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.gitattributes CHANGED
@@ -33,3 +33,4 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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  *.zip filter=lfs diff=lfs merge=lfs -text
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  *.zst filter=lfs diff=lfs merge=lfs -text
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  *tfevents* filter=lfs diff=lfs merge=lfs -text
 
 
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  *.zip filter=lfs diff=lfs merge=lfs -text
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  *.zst filter=lfs diff=lfs merge=lfs -text
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  *tfevents* filter=lfs diff=lfs merge=lfs -text
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+ tokenizer.json filter=lfs diff=lfs merge=lfs -text
1_Pooling/config.json ADDED
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+ {
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+ "word_embedding_dimension": 1024,
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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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+ "pooling_mode_weightedmean_tokens": false,
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+ "pooling_mode_lasttoken": false,
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+ "include_prompt": true
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+ }
README.md ADDED
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+ ---
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+ tags:
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+ - sentence-transformers
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+ - sentence-similarity
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+ - feature-extraction
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+ - generated_from_trainer
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+ - dataset_size:172562
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+ - loss:MultipleNegativesRankingLoss
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+ base_model: Qwen/Qwen3-0.6B-Base
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+ widget:
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+ - source_sentence: The current of a stream runs at the rate of 4 kmph. A boat goes
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+ 6 km and back to the starting point in 4 hours, then find the speed of the boat
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+ in still water?
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+ sentences:
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+ - )
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+ - a
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+ - '['
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+ - source_sentence: The stages in the life cycle of an organism are shown below. birth
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+ -> growth -> development -> reproduction -> death In which life cycle stage will
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+ a new organism be made?
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+ sentences:
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+ - ''''
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+ - g
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+ - '['
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+ - source_sentence: What captures carbon dioxide as it is emitted by a power plant
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+ before it enters the atmosphere?
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+ sentences:
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+ - '['
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+ - '['
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+ - x
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+ - source_sentence: as dryness increases in an environment, biodiversity
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+ sentences:
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+ - e
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+ - '1'
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+ - a
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+ - source_sentence: 'Fatal period in sulphuric acid poisoning is :'
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+ sentences:
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+ - ''''
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+ - '2'
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+ - a
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+ pipeline_tag: sentence-similarity
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+ library_name: sentence-transformers
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+ ---
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+
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+ # SentenceTransformer based on Qwen/Qwen3-0.6B-Base
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+
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+ This is a [sentence-transformers](https://www.SBERT.net) model finetuned from [Qwen/Qwen3-0.6B-Base](https://huggingface.co/Qwen/Qwen3-0.6B-Base). 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.
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+
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+ ## Model Details
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+
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+ ### Model Description
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+ - **Model Type:** Sentence Transformer
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+ - **Base model:** [Qwen/Qwen3-0.6B-Base](https://huggingface.co/Qwen/Qwen3-0.6B-Base) <!-- at revision 11214f7f3465775dcce23c3752ecea5a42ee0ddc -->
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+ - **Maximum Sequence Length:** 128 tokens
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+ - **Output Dimensionality:** 1024 dimensions
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+ - **Similarity Function:** Cosine Similarity
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+ <!-- - **Training Dataset:** Unknown -->
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+ <!-- - **Language:** Unknown -->
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+ <!-- - **License:** Unknown -->
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+
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+ ### Model Sources
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+
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+ - **Documentation:** [Sentence Transformers Documentation](https://sbert.net)
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+ - **Repository:** [Sentence Transformers on GitHub](https://github.com/UKPLab/sentence-transformers)
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+ - **Hugging Face:** [Sentence Transformers on Hugging Face](https://huggingface.co/models?library=sentence-transformers)
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+
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+ ### Full Model Architecture
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+
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+ ```
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+ SentenceTransformer(
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+ (0): Transformer({'max_seq_length': 128, 'do_lower_case': False}) with Transformer model: Qwen3Model
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+ (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})
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+ )
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+ ```
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+
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+ ## Usage
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+
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+ ### Direct Usage (Sentence Transformers)
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+
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+ First install the Sentence Transformers library:
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+
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+ ```bash
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+ pip install -U sentence-transformers
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+ ```
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+
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+ Then you can load this model and run inference.
