذهبية
|
| 15 |
+
- فتاة بالخارج تلعب في الثلج
|
| 16 |
+
- شخص ما يأخذ في نظرة إبرة الفضاء.
|
| 17 |
+
- source_sentence: سوق الشرق الأوسط
|
| 18 |
+
sentences:
|
| 19 |
+
- مسرح أمريكي
|
| 20 |
+
- متجر في الشرق الأوسط
|
| 21 |
+
- البالغون صغار
|
| 22 |
+
- source_sentence: رجلين يتنافسان في ملابس فنون الدفاع عن النفس
|
| 23 |
+
sentences:
|
| 24 |
+
- هناك العديد من الناس الحاضرين.
|
| 25 |
+
- الكلب الأبيض على الشاطئ
|
| 26 |
+
- هناك شخص واحد فقط موجود.
|
| 27 |
+
- source_sentence: مجموعة من الناس تمشي بجانب شاحنة.
|
| 28 |
+
sentences:
|
| 29 |
+
- الناس يقفون
|
| 30 |
+
- بعض الناس بالخارج
|
| 31 |
+
- بعض الرجال يقودون على الطريق
|
| 32 |
+
- source_sentence: لاعبة كرة ناعمة ترمي الكرة إلى زميلتها في الفريق
|
| 33 |
+
sentences:
|
| 34 |
+
- شخصان يلعبان كرة البيسبول
|
| 35 |
+
- الرجل ينظف
|
| 36 |
+
- لاعبين لكرة البيسبول يجلسان على مقعد
|
| 37 |
+
pipeline_tag: sentence-similarity
|
| 38 |
+
library_name: sentence-transformers
|
| 39 |
+
metrics:
|
| 40 |
+
- pearson_cosine
|
| 41 |
+
- spearman_cosine
|
| 42 |
+
model-index:
|
| 43 |
+
- name: SentenceTransformer based on EuroBERT/EuroBERT-210m
|
| 44 |
+
results:
|
| 45 |
+
- task:
|
| 46 |
+
type: semantic-similarity
|
| 47 |
+
name: Semantic Similarity
|
| 48 |
+
dataset:
|
| 49 |
+
name: sts dev 768
|
| 50 |
+
type: sts-dev-768
|
| 51 |
+
metrics:
|
| 52 |
+
- type: pearson_cosine
|
| 53 |
+
value: 0.8111988062913815
|
| 54 |
+
name: Pearson Cosine
|
| 55 |
+
- type: spearman_cosine
|
| 56 |
+
value: 0.8100586279907306
|
| 57 |
+
name: Spearman Cosine
|
| 58 |
+
- task:
|
| 59 |
+
type: semantic-similarity
|
| 60 |
+
name: Semantic Similarity
|
| 61 |
+
dataset:
|
| 62 |
+
name: sts dev 512
|
| 63 |
+
type: sts-dev-512
|
| 64 |
+
metrics:
|
| 65 |
+
- type: pearson_cosine
|
| 66 |
+
value: 0.8092891955563192
|
| 67 |
+
name: Pearson Cosine
|
| 68 |
+
- type: spearman_cosine
|
| 69 |
+
value: 0.8087644228771842
|
| 70 |
+
name: Spearman Cosine
|
| 71 |
+
- task:
|
| 72 |
+
type: semantic-similarity
|
| 73 |
+
name: Semantic Similarity
|
| 74 |
+
dataset:
|
| 75 |
+
name: sts dev 256
|
| 76 |
+
type: sts-dev-256
|
| 77 |
+
metrics:
|
| 78 |
+
- type: pearson_cosine
|
| 79 |
+
value: 0.8076510620939634
|
| 80 |
+
name: Pearson Cosine
|
| 81 |
+
- type: spearman_cosine
|
| 82 |
+
value: 0.8080588277305082
|
| 83 |
+
name: Spearman Cosine
|
| 84 |
+
- task:
|
| 85 |
+
type: semantic-similarity
|
| 86 |
+
name: Semantic Similarity
|
| 87 |
+
dataset:
|
| 88 |
+
name: sts dev 128
|
| 89 |
+
type: sts-dev-128
|
| 90 |
+
metrics:
|
| 91 |
+
- type: pearson_cosine
|
| 92 |
+
value: 0.8028710019029521
|
| 93 |
+
name: Pearson Cosine
|
| 94 |
+
- type: spearman_cosine
|
| 95 |
+
value: 0.8054855987917489
|
| 96 |
+
name: Spearman Cosine
|
| 97 |
+
- task:
|
| 98 |
+
type: semantic-similarity
|
| 99 |
+
name: Semantic Similarity
|
| 100 |
+
dataset:
|
| 101 |
+
name: sts dev 64
|
| 102 |
+
type: sts-dev-64
|
| 103 |
+
metrics:
|
| 104 |
+
- type: pearson_cosine
|
| 105 |
+
value: 0.7923252906438638
|
| 106 |
+
name: Pearson Cosine
|
| 107 |
+
- type: spearman_cosine
|
| 108 |
+
value: 0.7975941111911333
|
| 109 |
+
name: Spearman Cosine
|
| 110 |
+
---
|
| 111 |
+
|
| 112 |
+
# SentenceTransformer based on EuroBERT/EuroBERT-210m
|
| 113 |
+
|
| 114 |
+
This is a [sentence-transformers](https://www.SBERT.net) model finetuned from [EuroBERT/EuroBERT-210m](https://huggingface.co/EuroBERT/EuroBERT-210m). It maps sentences & paragraphs to a 768-dimensional dense vector space and can be used for semantic textual similarity, semantic search, paraphrase mining, text classification, clustering, and more.
|
| 115 |
+
|
| 116 |
+
## Model Details
|
| 117 |
+
|
| 118 |
+
### Model Description
|
| 119 |
+
- **Model Type:** Sentence Transformer
|
| 120 |
+
- **Base model:** [EuroBERT/EuroBERT-210m](https://huggingface.co/EuroBERT/EuroBERT-210m) <!-- at revision 15568905cfed68a254242872f0bdbc81e2327b92 -->
|
| 121 |
+
- **Maximum Sequence Length:** 8192 tokens
|
| 122 |
+
- **Output Dimensionality:** 768 dimensions
|
| 123 |
+
- **Similarity Function:** Cosine Similarity
|
| 124 |
+
<!-- - **Training Dataset:** Unknown -->
|
| 125 |
+
<!-- - **Language:** Unknown -->
|
| 126 |
+
<!-- - **License:** Unknown -->
|
| 127 |
+
|
| 128 |
+
### Model Sources
|
| 129 |
+
|
| 130 |
+
- **Documentation:** [Sentence Transformers Documentation](https://sbert.net)
|
| 131 |
+
- **Repository:** [Sentence Transformers on GitHub](https://github.com/UKPLab/sentence-transformers)
|
| 132 |
+
- **Hugging Face:** [Sentence Transformers on Hugging Face](https://huggingface.co/models?library=sentence-transformers)
|
| 133 |
+
|
| 134 |
+
### Full Model Architecture
|
| 135 |
+
|
| 136 |
+
```
|
| 137 |
+
SentenceTransformer(
|
| 138 |
+
(0): Transformer({'max_seq_length': 8192, 'do_lower_case': False}) with Transformer model: EuroBertModel
|
| 139 |
+
(1): Pooling({'word_embedding_dimension': 768, 'pooling_mode_cls_token': False, 'pooling_mode_mean_tokens': True, 'pooling_mode_max_tokens': False, 'pooling_mode_mean_sqrt_len_tokens': False, 'pooling_mode_weightedmean_tokens': False, 'pooling_mode_lasttoken': False, 'include_prompt': True})
|
| 140 |
+
)
|
| 141 |
+
```
|
| 142 |
+
|
| 143 |
+
## Usage
|
| 144 |
+
|
| 145 |
+
### Direct Usage (Sentence Transformers)
|
| 146 |
+
|
| 147 |
+
First install the Sentence Transformers library:
|
| 148 |
+
|
| 149 |
+
```bash
|
| 150 |
+
pip install -U sentence-transformers
|
| 151 |
+
```
|
| 152 |
+
|
| 153 |
+
Then you can load this model and run inference.
|
| 154 |
+
```python
|
| 155 |
+
from sentence_transformers import SentenceTransformer
|
| 156 |
+
|
| 157 |
+
# Download from the 🤗 Hub
|
| 158 |
+
model = SentenceTransformer("sentence_transformers_model_id")
|
| 159 |
+
# Run inference
|
| 160 |
+
sentences = [
|
| 161 |
+
'لاعبة كرة ناعمة ترمي الكرة إلى زميلتها في الفريق',
|
| 162 |
+
'شخصان يلعبان كرة البيسبول',
|
| 163 |
+
'لاعبين لكرة البيسبول يجلسان على مقعد',
|
| 164 |
+
]
|
| 165 |
+
embeddings = model.encode(sentences)
|
| 166 |
+
print(embeddings.shape)
|
| 167 |
+
# [3, 768]
|
| 168 |
+
|
| 169 |
+
# Get the similarity scores for the embeddings
|
| 170 |
+
similarities = model.similarity(embeddings, embeddings)
|
| 171 |
+
print(similarities.shape)
|
| 172 |
+
# [3, 3]
|
| 173 |
+
```
|
| 174 |
+
|
| 175 |
+
<!--
|
| 176 |
+
### Direct Usage (Transformers)
|
| 177 |
+
|
| 178 |
+
<details><summary>Click to see the direct usage in Transformers</summary>
|
| 179 |
+
|
| 180 |
+
</details>
|
| 181 |
+
-->
|
| 182 |
+
|
| 183 |
+
<!--
|
| 184 |
+
### Downstream Usage (Sentence Transformers)
|
| 185 |
+
|
| 186 |
+
You can finetune this model on your own dataset.
