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SentenceTransformer based on BAAI/bge-small-en-v1.5

This is a sentence-transformers model finetuned from BAAI/bge-small-en-v1.5. It maps sentences & paragraphs to a 512-dimensional dense vector space and can be used for semantic textual similarity, semantic search, paraphrase mining, text classification, clustering, and more.

Model Details

Model Description

  • Model Type: Sentence Transformer
  • Base model: BAAI/bge-small-en-v1.5
  • Maximum Sequence Length: 512 tokens
  • Output Dimensionality: 512 tokens
  • Similarity Function: Cosine Similarity

Model Sources

Full Model Architecture

SentenceTransformer(
  (0): Transformer({'max_seq_length': 512, 'do_lower_case': True}) with Transformer model: BertModel 
  (1): Pooling({'word_embedding_dimension': 512, 'pooling_mode_cls_token': True, 'pooling_mode_mean_tokens': False, 'pooling_mode_max_tokens': False, 'pooling_mode_mean_sqrt_len_tokens': False, 'pooling_mode_weightedmean_tokens': False, 'pooling_mode_lasttoken': False, 'include_prompt': True})
  (2): Normalize()
)

Usage

Direct Usage (Sentence Transformers)

First install the Sentence Transformers library:

pip install -U sentence-transformers

Then you can load this model and run inference.

from sentence_transformers import SentenceTransformer

# Download from the 🤗 Hub
model = SentenceTransformer("raul-delarosa99/bge-small-en-v1.5-RIRAG_ObliQA")
# Run inference
sentences = [
    'Could you provide detailed guidance on the acceptable threshold for "significant loss" to clients in the context of IT infrastructure resilience for virtual asset service providers?',
    '60) REGULATORY REQUIREMENTS FOR AUTHORISED PERSONS ENGAGED IN REGULATED ACTIVITIES IN RELATION TO VIRTUAL ASSETS Security measures and procedures IT infrastructures should be strong enough to resist, without significant loss to Clients, a number of scenarios, including but not limited to: accidental destruction or breach of data, collusion or leakage of information by employees/former employees, successful hack of a cryptographic and hardware security module or server, or access by hackers of any single set of encryption/decryption keys that could result in a complete system breach.',
    'APP8.A8.11.1 An Insurer must calculate the asset management risk component in respect of a Long Term Insurance Fund according to the method set out in Rule A4.13, applied as though all references in that Rule to an Insurer were instead references to that fund.',
]
embeddings = model.encode(sentences)
print(embeddings.shape)
# [3, 512]

# Get the similarity scores for the embeddings
similarities = model.similarity(embeddings, embeddings)
print(similarities.shape)
# [3, 3]

Evaluation

Metrics

Information Retrieval

Metric Fine Tunned Base Model
dot_score_accuracy@10 0.8902 0.7909
dot_score_precision@10 0.0984 0.0842
dot_score_recall@10 0.8142 0.7135
dot_score_ndcg@10 0.6921 0.6009
dot_score_mrr@10 0.6943 0.6015
dot_score_map@10 0.6313 0.5462