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+ ```python
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+ from sentence_transformers import SentenceTransformer
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+
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+ # Download from the 🤗 Hub
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+ model = SentenceTransformer("sentence_transformers_model_id")
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+ # Run inference
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+ sentences = [
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+ 'Fatal period in sulphuric acid poisoning is :',
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+ '2',
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+ "'",
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+ ]
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+ embeddings = model.encode(sentences)
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+ print(embeddings.shape)
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+ # [3, 1024]
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+
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+ # Get the similarity scores for the embeddings
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+ similarities = model.similarity(embeddings, embeddings)
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+ print(similarities.shape)
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+ # [3, 3]
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+ ```
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+
108
+ <!--
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+ ### Direct Usage (Transformers)
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+
111
+ <details><summary>Click to see the direct usage in Transformers</summary>
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+
113
+ </details>
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+ -->
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+
116
+ <!--
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+ ### Downstream Usage (Sentence Transformers)
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+
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+ You can finetune this model on your own dataset.
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+
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+ <details><summary>Click to expand</summary>
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+
123
+ </details>
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+ -->
125
+
126
+ <!--
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+ ### Out-of-Scope Use
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+
129
+ *List how the model may foreseeably be misused and address what users ought not to do with the model.*
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+ -->
131
+
132
+ <!--
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+ ## Bias, Risks and Limitations
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+
135
+ *What are the known or foreseeable issues stemming from this model? You could also flag here known failure cases or weaknesses of the model.*
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+ -->
137
+
138
+ <!--
139
+ ### Recommendations
140
+
141
+ *What are recommendations with respect to the foreseeable issues? For example, filtering explicit content.*
142
+ -->
143
+
144
+ ## Training Details
145
+
146
+ ### Training Dataset
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+
148
+ #### Unnamed Dataset
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+
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+ * Size: 172,562 training samples
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+ * Columns: <code>sentence_0</code> and <code>sentence_1</code>
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+ * Approximate statistics based on the first 1000 samples:
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+ | | sentence_0 | sentence_1 |
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+ |:--------|:-----------------------------------------------------------------------------------|:--------------------------------------------------------------------------------|
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+ | type | string | string |
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+ | details | <ul><li>min: 2 tokens</li><li>mean: 25.41 tokens</li><li>max: 128 tokens</li></ul> | <ul><li>min: 0 tokens</li><li>mean: 0.99 tokens</li><li>max: 1 tokens</li></ul> |
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+ * Samples:
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+ | sentence_0 | sentence_1 |
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+ |:---------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|:---------------|
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+ | <code>What is the term for reproductive cells, such as sperm and egg?</code> | <code>'</code> |
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+ | <code>For how many hours can breast milk be stored in the refrigerator?</code> | <code>'</code> |
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+ | <code>Scurvy is a disease that sailors often got on long voyages. It was discovered that scurvy could be prevented by eating oranges and lemons. This suggests that scurvy is a disease caused by</code> | <code>'</code> |