|
| 187 |
+
|
| 188 |
+
<details><summary>Click to expand</summary>
|
| 189 |
+
|
| 190 |
+
</details>
|
| 191 |
+
-->
|
| 192 |
+
|
| 193 |
+
<!--
|
| 194 |
+
### Out-of-Scope Use
|
| 195 |
+
|
| 196 |
+
*List how the model may foreseeably be misused and address what users ought not to do with the model.*
|
| 197 |
+
-->
|
| 198 |
+
|
| 199 |
+
## Evaluation
|
| 200 |
+
|
| 201 |
+
### Metrics
|
| 202 |
+
|
| 203 |
+
#### Semantic Similarity
|
| 204 |
+
|
| 205 |
+
* Datasets: `sts-dev-768`, `sts-dev-512`, `sts-dev-256`, `sts-dev-128` and `sts-dev-64`
|
| 206 |
+
* Evaluated with [<code>EmbeddingSimilarityEvaluator</code>](https://sbert.net/docs/package_reference/sentence_transformer/evaluation.html#sentence_transformers.evaluation.EmbeddingSimilarityEvaluator)
|
| 207 |
+
|
| 208 |
+
| Metric | sts-dev-768 | sts-dev-512 | sts-dev-256 | sts-dev-128 | sts-dev-64 |
|
| 209 |
+
|:--------------------|:------------|:------------|:------------|:------------|:-----------|
|
| 210 |
+
| pearson_cosine | 0.8112 | 0.8093 | 0.8077 | 0.8029 | 0.7923 |
|
| 211 |
+
| **spearman_cosine** | **0.8101** | **0.8088** | **0.8081** | **0.8055** | **0.7976** |
|
| 212 |
+
|
| 213 |
+
<!--
|
| 214 |
+
## Bias, Risks and Limitations
|
| 215 |
+
|
| 216 |
+
*What are the known or foreseeable issues stemming from this model? You could also flag here known failure cases or weaknesses of the model.*
|
| 217 |
+
-->
|
| 218 |
+
|
| 219 |
+
<!--
|
| 220 |
+
### Recommendations
|
| 221 |
+
|
| 222 |
+
*What are recommendations with respect to the foreseeable issues? For example, filtering explicit content.*
|
| 223 |
+
-->
|
| 224 |
+
|
| 225 |
+
## Training Details
|
| 226 |
+
|
| 227 |
+
### Training Dataset
|
| 228 |
+
|
| 229 |
+
#### Unnamed Dataset
|
| 230 |
+
|
| 231 |
+
|
| 232 |
+
* Size: 1,000,000 training samples
|
| 233 |
+
* Columns: <code>anchor</code>, <code>positive</code>, and <code>negative</code>
|
| 234 |
+
* Approximate statistics based on the first 1000 samples:
|
| 235 |
+
| | anchor | positive | negative |
|
| 236 |
+
|:--------|:----------------------------------------------------------------------------------|:-----------------------------------------------------------------------------------|:----------------------------------------------------------------------------------|
|
| 237 |
+
| type | string | string | string |
|
| 238 |
+
| details | <ul><li>min: 4 tokens</li><li>mean: 23.56 tokens</li><li>max: 89 tokens</li></ul> | <ul><li>min: 4 tokens</li><li>mean: 16.02 tokens</li><li>max: 123 tokens</li></ul> | <ul><li>min: 5 tokens</li><li>mean: 16.16 tokens</li><li>max: 54 tokens</li></ul> |
|
| 239 |
+
* Samples:
|
| 240 |
+
| anchor | positive | negative |
|
| 241 |
+
|:--------------------------------|:--------------------------------------------------------|:----------------------------------------------------------------------|
|
| 242 |
+
| <code>هناك رجل في الشارع</code> | <code>رجل يحمل مالاً يقف أمام فرقة موسيقية ومتجر</code> | <code>رجلين و صبي صغير في سترة أرجوانية يمسكون منشورات ترويجية</code> |
|
| 243 |
+
| <code>الكلب يلعب بالجلب.</code> | <code>هناك كلب سمراء في منتصف الحقل يجلب كرة تنس</code> | <code>هناك كلب على العشب يهز نفسه حتى يجف.</code> |
|
| 244 |
+
| <code>شخصان يسيران.</code> | <code>شخصان يضحكان</code> | <code>رجل وامرأة يركبان دراجة مزدوجة معاً</code> |
|
| 245 |
+
* Loss: [<code>MatryoshkaLoss</code>](https://sbert.net/docs/package_reference/sentence_transformer/losses.html#matryoshkaloss) with these parameters:
|
| 246 |
+
```json
|
| 247 |
+
{
|
| 248 |
+
"loss": "MultipleNegativesRankingLoss",
|
| 249 |
+
"matryoshka_dims": [
|
| 250 |
+
768,
|
| 251 |
+
512,
|
| 252 |
+
256,
|
| 253 |
+
128,
|
| 254 |
+
64
|
| 255 |
+
],
|
| 256 |
+
"matryoshka_weights": [
|
| 257 |
+
1,
|
| 258 |
+
1,
|
| 259 |
+
1,
|
| 260 |
+
1,
|
| 261 |
+
1
|
| 262 |
+
],
|
| 263 |
+
"n_dims_per_step": -1
|
| 264 |
+
}
|
| 265 |
+
```
|
| 266 |
+
|
| 267 |
+
### Evaluation Dataset
|
| 268 |
+
|
| 269 |
+
#### Unnamed Dataset
|
| 270 |
+
|
| 271 |
+
|
| 272 |
+
* Size: 6,609 evaluation samples
|
| 273 |
+
* Columns: <code>anchor</code>, <code>positive</code>, and <code>negative</code>
|
| 274 |
+
* Approximate statistics based on the first 1000 samples:
|
| 275 |
+
| | anchor | positive | negative |
|
| 276 |
+
|:--------|:----------------------------------------------------------------------------------|:----------------------------------------------------------------------------------|:---------------------------------------------------------------------------------|
|
| 277 |
+
| type | string | string | string |
|
| 278 |
+
| details | <ul><li>min: 6 tokens</li><li>mean: 25.73 tokens</li><li>max: 87 tokens</li></ul> | <ul><li>min: 4 tokens</li><li>mean: 11.99 tokens</li><li>max: 46 tokens</li></ul> | <ul><li>min: 4 tokens</li><li>mean: 12.9 tokens</li><li>max: 38 tokens</li></ul> |
|
| 279 |
+
* Samples:
|
| 280 |
+
| anchor | positive | negative |
|
| 281 |
+
|:----------------------------------------------------------------------------------------------|:-----------------------------------|:-------------------------------------------|
|
| 282 |
+
| <code>هذه الجوقة الكنيسة تغني للجماهير وهم يغنون الأغاني السعيدة من الكتاب في الكنيسة.</code> | <code>الكنيسة مليئة بالغناء</code> | <code>جوقة تغني في مباراة بيسبول</code> |
|
| 283 |
+
| <code>امرأة ترتدي حجاب أخضر، وقميص أزرق وابتسامة كبيرة</code> | <code>المرأة سعيدة جداً</code> | <code>لقد تم إطلاق النار على المرأة</code> |
|
| 284 |
+
| <code>رجل عجوز يحمل طردًا يتصور أمام إعلان.</code> | <code>رجل يتصور أمام إعلان.</code> | <code>رجل يمشي بجانب إعلان</code> |
|
| 285 |
+
* Loss: [<code>MatryoshkaLoss</code>](https://sbert.net/docs/package_reference/sentence_transformer/losses.html#matryoshkaloss) with these parameters:
|
| 286 |
+
```json
|
| 287 |
+
{
|
| 288 |
+
"loss": "MultipleNegativesRankingLoss",
|
| 289 |
+
"matryoshka_dims": [
|
| 290 |
+
768,
|
| 291 |
+
512,
|
| 292 |
+
256,
|
| 293 |
+
128,
|
| 294 |
+
64
|
| 295 |
+
],
|
| 296 |
+
"matryoshka_weights": [
|
| 297 |
+
1,
|
| 298 |
+
1,
|
| 299 |
+
1,
|
| 300 |
+
1,
|
| 301 |
+
1
|
| 302 |
+
],
|
| 303 |
+
"n_dims_per_step": -1
|
| 304 |
+
}
|
| 305 |
+
```
|
| 306 |
+
|
| 307 |
+
### Training Hyperparameters
|
| 308 |
+
#### Non-Default Hyperparameters
|
| 309 |
+
|
| 310 |
+
- `eval_strategy`: steps
|
| 311 |
+
- `per_device_train_batch_size`: 32
|
| 312 |
+
- `per_device_eval_batch_size`: 32
|
| 313 |
+
- `num_train_epochs`: 1
|
| 314 |
+
- `warmup_ratio`: 0.1
|
| 315 |
+
- `fp16`: True
|
| 316 |
+
- `load_best_model_at_end`: True
|
| 317 |
+
- `batch_sampler`: no_duplicates
|
| 318 |
+
|
| 319 |
+
#### All Hyperparameters
|
| 320 |
+
<details><summary>Click to expand</summary>
|
| 321 |
+
|
| 322 |
+
- `overwrite_output_dir`: False
|
| 323 |
+
- `do_predict`: False
|
| 324 |
+
- `eval_strategy`: steps
|
| 325 |
+
- `prediction_loss_only`: True
|
| 326 |
+
- `per_device_train_batch_size`: 32
|
| 327 |
+
- `per_device_eval_batch_size`: 32
|
| 328 |
+
- `per_gpu_train_batch_size`: None
|
| 329 |
+
- `per_gpu_eval_batch_size`: None
|
| 330 |
+
- `gradient_accumulation_steps`: 1
|
| 331 |
+
- `eval_accumulation_steps`: None
|
| 332 |
+
- `torch_empty_cache_steps`: None
|
| 333 |
+
- `learning_rate`: 5e-05
|
| 334 |
+
- `weight_decay`: 0.0
|
| 335 |
+
- `adam_beta1`: 0.9
|
| 336 |
+
- `adam_beta2`: 0.999
|
| 337 |
+
- `adam_epsilon`: 1e-08
|
| 338 |
+
- `max_grad_norm`: 1.0
|
| 339 |
+
- `num_train_epochs`: 1
|
| 340 |
+
- `max_steps`: -1
|
| 341 |
+
- `lr_scheduler_type`: linear
|
| 342 |
+
- `lr_scheduler_kwargs`: {}
|
| 343 |
+
- `warmup_ratio`: 0.1
|
| 344 |
+
- `warmup_steps`: 0
|
| 345 |
+
- `log_level`: passive
|
| 346 |
+
- `log_level_replica`: warning
|
| 347 |
+
- `log_on_each_node`: True
|
| 348 |
+
- `logging_nan_inf_filter`: True
|
| 349 |
+
- `save_safetensors`: True
|
| 350 |
+
- `save_on_each_node`: False
|
| 351 |
+
- `save_only_model`: False
|
| 352 |
+
- `restore_callback_states_from_checkpoint`: False
|
| 353 |
+
- `no_cuda`: False
|
| 354 |
+
- `use_cpu`: False
|
| 355 |
+
- `use_mps_device`: False
|
| 356 |
+
- `seed`: 42
|
| 357 |
+
- `data_seed`: None
|
| 358 |
+
- `jit_mode_eval`: False
|
| 359 |
+
- `use_ipex`: False
|
| 360 |
+
- `bf16`: False
|
| 361 |
+
- `fp16`: True
|
| 362 |
+
- `fp16_opt_level`: O1
|
| 363 |
+
- `half_precision_backend`: auto
|
| 364 |
+
- `bf16_full_eval`: False
|
| 365 |
+
- `fp16_full_eval`: False
|
| 366 |
+
