add model
Browse files- 1_Pooling/config.json +7 -0
- 2_Dense/config.json +1 -0
- 2_Dense/pytorch_model.bin +3 -0
- README.md +91 -0
- config.json +60 -0
- config_sentence_transformers.json +7 -0
- modules.json +26 -0
- pytorch_model.bin +3 -0
- sentence_bert_config.json +4 -0
- special_tokens_map.json +107 -0
- spiece.model +3 -0
- tokenizer.json +0 -0
- tokenizer_config.json +112 -0
    	
        1_Pooling/config.json
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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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            }
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        2_Dense/config.json
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            {"in_features": 768, "out_features": 768, "bias": false, "activation_function": "torch.nn.modules.linear.Identity"}
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        2_Dense/pytorch_model.bin
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            version https://git-lfs.github.com/spec/v1
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            oid sha256:ee221564f5ca7bb812c485c5921d7e7642c64abe02058cc55084426c7f441b38
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            size 2360171
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        README.md
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            ---
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            license: agpl-3.0
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            ---
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            ---
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            license: agpl-3.0
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            pipeline_tag: sentence-similarity
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            tags:
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            - sentence-transformers
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            - feature-extraction
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            - sentence-similarity
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            ---
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            # sentence-t5-base-nlpl-code_search_net
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            This is a [sentence-transformers](https://www.SBERT.net) model: It maps sentences & paragraphs to a 768 dimensional dense vector space and can be used for tasks like clustering or semantic search.
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            It has been trained on the with the [code_search_net](https://huggingface.co/datasets/code_search_net) dataset
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            <!--- Describe your model here -->
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            ## Usage (Sentence-Transformers)
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            Using this model becomes easy when you have [sentence-transformers](https://www.SBERT.net) installed:
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            ```
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            pip install -U sentence-transformers
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            ```
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            Then you can use the model like this:
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            ```python
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            from sentence_transformers import SentenceTransformer
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            sentences = ["This is an example sentence", "Each sentence is converted"]
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            model = SentenceTransformer('{MODEL_NAME}')
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            embeddings = model.encode(sentences)
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            print(embeddings)
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            ```
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            ## Evaluation Results
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            <!--- Describe how your model was evaluated -->
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            For an automated evaluation of this model, see the *Sentence Embeddings Benchmark*: [https://seb.sbert.net](https://seb.sbert.net?model_name={MODEL_NAME})
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            ## Training
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            The model was trained with the parameters:
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            **DataLoader**:
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            `torch.utils.data.dataloader.DataLoader` of length 58777 with parameters:
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            ```
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            {'batch_size': 32, 'sampler': 'torch.utils.data.sampler.RandomSampler', 'batch_sampler': 'torch.utils.data.sampler.BatchSampler'}
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            ```
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            **Loss**:
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            `sentence_transformers.losses.MultipleNegativesRankingLoss.MultipleNegativesRankingLoss` with parameters:
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              ```
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              {'scale': 20.0, 'similarity_fct': 'cos_sim'}
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              ```
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            Parameters of the fit()-Method:
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            ```
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            {
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                "epochs": 4,
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                "evaluation_steps": 0,
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                "evaluator": "NoneType",
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                "max_grad_norm": 1,
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                "optimizer_class": "<class 'torch.optim.adamw.AdamW'>",
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                "optimizer_params": {
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                    "lr": 2e-05
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                },
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                "scheduler": "WarmupLinear",
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                "steps_per_epoch": null,
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                "warmup_steps": 100,
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                "weight_decay": 0.01
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            }
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            ```
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            ## Full Model Architecture
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            ```
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            SentenceTransformer(
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              (0): Transformer({'max_seq_length': 256, 'do_lower_case': False}) with Transformer model: T5EncoderModel 
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              (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})
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              (2): Dense({'in_features': 768, 'out_features': 768, 'bias': False, 'activation_function': 'torch.nn.modules.linear.Identity'})
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              (3): Normalize()
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            )
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            ```
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            ## Citing & Authors
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            <!--- Describe where people can find more information -->
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        config.json
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            {
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              "_name_or_path": "/root/.cache/torch/sentence_transformers/sentence-transformers_sentence-t5-base/",
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              "architectures": [
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                "T5EncoderModel"
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              ],
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              "d_ff": 3072,
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              "d_kv": 64,
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              "d_model": 768,
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              "decoder_start_token_id": 0,
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              "dense_act_fn": "relu",
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              "dropout_rate": 0.1,
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              "eos_token_id": 1,
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              "feed_forward_proj": "relu",
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              "initializer_factor": 1.0,
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              "is_encoder_decoder": true,
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              "is_gated_act": false,
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              "layer_norm_epsilon": 1e-06,
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              "model_type": "t5",
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              "n_positions": 512,
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              "num_decoder_layers": 12,
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              "num_heads": 12,
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              "num_layers": 12,
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              "output_past": true,
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              "pad_token_id": 0,
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              "relative_attention_max_distance": 128,
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              "relative_attention_num_buckets": 32,
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              "task_specific_params": {
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                "summarization": {
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                  "early_stopping": true,
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                  "length_penalty": 2.0,
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                  "max_length": 200,
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                  "min_length": 30,
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                  "no_repeat_ngram_size": 3,
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                  "num_beams": 4,
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                  "prefix": "summarize: "
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                },
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                "translation_en_to_de": {
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                  "early_stopping": true,
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                  "max_length": 300,
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                  "num_beams": 4,
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                  "prefix": "translate English to German: "
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                },
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                "translation_en_to_fr": {
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                  "early_stopping": true,
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                  "max_length": 300,
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                  "num_beams": 4,
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                  "prefix": "translate English to French: "
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                },
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                "translation_en_to_ro": {
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                  "early_stopping": true,
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                  "max_length": 300,
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                  "num_beams": 4,
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                  "prefix": "translate English to Romanian: "
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                }
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              },
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              "torch_dtype": "float32",
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              "transformers_version": "4.24.0",
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              "use_cache": true,
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              "vocab_size": 32128
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            }
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        config_sentence_transformers.json
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            {
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              "__version__": {
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                "sentence_transformers": "2.2.0",
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                "transformers": "4.7.0",
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                "pytorch": "1.9.0+cu102"
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              }
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            }
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                "type": "sentence_transformers.models.Transformer"
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              },
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                "idx": 1,
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                "name": "1",
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                "path": "1_Pooling",
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                "type": "sentence_transformers.models.Pooling"
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              },
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                "idx": 2,
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                "path": "2_Dense",
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                "type": "sentence_transformers.models.Dense"
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              },
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              {
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                "idx": 3,
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                "name": "3",
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                "path": "3_Normalize",
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                "type": "sentence_transformers.models.Normalize"
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              }
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            ]
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            version https://git-lfs.github.com/spec/v1
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            oid sha256:e37673780641e2ccc4088d4f3b364a8d919a2568e3feb9207a4310c5bb3d78a1
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        sentence_bert_config.json
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              "max_seq_length": 256,
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              "do_lower_case": false
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            }
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              "additional_special_tokens": [
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