SentenceTransformer based on thebajajra/RexBERT-large

This is a sentence-transformers model finetuned from thebajajra/RexBERT-large on the nomic-embed-unsupervised-data dataset. It maps sentences & paragraphs to a 1024-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 Sources

Full Model Architecture

SentenceTransformer(
  (0): Transformer({'max_seq_length': 1024, 'do_lower_case': False, 'architecture': 'ModernBertModel'})
  (1): Pooling({'word_embedding_dimension': 1024, '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})
)

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("sentence_transformers_model_id")
# Run inference
queries = [
    "Corners are still lifting.",
]
documents = [
    'Hello, I got my ender 3 a little over a year ago and have gotten many successful prints off of my machine. \n\nI have always had a problem with the corners of my prints lifting. I originally used a glass plate. That by itself was horrible, but then I added hairspray, and that worked. The problem was that on long prints, corners still lifted.\n\nAfter doing this for around 5 months I switched to a PEI sheet.\n\nThis worked comparably as well as the glass/hairspray combo, except the corners STILL LIFT on long prints.\n\nNow I have a PEI sheet on boro glass with an EZABL attached and the corners of my prints are STILL LIFTING.\n\nI don\'t know what i could possibly be doing wrong. The bed must be level. I get beautiful first layers, which I have tried to "smudge" around during printing and I can confirm that the plastic is being layed down solidly.\n\nIf anyone could enlighten me as to what is going on I would be thrilled.\n\nI do have my first layer printing at 30% speed with 150% layer width with the print cooling fan off as well. Printing PLA at 200C tool temp, 60C bed.',
    'These are awesome quart jars. They have a beautiful color, and I use them for storing soups, nuts and homemade nut milk. I would purchase them again.',
    'Great product. I purchased this item becuase my wrists would ache after triceps day at the gym. I would never be able to straighten my wrist and this helped in fixing that issue.',
]
query_embeddings = model.encode_query(queries)
document_embeddings = model.encode_document(documents)
print(query_embeddings.shape, document_embeddings.shape)
# [1, 1024] [3, 1024]

# Get the similarity scores for the embeddings
similarities = model.similarity(query_embeddings, document_embeddings)
print(similarities)
# tensor([[0.5739, 0.0316, 0.1463]])

Training Details

Training Dataset

nomic-embed-unsupervised-data

  • Dataset: nomic-embed-unsupervised-data at 917bae6
  • Size: 221,599,363 training samples
  • Columns: query and document
  • Approximate statistics based on the first 1000 samples:
    query document
    type string string
    details
    • min: 6 tokens
    • mean: 34.17 tokens
    • max: 1024 tokens
    • min: 8 tokens
    • mean: 166.07 tokens
    • max: 1024 tokens
  • Samples:
    query document
    Effect of steam reforming on methane-fueled chemical looping combustion with Cu-based oxygen carrier Abstract The reduction characteristics of Cu-based oxygen carrier with H 2 , CO and CH 4 were investigated using a fixed bed reactor, TPR and TGA. Results showed that temperatures for the complete reduction of Cu-based oxygen carrier with H 2 and CO are 300 °C and 225 °C, respectively, while the corresponding temperature with CH 4 is 650 °C. The carbon deposition from CH 4 occurred at over 550 °C. CO-chemisorption experiments were also conducted on the oxygen carrier, and it was indicated that Cu-based oxygen carrier sinter seriously at 700 °C. In order to lower the required reduction temperature of oxygen carriers, a new chemical looping combustion (CLC) process with CH 4 steam reforming has been presented in this paper. The basic feasibility of the process was illustrated using CuO–SiO 2 . The new CLC process has the potential to replace the conventional gas-fired middle- and low-pressure steam and hot water boilers.
    who appointed onesicritus as chief pilot of the fleet by the king to hold a conference with the Indian philosophers or Gymnosophists, the details of which have been transmitted to us from his own account of the interview. It was Onesicritus, whom Alexander first sent to summon Dandamis to his court. When later Onesicritus returned empty-handed with the reply of Dandamis, the King went to forest to visit Dandamis. When Alexander constructed his fleet on the Hydaspes, he appointed Onesicritus to the important position of pilot of the king's ship, or chief pilot of the fleet (). Onesicritus held this position not only during the descent of the Indus,
    when did the madonna of foligno go to paris Madonna of Foligno hence the name. In 1799 it was carried to Paris, France by Napoleon. There, in 1802, the painting was transferred from panel to canvas by Hacquin and restored by Roser of Heidelberg. A note was made by the restorer: "Rapporto dei cittadini Guijon Vincent Tannay e Berthollet sul ristauro dei quadri di Raffaello conosciuto sotto il nome di Madonna di Foligno." In 1815, after the Battle of Waterloo, it was returned to Italy, where it was placed in the room with the Transfiguration in the Pinacoteca Vaticana of the Vatican Museum in the Vatican City. The painting is a "sacra
  • Loss: MultipleNegativesRankingLoss with these parameters:
    {
        "scale": 20.0,
        "similarity_fct": "cos_sim",
        "gather_across_devices": false
    }
    

