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        LICENSE
    ADDED
    
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| 1 | 
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            META LLAMA 3 COMMUNITY LICENSE AGREEMENT
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        README.md
    ADDED
    
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| 1 | 
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            ---
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            base_model: meta-llama/Meta-Llama-3-70B-Instruct
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            tags:
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            - llama-3
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            - llama
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            - Mixtral
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            - instruct
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            - finetune
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            - chatml
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            - DPO
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            - RLHF
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            - gpt4
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            - distillation
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            model-index:
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            - name: OpenBioLLM-70B
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              results: []
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            license: llama3
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            +
            language:
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| 19 | 
            +
            - en
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| 20 | 
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            widget:
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| 21 | 
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            - example_title: OpenBioLLM-70B 
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            +
              messages:
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            +
              - role: system
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            +
                content: >-
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                  You are an expert and experienced from the healthcare and biomedical domain with extensive medical knowledge and practical experience.
         | 
| 26 | 
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              - role: user
         | 
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                content: How long does it take for newborn jaundice to go away?
         | 
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              output:
         | 
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                text: >-
         | 
| 30 | 
            +
                  Newborn jaundice, also known as neonatal jaundice, is a common condition in newborns where the yellowing of the skin and eyes occurs due to an elevated level of bilirubin in the blood. Bilirubin is a yellow pigment that forms when red blood cells break down. In most cases, newborn jaundice resolves on its own without any specific treatment.
         | 
| 31 | 
            +
             | 
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            +
                  The duration of newborn jaundice can vary depending on several factors such as the underlying cause, gestational age at birth, and individual variations in bilirubin metabolism. Here are some general guidelines:
         | 
| 33 | 
            +
             | 
| 34 | 
            +
                  1. Physiological jaundice: This is the most common type of newborn jaundice and usually appears within 24-72 hours after birth. It tends to peak between the second and fifth day of life and gradually improves over the next week or two. By the time the baby is one week old, the jaundice should have mostly resolved.
         | 
| 35 | 
            +
                  2. Breast milk jaundice: This type of jaundice occurs in breastfed babies and may appear later than physiological jaundice, typically between the fifth and fourteenth day of life. It tends to persist for a longer duration but usually resolves within six weeks after birth.
         | 
| 36 | 
            +
                  3. Pathological jaundice: This type of jaundice is less common and occurs due to an underlying medical condition that affects bilirubin metabolism or liver function. The duration of pathological jaundice depends on the specific cause and may require treatment.
         | 
| 37 | 
            +
             | 
| 38 | 
            +
                  It's important for parents to monitor their newborn's jaundice closely and seek medical advice if the jaundice progresses rapidly, becomes severe, or is accompanied by other symptoms such as poor feeding, lethargy, or excessive sleepiness. In these cases, further evaluation and management may be necessary.
         | 
| 39 | 
            +
                  Remember that each baby is unique, and the timing of jaundice resolution can vary. If you have concerns about your newborn's jaundice, it's always best to consult with a healthcare professional for personalized advice and guidance.
         | 
| 40 | 
            +
            ---
         | 
| 41 | 
            +
             | 
| 42 | 
            +
             | 
| 43 | 
            +
            <div align="center">
         | 
| 44 | 
            +
            <img width="260px" src="https://cdn-uploads.huggingface.co/production/uploads/5f3fe13d79c1ba4c353d0c19/BrQCb95lmEIFz79QAmoNA.png"></div>
         | 
| 45 | 
            +
             | 
| 46 | 
            +
            
         | 
| 47 | 
            +
             | 
| 48 | 
            +
             | 
| 49 | 
            +
             | 
| 50 | 
            +
             | 
| 51 | 
            +
            <div align="center">
         | 
| 52 | 
            +
              