Training Details

Training Dataset

Unnamed Dataset

  • Size: 29,547 training samples
  • Columns: anchor and positive
  • Approximate statistics based on the first 1000 samples:
    anchor positive
    type string string
    details
    • min: 15 tokens
    • mean: 34.89 tokens
    • max: 96 tokens
    • min: 25 tokens
    • mean: 122.21 tokens
    • max: 512 tokens
  • Samples:
    anchor positive
    Under Rules 7.3.2 and 7.3.3, what are the two specific conditions related to the maturity of a financial instrument that would trigger a disclosure requirement? 7.3.4 Events that trigger a disclosure. For the purposes of Rules 7.3.2 and 7.3.3, a Person is taken to hold Financial Instruments in or relating to a Reporting Entity, if the Person holds a Financial Instrument that on its maturity will confer on him: (1) an unconditional right to acquire the Financial Instrument; or (2) the discretion as to his right to acquire the Financial Instrument.
    Best Execution and Transaction Handling: What constitutes 'Best Execution' under Rule 6.5 in the context of virtual assets, and how should Authorised Persons document and demonstrate this? 17.1.4 The following COBS Rules should be read as applying to all Transactions undertaken by an Authorised Person conducting a Regulated Activity in relation to Virtual Assets, irrespective of any restrictions on application or any exception to these Rules elsewhere in COBS - (a) Rule 3.4 (Suitability); (b) Rule 6.5 (Best Execution); (c) Rule 6.7 (Aggregation and Allocation); (d) Rule 6.10 (Confirmation Notes); (e) Rule 6.11 (Periodic Statements); and (f) Chapter 12 (Key Information and Client Agreement).
    How does the FSRA define and evaluate "principal risks and uncertainties" for a Petroleum Reporting Entity, particularly for the remaining six months of the financial year? 10.1.7.(2) A Reporting Entity must: (a) prepare such report: (i) for the first six months of each financial year or period, and if there is a change to the accounting reference date, prepare such report in respect of the period up to the old accounting reference date; and (ii) in accordance with the applicable IFRS standards or other standards acceptable to the Regulator; (b) ensure the financial statements have either been audited or reviewed by auditors, and the audit or review by the auditor is included within the report; and (c) ensure that the report includes: (i) except in the case of a Mining Exploration Reporting Entity or a Petroleum Exploration Reporting Entity, an indication of important events that have occurred during the first six months of the financial year, and their impact on the financial statements; (ii) except in the case of a Mining Exploration Reporting Entity or a Petroleum Exploration Reporting Entity, a description of the principal risks and uncertainties for the remaining six months of the financial year; and (iii) a condensed set of financial statements, an interim management report and associated responsibility statements.
  • Loss: MultipleNegativesRankingLoss with these parameters:
    {
        "scale": 20.0,
        "similarity_fct": "dot_score"
    }
    

Training Hyperparameters

Non-Default Hyperparameters

  • eval_strategy: epoch
  • per_device_train_batch_size: 64
  • per_device_eval_batch_size: 512
  • gradient_accumulation_steps: 4
  • learning_rate: 2e-05
  • num_train_epochs: 15
  • lr_scheduler_type: cosine
  • warmup_ratio: 0.1
  • bf16: True
  • load_best_model_at_end: True
  • optim: adamw_torch_fused
  • batch_sampler: no_duplicates