Evaluation Dataset

nomic-embed-unsupervised-data

  • Dataset: nomic-embed-unsupervised-data at 917bae6
  • Size: 1,113,579 evaluation samples
  • Columns: query and document
  • Approximate statistics based on the first 1000 samples:
    query document
    type string string
    details
    • min: 5 tokens
    • mean: 31.98 tokens
    • max: 1024 tokens
    • min: 6 tokens
    • mean: 161.48 tokens
    • max: 1024 tokens
  • Samples:
    query document
    Concise methods for the synthesis of chiral polyoxazolines and their application in asymmetric hydrosilylation Seven polyoxazoline ligands were synthesized in high yield in a one-pot reaction by heating polycarboxylic acids or their esters and chiral β-amino alcohols under reflux with concomitant removal of water or the alcohol produced in the reaction. The method is much simpler and more efficient in comparison to those methods reported in the literature.The compounds were used as chiral ligands in the rhodium-catalyzed asymmetric hydrosilylation of aromatic ketones, and the effects of the linkers and the substituents present on the oxazoline rings on the yield and enantioselectivity investigated. Compound 2 was identified as the best ligand of this family for the hydrosilylation of aromatic ketones.
    On the road to a stronger public health workforce: visual tools to address complex challenges. The Public Health Workforce Taxonomy: Revisions and Recommendations for Implementation
    140mm Jetflo fan availability? I recently purchased a Nepton 280L, and would like to install an additional pair of 140mm Jetflo fans. Unfortunately they don't seem to be currently available, will they be in the future?

    Thank you so much!

    PS - I'm loving the cooling system!
  • Loss: MultipleNegativesRankingLoss with these parameters:
    {
        "scale": 20.0,
        "similarity_fct": "cos_sim",
        "gather_across_devices": false
    }
    

Training Hyperparameters

Non-Default Hyperparameters

  • eval_strategy: steps
  • per_device_train_batch_size: 192
  • per_device_eval_batch_size: 128
  • learning_rate: 1e-05
  • num_train_epochs: 4
  • warmup_steps: 1000
  • bf16: True
  • dataloader_num_workers: 20
  • dataloader_prefetch_factor: 4
  • ddp_find_unused_parameters: False

All Hyperparameters

Click to expand
  • overwrite_output_dir: False
  • do_predict: False
  • eval_strategy: steps
  • prediction_loss_only: True
  • per_device_train_batch_size: 192
  • per_device_eval_batch_size: 128
  • per_gpu_train_batch_size: None
  • per_gpu_eval_batch_size: None
  • gradient_accumulation_steps: 1
  • eval_accumulation_steps: None
  • torch_empty_cache_steps: None
  • learning_rate: 1e-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: 4
  • max_steps: -1
  • lr_scheduler_type: linear
  • lr_scheduler_kwargs: {}
  • warmup_ratio: 0.0
  • warmup_steps: 1000
  • 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
  • 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: True
  • dataloader_num_workers: 20
  • dataloader_prefetch_factor: 4
  • past_index: -1
  • disable_tqdm: False
  • remove_unused_columns: True
  • label_names: None
  • load_best_model_at_end: False
  • 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}
  • parallelism_config: 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
  • project: huggingface
  • trackio_space_id: trackio
  • ddp_find_unused_parameters: False
  • 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: None
  • hub_always_push: False
  • hub_revision: None
  • gradient_checkpointing: False
  • gradient_checkpointing_kwargs: None
  • include_inputs_for_metrics: False
  • include_for_metrics: []
  • 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
  • include_tokens_per_second: False
  • include_num_input_tokens_seen: no
  • neftune_noise_alpha: None
  • optim_target_modules: None
  • batch_eval_metrics: False
  • eval_on_start: False
  • use_liger_kernel: False
  • liger_kernel_config: None
  • eval_use_gather_object: False
  • average_tokens_across_devices: True
  • prompts: None
  • batch_sampler: batch_sampler
  • multi_dataset_batch_sampler: proportional
  • router_mapping: {}
  • learning_rate_mapping: {}