         | 
| 53 | 
            +
              <h1>Advancing Open-source Large Language Models in Medical Domain</h1>
         | 
| 54 | 
            +
            </div>
         | 
| 55 | 
            +
             | 
| 56 | 
            +
            <p align="center" style="margin-top: 0px;">
         | 
| 57 | 
            +
              <a href="https://colab.research.google.com/drive/1F5oV20InEYeAJGmBwYF9NM_QhLmjBkKJ?usp=sharing">
         | 
| 58 | 
            +
                <img src="https://colab.research.google.com/assets/colab-badge.svg" alt="OpenChat Logo" style="width:20px; vertical-align: middle; display: inline-block; margin-right: 5px; margin-left: 10px; margin-top: 0px; margin-bottom: 0px;"/>
         | 
| 59 | 
            +
                <span class="link-text" style=" margin-right: 5px;">Online Demo</span>
         | 
| 60 | 
            +
              </a> |
         | 
| 61 | 
            +
              <a href="https://github.com/openlifescience-ai">
         | 
| 62 | 
            +
                <img src="https://github.githubassets.com/assets/GitHub-Mark-ea2971cee799.png" alt="GitHub Logo" style="width:20px; vertical-align: middle; display: inline-block; margin-right: 5px; margin-left: 5px; margin-top: 0px; margin-bottom: 0px;"/>
         | 
| 63 | 
            +
                <span class="link-text" style=" margin-right: 5px;">GitHub</span>
         | 
| 64 | 
            +
              </a> |
         | 
| 65 | 
            +
              <a href="#">
         | 
| 66 | 
            +
                <img src="https://github.com/alpayariyak/openchat/blob/master/assets/arxiv-logomark-small-square-border.png?raw=true" alt="ArXiv Logo" style="width:20px; vertical-align: middle; display: inline-block; margin-right: 5px; margin-left: 5px; margin-top: 0px; margin-bottom: 0px;"/>
         | 
| 67 | 
            +
                <span class="link-text" style="margin-right: 5px;">Paper</span>
         | 
| 68 | 
            +
              </a> |
         | 
| 69 | 
            +
              <a href="https://discord.gg/A5Fjf5zC69">
         | 
| 70 | 
            +
                <img src="https://cloud.githubusercontent.com/assets/6291467/26705903/96c2d66e-477c-11e7-9f4e-f3c0efe96c9a.png" alt="Discord Logo" style="width:20px; vertical-align: middle; display: inline-block; margin-right: 5px; margin-left: 5px; margin-top: 0px; margin-bottom: 0px;"/>
         | 
| 71 | 
            +
                <span class="link-text">Discord</span>
         | 
| 72 | 
            +
              </a>
         | 
| 73 | 
            +
            </p>
         | 
| 74 | 
            +
             | 
| 75 | 
            +
            