All Hyperparameters

Click to expand
  • overwrite_output_dir: False
  • do_predict: False
  • eval_strategy: epoch
  • prediction_loss_only: True
  • per_device_train_batch_size: 64
  • per_device_eval_batch_size: 512
  • per_gpu_train_batch_size: None
  • per_gpu_eval_batch_size: None
  • gradient_accumulation_steps: 4
  • eval_accumulation_steps: None
  • torch_empty_cache_steps: None
  • learning_rate: 2e-05
  • weight_decay: 0.0
  • adam_beta1: 0.9
  • adam_beta2: 0.999
  • adam_epsilon: 1e-08
  • max_grad_norm: 1.0
  • num_train_epochs: 15
  • max_steps: -1
  • lr_scheduler_type: cosine
  • lr_scheduler_kwargs: {}
  • warmup_ratio: 0.1
  • warmup_steps: 0
  • log_level: passive
  • log_level_replica: warning
  • log_on_each_node: True
  • logging_nan_inf_filter: True
  • save_safetensors: True
  • save_on_each_node: False
  • save_only_model: False
  • restore_callback_states_from_checkpoint: False
  • no_cuda: False
  • use_cpu: False
  • use_mps_device: False
  • seed: 42
  • data_seed: None
  • jit_mode_eval: False
  • use_ipex: False
  • bf16: True
  • fp16: False
  • fp16_opt_level: O1
  • half_precision_backend: auto
  • bf16_full_eval: False
  • fp16_full_eval: False
  • tf32: None
  • local_rank: 0
  • ddp_backend: None
  • tpu_num_cores: None
  • tpu_metrics_debug: False
  • debug: []
  • dataloader_drop_last: False
  • dataloader_num_workers: 0
  • dataloader_prefetch_factor: None
  • past_index: -1
  • disable_tqdm: False
  • remove_unused_columns: True
  • label_names: None
  • load_best_model_at_end: True
  • ignore_data_skip: False
  • fsdp: []
  • fsdp_min_num_params: 0
  • fsdp_config: {'min_num_params': 0, 'xla': False, 'xla_fsdp_v2': False, 'xla_fsdp_grad_ckpt': False}
  • fsdp_transformer_layer_cls_to_wrap: None
  • accelerator_config: {'split_batches': False, 'dispatch_batches': None, 'even_batches': True, 'use_seedable_sampler': True, 'non_blocking': False, 'gradient_accumulation_kwargs': None}
  • deepspeed: None
  • label_smoothing_factor: 0.0
  • optim: adamw_torch_fused
  • optim_args: None
  • adafactor: False
  • group_by_length: False
  • length_column_name: length
  • ddp_find_unused_parameters: None
  • ddp_bucket_cap_mb: None
  • ddp_broadcast_buffers: False
  • dataloader_pin_memory: True
  • dataloader_persistent_workers: False
  • skip_memory_metrics: True
  • use_legacy_prediction_loop: False
  • push_to_hub: False
  • resume_from_checkpoint: None
  • hub_model_id: None
  • hub_strategy: every_save
  • hub_private_repo: False
  • hub_always_push: False
  • gradient_checkpointing: False
  • gradient_checkpointing_kwargs: None
  • include_inputs_for_metrics: False
  • eval_do_concat_batches: True
  • fp16_backend: auto
  • push_to_hub_model_id: None
  • push_to_hub_organization: None
  • mp_parameters:
  • auto_find_batch_size: False
  • full_determinism: False
  • torchdynamo: None
  • ray_scope: last
  • ddp_timeout: 1800
  • torch_compile: False
  • torch_compile_backend: None
  • torch_compile_mode: None
  • dispatch_batches: None
  • split_batches: None
  • include_tokens_per_second: False
  • include_num_input_tokens_seen: False
  • neftune_noise_alpha: None
  • optim_target_modules: None
  • batch_eval_metrics: False
  • eval_on_start: False
  • use_liger_kernel: False
  • eval_use_gather_object: False
  • batch_sampler: no_duplicates
  • multi_dataset_batch_sampler: proportional