Training Logs

Click to expand
Epoch Step Training Loss Validation Loss
0.0007 100 3.8319 -
0.0014 200 1.5773 -
0.0021 300 0.2044 -
0.0028 400 0.0729 -
0.0035 500 0.0504 -
0.0042 600 0.0386 -
0.0049 700 0.0314 -
0.0055 800 0.0265 -
0.0062 900 0.0235 -
0.0069 1000 0.0203 -
0.0076 1100 0.0186 -
0.0083 1200 0.017 -
0.0090 1300 0.0157 -
0.0097 1400 0.0149 -
0.0104 1500 0.0144 -
0.0111 1600 0.0139 -
0.0118 1700 0.013 -
0.0125 1800 0.0125 -
0.0132 1900 0.0126 -
0.0139 2000 0.0119 -
0.0146 2100 0.0116 -
0.0152 2200 0.011 -
0.0159 2300 0.011 -
0.0166 2400 0.0105 -
0.0173 2500 0.0104 -
0.0180 2600 0.0098 -
0.0187 2700 0.0101 -
0.0194 2800 0.0094 -
0.0201 2900 0.0092 -
0.0208 3000 0.0093 -
0.0215 3100 0.0089 -
0.0222 3200 0.0089 -
0.0229 3300 0.0088 -
0.0236 3400 0.0086 -
0.0243 3500 0.0085 -
0.0250 3600 0.0084 -
0.0256 3700 0.0081 -
0.0263 3800 0.0082 -
0.0270 3900 0.0078 -
0.0277 4000 0.0079 -
0.0284 4100 0.0077 -
0.0291 4200 0.0077 -
0.0298 4300 0.0076 -
0.0305 4400 0.007 -
0.0312 4500 0.0072 -
0.0319 4600 0.0074 -
0.0326 4700 0.0068 -
0.0333 4800 0.0072 -
0.0340 4900 0.0069 -
0.0347 5000 0.007 -
0.0354 5100 0.0067 -
0.0360 5200 0.0069 -
0.0367 5300 0.0069 -
0.0374 5400 0.0068 -
0.0381 5500 0.0065 -
0.0388 5600 0.0063 -
0.0395 5700 0.0062 -
0.0402 5800 0.0065 -
0.0409 5900 0.0062 -
0.0416 6000 0.0062 -
0.0423 6100 0.0061 -
0.0430 6200 0.0062 -
0.0437 6300 0.006 -
0.0444 6400 0.0061 -
0.0451 6500 0.0061 -
0.0457 6600 0.0061 -
0.0464 6700 0.006 -
0.0471 6800 0.006 -
0.0478 6900 0.0058 -
0.0485 7000 0.0056 -
0.0492 7100 0.0056 -
0.0499 7200 0.0057 -
0.0506 7300 0.0057 -
0.0513 7400 0.0055 -
0.0520 7500 0.0054 -
0.0527 7600 0.0055 -
0.0534 7700 0.0055 -
0.0541 7800 0.0054 -
0.0548 7900 0.0055 -
0.0555 8000 0.0055 -
0.0561 8100 0.0055 -
0.0568 8200 0.0053 -
0.0575 8300 0.0054 -
0.0582 8400 0.0053 -
0.0589 8500 0.005 -
0.0596 8600 0.0051 -
0.0603 8700 0.0061 -
0.0610 8800 0.0058 -
0.0617 8900 0.0052 -
0.0624 9000 0.0049 -
0.0631 9100 0.0051 -
0.0638 9200 0.0051 -
0.0645 9300 0.005 -
0.0652 9400 0.0049 -
0.0658 9500 0.0048 -
0.0665 9600 0.0048 -
0.0672 9700 0.0045 -
0.0679 9800 0.0049 -
0.0686 9900 0.0049 -
0.0693 10000 0.0048 -
0.0700 10100 0.0052 -
0.0707 10200 0.0051 -
0.0714 10300 0.005 -
0.0721 10400 0.0048 -
0.0728 10500 0.0047 -
0.0735 10600 0.0046 -
0.0742 10700 0.0046 -
0.0749 10800 0.0046 -
0.0756 10900 0.0045 -
0.0762 11000 0.0045 -
0.0769 11100 0.0046 -
0.0776 11200 0.0046 -
0.0783 11300 0.0045 -
0.0790 11400 0.0046 -
0.0797 11500 0.0045 -
0.0804 11600 0.0044 -
0.0811 11700 0.0045 -
0.0818 11800 0.0044 -
0.0825 11900 0.0045 -
0.0832 12000 0.0044 -
0.0839 12100 0.0042 -
0.0846 12200 0.0042 -
0.0853 12300 0.0042 -
0.0859 12400 0.0042 -
0.0866 12500 0.0042 -
0.0873 12600 0.0045 -
0.0880 12700 0.0042 -