         | 
| 76 | 
            +
             | 
| 77 | 
            +
            Introducing OpenBioLLM-70B: A State-of-the-Art Open Source Biomedical Large Language Model
         | 
| 78 | 
            +
             | 
| 79 | 
            +
             | 
| 80 | 
            +
            OpenBioLLM-70B is an advanced open source language model designed specifically for the biomedical domain. Developed by Saama AI Labs, this model leverages cutting-edge techniques to achieve state-of-the-art performance on a wide range of biomedical tasks.
         | 
| 81 | 
            +
             | 
| 82 | 
            +
            🏥 **Biomedical Specialization**: OpenBioLLM-70B is tailored for the unique language and knowledge requirements of the medical and life sciences fields. It was fine-tuned on a vast corpus of high-quality biomedical data, enabling it to understand and generate text with domain-specific accuracy and fluency.
         | 
| 83 | 
            +
             | 
| 84 | 
            +
            🎓 **Superior Performance**: With 70 billion parameters, OpenBioLLM-70B outperforms other open source biomedical language models of similar scale. It has also demonstrated better results compared to larger proprietary & open-source models like GPT-4,  Gemini, Meditron-70B, Med-PaLM-1 & Med-PaLM-2 on biomedical benchmarks.
         | 
| 85 | 
            +
             | 
| 86 | 
            +
            🧠 **Advanced Training Techniques**: OpenBioLLM-70B builds upon the powerful foundations of the **Meta-Llama-3-70B-Instruct** and [Meta-Llama-3-70B-Instruct](meta-llama/Meta-Llama-3-70B-Instruct) models. It incorporates the DPO dataset and fine-tuning recipe along with a custom diverse medical instruction dataset. Key components of the training pipeline include:
         | 
| 87 | 
            +
             | 
| 88 | 
            +
            <div align="center">
         | 
| 89 | 
            +
            <img width="1200px" src="https://cdn-uploads.huggingface.co/production/uploads/5f3fe13d79c1ba4c353d0c19/oPchsJsEpQoGcGXVbh7YS.png">
         | 
| 90 | 
            +
            </div>
         | 
| 91 | 
            +
             | 
| 92 | 
            +
             | 
| 93 | 
            +
            - **Policy Optimization**: [Direct Preference Optimization: Your Language Model is Secretly a Reward Model (DPO)](https://arxiv.org/abs/2305.18290)
         | 
| 94 | 
            +
            - **Fine-tuning dataset**: Custom Medical Instruct dataset (We plan to release a sample training dataset in our upcoming paper; please stay updated)
         | 
| 95 | 
            +
             | 
| 96 | 
            +
            This combination of cutting-edge techniques enables OpenBioLLM-70B to align with key capabilities and preferences for biomedical applications.
         | 
| 97 | 
            +
             | 
| 98 | 
            +
            ⚙️ **Release Details**:
         | 
| 99 | 
            +
             | 
| 100 | 
            +
            - **Model Size**: 70 billion parameters
         | 
| 101 | 
            +
            - **Quantization**: Optimized quantized versions available [Here](https://huggingface.co/aaditya/OpenBioLLM-70B-GGUF)
         | 
| 102 | 
            +
            - **Language(s) (NLP):** en
         | 
| 103 | 
            +
            - **Developed By**: [Ankit Pal (Aaditya Ura)](https://aadityaura.github.io/) from Saama AI Labs 
         | 
| 104 | 
            +
            - **License:** Meta-Llama License 
         | 
| 105 | 
            +
            - **Fine-tuned from models:** [Meta-Llama-3-70B-Instruct](meta-llama/Meta-Llama-3-70B-Instruct)
         | 
| 106 | 
            +
            - **Resources for more information:**
         | 
| 107 | 
            +
                - Paper: Coming soon
         | 
| 108 | 
            +
             | 
| 109 | 
            +
            The model can be fine-tuned for more specialized tasks and datasets as needed.
         | 
| 110 | 
            +
             | 
| 111 | 
            +
            OpenBioLLM-70B represents an important step forward in democratizing advanced language AI for the biomedical community. By leveraging state-of-the-art architectures and training techniques from leading open source efforts like Llama-3, we have created a powerful tool to accelerate innovation and discovery in healthcare and the life sciences.
         | 
| 112 | 
            +
             | 
| 113 | 
            +
            We are excited to share OpenBioLLM-70B with researchers and developers around the world.
         | 
| 114 | 
            +
             | 
| 115 | 
            +
             | 
| 116 | 
            +
            ### Use with transformers
         | 
| 117 | 
            +
             | 
| 118 | 
            +
            **Important: Please use the exact chat template provided by Llama-3 instruct version. Otherwise there will be a degradation in the performance. The model output can be verbose in rare cases. Please consider setting temperature = 0 to make this happen less.**
         | 
| 119 | 
            +
             | 
| 120 | 
            +
            See the snippet below for usage with Transformers:
         | 
| 121 | 
            +
             | 
| 122 | 
            +
            ```python
         | 
| 123 | 
            +
            import transformers
         | 
| 124 | 
            +
            import torch
         | 
| 125 | 
            +
             | 
| 126 | 
            +
            model_id = "aaditya/OpenBioLLM-Llama3-70B"
         | 
| 127 | 
            +
             | 
| 128 | 
            +
            pipeline = transformers.pipeline(
         | 
| 129 | 
            +
                "text-generation",
         | 
| 130 | 
            +
                model=model_id,
         | 
| 131 | 
            +
                model_kwargs={"torch_dtype": torch.bfloat16},
         | 
| 132 | 
            +
                device="auto",
         | 
| 133 | 
            +
            )
         | 
| 134 | 
            +
             | 
| 135 | 
            +
            messages = [
         | 
| 136 | 
            +
                {"role": "system", "content": "You are an expert and experienced from the healthcare and biomedical domain with extensive medical knowledge and practical experience. Your name is OpenBioLLM, and you were developed by Saama AI Labs. who's willing to help answer the user's query with explanation. In your explanation, leverage your deep medical expertise such as relevant anatomical structures, physiological processes, diagnostic criteria, treatment guidelines, or other pertinent medical concepts. Use precise medical terminology while still aiming to make the explanation clear and accessible to a general audience."},
         | 
| 137 | 
            +
                {"role": "user", "content": "How can i split a 3mg or 4mg waefin pill so i can get a 2.5mg pill?"},
         | 
| 138 | 
            +
            ]
         | 
| 139 | 
            +
             | 
| 140 | 
            +
            prompt = pipeline.tokenizer.apply_chat_template(
         | 
| 141 | 
            +
            		messages, 
         | 
| 142 | 
            +
            		tokenize=False, 
         | 
| 143 | 
            +
            		add_generation_prompt=True
         | 
| 144 | 
            +
            )
         | 
| 145 | 
            +
             | 
| 146 | 
            +
            terminators = [
         | 
| 147 | 
            +
                pipeline.tokenizer.eos_token_id,
         | 
| 148 | 
            +
                pipeline.tokenizer.convert_tokens_to_ids("<|eot_id|>")
         | 
| 149 | 
            +
            ]
         | 
| 150 | 
            +
             | 
| 151 | 
            +
            outputs = pipeline(
         | 
| 152 | 
            +
                prompt,
         | 
| 153 | 
            +
                max_new_tokens=256,
         | 
| 154 | 
            +
                eos_token_id=terminators,
         | 
| 155 | 
            +
                do_sample=True,
         | 
| 156 | 
            +
                temperature=0.0,
         | 
| 157 | 
            +
                top_p=0.9,
         | 
| 158 | 
            +
            )
         | 
| 159 | 
            +
            print(outputs[0]["generated_text"][len(prompt):])
         | 
| 160 | 
            +
            ```
         | 
| 161 | 
            +
             | 
| 162 | 
            +
            ## **Training procedure**
         | 
| 163 | 
            +
             | 
| 164 | 
            +
            ### **Training hyperparameters**
         | 
| 165 | 
            +
             | 
| 166 | 
            +
            <details>
         | 
| 167 | 
            +
              <summary>Click to see details</summary>
         | 
| 168 | 
            +
             | 
| 169 | 
            +
            - learning_rate: 0.0002
         | 
| 170 | 
            +
            - lr_scheduler: cosine
         | 
| 171 | 
            +
            - train_batch_size: 12
         | 
| 172 | 
            +
            - eval_batch_size: 8
         | 
| 173 | 
            +
            - GPU: H100 80GB SXM5
         | 
| 174 | 
            +
            - num_devices: 8
         | 
| 175 | 
            +
            - optimizer: adamw_bnb_8bit
         | 
| 176 | 
            +
            - lr_scheduler_warmup_steps: 100
         | 
| 177 | 
            +
            - num_epochs: 4
         | 
| 178 | 
            +
            </details>
         | 
| 179 | 
            +
             | 
| 180 | 
            +
              