Training Logs

Click to expand
Epoch Step Training Loss qa_eval_dot_score_map@10
0.0087 1 1.9006 -
0.0173 2 1.9774 -
0.0260 3 1.8898 -
0.0346 4 1.7339 -
0.0433 5 1.7743 -
0.0519 6 1.8456 -
0.0606 7 1.8348 -
0.0693 8 1.7493 -
0.0779 9 1.6397 -
0.0866 10 1.6803 -
0.0952 11 1.6503 -
0.1039 12 1.7065 -
0.1126 13 1.864 -
0.1212 14 1.7811 -
0.1299 15 1.6896 -
0.1385 16 1.7036 -
0.1472 17 1.769 -
0.1558 18 1.8405 -
0.1645 19 1.8686 -
0.1732 20 1.7136 -
0.1818 21 1.9135 -
0.1905 22 1.9542 -
0.1991 23 1.7373 -
0.2078 24 1.7295 -
0.2165 25 1.6764 -
0.2251 26 1.6606 -
0.2338 27 1.5261 -
0.2424 28 1.6864 -
0.2511 29 1.6683 -
0.2597 30 1.6443 -
0.2684 31 1.587 -
0.2771 32 1.5673 -
0.2857 33 1.575 -
0.2944 34 1.5552 -
0.3030 35 1.6614 -
0.3117 36 1.5392 -
0.3203 37 1.5684 -
0.3290 38 1.3392 -
0.3377 39 1.3909 -
0.3463 40 1.3444 -
0.3550 41 1.3642 -
0.3636 42 1.3242 -
0.3723 43 1.4779 -
0.3810 44 1.2574 -
0.3896 45 1.3639 -
0.3983 46 1.2723 -
0.4069 47 1.2563 -
0.4156 48 1.1769 -
0.4242 49 1.2596 -
0.4329 50 1.2703 -
0.4416 51 1.3731 -
0.4502 52 1.163 -
0.4589 53 1.4455 -
0.4675 54 1.0285 -
0.4762 55 1.1616 -
0.4848 56 1.1341 -
0.4935 57 1.163 -
0.5022 58 1.187 -
0.5108 59 1.0557 -
0.5195 60 1.1115 -
0.5281 61 1.0469 -
0.5368 62 1.2311 -
0.5455 63 0.9378 -
0.5541 64 1.0355 -
0.5628 65 1.4079 -
0.5714 66 1.1047 -
0.5801 67 0.9298 -
0.5887 68 1.2011 -
0.5974 69 1.0149 -
0.6061 70 1.1661 -
0.6147 71 0.8674 -
0.6234 72 1.0458 -
0.6320 73 0.9858 -
0.6407 74 1.2019 -
0.6494 75 0.9794 -
0.6580 76 0.9604 -
0.6667 77 1.0405 -
0.6753 78 1.1605 -
0.6840 79 1.0779 -
0.6926 80 1.16 -
0.7013 81 1.2139 -
0.7100 82 1.0696 -
0.7186 83 1.1806 -
0.7273 84 1.1762 -
0.7359 85 0.975 -
0.7446 86 1.1304 -
0.7532 87 1.1431 -
0.7619 88 1.0669 -
0.7706 89 1.0858 -
0.7792 90 1.0494 -
0.7879 91 1.0815 -
0.7965 92 0.9833 -
0.8052 93 1.1571 -
0.8139 94 0.9771 -
0.8225 95 0.88 -
0.8312 96 0.9501 -
0.8398 97 1.2409 -
0.8485 98 1.1644 -
0.8571 99 1.1176 -
0.8658 100 0.8971 -
0.8745 101 1.032 -
0.8831 102 1.0456 -
0.8918 103 0.878 -
0.9004 104 0.9627 -
0.9091 105 0.7828 -
0.9177 106 0.9415 -
0.9264 107 0.9118 -
0.9351 108 1.0132 -
0.9437 109 0.9399 -
0.9524 110 0.9332 -
0.9610 111 0.9197 -
0.9697 112 0.9294 -
0.9784 113 1.1636 -
0.9870 114 0.9484 -
0.9957 115 1.1682 -
1.0043 116 0.6774 0.6055
1.0065 117 0.5901 -
1.0152 118 0.9436 -
1.0238 119 1.04 -
1.0325 120 0.8038 -
1.0411 121 0.8559 -
1.0498 122 1.1118 -
1.0584 123 0.8408 -
1.0671 124 0.9209 -
1.0758 125 0.7588 -
1.0844 126 0.8141 -
1.0931 127 0.7161 -
1.1017 128 0.7939 -
1.1104 129 1.0256 -
1.1190 130 0.8305 -
1.1277 131 0.8177 -
1.1364 132 0.8632 -
1.1450 133 0.9084 -
1.1537 134 1.0142 -
1.1623 135 1.2425 -
1.1710 136 0.8622 -
1.1797 137 1.0148 -
1.1883 138 1.1104 -
1.1970 139 1.0222 -
1.2056 140 0.9621 -
1.2143 141 0.8216 -
1.2229 142 0.8159 -
1.2316 143 0.7278 -
1.2403 144 0.9867 -
1.2489 145 1.0389 -
1.2576 146 0.8307 -
1.2662 147 0.943 -
1.2749 148 0.8681 -
1.2835 149 0.9374 -
1.2922 150 0.9335 -