0.0887 12800 0.0043 -
0.0894 12900 0.0043 -
0.0901 13000 0.0042 -
0.0908 13100 0.0043 -
0.0915 13200 0.0043 -
0.0922 13300 0.0041 -
0.0929 13400 0.0041 -
0.0936 13500 0.0042 -
0.0943 13600 0.004 -
0.0950 13700 0.0043 -
0.0957 13800 0.004 -
0.0963 13900 0.0049 -
0.0970 14000 0.0048 -
0.0977 14100 0.0044 -
0.0984 14200 0.0045 -
0.0991 14300 0.0044 -
0.0998 14400 0.0042 -
0.1005 14500 0.004 -
0.1012 14600 0.0039 -
0.1019 14700 0.0039 -
0.1026 14800 0.0042 -
0.1033 14900 0.0039 -
0.1040 15000 0.004 -
0.1047 15100 0.0038 -
0.1054 15200 0.0039 -
0.1061 15300 0.0038 -
0.1067 15400 0.0039 -
0.1074 15500 0.0039 -
0.1081 15600 0.0039 -
0.1088 15700 0.004 -
0.1095 15800 0.0039 -
0.1102 15900 0.0039 -
0.1109 16000 0.0039 -
0.1116 16100 0.0038 -
0.1123 16200 0.0039 -
0.1130 16300 0.0037 -
0.1137 16400 0.0037 -
0.1144 16500 0.0038 -
0.1151 16600 0.0038 -
0.1158 16700 0.0039 -
0.1164 16800 0.0037 -
0.1171 16900 0.0038 -
0.1178 17000 0.0037 -
0.1185 17100 0.0037 -
0.1192 17200 0.0038 -
0.1199 17300 0.0035 -
0.1206 17400 0.0038 -
0.1213 17500 0.0036 -
0.1220 17600 0.0036 -
0.1227 17700 0.0038 -
0.1234 17800 0.0036 -
0.1241 17900 0.0037 -
0.1248 18000 0.0037 -
0.1255 18100 0.0038 -
0.1262 18200 0.0037 -
0.1268 18300 0.0036 -
0.1275 18400 0.0038 -
0.1282 18500 0.0035 -
0.1289 18600 0.0037 -
0.1296 18700 0.0036 -
0.1303 18800 0.0037 -
0.1310 18900 0.0036 -
0.1317 19000 0.0036 -
0.1324 19100 0.0034 -
0.1331 19200 0.0035 -
0.1338 19300 0.0037 -
0.1345 19400 0.0036 -
0.1352 19500 0.0035 -
0.1359 19600 0.0036 -
0.1365 19700 0.0036 -
0.1372 19800 0.0035 -
0.1379 19900 0.0035 -
0.1386 20000 0.0034 -
0.1393 20100 0.0034 -
0.1400 20200 0.0034 -
0.1407 20300 0.0036 -
0.1414 20400 0.0034 -
0.1421 20500 0.0034 -
0.1428 20600 0.0035 -
0.1435 20700 0.0034 -
0.1442 20800 0.0032 -
0.1449 20900 0.0032 -
0.1456 21000 0.0034 -
0.1463 21100 0.0034 -
0.1469 21200 0.0033 -
0.1476 21300 0.0034 -
0.1483 21400 0.0032 -
0.1490 21500 0.0032 -
0.1497 21600 0.0034 -
0.1504 21700 0.0034 -
0.1511 21800 0.0033 -
0.1518 21900 0.0034 -
0.1525 22000 0.0034 -
0.1532 22100 0.0034 -
0.1539 22200 0.0033 -
0.1546 22300 0.0034 -
0.1553 22400 0.0033 -
0.1560 22500 0.0031 -
0.1567 22600 0.0034 -
0.1573 22700 0.0035 -
0.1580 22800 0.0033 -
0.1587 22900 0.0032 -
0.1594 23000 0.0033 -
0.1601 23100 0.0032 -
0.1608 23200 0.0032 -
0.1615 23300 0.0033 -
0.1622 23400 0.0032 -
0.1629 23500 0.0031 -
0.1636 23600 0.003 -
0.1643 23700 0.0032 -
0.1650 23800 0.0033 -
0.1657 23900 0.0032 -
0.1664 24000 0.0031 -
0.1670 24100 0.0032 -
0.1677 24200 0.0032 -
0.1684 24300 0.0033 -
0.1691 24400 0.0032 -
0.1698 24500 0.0033 -
0.1705 24600 0.0032 -
0.1712 24700 0.0032 -
0.1719 24800 0.0033 -
0.1726 24900 0.0031 -
0.1733 25000 0.0032 -
0.1740 25100 0.003 -
