swardiantara/bert-tiny-snli-k1-fixed-euclidean
SentenceTransformer based on google/bertuncasedL-2H-128A-2
This is a sentence-transformers model finetuned from google/bert_uncased_L-2_H-128_A-2. It maps sentences & paragraphs to a 128-dimensional dense vector space and can be used for retrieval.
Model Details
Model Description
- Model Type: Sentence Transformer
- Base model: google/bert_uncased_L-2_H-128_A-2 <!-- at revision 30b0a37ccaaa32f332884b96992754e246e48c5f -->
- Maximum Sequence Length: 128 tokens
- Output Dimensionality: 128 dimensions
- Similarity Function: Cosine Similarity
- Supported Modality: Text <!-- - Training Dataset: Unknown --> <!-- - Language: Unknown --> <!-- - License: Unknown -->
Model Sources
- Documentation: Sentence Transformers Documentation
- Repository: Sentence Transformers on GitHub
- Hugging Face: Sentence Transformers on Hugging Face
Full Model Architecture
SentenceTransformer(
(0): Transformer({'transformer_task': 'feature-extraction', 'modality_config': {'text': {'method': 'forward', 'method_output_name': 'last_hidden_state'}}, 'module_output_name': 'token_embeddings', 'architecture': 'BertModel'})
(1): Pooling({'embedding_dimension': 128, 'pooling_mode': 'mean', 'include_prompt': True})
)Usage
Direct Usage (Sentence Transformers)
First install the Sentence Transformers library:
pip install -U sentence-transformersThen you can load this model and run inference.
from sentence_transformers import SentenceTransformer
# Download from the 🤗 Hub
model = SentenceTransformer("swardiantara/bert-tiny-snli-k1-fixed-euclidean")
# Run inference
sentences = [
'Bicyclists waiting at an intersection. [SEP] The bicyclists are in a race.',
'A young shirtless boy in kakhi pants is kneeling in a marsh while someone splashes nearby. [SEP] Two people are riding on a ferris wheel at the fair.',
'A woman in a top hat is trying to get into a maroon car at night. [SEP] The woman and the car are outdoors.',
]
embeddings = model.encode(sentences)
print(embeddings.shape)
# [3, 128]
# Get the similarity scores for the embeddings
similarities = model.similarity(embeddings, embeddings)
print(similarities)
# tensor([[1.0000, 0.9968, 0.9954],
# [0.9968, 1.0000, 0.9945],
# [0.9954, 0.9945, 1.0000]])<!--
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Training Details
Training Dataset
Unnamed Dataset
- Size: 1,648,104 training samples
- Columns: <code>texta</code>, <code>textb</code>, and <code>label</code>
- Approximate statistics based on the first 100 samples: | | texta | textb | label | |:---------|:-----------------------------------------------------------------------------------|:-----------------------------------------------------------------------------------|:-----------------------------------| | type | string | string | list | | modality | text | text | | | details | <ul><li>min: 13 tokens</li><li>mean: 27.21 tokens</li><li>max: 47 tokens</li></ul> | <ul><li>min: 27 tokens</li><li>mean: 30.28 tokens</li><li>max: 36 tokens</li></ul> | <ul><li>size: 2 elements</li></ul> |
- Samples: | texta | textb | label | |:----------------------------------------------------------------------------------------------------------------------------|:-------------------------------------------------------------------------------------------------------------------------------------------------------------------|:------------------------| | <code>A person on a horse jumps over a broken down airplane. [SEP] A person is training his horse for a competition.</code> | <code>A woman standing in front of a white car that is piled with things on top. [SEP] The woman is preparing to move.