1.3009 151 1.0568 -
1.3095 152 0.8154 -
1.3182 153 1.1342 -
1.3268 154 0.9235 -
1.3355 155 0.8155 -
1.3442 156 0.7959 -
1.3528 157 0.9586 -
1.3615 158 0.811 -
1.3701 159 0.8997 -
1.3788 160 0.94 -
1.3874 161 0.7088 -
1.3961 162 0.9682 -
1.4048 163 0.8308 -
1.4134 164 0.7775 -
1.4221 165 0.9181 -
1.4307 166 0.9467 -
1.4394 167 0.9216 -
1.4481 168 0.877 -
1.4567 169 0.9788 -
1.4654 170 0.9094 -
1.4740 171 0.8269 -
1.4827 172 0.6962 -
1.4913 173 0.9412 -
1.5 174 1.1315 -
1.5087 175 0.7554 -
1.5173 176 0.9191 -
1.5260 177 0.8115 -
1.5346 178 0.8798 -
1.5433 179 0.8248 -
1.5519 180 0.712 -
1.5606 181 1.0581 -
1.5693 182 0.9755 -
1.5779 183 0.8808 -
1.5866 184 0.8207 -
1.5952 185 0.8627 -
1.6039 186 0.9566 -
1.6126 187 0.6412 -
1.6212 188 0.7806 -
1.6299 189 0.8012 -
1.6385 190 0.9907 -
1.6472 191 0.8961 -
1.6558 192 0.7042 -
1.6645 193 0.8451 -
1.6732 194 1.0143 -
1.6818 195 0.9189 -
1.6905 196 0.8588 -
1.6991 197 0.9458 -
1.7078 198 0.9716 -
1.7165 199 0.9424 -
1.7251 200 0.9257 -
1.7338 201 0.838 -
1.7424 202 1.0036 -
1.7511 203 0.8486 -
1.7597 204 1.0168 -
1.7684 205 0.8885 -
1.7771 206 0.8234 -
1.7857 207 1.0461 -
1.7944 208 0.9209 -
1.8030 209 0.9177 -
1.8117 210 0.8683 -
1.8203 211 0.799 -
1.8290 212 0.8423 -
1.8377 213 1.0716 -
1.8463 214 1.0086 -
1.8550 215 0.9491 -
1.8636 216 0.876 -
1.8723 217 0.753 -
1.8810 218 1.0414 -
1.8896 219 0.7402 -
1.8983 220 0.7265 -
1.9069 221 0.7436 -
1.9156 222 0.8061 -
1.9242 223 0.6365 -
1.9329 224 0.8791 -
1.9416 225 0.8423 -
1.9502 226 0.7883 -
1.9589 227 0.7574 -
1.9675 228 0.8446 -
1.9762 229 0.8368 -
1.9848 230 0.9048 -
1.9935 231 0.973 -
2.0022 232 0.8729 0.6196
2.0043 233 0.2569 -
2.0130 234 0.8799 -
2.0216 235 0.8955 -
2.0303 236 0.7625 -
2.0390 237 0.6385 -
2.0476 238 0.8365 -
2.0563 239 0.9766 -
2.0649 240 0.685 -
2.0736 241 0.7521 -
2.0823 242 0.6045 -
2.0909 243 0.5866 -
2.0996 244 0.6631 -
2.1082 245 0.8788 -
2.1169 246 0.7642 -
2.1255 247 0.6549 -
2.1342 248 0.748 -
2.1429 249 0.8265 -
2.1515 250 0.7587 -
2.1602 251 1.1161 -
2.1688 252 0.858 -
2.1775 253 0.8394 -
2.1861 254 0.9658 -
2.1948 255 0.9162 -
2.2035 256 0.8561 -
2.2121 257 0.7099 -
2.2208 258 0.7261 -
2.2294 259 0.7174 -
2.2381 260 0.6752 -
2.2468 261 0.9701 -
2.2554 262 0.7685 -
2.2641 263 0.845 -
2.2727 264 0.7365 -
2.2814 265 0.7538 -
2.2900 266 0.7401 -
2.2987 267 0.9054 -
2.3074 268 0.7733 -
2.3160 269 0.9947 -
2.3247 270 0.7427 -
2.3333 271 0.757 -
2.3420 272 0.731 -
2.3506 273 0.719 -
2.3593 274 0.7435 -
2.3680 275 0.7489 -
2.3766 276 0.9108 -
2.3853 277 0.6027 -
2.3939 278 0.8813 -
2.4026 279 0.7801 -
2.4113 280 0.6287 -
2.4199 281 0.7375 -
2.4286 282 0.824 -
2.4372 283 0.8206 -
2.4459 284 0.7805 -
2.4545 285 0.8443 -
2.4632 286 0.8887 -
2.4719 287 0.6984 -
2.4805 288 0.6718 -
2.4892 289 0.8184 -
2.4978 290 1.0259 -
2.5065 291 0.7422 -
2.5152 292 0.7539 -
2.5238 293 0.7422 -
2.5325 294 0.81 -
2.5411 295 0.8015 -
2.5498 296 0.613 -
2.5584 297 0.8623 -
2.5671 298 1.0711 -
2.5758 299 0.76 -