- `tf32`: None
|
| 367 |
+
- `local_rank`: 0
|
| 368 |
+
- `ddp_backend`: None
|
| 369 |
+
- `tpu_num_cores`: None
|
| 370 |
+
- `tpu_metrics_debug`: False
|
| 371 |
+
- `debug`: []
|
| 372 |
+
- `dataloader_drop_last`: False
|
| 373 |
+
- `dataloader_num_workers`: 0
|
| 374 |
+
- `dataloader_prefetch_factor`: None
|
| 375 |
+
- `past_index`: -1
|
| 376 |
+
- `disable_tqdm`: False
|
| 377 |
+
- `remove_unused_columns`: True
|
| 378 |
+
- `label_names`: None
|
| 379 |
+
- `load_best_model_at_end`: True
|
| 380 |
+
- `ignore_data_skip`: False
|
| 381 |
+
- `fsdp`: []
|
| 382 |
+
- `fsdp_min_num_params`: 0
|
| 383 |
+
- `fsdp_config`: {'min_num_params': 0, 'xla': False, 'xla_fsdp_v2': False, 'xla_fsdp_grad_ckpt': False}
|
| 384 |
+
- `fsdp_transformer_layer_cls_to_wrap`: None
|
| 385 |
+
- `accelerator_config`: {'split_batches': False, 'dispatch_batches': None, 'even_batches': True, 'use_seedable_sampler': True, 'non_blocking': False, 'gradient_accumulation_kwargs': None}
|
| 386 |
+
- `deepspeed`: None
|
| 387 |
+
- `label_smoothing_factor`: 0.0
|
| 388 |
+
- `optim`: adamw_torch
|
| 389 |
+
- `optim_args`: None
|
| 390 |
+
- `adafactor`: False
|
| 391 |
+
- `group_by_length`: False
|
| 392 |
+
- `length_column_name`: length
|
| 393 |
+
- `ddp_find_unused_parameters`: None
|
| 394 |
+
- `ddp_bucket_cap_mb`: None
|
| 395 |
+
- `ddp_broadcast_buffers`: False
|
| 396 |
+
- `dataloader_pin_memory`: True
|
| 397 |
+
- `dataloader_persistent_workers`: False
|
| 398 |
+
- `skip_memory_metrics`: True
|
| 399 |
+
- `use_legacy_prediction_loop`: False
|
| 400 |
+
- `push_to_hub`: False
|
| 401 |
+
- `resume_from_checkpoint`: None
|
| 402 |
+
- `hub_model_id`: None
|
| 403 |
+
- `hub_strategy`: every_save
|
| 404 |
+
- `hub_private_repo`: None
|
| 405 |
+
- `hub_always_push`: False
|
| 406 |
+
- `gradient_checkpointing`: False
|
| 407 |
+
- `gradient_checkpointing_kwargs`: None
|
| 408 |
+
- `include_inputs_for_metrics`: False
|
| 409 |
+
- `include_for_metrics`: []
|
| 410 |
+
- `eval_do_concat_batches`: True
|
| 411 |
+
- `fp16_backend`: auto
|
| 412 |
+
- `push_to_hub_model_id`: None
|
| 413 |
+
- `push_to_hub_organization`: None
|
| 414 |
+
- `mp_parameters`:
|
| 415 |
+
- `auto_find_batch_size`: False
|
| 416 |
+
- `full_determinism`: False
|
| 417 |
+
- `torchdynamo`: None
|
| 418 |
+
- `ray_scope`: last
|
| 419 |
+
- `ddp_timeout`: 1800
|
| 420 |
+
- `torch_compile`: False
|
| 421 |
+
- `torch_compile_backend`: None
|
| 422 |
+
- `torch_compile_mode`: None
|
| 423 |
+
- `dispatch_batches`: None
|
| 424 |
+
- `split_batches`: None
|
| 425 |
+
- `include_tokens_per_second`: False
|
| 426 |
+
- `include_num_input_tokens_seen`: False
|
| 427 |
+
- `neftune_noise_alpha`: None
|
| 428 |
+
- `optim_target_modules`: None
|
| 429 |
+
- `batch_eval_metrics`: False
|
| 430 |
+
- `eval_on_start`: False
|
| 431 |
+
- `use_liger_kernel`: False
|
| 432 |
+
- `eval_use_gather_object`: False
|
| 433 |
+
- `average_tokens_across_devices`: False
|
| 434 |
+
- `prompts`: None
|
| 435 |
+
- `batch_sampler`: no_duplicates
|
| 436 |
+
- `multi_dataset_batch_sampler`: proportional
|
| 437 |
+
|
| 438 |
+
</details>
|
| 439 |
+
|
| 440 |
+
### Training Logs
|
| 441 |
+
| Epoch | Step | Training Loss | Validation Loss | sts-dev-768_spearman_cosine | sts-dev-512_spearman_cosine | sts-dev-256_spearman_cosine | sts-dev-128_spearman_cosine | sts-dev-64_spearman_cosine |
|
| 442 |
+
|:------:|:----:|:-------------:|:---------------:|:---------------------------:|:---------------------------:|:---------------------------:|:---------------------------:|:--------------------------:|
|
| 443 |
+
| 0.0256 | 200 | 8.8816 | - | - | - | - | - | - |
|
| 444 |
+
| 0.0512 | 400 | 5.1404 | - | - | - | - | - | - |
|
| 445 |
+
| 0.0640 | 500 | - | 6.5304 | 0.7855 | 0.7818 | 0.7766 | 0.7712 | 0.7635 |
|
| 446 |
+
| 0.0768 | 600 | 4.7789 | - | - | - | - | - | - |
|
| 447 |
+
| 0.1024 | 800 | 4.6845 | - | - | - | - | - | - |
|
| 448 |
+
| 0.1280 | 1000 | 4.6628 | 6.3298 | 0.7900 | 0.7888 | 0.7855 | 0.7829 | 0.7757 |
|
| 449 |
+
| 0.1536 | 1200 | 4.2947 | - | - | - | - | - | - |
|
| 450 |
+
| 0.1792 | 1400 | 4.0669 | - | - | - | - | - | - |
|
| 451 |
+
| 0.1920 | 1500 | - | 6.1192 | 0.7762 | 0.7717 | 0.7688 | 0.7651 | 0.7546 |
|
| 452 |
+
| 0.2048 | 1600 | 3.7798 | - | - | - | - | - | - |
|
| 453 |
+
| 0.2304 | 1800 | 3.6295 | - | - | - | - | - | - |
|
| 454 |
+
| 0.2560 | 2000 | 3.4326 | 5.5251 | 0.7968 | 0.7941 | 0.7926 | 0.7905 | 0.7822 |
|
| 455 |
+
| 0.2816 | 2200 | 3.5024 | - | - | - | - | - | - |
|
| 456 |
+
| 0.3072 | 2400 | 3.2039 | - | - | - | - | - | - |
|
| 457 |
+
| 0.3200 | 2500 | - | 5.4173 | 0.7985 | 0.7957 | 0.7946 | 0.7904 | 0.7806 |
|
| 458 |
+
| 0.3328 | 2600 | 3.1517 | - | - | - | - | - | - |
|
| 459 |
+
| 0.3584 | 2800 | 3.0409 | - | - | - | - | - | - |
|
| 460 |
+
| 0.3840 | 3000 | 2.9611 | 5.0394 | 0.7923 | 0.7894 | 0.7871 | 0.7848 | 0.7789 |
|
| 461 |
+
| 0.4096 | 3200 | 2.8913 | - | - | - | - | - | - |
|
| 462 |
+
| 0.4352 | 3400 | 2.6737 | - | - | - | - | - | - |
|
| 463 |
+
| 0.4480 | 3500 | - | 4.8450 | 0.8124 | 0.8111 | 0.8075 | 0.8076 | 0.7968 |
|
| 464 |
+
| 0.4608 | 3600 | 2.6488 | - | - | - | - | - | - |
|
| 465 |
+
| 0.4864 | 3800 | 2.6208 | - | - | - | - | - | - |
|
| 466 |
+
| 0.5120 | 4000 | 2.4823 | 4.5711 | 0.8111 | 0.8102 | 0.8082 | 0.8075 | 0.8015 |
|
| 467 |
+
| 0.5376 | 4200 | 2.5081 | - | - | - | - | - | - |
|
| 468 |
+
| 0.5632 | 4400 | 2.3827 | - | - | - | - | - | - |
|
| 469 |
+
| 0.5760 | 4500 | - | 4.5276 | 0.8237 | 0.8227 | 0.8205 | 0.8200 | 0.8117 |
|
| 470 |
+
| 0.5888 | 4600 | 2.2867 | - | - | - | - | - | - |
|
| 471 |
+
| 0.6144 | 4800 | 2.2608 | - | - | - | - | - | - |
|
| 472 |
+
| 0.6400 | 5000 | 2.6285 | 2.6928 | 0.8124 | 0.8113 | 0.8099 | 0.8087 | 0.8023 |
|
| 473 |
+
| 0.6656 | 5200 | 3.2569 | - | - | - | - | - | - |
|
| 474 |
+
| 0.6912 | 5400 | 2.7108 | - | - | - | - | - | - |
|
| 475 |
+
| 0.7040 | 5500 | - | 3.4081 | 0.8112 | 0.8100 | 0.8080 | 0.8060 | 0.7994 |
|
| 476 |
+
| 0.7168 | 5600 | 2.2756 | - | - | - | - | - | - |
|
| 477 |
+
| 0.7424 | 5800 | 1.9964 | - | - | - | - | - | - |
|
| 478 |
+
| 0.7680 | 6000 | 1.8278 | 3.6261 | 0.8116 | 0.8101 | 0.8088 | 0.8071 | 0.8013 |
|
| 479 |
+
| 0.7935 | 6200 | 1.7105 | - | - | - | - | - | - |
|
| 480 |
+
| 0.8191 | 6400 | 1.5719 | - | - | - | - | - | - |
|
| 481 |
+
| 0.8319 | 6500 | - | 3.7826 | 0.8097 | 0.8085 | 0.8072 | 0.8040 | 0.7966 |
|
| 482 |
+
| 0.8447 | 6600 | 1.4569 | - | - | - | - | - | - |
|
| 483 |
+
| 0.8703 | 6800 | 1.3572 | - | - | - | - | - | - |
|
| 484 |
+
| 0.8959 | 7000 | 1.2607 | 3.7323 | 0.8114 | 0.8102 | 0.8093 | 0.8070 | 0.8005 |
|
| 485 |
+
| 0.9215 | 7200 | 1.1676 | - | - | - | - | - | - |
|
| 486 |
+
| 0.9471 | 7400 | 1.1663 | - | - | - | - | - | - |
|
| 487 |
+
| 0.9599 | 7500 | - | 3.8307 | 0.8101 | 0.8088 | 0.8081 | 0.8055 | 0.7976 |
|
| 488 |
+
| 0.9727 | 7600 | 1.1079 | - | - | - | - | - | - |
|
| 489 |
+
| 0.9983 | 7800 | 1.0827 | - | - | - | - | - | - |
|
| 490 |
+
|
| 491 |
+
|
| 492 |
+
### Framework Versions
|
| 493 |
+
- Python: 3.10.12
|
| 494 |
+
- Sentence Transformers: 3.3.1
|
| 495 |
+
- Transformers: 4.48.0
|
| 496 |
+
- PyTorch: 2.5.1+cu124
|
| 497 |
+
- Accelerate: 1.2.1
|
| 498 |
+
- Datasets: 2.21.0
|
| 499 |
+
- Tokenizers: 0.21.0
|
| 500 |
+
|
| 501 |
+
## Citation
|
| 502 |
+
|
| 503 |
+
### BibTeX
|
| 504 |
+
|
| 505 |
+
#### Sentence Transformers
|
| 506 |
+
```bibtex
|
| 507 |
+
@inproceedings{reimers-2019-sentence-bert,
|
| 508 |
+
title = "Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks",
|
| 509 |
+
author = "Reimers, Nils and Gurevych, Iryna",
|
| 510 |
+
booktitle = "Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing",
|
| 511 |
+
month = "11",
|
| 512 |
+
year = "2019",
|
| 513 |
+
publisher = "Association for Computational Linguistics",
|
| 514 |
+
url = "https://arxiv.org/abs/1908.10084",
|
| 515 |
+
}
|
| 516 |
+
```
|
| 517 |
+
|
| 518 |
+
#### MatryoshkaLoss
|
| 519 |
+
```bibtex
|
| 520 |
+
@misc{kusupati2024matryoshka,
|
| 521 |
+
title={Matryoshka Representation Learning},
|
| 522 |
+
author={Aditya Kusupati and Gantavya Bhatt and Aniket Rege and Matthew Wallingford and Aditya Sinha and Vivek Ramanujan and William Howard-Snyder and Kaifeng Chen and Sham Kakade and Prateek Jain and Ali Farhadi},
|
| 523 |
+
year={2024},
|
| 524 |
+
eprint={2205.13147},
|
| 525 |
+
archivePrefix={arXiv},
|
| 526 |
+
primaryClass={cs.LG}
|
| 527 |
+
}
|
| 528 |
+
```
|
| 529 |