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+ * Loss: [<code>MultipleNegativesRankingLoss</code>](https://sbert.net/docs/package_reference/sentence_transformer/losses.html#multiplenegativesrankingloss) with these parameters:
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+ ```json
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+ {
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+ "scale": 20.0,
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+ "similarity_fct": "cos_sim"
168
+ }
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+ ```
170
+
171
+ ### Training Hyperparameters
172
+ #### Non-Default Hyperparameters
173
+
174
+ - `per_device_train_batch_size`: 16
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+ - `per_device_eval_batch_size`: 16
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+ - `num_train_epochs`: 1
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+ - `fp16`: True
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+ - `multi_dataset_batch_sampler`: round_robin
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+
180
+ #### All Hyperparameters
181
+ <details><summary>Click to expand</summary>
182
+
183
+ - `overwrite_output_dir`: False
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+ - `do_predict`: False
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+ - `eval_strategy`: no
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+ - `prediction_loss_only`: True
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+ - `per_device_train_batch_size`: 16
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+ - `per_device_eval_batch_size`: 16
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+ - `per_gpu_train_batch_size`: None
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+ - `per_gpu_eval_batch_size`: None
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+ - `gradient_accumulation_steps`: 1
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+ - `eval_accumulation_steps`: None
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+ - `torch_empty_cache_steps`: None
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+ - `learning_rate`: 5e-05
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+ - `weight_decay`: 0.0
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+ - `adam_beta1`: 0.9
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+ - `adam_beta2`: 0.999
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+ - `adam_epsilon`: 1e-08
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+ - `max_grad_norm`: 1
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+ - `num_train_epochs`: 1
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+ - `max_steps`: -1
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+ - `lr_scheduler_type`: linear
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+ - `lr_scheduler_kwargs`: {}
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+ - `warmup_ratio`: 0.0
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+ - `warmup_steps`: 0
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+ - `log_level`: passive
207
+ - `log_level_replica`: warning
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+ - `log_on_each_node`: True
209
+ - `logging_nan_inf_filter`: True
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+ - `save_safetensors`: True
211
+ - `save_on_each_node`: False
212
+ - `save_only_model`: False
213
+ - `restore_callback_states_from_checkpoint`: False
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+ - `no_cuda`: False
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+ - `use_cpu`: False
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+ - `use_mps_device`: False
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+ - `seed`: 42
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+ - `data_seed`: None
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+ - `jit_mode_eval`: False
220
+ - `use_ipex`: False
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+ - `bf16`: False
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+ - `fp16`: True
223
+ - `fp16_opt_level`: O1
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+ - `half_precision_backend`: auto
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+ - `bf16_full_eval`: False
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+ - `fp16_full_eval`: False
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+ - `tf32`: None
228
+ - `local_rank`: 0
229
+ - `ddp_backend`: None
230
+ - `tpu_num_cores`: None
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+ - `tpu_metrics_debug`: False
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+ - `debug`: []
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+ - `dataloader_drop_last`: False
234
+ - `dataloader_num_workers`: 0
235
+ - `dataloader_prefetch_factor`: None
236
+ - `past_index`: -1
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+ - `disable_tqdm`: False
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+ - `remove_unused_columns`: True
239
+ - `label_names`: None
240
+ - `load_best_model_at_end`: False
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+ - `ignore_data_skip`: False
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+ - `fsdp`: []
243
+ - `fsdp_min_num_params`: 0
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+ - `fsdp_config`: {'min_num_params': 0, 'xla': False, 'xla_fsdp_v2': False, 'xla_fsdp_grad_ckpt': False}