0.1747 25200 0.0031 -
0.1754 25300 0.003 -
0.1761 25400 0.003 -
0.1768 25500 0.0032 -
0.1774 25600 0.003 -
0.1781 25700 0.0031 -
0.1788 25800 0.0031 -
0.1795 25900 0.003 -
0.1802 26000 0.003 -
0.1809 26100 0.003 -
0.1816 26200 0.0031 -
0.1823 26300 0.0031 -
0.1830 26400 0.0031 -
0.1837 26500 0.0032 -
0.1844 26600 0.0029 -
0.1851 26700 0.0031 -
0.1858 26800 0.0031 -
0.1865 26900 0.003 -
0.1871 27000 0.003 -
0.1878 27100 0.003 -
0.1885 27200 0.0029 -
0.1892 27300 0.003 -
0.1899 27400 0.003 -
0.1906 27500 0.0029 -
0.1913 27600 0.0029 -
0.1920 27700 0.0029 -
0.1927 27800 0.003 -
0.1934 27900 0.003 -
0.1941 28000 0.0029 -
0.1948 28100 0.003 -
0.1955 28200 0.0029 -
0.1962 28300 0.0029 -
0.1969 28400 0.0029 -
0.1975 28500 0.0029 -
0.1982 28600 0.0028 -
0.1989 28700 0.0029 -
0.1996 28800 0.003 -
0.2 28854 - 0.0020
0.2003 28900 0.003 -
0.2010 29000 0.0031 -
0.2017 29100 0.003 -
0.2024 29200 0.003 -
0.2031 29300 0.0031 -
0.2038 29400 0.0031 -
0.2045 29500 0.003 -
0.2052 29600 0.003 -
0.2059 29700 0.0031 -
0.2066 29800 0.0029 -
0.2073 29900 0.003 -
0.2079 30000 0.0029 -
0.2086 30100 0.0029 -
0.2093 30200 0.0031 -
0.2100 30300 0.0029 -
0.2107 30400 0.0027 -
0.2114 30500 0.0029 -
0.2121 30600 0.003 -
0.2128 30700 0.0029 -
0.2135 30800 0.0029 -
0.2142 30900 0.003 -
0.2149 31000 0.0028 -
0.2156 31100 0.0028 -
0.2163 31200 0.0029 -
0.2170 31300 0.0027 -
0.2176 31400 0.0028 -
0.2183 31500 0.0027 -
0.2190 31600 0.0027 -
0.2197 31700 0.0028 -
0.2204 31800 0.0027 -
0.2211 31900 0.0029 -
0.2218 32000 0.0027 -
0.2225 32100 0.0028 -
0.2232 32200 0.0028 -
0.2239 32300 0.0029 -
0.2246 32400 0.0027 -
0.2253 32500 0.0028 -
0.2260 32600 0.0026 -
0.2267 32700 0.0028 -
0.2274 32800 0.0027 -
0.2280 32900 0.0028 -
0.2287 33000 0.0026 -
0.2294 33100 0.0026 -
0.2301 33200 0.0026 -
0.2308 33300 0.0028 -
0.2315 33400 0.0027 -
0.2322 33500 0.0028 -
0.2329 33600 0.0028 -
0.2336 33700 0.0026 -
0.2343 33800 0.0028 -
0.2350 33900 0.0027 -
0.2357 34000 0.0027 -
0.2364 34100 0.0028 -
0.2371 34200 0.0029 -
0.2377 34300 0.0027 -
0.2384 34400 0.0028 -
0.2391 34500 0.0027 -
0.2398 34600 0.0026 -
0.2405 34700 0.0026 -
0.2412 34800 0.0026 -
0.2419 34900 0.0028 -
0.2426 35000 0.0026 -
0.2433 35100 0.0026 -
0.2440 35200 0.0027 -
0.2447 35300 0.0026 -
0.2454 35400 0.0026 -
0.2461 35500 0.0026 -
0.2468 35600 0.0027 -
0.2475 35700 0.0028 -
0.2481 35800 0.0026 -
0.2488 35900 0.0027 -
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1.0 144270 - 0.0010

Framework Versions

  • Python: 3.11.13
  • Sentence Transformers: 5.1.2
  • Transformers: 4.57.1
  • PyTorch: 2.8.0+cu129
  • Accelerate: 1.11.0
  • Datasets: 4.3.0
  • Tokenizers: 0.22.1

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}
}
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