+
|
| 530 |
+
#### MultipleNegativesRankingLoss
|
| 531 |
+
```bibtex
|
| 532 |
+
@misc{henderson2017efficient,
|
| 533 |
+
title={Efficient Natural Language Response Suggestion for Smart Reply},
|
| 534 |
+
author={Matthew Henderson and Rami Al-Rfou and Brian Strope and Yun-hsuan Sung and Laszlo Lukacs and Ruiqi Guo and Sanjiv Kumar and Balint Miklos and Ray Kurzweil},
|
| 535 |
+
year={2017},
|
| 536 |
+
eprint={1705.00652},
|
| 537 |
+
archivePrefix={arXiv},
|
| 538 |
+
primaryClass={cs.CL}
|
| 539 |
+
}
|
| 540 |
+
```
|
| 541 |
+
|
| 542 |
+
<!--
|
| 543 |
+
## Glossary
|
| 544 |
+
|
| 545 |
+
*Clearly define terms in order to be accessible across audiences.*
|
| 546 |
+
-->
|
| 547 |
+
|
| 548 |
+
<!--
|
| 549 |
+
## Model Card Authors
|
| 550 |
+
|
| 551 |
+
*Lists the people who create the model card, providing recognition and accountability for the detailed work that goes into its construction.*
|
| 552 |
+
-->
|
| 553 |
+
|
| 554 |
+
<!--
|
| 555 |
+
## Model Card Contact
|
| 556 |
+
|
| 557 |
+
*Provides a way for people who have updates to the Model Card, suggestions, or questions, to contact the Model Card authors.*
|
| 558 |
+
-->
|
config.json
ADDED
|
@@ -0,0 +1,45 @@
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|
| 1 |
+
{
|
| 2 |
+
"_name_or_path": "EuroBERT/EuroBERT-210m",
|
| 3 |
+
"architectures": [
|
| 4 |
+
"EuroBertModel"
|
| 5 |
+
],
|
| 6 |
+
"attention_bias": false,
|
| 7 |
+
"attention_dropout": 0.0,
|
| 8 |
+
"auto_map": {
|
| 9 |
+
"AutoConfig": "configuration_eurobert.EuroBertConfig",
|
| 10 |
+
"AutoModel": "EuroBERT/EuroBERT-210m--modeling_eurobert.EuroBertModel",
|
| 11 |
+
"AutoModelForMaskedLM": "EuroBERT/EuroBERT-210m--modeling_eurobert.EuroBertForMaskedLM",
|
| 12 |
+
"AutoModelForPreTraining": "EuroBERT/EuroBERT-210m--modeling_eurobert.EuroBertPreTrainedModel",
|
| 13 |
+
"AutoModelForSequenceClassification": "EuroBERT/EuroBERT-210m--modeling_eurobert.EuroBertForSequenceClassification"
|
| 14 |
+
},
|
| 15 |
+
"bos_token": "<|begin_of_text|>",
|
| 16 |
+
"bos_token_id": 128000,
|
| 17 |
+
"clf_pooling": "late",
|
| 18 |
+
"eos_token": "<|end_of_text|>",
|
| 19 |
+
"eos_token_id": 128001,
|
| 20 |
+
"head_dim": 64,
|
| 21 |
+
"hidden_act": "silu",
|
| 22 |
+
"hidden_dropout": 0.0,
|
| 23 |
+
"hidden_size": 768,
|
| 24 |
+
"initializer_range": 0.02,
|
| 25 |
+
"intermediate_size": 3072,
|
| 26 |
+
"mask_token": "<|mask|>",
|
| 27 |
+
"mask_token_id": 128002,
|
| 28 |
+
"max_position_embeddings": 8192,
|
| 29 |
+
"mlp_bias": false,
|
| 30 |
+
"model_type": "eurobert",
|
| 31 |
+
"num_attention_heads": 12,
|
| 32 |
+
"num_hidden_layers": 12,
|
| 33 |
+
"num_key_value_heads": 12,
|
| 34 |
+
"pad_token": "<|end_of_text|>",
|
| 35 |
+
"pad_token_id": 128001,
|
| 36 |
+
"pretraining_tp": 1,
|
| 37 |
+
"rms_norm_eps": 1e-05,
|
| 38 |
+
"rope_scaling": null,
|
| 39 |
+
"rope_theta": 250000,
|
| 40 |
+
"tie_word_embeddings": false,
|
| 41 |
+
"torch_dtype": "float32",
|
| 42 |
+
"transformers_version": "4.48.0",
|
| 43 |
+
"use_cache": false,
|
| 44 |
+
"vocab_size": 128256
|
| 45 |
+
}
|
config_sentence_transformers.json
ADDED
|
@@ -0,0 +1,10 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 1 |
+
{
|
| 2 |
+
"__version__": {
|
| 3 |
+
"sentence_transformers": "3.3.1",
|
| 4 |
+
"transformers": "4.48.0",
|
| 5 |
+
"pytorch": "2.5.1+cu124"
|
| 6 |
+
},
|
| 7 |
+
"prompts": {},
|
| 8 |
+
"default_prompt_name": null,
|
| 9 |
+
"similarity_fn_name": "cosine"
|
| 10 |
+
}
|
configuration_eurobert.py
ADDED
|
@@ -0,0 +1,216 @@
|
|
|
|
|
|
|
|
|
|
|
|
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|
|
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|
|
| 1 |
+
# 🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨
|
| 2 |
+
# This file was automatically generated from src/transformers/models/eurobert/modular_eurobert.py.
|
| 3 |
+
# Do NOT edit this file manually as any edits will be overwritten by the generation of
|
| 4 |
+
# the file from the modular. If any change should be done, please apply the change to the
|
| 5 |
+
# modular_eurobert.py file directly. One of our CI enforces this.
|
| 6 |
+
# 🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨🚨
|
| 7 |
+
# coding=utf-8
|
| 8 |
+
# Copyright 2025 Nicolas Boizard, Duarte M. Alves, Hippolyte Gisserot-Boukhlef and the EuroBert team. All rights reserved.
|
| 9 |
+
#
|
| 10 |
+
#
|
| 11 |
+
# Licensed under the Apache License, Version 2.0 (the "License");
|
| 12 |
+
# you may not use this file except in compliance with the License.
|
| 13 |
+
# You may obtain a copy of the License at
|
| 14 |
+
#
|
| 15 |
+
# http://www.apache.org/licenses/LICENSE-2.0
|
| 16 |
+
#
|
| 17 |
+
# Unless required by applicable law or agreed to in writing, software
|
| 18 |
+
# distributed under the License is distributed on an "AS IS" BASIS,
|
| 19 |
+
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
|
| 20 |
+
# See the License for the specific language governing permissions and
|
| 21 |
+
# limitations under the License.
|
| 22 |
+
|
| 23 |
+
from transformers.utils import logging
|
| 24 |
+
from transformers.models.llama import LlamaConfig
|
| 25 |
+
|
| 26 |
+
|
| 27 |
+
logger = logging.get_logger(__name__)
|
| 28 |
+
|
| 29 |
+
|
| 30 |
+
class EuroBertConfig(LlamaConfig):
|
| 31 |
+
r"""
|
| 32 |
+
This is the configuration class to store the configuration of a [`EuroBertModel`]. It is used to instantiate an EuroBert
|
| 33 |
+
model according to the specified arguments, defining the model architecture. Instantiating a configuration with the
|
| 34 |
+
defaults will yield a similar configuration to that of the EuroBERT-210m.
|
| 35 |
+
|
| 36 |
+
Configuration objects inherit from [`PretrainedConfig`] and can be used to control the model outputs. Read the
|
| 37 |
+
documentation from [`PretrainedConfig`] for more information.
|
| 38 |
+
|
| 39 |
+
|
| 40 |
+
Args:
|
| 41 |
+
vocab_size (`int`, *optional*, defaults to 128256):
|
| 42 |
+
Vocabulary size of the EuroBert model. Defines the number of different tokens that can be represented by the
|
| 43 |
+
`inputs_ids` passed when calling [`EuroBertModel`]
|
| 44 |
+
hidden_size (`int`, *optional*, defaults to 768):
|
| 45 |
+
Dimensionality of the encoder layers and the pooler layer.
|
| 46 |
+
intermediate_size (`int`, *optional*, defaults to 3072):
|
| 47 |
+
Dimensionality of the "intermediate" (often named feed-forward) layer in the Transformer encoder.
|
| 48 |
+
num_hidden_layers (`int`, *optional*, defaults to 12):
|
| 49 |
+
Number of hidden layers in the Transformer encoder.
|
| 50 |
+
num_attention_heads (`int`, *optional*, defaults to 12):
|
| 51 |
+
Number of attention heads for each attention layer in the Transformer encoder.
|
| 52 |
+
num_key_value_heads (`int`, *optional*):
|
| 53 |
+
This is the number of key_value heads that should be used to implement Grouped Query Attention. If
|
| 54 |
+
`num_key_value_heads=num_attention_heads`, the model will use Multi Head Attention (MHA), if
|
| 55 |
+
`num_key_value_heads=1` the model will use Multi Query Attention (MQA) otherwise GQA is used. When
|
| 56 |
+
converting a multi-head checkpoint to a GQA checkpoint, each group key and value head should be constructed
|
| 57 |
+
by meanpooling all the original heads within that group. For more details checkout [this
|
| 58 |
+
paper](https://arxiv.org/pdf/2305.13245.pdf). If it is not specified, will default to
|
| 59 |
+
`num_attention_heads`.
|
| 60 |
+
hidden_act (`str` or `function`, *optional*, defaults to `"silu"`):
|
| 61 |
+
The non-linear activation function (function or string) in the encoder and pooler.
|
| 62 |
+
max_position_embeddings (`int`, *optional*, defaults to 8192):
|
| 63 |
+
The maximum sequence length that this model might ever be used with. EuroBert supports up to 8192 tokens,
|
| 64 |
+
EuroBert-pretrained up to 2048.
|
| 65 |
+
initializer_range (`float`, *optional*, defaults to 0.02):
|
| 66 |
+
The standard deviation of the truncated_normal_initializer for initializing all weight matrices.
|
| 67 |
+
rms_norm_eps (`float`, *optional*, defaults to 1e-05):
|
| 68 |
+
The epsilon used by the rms normalization layers.
|
| 69 |
+
bos_token_id (`int`, *optional*, defaults to 128000):
|
| 70 |
+
Beginning of stream token id.
|
| 71 |
+
eos_token_id (`int`, *optional*, defaults to 128001):
|
| 72 |
+
End of stream token id.
|
| 73 |
+
pad_token_id (`int`, *optional*, defaults to 128001):
|
| 74 |
+
Padding token id.