2.5844 300 0.7372 -
2.5931 301 0.7346 -
2.6017 302 0.8559 -
2.6104 303 0.5926 -
2.6190 304 0.6945 -
2.6277 305 0.6985 -
2.6364 306 0.8489 -
2.6450 307 0.8123 -
2.6537 308 0.745 -
2.6623 309 0.6543 -
2.6710 310 0.9022 -
2.6797 311 0.862 -
2.6883 312 0.757 -
2.6970 313 0.8539 -
2.7056 314 0.9205 -
2.7143 315 0.8702 -
2.7229 316 0.8144 -
2.7316 317 0.8202 -
2.7403 318 0.9092 -
2.7489 319 0.7811 -
2.7576 320 0.8792 -
2.7662 321 0.8316 -
2.7749 322 0.8053 -
2.7835 323 0.9033 -
2.7922 324 0.8172 -
2.8009 325 0.7934 -
2.8095 326 0.8106 -
2.8182 327 0.7183 -
2.8268 328 0.7571 -
2.8355 329 0.9051 -
2.8442 330 0.8819 -
2.8528 331 0.96 -
2.8615 332 0.78 -
2.8701 333 0.6932 -
2.8788 334 0.8553 -
2.8874 335 0.8483 -
2.8961 336 0.6056 -
2.9048 337 0.7303 -
2.9134 338 0.5838 -
2.9221 339 0.5951 -
2.9307 340 0.761 -
2.9394 341 0.7292 -
2.9481 342 0.6878 -
2.9567 343 0.7565 -
2.9654 344 0.8009 -
2.9740 345 0.6321 -
2.9827 346 0.903 -
2.9913 347 0.9233 -
3.0 348 0.8918 0.6255
3.0022 349 0.1279 -
3.0108 350 0.7773 -
3.0195 351 0.6327 -
3.0281 352 0.8916 -
3.0368 353 0.5167 -
3.0455 354 0.7534 -
3.0541 355 0.7801 -
3.0628 356 0.7414 -
3.0714 357 0.6463 -
3.0801 358 0.5396 -
3.0887 359 0.6017 -
3.0974 360 0.5227 -
3.1061 361 0.7126 -
3.1147 362 0.72 -
3.1234 363 0.5806 -
3.1320 364 0.7322 -
3.1407 365 0.6927 -
3.1494 366 0.6769 -
3.1580 367 0.9597 -
3.1667 368 0.7742 -
3.1753 369 0.7357 -
3.1840 370 0.8548 -
3.1926 371 0.9285 -
3.2013 372 0.764 -
3.2100 373 0.7351 -
3.2186 374 0.7067 -
3.2273 375 0.6169 -
3.2359 376 0.6254 -
3.2446 377 0.885 -
3.2532 378 0.679 -
3.2619 379 0.7562 -
3.2706 380 0.6885 -
3.2792 381 0.6008 -
3.2879 382 0.7576 -
3.2965 383 0.7722 -
3.3052 384 0.7928 -
3.3139 385 0.8219 -
3.3225 386 0.6765 -
3.3312 387 0.734 -
3.3398 388 0.7175 -
3.3485 389 0.6636 -
3.3571 390 0.7042 -
3.3658 391 0.6494 -
3.3745 392 0.8241 -
3.3831 393 0.5427 -
3.3918 394 0.8621 -
3.4004 395 0.7231 -
3.4091 396 0.6559 -
3.4177 397 0.6104 -
3.4264 398 0.7446 -
3.4351 399 0.6819 -
3.4437 400 0.8372 -
3.4524 401 0.6876 -
3.4610 402 0.8287 -
3.4697 403 0.5788 -
3.4784 404 0.6705 -
3.4870 405 0.695 -
3.4957 406 0.8201 -
3.5043 407 0.7945 -
3.5130 408 0.6987 -
3.5216 409 0.6608 -
3.5303 410 0.7317 -
3.5390 411 0.7741 -
3.5476 412 0.5483 -
3.5563 413 0.7905 -
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14.6190 1699 0.4066 -
14.6277 1700 0.4445 -
14.6364 1701 0.569 -
14.6450 1702 0.4889 -
14.6537 1703 0.4877 -
14.6623 1704 0.383 -
14.6710 1705 0.5956 -
14.6797 1706 0.5391 -
14.6883 1707 0.4022 -
14.6970 1708 0.5472 -
14.7056 1709 0.6352 -
14.7143 1710 0.5842 -
14.7229 1711 0.4791 -
14.7316 1712 0.5339 -
14.7403 1713 0.6199 -
14.7489 1714 0.5332 -
14.7576 1715 0.5798 -
14.7662 1716 0.5493 -
14.7749 1717 0.5171 -
14.7835 1718 0.5666 -
14.7922 1719 0.527 -
14.8009 1720 0.5072 -
14.8095 1721 0.4886 -
14.8182 1722 0.4516 -
14.8268 1723 0.4257 -
14.8355 1724 0.6247 -
14.8442 1725 0.6085 0.6313
  • The bold row denotes the saved checkpoint.