245
+ - `fsdp_transformer_layer_cls_to_wrap`: None
246
+ - `accelerator_config`: {'split_batches': False, 'dispatch_batches': None, 'even_batches': True, 'use_seedable_sampler': True, 'non_blocking': False, 'gradient_accumulation_kwargs': None}
247
+ - `deepspeed`: None
248
+ - `label_smoothing_factor`: 0.0
249
+ - `optim`: adamw_torch
250
+ - `optim_args`: None
251
+ - `adafactor`: False
252
+ - `group_by_length`: False
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+ - `length_column_name`: length
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+ - `ddp_find_unused_parameters`: None
255
+ - `ddp_bucket_cap_mb`: None
256
+ - `ddp_broadcast_buffers`: False
257
+ - `dataloader_pin_memory`: True
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+ - `dataloader_persistent_workers`: False
259
+ - `skip_memory_metrics`: True
260
+ - `use_legacy_prediction_loop`: False
261
+ - `push_to_hub`: False
262
+ - `resume_from_checkpoint`: None
263
+ - `hub_model_id`: None
264
+ - `hub_strategy`: every_save
265
+ - `hub_private_repo`: None
266
+ - `hub_always_push`: False
267
+ - `gradient_checkpointing`: False
268
+ - `gradient_checkpointing_kwargs`: None
269
+ - `include_inputs_for_metrics`: False
270
+ - `include_for_metrics`: []
271
+ - `eval_do_concat_batches`: True
272
+ - `fp16_backend`: auto
273
+ - `push_to_hub_model_id`: None
274
+ - `push_to_hub_organization`: None
275
+ - `mp_parameters`:
276
+ - `auto_find_batch_size`: False
277
+ - `full_determinism`: False
278
+ - `torchdynamo`: None
279
+ - `ray_scope`: last
280
+ - `ddp_timeout`: 1800
281
+ - `torch_compile`: False
282
+ - `torch_compile_backend`: None
283
+ - `torch_compile_mode`: None
284
+ - `include_tokens_per_second`: False
285
+ - `include_num_input_tokens_seen`: False
286
+ - `neftune_noise_alpha`: None
287
+ - `optim_target_modules`: None
288
+ - `batch_eval_metrics`: False
289
+ - `eval_on_start`: False
290
+ - `use_liger_kernel`: False
291
+ - `eval_use_gather_object`: False
292
+ - `average_tokens_across_devices`: False
293
+ - `prompts`: None
294
+ - `batch_sampler`: batch_sampler
295
+ - `multi_dataset_batch_sampler`: round_robin
296
+
297
+ </details>
298
+
299
+ ### Training Logs
300
+ | Epoch | Step | Training Loss |
301
+ |:------:|:-----:|:-------------:|
302
+ | 0.0464 | 500 | 2.8446 |
303
+ | 0.0927 | 1000 | 0.4918 |
304
+ | 0.1391 | 1500 | 0.0 |
305
+ | 0.1854 | 2000 | 0.0 |
306
+ | 0.2318 | 2500 | 0.0 |
307
+ | 0.2781 | 3000 | 0.0 |
308
+ | 0.3245 | 3500 | 0.0 |
309
+ | 0.3709 | 4000 | 0.0 |
310
+ | 0.4172 | 4500 | 0.0 |
311
+ | 0.4636 | 5000 | 0.0 |
312
+ | 0.5099 | 5500 | 0.0 |
313
+ | 0.5563 | 6000 | 0.0 |
314
+ | 0.6026 | 6500 | 0.0 |
315
+ | 0.6490 | 7000 | 0.0 |
316
+ | 0.6953 | 7500 | 0.0 |
317
+ | 0.7417 | 8000 | 0.0 |
318
+ | 0.7881 | 8500 | 0.0 |
319
+ | 0.8344 | 9000 | 0.0 |
320
+ | 0.8808 | 9500 | 0.0 |
321
+ | 0.9271 | 10000 | 0.0 |
322
+ | 0.9735 | 10500 | 0.0 |
323
+
324
+
325
+ ### Framework Versions
326
+ - Python: 3.12.3
327
+ - Sentence Transformers: 4.1.0
328
+ - Transformers: 4.52.2
329
+ - PyTorch: 2.7.0+cu126
330
+ - Accelerate: 1.7.0
331
+ - Datasets: 3.6.0
332
+ - Tokenizers: 0.21.1
333
+
334
+ ## Citation
335
+
336
+ ### BibTeX
337
+
338
+ #### Sentence Transformers
339
+ ```bibtex
340
+ @inproceedings{reimers-2019-sentence-bert,
341
+ title = "Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks",
342
+ author = "Reimers, Nils and Gurevych, Iryna",
343
+ booktitle = "Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing",
344
+ month = "11",
345
+ year = "2019",
346
+ publisher = "Association for Computational Linguistics",
347
+ url = "https://arxiv.org/abs/1908.10084",
348
+ }
349
+ ```
350
+
351
+ #### MultipleNegativesRankingLoss
352
+ ```bibtex
353
+ @misc{henderson2017efficient,
354
+ title={Efficient Natural Language Response Suggestion for Smart Reply},
355
+ 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},
356
+ year={2017},
357
+ eprint={1705.00652},
358
+ archivePrefix={arXiv},
359
+ primaryClass={cs.CL}
360
+ }
361
+ ```
362
+
363
+ <!--
364
+ ## Glossary
365
+
366
+ *Clearly define terms in order to be accessible across audiences.*
367
+ -->
368
+
369
+ <!--
370
+ ## Model Card Authors
371
+
372
+ *Lists the people who create the model card, providing recognition and accountability for the detailed work that goes into its construction.*
373
+ -->
374
+
375
+ <!--
376
+ ## Model Card Contact
377
+
378
+ *Provides a way for people who have updates to the Model Card, suggestions, or questions, to contact the Model Card authors.*
379
+ -->
added_tokens.json ADDED
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1
+ {
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+ "</think>": 151668,
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+ "</tool_call>": 151658,
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+ "</tool_response>": 151666,
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+ "<think>": 151667,
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+ "<tool_call>": 151657,
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+ "<tool_response>": 151665,
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+ "<|box_end|>": 151649,
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+ "<|box_start|>": 151648,
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+ "<|endoftext|>": 151643,
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+ "<|file_sep|>": 151664,