|
| 75 |
+
mask_token_id (`int`, *optional*, defaults to 128002):
|
| 76 |
+
Mask token id.
|
| 77 |
+
pretraining_tp (`int`, *optional*, defaults to 1):
|
| 78 |
+
Experimental feature. Tensor parallelism rank used during pretraining. Please refer to [this
|
| 79 |
+
document](https://huggingface.co/docs/transformers/main/perf_train_gpu_many#tensor-parallelism) to
|
| 80 |
+
understand more about it. This value is necessary to ensure exact reproducibility of the pretraining
|
| 81 |
+
results. Please refer to [this issue](https://github.com/pytorch/pytorch/issues/76232).
|
| 82 |
+
tie_word_embeddings (`bool`, *optional*, defaults to `False`):
|
| 83 |
+
Whether to tie weight embeddings
|
| 84 |
+
rope_theta (`float`, *optional*, defaults to 250000.0):
|
| 85 |
+
The base period of the RoPE embeddings. EuroBert used base period of 250000.0,
|
| 86 |
+
EuroBert-pretrained 10000.0.
|
| 87 |
+
rope_scaling (`Dict`, *optional*):
|
| 88 |
+
Dictionary containing the scaling configuration for the RoPE embeddings. NOTE: if you apply new rope type
|
| 89 |
+
and you expect the model to work on longer `max_position_embeddings`, we recommend you to update this value
|
| 90 |
+
accordingly.
|
| 91 |
+
Expected contents:
|
| 92 |
+
`rope_type` (`str`):
|
| 93 |
+
The sub-variant of RoPE to use. Can be one of ['default', 'linear', 'dynamic', 'yarn', 'longrope',
|
| 94 |
+
'eurobert3'], with 'default' being the original RoPE implementation.
|
| 95 |
+
`factor` (`float`, *optional*):
|
| 96 |
+
Used with all rope types except 'default'. The scaling factor to apply to the RoPE embeddings. In
|
| 97 |
+
most scaling types, a `factor` of x will enable the model to handle sequences of length x *
|
| 98 |
+
original maximum pre-trained length.
|
| 99 |
+
`original_max_position_embeddings` (`int`, *optional*):
|
| 100 |
+
Used with 'dynamic', 'longrope' and 'eurobert3'. The original max position embeddings used during
|
| 101 |
+
pretraining.
|
| 102 |
+
`attention_factor` (`float`, *optional*):
|
| 103 |
+
Used with 'yarn' and 'longrope'. The scaling factor to be applied on the attention
|
| 104 |
+
computation. If unspecified, it defaults to value recommended by the implementation, using the
|
| 105 |
+
`factor` field to infer the suggested value.
|
| 106 |
+
`beta_fast` (`float`, *optional*):
|
| 107 |
+
Only used with 'yarn'. Parameter to set the boundary for extrapolation (only) in the linear
|
| 108 |
+
ramp function. If unspecified, it defaults to 32.
|
| 109 |
+
`beta_slow` (`float`, *optional*):
|
| 110 |
+
Only used with 'yarn'. Parameter to set the boundary for interpolation (only) in the linear
|
| 111 |
+
ramp function. If unspecified, it defaults to 1.
|
| 112 |
+
`short_factor` (`List[float]`, *optional*):
|
| 113 |
+
Only used with 'longrope'. The scaling factor to be applied to short contexts (<
|
| 114 |
+
`original_max_position_embeddings`). Must be a list of numbers with the same length as the hidden
|
| 115 |
+
size divided by the number of attention heads divided by 2
|
| 116 |
+
`long_factor` (`List[float]`, *optional*):
|
| 117 |
+
Only used with 'longrope'. The scaling factor to be applied to long contexts (<
|
| 118 |
+
`original_max_position_embeddings`). Must be a list of numbers with the same length as the hidden
|
| 119 |
+
size divided by the number of attention heads divided by 2
|
| 120 |
+
`low_freq_factor` (`float`, *optional*):
|
| 121 |
+
Only used with 'eurobert3'. Scaling factor applied to low frequency components of the RoPE
|
| 122 |
+
`high_freq_factor` (`float`, *optional*):
|
| 123 |
+
Only used with 'eurobert3'. Scaling factor applied to high frequency components of the RoPE
|
| 124 |
+
attention_bias (`bool`, *optional*, defaults to `False`):
|
| 125 |
+
Whether to use a bias in the query, key, value and output projection layers during self-attention.
|
| 126 |
+
attention_dropout (`float`, *optional*, defaults to 0.0):
|
| 127 |
+
The dropout ratio for the attention probabilities.
|
| 128 |
+
mlp_bias (`bool`, *optional*, defaults to `False`):
|
| 129 |
+
Whether to use a bias in up_proj, down_proj and gate_proj layers in the MLP layers.
|
| 130 |
+
head_dim (`int`, *optional*):
|
| 131 |
+
The attention head dimension. If None, it will default to hidden_size // num_attention_heads
|
| 132 |
+
classifier_pooling (`str`, *optional*, defaults to `"late"`):
|
| 133 |
+
The pooling strategy to use for the classifier. Can be one of ['bos', 'mean', 'late'].
|
| 134 |
+
|
| 135 |
+
```python
|
| 136 |
+
>>> from transformers import EuroBertModel, EuroBertConfig
|
| 137 |
+
|
| 138 |
+
>>> # Initializing a EuroBert eurobert-base style configuration
|
| 139 |
+
>>> configuration = EuroBertConfig()
|
| 140 |
+
|
| 141 |
+
>>> # Initializing a model from the eurobert-base style configuration
|
| 142 |
+
>>> model = EuroBertModel(configuration)
|
| 143 |
+
|
| 144 |
+
>>> # Accessing the model configuration
|
| 145 |
+
>>> configuration = model.config
|
| 146 |
+
```"""
|
| 147 |
+
|
| 148 |
+
model_type = "eurobert"
|
| 149 |
+
|
| 150 |
+
def __init__(
|
| 151 |
+
self,
|
| 152 |
+
vocab_size=128256,
|
| 153 |
+
hidden_size=768,
|
| 154 |
+
intermediate_size=3072,
|
| 155 |
+
num_hidden_layers=12,
|
| 156 |
+
num_attention_heads=12,
|
| 157 |
+
num_key_value_heads=None,
|
| 158 |
+
hidden_act="silu",
|
| 159 |
+
max_position_embeddings=8192,
|
| 160 |
+
initializer_range=0.02,
|
| 161 |
+
rms_norm_eps=1e-05,
|
| 162 |
+
bos_token_id=128000,
|
| 163 |
+
eos_token_id=128001,
|
| 164 |
+
pad_token_id=128001,
|
| 165 |
+
mask_token_id=128002,
|
| 166 |
+
pretraining_tp=1,
|
| 167 |
+
tie_word_embeddings=False,
|
| 168 |
+
rope_theta=250000.0,
|
| 169 |
+
rope_scaling=None,
|
| 170 |
+
attention_bias=False,
|
| 171 |
+
attention_dropout=0.0,
|
| 172 |
+
mlp_bias=False,
|
| 173 |
+
head_dim=None,
|
| 174 |
+
classifier_pooling="late",
|
| 175 |
+
**kwargs,
|
| 176 |
+
):
|
| 177 |
+
# use_cache is specific to decoder models and should be set to False for encoder models
|
| 178 |
+
use_cache = kwargs.pop("use_cache", None)
|
| 179 |
+
if use_cache:
|
| 180 |
+
logger.warning_once(
|
| 181 |
+
"The `use_cache` argument to EuroBertConfig is set to `False`, as caching is never used for encoder models."
|
| 182 |
+
)
|
| 183 |
+
|
| 184 |
+
if num_key_value_heads is None:
|
| 185 |
+
num_key_value_heads = num_attention_heads
|
| 186 |
+
|
| 187 |
+
super().__init__(
|
| 188 |
+
vocab_size=vocab_size,
|
| 189 |
+
hidden_size=hidden_size,
|
| 190 |
+
intermediate_size=intermediate_size,
|
| 191 |
+
num_hidden_layers=num_hidden_layers,
|
| 192 |
+
num_attention_heads=num_attention_heads,
|
| 193 |
+
num_key_value_heads=num_key_value_heads,
|
| 194 |
+
hidden_act=hidden_act,
|
| 195 |
+
max_position_embeddings=max_position_embeddings,
|
| 196 |
+
initializer_range=initializer_range,
|
| 197 |
+
rms_norm_eps=rms_norm_eps,
|
| 198 |
+
use_cache=False,
|
| 199 |
+
bos_token_id=bos_token_id,
|
| 200 |
+
eos_token_id=eos_token_id,
|
| 201 |
+
pad_token_id=pad_token_id,
|
| 202 |
+
pretraining_tp=pretraining_tp,
|
| 203 |
+
tie_word_embeddings=tie_word_embeddings,
|
| 204 |
+
rope_theta=rope_theta,
|
| 205 |
+
rope_scaling=rope_scaling,
|
| 206 |
+
attention_bias=attention_bias,
|
| 207 |
+
attention_dropout=attention_dropout,
|
| 208 |
+
mlp_bias=mlp_bias,
|
| 209 |
+
head_dim=head_dim,
|
| 210 |
+
**kwargs,
|
| 211 |
+
)
|
| 212 |
+
self.mask_token_id = mask_token_id
|
| 213 |
+
self.clf_pooling = classifier_pooling
|
| 214 |
+
|
| 215 |
+
|
| 216 |
+
__all__ = ["EuroBertConfig"]
|
model.safetensors
ADDED
|
@@ -0,0 +1,3 @@
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|
| 1 |
+
version https://git-lfs.github.com/spec/v1
|
| 2 |
+
oid sha256:73a110a0bc68d572afd6ee3be44d9da809db9bf0e44ecd5a0c04b363f5a3c54d
|
| 3 |
+
size 847075632
|
modules.json
ADDED
|
@@ -0,0 +1,14 @@
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|
| 1 |
+
[
|
| 2 |
+
{
|
| 3 |
+
"idx": 0,
|
| 4 |
+
"name": "0",
|
| 5 |
+
"path": "",
|
| 6 |
+
"type": "sentence_transformers.models.Transformer"
|
| 7 |
+
},
|
| 8 |
+
{
|
| 9 |
+
"idx": 1,
|
| 10 |
+
"name": "1",
|
| 11 |
+
"path": "1_Pooling",
|
| 12 |
+
"type": "sentence_transformers.models.Pooling"
|
| 13 |
+
}
|
| 14 |
+
]
|
optimizer.pt
ADDED
|
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
| 1 |
+
version https://git-lfs.github.com/spec/v1
|
| 2 |
+
oid sha256:8e25b83ac67288b78919b71c5c8958a1641ad5872403ba8ff0e1fb407bd32f52
|
| 3 |
+
size 1694221050
|
rng_state.pth
ADDED
|
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
| 1 |
+
version https://git-lfs.github.com/spec/v1
|
| 2 |
+
oid sha256:e3e5d946241df2516b06d7074d8779088eae7607173ad780df56583910a9589b
|
| 3 |
+
size 14244
|
scheduler.pt
ADDED
|
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
| 1 |
+
version https://git-lfs.github.com/spec/v1
|
| 2 |
+
oid sha256:da4158e2709d91853a671ff7aacf53da5054e6028d81e2209f6034b0748a8bf1
|
| 3 |
+
size 1064
|
sentence_bert_config.json
ADDED
|
@@ -0,0 +1,4 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 1 |
+
{
|
| 2 |
+
"max_seq_length": 8192,
|
| 3 |
+
"do_lower_case": false
|
| 4 |
+
}
|
special_tokens_map.json
ADDED
|
@@ -0,0 +1,30 @@
|
|
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|
|
|
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|
|
|
|
|
|
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|
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|
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|
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|
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|
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|
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|
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|
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|
|
|
|
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|
|
|
|
|
|
| 1 |
+
{
|
| 2 |
+
"bos_token": {
|
| 3 |
+
"content": "<|begin_of_text|>",
|
| 4 |
+
"lstrip": false,
|
| 5 |
+
"normalized": false,
|
| 6 |
+
"rstrip": false,
|
| 7 |
+
"single_word": false
|
| 8 |
+
},
|
| 9 |
+
"eos_token": {
|
| 10 |
+
"content": "<|end_of_text|>",
|
| 11 |
+
"lstrip": false,
|
| 12 |
+
"normalized": false,
|
| 13 |
+
"rstrip": false,
|
| 14 |
+
"single_word": false
|
| 15 |
+
},
|
| 16 |
+
"mask_token": {
|
| 17 |
+
"content": "<|mask|>",
|
| 18 |
+
"lstrip": true,
|
| 19 |
+
"normalized": false,
|
| 20 |
+
"rstrip": false,
|
| 21 |
+
"single_word": false
|
| 22 |
+
},
|
| 23 |
+
"pad_token": {
|
| 24 |
+
"content": "<|end_of_text|>",
|
| 25 |
+
"lstrip": false,
|
| 26 |
+
"normalized": false,
|
| 27 |
+
"rstrip": false,
|
| 28 |
+
"single_word": false
|
| 29 |
+
}
|
| 30 |
+
}
|
tokenizer.json
ADDED
|
@@ -0,0 +1,3 @@
|
|
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|
|
|
|
|
|
|
|
|
|
| 1 |
+
version https://git-lfs.github.com/spec/v1
|
| 2 |
+
oid sha256:b80d6d6cf765222271c5bee596b5f26f65e6f0aa1fab5235d6aa2e9e9717fae2
|
| 3 |
+
size 17210168
|
tokenizer_config.json
ADDED
|
@@ -0,0 +1,2069 @@
|
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|
| 1 |
+
{
|
| 2 |
+
"added_tokens_decoder": {
|
| 3 |
+
"128000": {
|
| 4 |
+
"content": "<|begin_of_text|>",
|
| 5 |
+
"lstrip": false,
|
| 6 |
+
"normalized": false,
|
| 7 |
+
"rstrip": false,
|
| 8 |
+
"single_word": false,
|
| 9 |
+
"special": true
|
| 10 |
+
},
|
| 11 |
+
"128001": {
|
| 12 |
+
"content": "<|end_of_text|>",
|
| 13 |
+
"lstrip": false,
|
| 14 |
+
"normalized": false,
|
| 15 |
+
"rstrip": false,
|
| 16 |
+
"single_word": false,
|
| 17 |
+
"special": true
|
| 18 |
+
},
|
| 19 |
+
"128002": {
|
| 20 |
+
"content": "<|mask|>",
|
| 21 |
+
"lstrip": true,
|
| 22 |
+
"normalized": false,
|
| 23 |
+
"rstrip": false,
|
| 24 |
+
"single_word": false,
|
| 25 |
+
"special": true