Framework Versions

  • Python: 3.10.12
  • Sentence Transformers: 3.2.1
  • Transformers: 4.45.2
  • PyTorch: 2.2.1+cu121
  • Accelerate: 1.0.1
  • Datasets: 3.0.1
  • Tokenizers: 0.20.1

Citation

BibTeX

Sentence Transformers

@inproceedings{reimers-2019-sentence-bert,
    title = "Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks",
    author = "Reimers, Nils and Gurevych, Iryna",
    booktitle = "Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing",
    month = "11",
    year = "2019",
    publisher = "Association for Computational Linguistics",
    url = "https://arxiv.org/abs/1908.10084",
}

MultipleNegativesRankingLoss

@misc{henderson2017efficient,
    title={Efficient Natural Language Response Suggestion for Smart Reply},
    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},
    year={2017},
    eprint={1705.00652},
    archivePrefix={arXiv},
    primaryClass={cs.CL}
}

ObliQA: Obligation-based Question-Answering Dataset for Regulatory Compliance

@misc{gokhan2024regnlpactionfacilitatingcompliance,
      title={RegNLP in Action: Facilitating Compliance Through Automated Information Retrieval and Answer Generation}, 
      author={Tuba Gokhan and Kexin Wang and Iryna Gurevych and Ted Briscoe},
      year={2024},
      eprint={2409.05677},
      archivePrefix={arXiv},
      primaryClass={cs.CL},
      url={https://arxiv.org/abs/2409.05677}, 
}
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