</code> | <code>[1.0, 0.0]</code> | | <code>A person on a horse jumps over a broken down airplane. [SEP] A person is training his horse for a competition.</code> | <code>A woman in a top hat is trying to get into a maroon car at night. [SEP] The woman and the car are outdoors.</code> | <code>[0.0, 0.5]</code> | | <code>A person on a horse jumps over a broken down airplane. [SEP] A person is training his horse for a competition.</code> | <code>A young shirtless boy in kakhi pants is kneeling in a marsh while someone splashes nearby. [SEP] Two people are riding on a ferris wheel at the fair.</code> | <code>[0.0, 0.5]</code> |
- Loss: <code>_main_.OrdinalProxyContrastiveLoss</code>
Training Hyperparameters
Non-Default Hyperparameters
per_device_train_batch_size: 1024num_train_epochs: 10learning_rate: 2e-05load_best_model_at_end: True
All Hyperparameters
<details><summary>Click to expand</summary>
per_device_train_batch_size: 1024num_train_epochs: 10max_steps: -1learning_rate: 2e-05lr_scheduler_type: linearlr_scheduler_kwargs: Nonewarmup_steps: 0optim: adamw_torchoptim_args: Noneweight_decay: 0.0adam_beta1: 0.9adam_beta2: 0.999adam_epsilon: 1e-08optim_target_modules: Nonegradient_accumulation_steps: 1average_tokens_across_devices: Truemax_grad_norm: 1.0label_smoothing_factor: 0.0bf16: Falsefp16: Falsebf16_full_eval: Falsefp16_full_eval: Falsetf32: Nonegradient_checkpointing: Falsegradient_checkpointing_kwargs: Nonetorch_compile: Falsetorch_compile_backend: Nonetorch_compile_mode: Noneuse_liger_kernel: Falseliger_kernel_config: Noneuse_cache: Falseneftune_noise_alpha: Nonetorch_empty_cache_steps: Noneauto_find_batch_size: Falselog_on_each_node: Truelogging_nan_inf_filter: Trueinclude_num_input_tokens_seen: nolog_level: passivelog_level_replica: warningdisable_tqdm: Falseproject: huggingfacetrackio_space_id: Nonetrackio_bucket_id: Nonetrackio_static_space_id: Noneper_device_eval_batch_size: 8prediction_loss_only: Trueeval_on_start: Falseeval_do_concat_batches: Trueeval_use_gather_object: Falseeval_accumulation_steps: Noneinclude_for_metrics: []batch_eval_metrics: Falsesave_only_model: Falsesave_on_each_node: Falseenable_jit_checkpoint: Falsepush_to_hub: Falsehub_private_repo: Nonehub_model_id: Nonehub_strategy: every_savehub_always_push: Falsehub_revision: Noneload_best_model_at_end: Trueignore_data_skip: Falserestore_callback_states_from_checkpoint: Falsefull_determinism: Falseseed: 42data_seed: Noneuse_cpu: Falseaccelerator_config: {'splitbatches': False, 'dispatchbatches': None, 'evenbatches': True, 'useseedablesampler': True, 'nonblocking': False, 'gradientaccumulationkwargs': None}parallelism_config: Nonedataloader_drop_last: Falsedataloader_num_workers: 0dataloader_pin_memory: Truedataloader_persistent_workers: Falsedataloader_prefetch_factor: Noneremove_unused_columns: Truelabel_names: Nonetrain_sampling_strategy: randomlength_column_name: lengthddp_find_unused_parameters: Noneddp_bucket_cap_mb: Noneddp_broadcast_buffers: Falseddp_static_graph: Noneddp_backend: Noneddp_timeout: 1800fsdp: Nonefsdp_config: Nonedeepspeed: Nonedebug: []skip_memory_metrics: Truedo_predict: Falseresume_from_checkpoint: Nonewarmup_ratio: Nonelocal_rank: -1prompts: Nonebatch_sampler: batch_samplermulti_dataset_batch_sampler: proportionalrouter_mapping: {}learning_rate_mapping: {}
</details>
Training Logs
- The bold row denotes the saved checkpoint.
Training Time
- Training: 31.3 minutes
- Evaluation: 29.3 seconds
- Total: 31.8 minutes
Framework Versions
- Python: 3.12.4
- Sentence Transformers: 5.5.1
- Transformers: 5.11.0
- PyTorch: 2.5.1+cu121
- Accelerate: 1.13.0
- Datasets: 2.21.0
- Tokenizers: 0.22.2
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",
}<!--
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