|
| 26 |
+
},
|
| 27 |
+
"128003": {
|
| 28 |
+
"content": "<|reserved_special_token_1|>",
|
| 29 |
+
"lstrip": false,
|
| 30 |
+
"normalized": false,
|
| 31 |
+
"rstrip": false,
|
| 32 |
+
"single_word": false,
|
| 33 |
+
"special": true
|
| 34 |
+
},
|
| 35 |
+
"128004": {
|
| 36 |
+
"content": "<|finetune_right_pad_id|>",
|
| 37 |
+
"lstrip": false,
|
| 38 |
+
"normalized": false,
|
| 39 |
+
"rstrip": false,
|
| 40 |
+
"single_word": false,
|
| 41 |
+
"special": true
|
| 42 |
+
},
|
| 43 |
+
"128005": {
|
| 44 |
+
"content": "<|reserved_special_token_2|>",
|
| 45 |
+
"lstrip": false,
|
| 46 |
+
"normalized": false,
|
| 47 |
+
"rstrip": false,
|
| 48 |
+
"single_word": false,
|
| 49 |
+
"special": true
|
| 50 |
+
},
|
| 51 |
+
"128006": {
|
| 52 |
+
"content": "<|start_header_id|>",
|
| 53 |
+
"lstrip": false,
|
| 54 |
+
"normalized": false,
|
| 55 |
+
"rstrip": false,
|
| 56 |
+
"single_word": false,
|
| 57 |
+
"special": true
|
| 58 |
+
},
|
| 59 |
+
"128007": {
|
| 60 |
+
"content": "<|end_header_id|>",
|
| 61 |
+
"lstrip": false,
|
| 62 |
+
"normalized": false,
|
| 63 |
+
"rstrip": false,
|
| 64 |
+
"single_word": false,
|
| 65 |
+
"special": true
|
| 66 |
+
},
|
| 67 |
+
"128008": {
|
| 68 |
+
"content": "<|eom_id|>",
|
| 69 |
+
"lstrip": false,
|
| 70 |
+
"normalized": false,
|
| 71 |
+
"rstrip": false,
|
| 72 |
+
"single_word": false,
|
| 73 |
+
"special": true
|
| 74 |
+
},
|
| 75 |
+
"128009": {
|
| 76 |
+
"content": "<|eot_id|>",
|
| 77 |
+
"lstrip": false,
|
| 78 |
+
"normalized": false,
|
| 79 |
+
"rstrip": false,
|
| 80 |
+
"single_word": false,
|
| 81 |
+
"special": true
|
| 82 |
+
},
|
| 83 |
+
"128010": {
|
| 84 |
+
"content": "<|python_tag|>",
|
| 85 |
+
"lstrip": false,
|
| 86 |
+
"normalized": false,
|
| 87 |
+
"rstrip": false,
|
| 88 |
+
"single_word": false,
|
| 89 |
+
"special": true
|
| 90 |
+
},
|
| 91 |
+
"128011": {
|
| 92 |
+
"content": "<|reserved_special_token_3|>",
|
| 93 |
+
"lstrip": false,
|
| 94 |
+
"normalized": false,
|
| 95 |
+
"rstrip": false,
|
| 96 |
+
"single_word": false,
|
| 97 |
+
"special": true
|
| 98 |
+
},
|
| 99 |
+
"128012": {
|
| 100 |
+
"content": "<|reserved_special_token_4|>",
|
| 101 |
+
"lstrip": false,
|
| 102 |
+
"normalized": false,
|
| 103 |
+
"rstrip": false,
|
| 104 |
+
"single_word": false,
|
| 105 |
+
"special": true
|
| 106 |
+
},
|
| 107 |
+
"128013": {
|
| 108 |
+
"content": "<|reserved_special_token_5|>",
|
| 109 |
+
"lstrip": false,
|
| 110 |
+
"normalized": false,
|
| 111 |
+
"rstrip": false,
|
| 112 |
+
"single_word": false,
|
| 113 |
+
"special": true
|
| 114 |
+
},
|
| 115 |
+
"128014": {
|
| 116 |
+
"content": "<|reserved_special_token_6|>",
|
| 117 |
+
"lstrip": false,
|
| 118 |
+
"normalized": false,
|
| 119 |
+
"rstrip": false,
|
| 120 |
+
"single_word": false,
|
| 121 |
+
"special": true
|
| 122 |
+
},
|
| 123 |
+
"128015": {
|
| 124 |
+
"content": "<|reserved_special_token_7|>",
|
| 125 |
+
"lstrip": false,
|
| 126 |
+
"normalized": false,
|
| 127 |
+
"rstrip": false,
|
| 128 |
+
"single_word": false,
|
| 129 |
+
"special": true
|
| 130 |
+
},
|
| 131 |
+
"128016": {
|
| 132 |
+
"content": "<|reserved_special_token_8|>",
|
| 133 |
+
"lstrip": false,
|
| 134 |
+
"normalized": false,
|
| 135 |
+
"rstrip": false,
|
| 136 |
+
"single_word": false,
|
| 137 |
+
"special": true
|
| 138 |
+
},
|
| 139 |
+
"128017": {
|
| 140 |
+
"content": "<|reserved_special_token_9|>",
|
| 141 |
+
"lstrip": false,
|
| 142 |
+
"normalized": false,
|
| 143 |
+
"rstrip": false,
|
| 144 |
+
"single_word": false,
|
| 145 |
+
"special": true
|
| 146 |
+
},
|
| 147 |
+
"128018": {
|
| 148 |
+
"content": "<|reserved_special_token_10|>",
|
| 149 |
+
"lstrip": false,
|
| 150 |
+
"normalized": false,
|
| 151 |
+
"rstrip": false,
|
| 152 |
+
"single_word": false,
|
| 153 |
+
"special": true
|
| 154 |
+
},
|
| 155 |
+
"128019": {
|
| 156 |
+
"content": "<|reserved_special_token_11|>",
|
| 157 |
+
"lstrip": false,
|
| 158 |
+
"normalized": false,
|
| 159 |
+
"rstrip": false,
|
| 160 |
+
"single_word": false,
|
| 161 |
+
"special": true
|
| 162 |
+
},
|
| 163 |
+
"128020": {
|
| 164 |
+
"content": "<|reserved_special_token_12|>",
|
| 165 |
+
"lstrip": false,
|
| 166 |
+
"normalized": false,
|
| 167 |
+
"rstrip": false,
|
| 168 |
+
"single_word": false,
|
| 169 |
+
"special": true
|
| 170 |
+
},
|
| 171 |
+
"128021": {
|
| 172 |
+
"content": "<|reserved_special_token_13|>",
|
| 173 |
+
"lstrip": false,
|
| 174 |
+
"normalized": false,
|
| 175 |
+
"rstrip": false,
|
| 176 |
+
"single_word": false,
|
| 177 |
+
"special": true
|
| 178 |
+
},
|
| 179 |
+
"128022": {
|
| 180 |
+
"content": "<|reserved_special_token_14|>",
|
| 181 |
+
"lstrip": false,
|
| 182 |
+
"normalized": false,
|
| 183 |
+
"rstrip": false,
|
| 184 |
+
"single_word": false,
|
| 185 |
+
"special": true
|
| 186 |
+
},
|
| 187 |
+
"128023": {
|
| 188 |
+
"content": "<|reserved_special_token_15|>",
|
| 189 |
+
"lstrip": false,
|
| 190 |
+
"normalized": false,
|
| 191 |
+
"rstrip": false,
|
| 192 |
+
"single_word": false,
|
| 193 |
+
"special": true
|
| 194 |
+
},
|
| 195 |
+
"128024": {
|
| 196 |
+
"content": "<|reserved_special_token_16|>",
|
| 197 |
+
"lstrip": false,
|
| 198 |
+
"normalized": false,
|
| 199 |
+
"rstrip": false,
|
| 200 |
+
"single_word": false,
|
| 201 |
+
"special": true
|
| 202 |
+
},
|
| 203 |
+
"128025": {
|
| 204 |
+
"content": "<|reserved_special_token_17|>",
|
| 205 |
+
"lstrip": false,
|
| 206 |
+
"normalized": false,
|
| 207 |
+
"rstrip": false,
|
| 208 |
+
"single_word": false,
|
| 209 |
+
"special": true
|
| 210 |
+
},
|
| 211 |
+
"128026": {
|
| 212 |
+
"content": "<|reserved_special_token_18|>",
|
| 213 |
+
"lstrip": false,
|
| 214 |
+
"normalized": false,
|
| 215 |
+
"rstrip": false,
|
| 216 |
+
"single_word": false,
|
| 217 |
+
"special": true
|
| 218 |
+
},
|
| 219 |
+
"128027": {
|
| 220 |
+
"content": "<|reserved_special_token_19|>",
|
| 221 |
+
"lstrip": false,
|
| 222 |
+
"normalized": false,
|
| 223 |
+
"rstrip": false,
|
| 224 |
+
"single_word": false,
|
| 225 |
+
"special": true
|
| 226 |
+
},
|
| 227 |
+
"128028": {
|
| 228 |
+
"content": "<|reserved_special_token_20|>",
|
| 229 |
+
"lstrip": false,
|
| 230 |
+
"normalized": false,
|
| 231 |
+
"rstrip": false,
|
| 232 |
+
"single_word": false,
|
| 233 |
+
"special": true
|
| 234 |
+
},
|
| 235 |
+
"128029": {
|
| 236 |
+
"content": "<|reserved_special_token_21|>",
|
| 237 |
+
"lstrip": false,
|
| 238 |
+
"normalized": false,
|
| 239 |
+
"rstrip": false,
|
| 240 |
+
"single_word": false,
|
| 241 |
+
"special": true
|
| 242 |
+
},
|
| 243 |
+
"128030": {
|
| 244 |
+
"content": "<|reserved_special_token_22|>",
|
| 245 |
+
"lstrip": false,
|
| 246 |
+
"normalized": false,
|
| 247 |
+
"rstrip": false,
|
| 248 |
+
"single_word": false,
|
| 249 |
+
"special": true
|
| 250 |
+
},
|
| 251 |
+
"128031": {
|
| 252 |
+
"content": "<|reserved_special_token_23|>",
|
| 253 |
+
"lstrip": false,
|
| 254 |
+
"normalized": false,
|
| 255 |
+
"rstrip": false,
|
| 256 |
+
"single_word": false,
|
| 257 |
+
"special": true
|
| 258 |
+
},
|
| 259 |
+
"128032": {
|
| 260 |
+
"content": "<|reserved_special_token_24|>",
|
| 261 |
+
"lstrip": false,
|
| 262 |
+
"normalized": false,
|
| 263 |
+
"rstrip": false,
|
| 264 |
+
"single_word": false,
|
| 265 |
+
"special": true
|
| 266 |
+
},
|
| 267 |
+
"128033": {
|
| 268 |
+
"content": "<|reserved_special_token_25|>",
|
| 269 |
+
"lstrip": false,
|
| 270 |
+
"normalized": false,
|
| 271 |
+
"rstrip": false,
|
| 272 |
+
"single_word": false,
|
| 273 |
+
"special": true
|
| 274 |
+
},
|
| 275 |
+
"128034": {
|
| 276 |
+
"content": "<|reserved_special_token_26|>",
|
| 277 |
+
"lstrip": false,
|
| 278 |
+
"normalized": false,
|
| 279 |
+
"rstrip": false,
|
| 280 |
+
"single_word": false,
|
| 281 |
+
"special": true
|
| 282 |
+
},
|
| 283 |
+
"128035": {
|
| 284 |
+
"content": "<|reserved_special_token_27|>",
|
| 285 |
+
"lstrip": false,
|
| 286 |
+
"normalized": false,
|
| 287 |
+
"rstrip": false,
|
| 288 |
+
"single_word": false,
|
| 289 |
+
"special": true
|
| 290 |
+
},
|
| 291 |
+
"128036": {
|
| 292 |
+
"content": "<|reserved_special_token_28|>",
|
| 293 |
+
"lstrip": false,
|
| 294 |
+
"normalized": false,
|
| 295 |
+
"rstrip": false,
|
| 296 |
+
"single_word": false,
|
| 297 |
+
"special": true
|
| 298 |
+
},
|
| 299 |
+
"128037": {
|
| 300 |
+
"content": "<|reserved_special_token_29|>",
|
| 301 |
+
"lstrip": false,
|
| 302 |
+
"normalized": false,
|
| 303 |
+
"rstrip": false,
|
| 304 |
+
"single_word": false,
|
| 305 |
+
"special": true
|
| 306 |
+
},
|
| 307 |
+
"128038": {
|
| 308 |
+
"content": "<|reserved_special_token_30|>",
|
| 309 |
+
"lstrip": false,
|
| 310 |
+
"normalized": false,
|
| 311 |
+
"rstrip": false,
|
| 312 |
+
"single_word": false,
|
| 313 |
+
"special": true
|
| 314 |
+
},
|
| 315 |
+
"128039": {
|
| 316 |
+
"content": "<|reserved_special_token_31|>",
|
| 317 |
+
"lstrip": false,
|
| 318 |
+
"normalized": false,
|
| 319 |
+
"rstrip": false,
|
| 320 |
+
"single_word": false,
|
| 321 |
+
"special": true
|
| 322 |
+
},
|
| 323 |
+
"128040": {
|
| 324 |
+
"content": "<|reserved_special_token_32|>",
|
| 325 |
+
"lstrip": false,
|
| 326 |
+
"normalized": false,
|
| 327 |
+
"rstrip": false,
|
| 328 |
+
"single_word": false,
|
| 329 |
+
"special": true
|
| 330 |
+
},
|
| 331 |
+
"128041": {
|
| 332 |
+
"content": "<|reserved_special_token_33|>",
|
| 333 |
+
"lstrip": false,
|
| 334 |
+
"normalized": false,
|
| 335 |
+
"rstrip": false,
|
| 336 |
+
"single_word": false,
|
| 337 |
+
"special": true
|
| 338 |
+
},
|
| 339 |
+
"128042": {
|
| 340 |
+
"content": "<|reserved_special_token_34|>",
|
| 341 |
+
"lstrip": false,
|
| 342 |
+
"normalized": false,
|
| 343 |
+
"rstrip": false,
|
| 344 |
+
"single_word": false,
|
| 345 |
+
"special": true
|
| 346 |
+
},
|
| 347 |
+
"128043": {
|
| 348 |
+
"content": "<|reserved_special_token_35|>",
|
| 349 |
+
"lstrip": false,
|
| 350 |
+
"normalized": false,
|
| 351 |
+
"rstrip": false,
|
| 352 |
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"single_word": false,
|
| 353 |
+
"special": true
|
| 354 |
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},
|
| 355 |
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"128044": {
|
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| 1587 |
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|
| 1588 |
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| 1589 |
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| 1590 |
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| 1591 |
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| 1592 |
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| 1593 |
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|
| 1594 |
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| 1595 |
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|
| 1596 |
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|
| 1597 |
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| 1598 |
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| 1599 |
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| 1600 |
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| 1601 |
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|
| 1602 |
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| 1603 |
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|
| 1604 |
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|
| 1605 |
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| 1606 |
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| 1608 |
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| 1609 |
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| 1610 |
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| 1611 |
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|