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+ "<|fim_middle|>": 151660,
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+ "<|fim_pad|>": 151662,
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+ "<|fim_prefix|>": 151659,
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+ "<|fim_suffix|>": 151661,
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+ "<|im_end|>": 151645,
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+ "<|im_start|>": 151644,
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+ "<|image_pad|>": 151655,
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+ "<|object_ref_end|>": 151647,
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+ "<|object_ref_start|>": 151646,
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+ "<|quad_end|>": 151651,
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+ "<|quad_start|>": 151650,
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+ "<|repo_name|>": 151663,
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+ "<|video_pad|>": 151656,
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+ "<|vision_end|>": 151653,
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+ "<|vision_pad|>": 151654,
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+ "<|vision_start|>": 151652
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+ }
chat_template.jinja ADDED
@@ -0,0 +1,85 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ {%- if tools %}
2
+ {{- '<|im_start|>system\n' }}
3
+ {%- if messages[0].role == 'system' %}
4
+ {{- messages[0].content + '\n\n' }}
5
+ {%- endif %}
6
+ {{- "# Tools\n\nYou may call one or more functions to assist with the user query.\n\nYou are provided with function signatures within <tools></tools> XML tags:\n<tools>" }}
7
+ {%- for tool in tools %}
8
+ {{- "\n" }}
9
+ {{- tool | tojson }}
10
+ {%- endfor %}
11
+ {{- "\n</tools>\n\nFor each function call, return a json object with function name and arguments within <tool_call></tool_call> XML tags:\n<tool_call>\n{\"name\": <function-name>, \"arguments\": <args-json-object>}\n</tool_call><|im_end|>\n" }}
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+ {%- else %}
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+ {%- if messages[0].role == 'system' %}
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+ {{- '<|im_start|>system\n' + messages[0].content + '<|im_end|>\n' }}
15
+ {%- endif %}
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+ {%- endif %}
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+ {%- set ns = namespace(multi_step_tool=true, last_query_index=messages|length - 1) %}
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+ {%- for message in messages[::-1] %}
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+ {%- set index = (messages|length - 1) - loop.index0 %}
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+ {%- if ns.multi_step_tool and message.role == "user" and not(message.content.startswith('<tool_response>') and message.content.endswith('</tool_response>')) %}
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+ {%- set ns.multi_step_tool = false %}
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+ {%- set ns.last_query_index = index %}
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+ {%- endif %}
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+ {%- endfor %}
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+ {%- for message in messages %}
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+ {%- if (message.role == "user") or (message.role == "system" and not loop.first) %}
27
+ {{- '<|im_start|>' + message.role + '\n' + message.content + '<|im_end|>' + '\n' }}
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+ {%- elif message.role == "assistant" %}
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+ {%- set content = message.content %}
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+ {%- set reasoning_content = '' %}
31
+ {%- if message.reasoning_content is defined and message.reasoning_content is not none %}
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+ {%- set reasoning_content = message.reasoning_content %}
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+ {%- else %}
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+ {%- if '</think>' in message.content %}
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+ {%- set content = message.content.split('</think>')[-1].lstrip('\n') %}
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+ {%- set reasoning_content = message.content.split('</think>')[0].rstrip('\n').split('<think>')[-1].lstrip('\n') %}
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+ {%- endif %}
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+ {%- endif %}
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+ {%- if loop.index0 > ns.last_query_index %}
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+ {%- if loop.last or (not loop.last and reasoning_content) %}
41
+ {{- '<|im_start|>' + message.role + '\n<think>\n' + reasoning_content.strip('\n') + '\n</think>\n\n' + content.lstrip('\n') }}
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+ {%- else %}
43
+ {{- '<|im_start|>' + message.role + '\n' + content }}
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+ {%- endif %}
45
+ {%- else %}
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+ {{- '<|im_start|>' + message.role + '\n' + content }}
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