ingeol / facets2_abl_num1_5

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Model's Last Updated: March 14 2024
sentence-similarity

Introduction of facets2_abl_num1_5

Model Details of facets2_abl_num1_5

ingeol/facets2_abl_num1_5

This is a sentence-transformers model: It maps sentences & paragraphs to a 768 dimensional dense vector space and can be used for tasks like clustering or semantic search.

Usage (Sentence-Transformers)

Using this model becomes easy when you have sentence-transformers installed:

pip install -U sentence-transformers

Then you can use the model like this:

from sentence_transformers import SentenceTransformer
sentences = ["This is an example sentence", "Each sentence is converted"]

model = SentenceTransformer('ingeol/facets2_abl_num1_5')
embeddings = model.encode(sentences)
print(embeddings)
Usage (HuggingFace Transformers)

Without sentence-transformers , you can use the model like this: First, you pass your input through the transformer model, then you have to apply the right pooling-operation on-top of the contextualized word embeddings.

from transformers import AutoTokenizer, AutoModel
import torch


#Mean Pooling - Take attention mask into account for correct averaging
def mean_pooling(model_output, attention_mask):
    token_embeddings = model_output[0] #First element of model_output contains all token embeddings
    input_mask_expanded = attention_mask.unsqueeze(-1).expand(token_embeddings.size()).float()
    return torch.sum(token_embeddings * input_mask_expanded, 1) / torch.clamp(input_mask_expanded.sum(1), min=1e-9)


# Sentences we want sentence embeddings for
sentences = ['This is an example sentence', 'Each sentence is converted']

# Load model from HuggingFace Hub
tokenizer = AutoTokenizer.from_pretrained('ingeol/facets2_abl_num1_5')
model = AutoModel.from_pretrained('ingeol/facets2_abl_num1_5')

# Tokenize sentences
encoded_input = tokenizer(sentences, padding=True, truncation=True, return_tensors='pt')

# Compute token embeddings
with torch.no_grad():
    model_output = model(**encoded_input)

# Perform pooling. In this case, mean pooling.
sentence_embeddings = mean_pooling(model_output, encoded_input['attention_mask'])

print("Sentence embeddings:")
print(sentence_embeddings)
Evaluation Results

For an automated evaluation of this model, see the Sentence Embeddings Benchmark : https://seb.sbert.net

Training

The model was trained with the parameters:

DataLoader :

torch.utils.data.dataloader.DataLoader of length 3899 with parameters:

{'batch_size': 64, 'sampler': 'torch.utils.data.sampler.RandomSampler', 'batch_sampler': 'torch.utils.data.sampler.BatchSampler'}

Loss :

beir.losses.bpr_loss.BPRLoss

Parameters of the fit()-Method:

{
    "epochs": 5,
    "evaluation_steps": 7000,
    "evaluator": "sentence_transformers.evaluation.SequentialEvaluator.SequentialEvaluator",
    "max_grad_norm": 1,
    "optimizer_class": "<class 'transformers.optimization.AdamW'>",
    "optimizer_params": {
        "correct_bias": false,
        "eps": 1e-06,
        "lr": 2e-05
    },
    "scheduler": "WarmupLinear",
    "steps_per_epoch": null,
    "warmup_steps": 1000,
    "weight_decay": 0.01
}
Full Model Architecture
SentenceTransformer(
  (0): Transformer({'max_seq_length': 128, 'do_lower_case': False}) with Transformer model: MPNetModel 
  (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})
)
Citing & Authors

Runs of ingeol facets2_abl_num1_5 on huggingface.co

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More Information About facets2_abl_num1_5 huggingface.co Model

facets2_abl_num1_5 huggingface.co

facets2_abl_num1_5 huggingface.co is an AI model on huggingface.co that provides facets2_abl_num1_5's model effect (), which can be used instantly with this ingeol facets2_abl_num1_5 model. huggingface.co supports a free trial of the facets2_abl_num1_5 model, and also provides paid use of the facets2_abl_num1_5. Support call facets2_abl_num1_5 model through api, including Node.js, Python, http.

facets2_abl_num1_5 huggingface.co Url

https://huggingface.co/ingeol/facets2_abl_num1_5

ingeol facets2_abl_num1_5 online free

facets2_abl_num1_5 huggingface.co is an online trial and call api platform, which integrates facets2_abl_num1_5's modeling effects, including api services, and provides a free online trial of facets2_abl_num1_5, you can try facets2_abl_num1_5 online for free by clicking the link below.

ingeol facets2_abl_num1_5 online free url in huggingface.co:

https://huggingface.co/ingeol/facets2_abl_num1_5

facets2_abl_num1_5 install

facets2_abl_num1_5 is an open source model from GitHub that offers a free installation service, and any user can find facets2_abl_num1_5 on GitHub to install. At the same time, huggingface.co provides the effect of facets2_abl_num1_5 install, users can directly use facets2_abl_num1_5 installed effect in huggingface.co for debugging and trial. It also supports api for free installation.

facets2_abl_num1_5 install url in huggingface.co:

https://huggingface.co/ingeol/facets2_abl_num1_5

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ingeol
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