| 1612 |
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|
| 1613 |
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| 1614 |
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| 1616 |
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| 1617 |
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|
| 1618 |
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| 1619 |
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|
| 1620 |
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|
| 1621 |
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| 1622 |
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| 1624 |
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| 1625 |
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| 1626 |
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| 1627 |
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| 1628 |
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| 1629 |
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| 1630 |
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| 1633 |
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| 1634 |
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| 1636 |
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| 1637 |
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| 1642 |
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| 1644 |
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| 1645 |
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| 1649 |
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| 1650 |
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| 1652 |
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| 1653 |
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| 1657 |
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| 1658 |
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| 1660 |
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| 1661 |
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| 1665 |
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| 1666 |
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| 1668 |
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| 1669 |
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| 1673 |
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| 1674 |
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| 1676 |
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| 1677 |
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| 1684 |
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| 1690 |
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| 1692 |
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| 1748 |
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| 1756 |
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| 1762 |
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| 1764 |
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| 1770 |
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| 1772 |
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| 1773 |
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| 1777 |
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| 1778 |
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|
| 1780 |
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|
| 1781 |
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| 1785 |
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| 1786 |
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|
| 1788 |
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| 1789 |
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| 1790 |
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| 1793 |
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|
| 1794 |
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| 1795 |
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| 1796 |
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| 1797 |
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|
| 1798 |
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| 1800 |
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|
| 1802 |
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| 1804 |
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| 1805 |
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| 1809 |
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|
| 1810 |
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| 1811 |
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|
| 1812 |
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|
| 1813 |
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| 1814 |
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|
| 1817 |
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|
| 1818 |
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|
| 1819 |
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|
| 1820 |
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|
| 1821 |
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| 1822 |
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| 1823 |
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| 1824 |
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|
| 1825 |
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|
| 1826 |
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|
| 1827 |
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|
| 1828 |
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|
| 1829 |
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|
| 1830 |
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|
| 1831 |
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|
| 1832 |
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|
| 1833 |
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|
| 1834 |
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|
| 1835 |
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|
| 1836 |
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|
| 1837 |
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|
| 1838 |
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|
| 1839 |
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|
| 1840 |
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|
| 1841 |
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|
| 1842 |
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|
| 1843 |
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|
| 1844 |
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|
| 1845 |
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|
| 1846 |
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|
| 1847 |
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|
| 1848 |
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|
| 1849 |
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|
| 1850 |
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|
| 1851 |
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|
| 1852 |
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|
| 1853 |
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|
| 1854 |
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|
| 1855 |
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|
| 1856 |
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|
| 1857 |
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|
| 1858 |
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|
| 1859 |
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|
| 1860 |
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|
| 1861 |
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|
| 1862 |
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|
| 1863 |
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|
| 1864 |
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|
| 1865 |
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|
| 1866 |
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|
| 1867 |
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|
| 1868 |
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|
| 1869 |
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|
| 1870 |
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|
| 1871 |
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|
| 1872 |
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|
| 1873 |
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|
| 1874 |
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|
| 1875 |
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|
| 1876 |
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|
| 1877 |
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|
| 1878 |
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|
| 1879 |
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|
| 1880 |
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|
| 1881 |
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|
| 1882 |
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|
| 1883 |
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|
| 1884 |
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|
| 1885 |
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|
| 1886 |
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|
| 1887 |
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|
| 1888 |
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|
| 1889 |
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|
| 1890 |
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|
| 1891 |
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|
| 1892 |
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|
| 1893 |
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|
| 1894 |
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|
| 1895 |
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|
| 1896 |
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|
| 1897 |
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|
| 1898 |
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|
| 1899 |
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|
| 1900 |
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|
| 1901 |
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|
| 1902 |
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|
| 1903 |
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|
| 1904 |
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|
| 1905 |
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|
| 1906 |
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|
| 1907 |
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|
| 1908 |
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|
| 1909 |
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|
| 1910 |
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|
| 1911 |
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|
| 1912 |
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|
| 1913 |
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|
| 1914 |
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|
| 1915 |
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|
| 1916 |
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|
| 1917 |
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|
| 1918 |
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|
| 1919 |
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|
| 1920 |
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|
| 1921 |
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|
| 1922 |
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|
| 1923 |
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|
| 1924 |
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|
| 1925 |
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|
| 1926 |
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|
| 1927 |
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|
| 1928 |
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|
| 1929 |
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|
| 1930 |
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|
| 1931 |
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|
| 1932 |
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|
| 1933 |
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|
| 1934 |
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|
| 1935 |
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|
| 1936 |
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|
| 1937 |
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|
| 1938 |
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|
| 1939 |
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|
| 1940 |
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"content": "<|reserved_special_token_234|>",
|
| 1941 |
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|
| 1942 |
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|
| 1943 |
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|
| 1944 |
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|
| 1945 |
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|
| 1946 |
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|
| 1947 |
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|
| 1948 |
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"content": "<|reserved_special_token_235|>",
|
| 1949 |
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|
| 1950 |
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|
| 1951 |
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|
| 1952 |
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|
| 1953 |
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|
| 1954 |
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},
|
| 1955 |
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|
| 1956 |
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"content": "<|reserved_special_token_236|>",
|
| 1957 |
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|
| 1958 |
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|
| 1959 |
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|
| 1960 |
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|
| 1961 |
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|
| 1962 |
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|
| 1963 |
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|
| 1964 |
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"content": "<|reserved_special_token_237|>",
|
| 1965 |
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|
| 1966 |
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|
| 1967 |
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|
| 1968 |
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|
| 1969 |
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|
| 1970 |
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},
|
| 1971 |
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|
| 1972 |
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"content": "<|reserved_special_token_238|>",
|
| 1973 |
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|
| 1974 |
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|
| 1975 |
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|
| 1976 |
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|
| 1977 |
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|
| 1978 |
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},
|
| 1979 |
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|
| 1980 |
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"content": "<|reserved_special_token_239|>",
|
| 1981 |
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|
| 1982 |
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|
| 1983 |
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|
| 1984 |
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|
| 1985 |
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|
| 1986 |
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},
|
| 1987 |
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|
| 1988 |
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"content": "<|reserved_special_token_240|>",
|
| 1989 |
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|
| 1990 |
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|
| 1991 |
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|
| 1992 |
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|
| 1993 |
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|
| 1994 |
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|
| 1995 |
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|
| 1996 |
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"content": "<|reserved_special_token_241|>",
|
| 1997 |
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|
| 1998 |
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|
| 1999 |
+
"rstrip": false,
|
| 2000 |
+
"single_word": false,
|
| 2001 |
+
"special": true
|
| 2002 |
+
},
|
| 2003 |
+
"128250": {
|
| 2004 |
+
"content": "<|reserved_special_token_242|>",
|
| 2005 |
+
"lstrip": false,
|
| 2006 |
+
"normalized": false,
|
| 2007 |
+
"rstrip": false,
|
| 2008 |
+
"single_word": false,
|
| 2009 |
+
"special": true
|
| 2010 |
+
},
|
| 2011 |
+
"128251": {
|
| 2012 |
+
"content": "<|reserved_special_token_243|>",
|
| 2013 |
+
"lstrip": false,
|
| 2014 |
+
"normalized": false,
|
| 2015 |
+
"rstrip": false,
|
| 2016 |
+
"single_word": false,
|
| 2017 |
+
"special": true
|
| 2018 |
+
},
|
| 2019 |
+
"128252": {
|
| 2020 |
+
"content": "<|reserved_special_token_244|>",
|
| 2021 |
+
"lstrip": false,
|
| 2022 |
+
"normalized": false,
|
| 2023 |
+
"rstrip": false,
|
| 2024 |
+
"single_word": false,
|
| 2025 |
+
"special": true
|
| 2026 |
+
},
|
| 2027 |
+
"128253": {
|
| 2028 |
+
"content": "<|reserved_special_token_245|>",
|
| 2029 |
+
"lstrip": false,
|
| 2030 |
+
"normalized": false,
|
| 2031 |
+
"rstrip": false,
|
| 2032 |
+
"single_word": false,
|
| 2033 |
+
"special": true
|
| 2034 |
+
},
|
| 2035 |
+
"128254": {
|
| 2036 |
+
"content": "<|reserved_special_token_246|>",
|
| 2037 |
+
"lstrip": false,
|
| 2038 |
+
"normalized": false,
|
| 2039 |
+
"rstrip": false,
|
| 2040 |
+
"single_word": false,
|
| 2041 |
+
"special": true
|
| 2042 |
+
},
|
| 2043 |
+
"128255": {
|
| 2044 |
+
"content": "<|reserved_special_token_247|>",
|
| 2045 |
+
"lstrip": false,
|
| 2046 |
+
"normalized": false,
|
| 2047 |
+
"rstrip": false,
|
| 2048 |
+
"single_word": false,
|
| 2049 |
+
"special": true
|
| 2050 |
+
}
|
| 2051 |
+
},
|
| 2052 |
+
"bos_token": "<|begin_of_text|>",
|
| 2053 |
+
"chat_template": "{{- bos_token }}\n{%- if custom_tools is defined %}\n {%- set tools = custom_tools %}\n{%- endif %}\n{%- if not tools_in_user_message is defined %}\n {%- set tools_in_user_message = true %}\n{%- endif %}\n{%- if not date_string is defined %}\n {%- set date_string = \"26 Jul 2024\" %}\n{%- endif %}\n{%- if not tools is defined %}\n {%- set tools = none %}\n{%- endif %}\n\n{#- This block extracts the system message, so we can slot it into the right place. #}\n{%- if messages[0]['role'] == 'system' %}\n {%- set system_message = messages[0]['content']|trim %}\n {%- set messages = messages[1:] %}\n{%- else %}\n {%- set system_message = \"\" %}\n{%- endif %}\n\n{#- System message + builtin tools #}\n{{- \"<|start_header_id|>system<|end_header_id|>\\n\\n\" }}\n{%- if builtin_tools is defined or tools is not none %}\n {{- \"Environment: ipython\\n\" }}\n{%- endif %}\n{%- if builtin_tools is defined %}\n {{- \"Tools: \" + builtin_tools | reject('equalto', 'code_interpreter') | join(\", \") + \"\\n\\n\"}}\n{%- endif %}\n{{- \"Cutting Knowledge Date: December 2023\\n\" }}\n{{- \"Today Date: \" + date_string + \"\\n\\n\" }}\n{%- if tools is not none and not tools_in_user_message %}\n {{- \"You have access to the following functions. To call a function, please respond with JSON for a function call.\" }}\n {{- 'Respond in the format {\"name\": function name, \"parameters\": dictionary of argument name and its value}.' }}\n {{- \"Do not use variables.\\n\\n\" }}\n {%- for t in tools %}\n {{- t | tojson(indent=4) }}\n {{- \"\\n\\n\" }}\n {%- endfor %}\n{%- endif %}\n{{- system_message }}\n{{- \"<|eot_id|>\" }}\n\n{#- Custom tools are passed in a user message with some extra guidance #}\n{%- if tools_in_user_message and not tools is none %}\n {#- Extract the first user message so we can plug it in here #}\n {%- if messages | length != 0 %}\n {%- set first_user_message = messages[0]['content']|trim %}\n {%- set messages = messages[1:] %}\n {%- else %}\n {{- raise_exception(\"Cannot put tools in the first user message when there's no first user message!\") }}\n{%- endif %}\n {{- '<|start_header_id|>user<|end_header_id|>\\n\\n' -}}\n {{- \"Given the following functions, please respond with a JSON for a function call \" }}\n {{- \"with its proper arguments that best answers the given prompt.\\n\\n\" }}\n {{- 'Respond in the format {\"name\": function name, \"parameters\": dictionary of argument name and its value}.' }}\n {{- \"Do not use variables.\\n\\n\" }}\n {%- for t in tools %}\n {{- t | tojson(indent=4) }}\n {{- \"\\n\\n\" }}\n {%- endfor %}\n {{- first_user_message + \"<|eot_id|>\"}}\n{%- endif %}\n\n{%- for message in messages %}\n {%- if not (message.role == 'ipython' or message.role == 'tool' or 'tool_calls' in message) %}\n {{- '<|start_header_id|>' + message['role'] + '<|end_header_id|>\\n\\n'+ message['content'] | trim + '<|eot_id|>' }}\n {%- elif 'tool_calls' in message %}\n {%- if not message.tool_calls|length == 1 %}\n {{- raise_exception(\"This model only supports single tool-calls at once!\") }}\n {%- endif %}\n {%- set tool_call = message.tool_calls[0].function %}\n {%- if builtin_tools is defined and tool_call.name in builtin_tools %}\n {{- '<|start_header_id|>assistant<|end_header_id|>\\n\\n' -}}\n {{- \"<|python_tag|>\" + tool_call.name + \".call(\" }}\n {%- for arg_name, arg_val in tool_call.arguments | items %}\n {{- arg_name + '=\"' + arg_val + '\"' }}\n {%- if not loop.last %}\n {{- \", \" }}\n {%- endif %}\n {%- endfor %}\n {{- \")\" }}\n {%- else %}\n {{- '<|start_header_id|>assistant<|end_header_id|>\\n\\n' -}}\n {{- '{\"name\": \"' + tool_call.name + '\", ' }}\n {{- '\"parameters\": ' }}\n {{- tool_call.arguments | tojson }}\n {{- \"}\" }}\n {%- endif %}\n {%- if builtin_tools is defined %}\n {#- This means we're in ipython mode #}\n {{- \"<|eom_id|>\" }}\n {%- else %}\n {{- \"<|eot_id|>\" }}\n {%- endif %}\n {%- elif message.role == \"tool\" or message.role == \"ipython\" %}\n {{- \"<|start_header_id|>ipython<|end_header_id|>\\n\\n\" }}\n {%- if message.content is mapping or message.content is iterable %}\n {{- message.content | tojson }}\n {%- else %}\n {{- message.content }}\n {%- endif %}\n {{- \"<|eot_id|>\" }}\n {%- endif %}\n{%- endfor %}\n{%- if add_generation_prompt %}\n {{- '<|start_header_id|>assistant<|end_header_id|>\\n\\n' }}\n{%- endif %}\n",
|
| 2054 |
+
"clean_up_tokenization_spaces": true,
|
| 2055 |
+
"eos_token": "<|end_of_text|>",
|
| 2056 |
+
"extra_special_tokens": {},
|
| 2057 |
+
"mask_token": "<|mask|>",
|
| 2058 |
+
"max_length": 512,
|
| 2059 |
+
"model_input_names": [
|
| 2060 |
+
"input_ids",
|
| 2061 |
+
"attention_mask"
|
| 2062 |
+
],
|
| 2063 |
+
"model_max_length": 1000000000000000019884624838656,
|
| 2064 |
+
"pad_to_multiple_of": null,
|
| 2065 |
+
"pad_token": "<|end_of_text|>",
|
| 2066 |
+
"pad_token_type_id": 0,
|
| 2067 |
+
"padding_side": "right",
|
| 2068 |
+
"tokenizer_class": "PreTrainedTokenizerFast"
|
| 2069 |
+
}
|
trainer_state.json
ADDED
|
@@ -0,0 +1,591 @@
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