         | 
| 181 | 
            +
            ### **Peft hyperparameters**
         | 
| 182 | 
            +
             | 
| 183 | 
            +
            <details>
         | 
| 184 | 
            +
              <summary>Click to see details</summary>
         | 
| 185 | 
            +
             | 
| 186 | 
            +
            - adapter: qlora
         | 
| 187 | 
            +
            - lora_r: 128
         | 
| 188 | 
            +
            - lora_alpha: 256
         | 
| 189 | 
            +
            - lora_dropout: 0.05
         | 
| 190 | 
            +
            - lora_target_linear: true
         | 
| 191 | 
            +
              
         | 
| 192 | 
            +
            -lora_target_modules:
         | 
| 193 | 
            +
              - q_proj
         | 
| 194 | 
            +
              - v_proj
         | 
| 195 | 
            +
              - k_proj
         | 
| 196 | 
            +
              - o_proj
         | 
| 197 | 
            +
              - gate_proj
         | 
| 198 | 
            +
              - down_proj
         | 
| 199 | 
            +
              - up_proj
         | 
| 200 | 
            +
            </details>
         | 
| 201 | 
            +
             | 
| 202 | 
            +
             | 
| 203 | 
            +
             | 
| 204 | 
            +
            ### **Training results**
         | 
| 205 | 
            +
             | 
| 206 | 
            +
            ### **Framework versions**
         | 
| 207 | 
            +
             | 
| 208 | 
            +
            - Transformers 4.39.3
         | 
| 209 | 
            +
            - Pytorch 2.1.2+cu121
         | 
| 210 | 
            +
            - Datasets 2.18.0
         | 
| 211 | 
            +
            - Tokenizers 0.15.1
         | 
| 212 | 
            +
            - Axolotl
         | 
| 213 | 
            +
            - Lm harness for evaluation
         | 
| 214 | 
            +
             | 
| 215 | 
            +
             | 
| 216 | 
            +
            # Benchmark Results
         | 
| 217 | 
            +
             | 
| 218 | 
            +
            🔥 OpenBioLLM-70B demonstrates superior performance compared to larger models, such as GPT-4,  Gemini, Meditron-70B, Med-PaLM-1 & Med-PaLM-2 across 9 diverse biomedical datasets, achieving state-of-the-art results with an average score of 86.06%, despite having a significantly smaller parameter count. The model's strong performance in domain-specific tasks, such as Clinical KG, Medical Genetics, and PubMedQA, highlights its ability to effectively capture and apply biomedical knowledge.
         | 
| 219 | 
            +
             | 
| 220 | 
            +
            🚨 The GPT-4, Med-PaLM-1, and Med-PaLM-2 results are taken from their official papers. Since Med-PaLM doesn't provide zero-shot accuracy, we are using 5-shot accuracy from their paper for comparison. All results presented are in the zero-shot setting, except for Med-PaLM-2 and Med-PaLM-1, which use 5-shot accuracy.
         | 
| 221 | 
            +
             | 
| 222 | 
            +
            |                    | Clinical KG | Medical Genetics | Anatomy | Pro Medicine | College Biology | College Medicine | MedQA 4 opts | PubMedQA | MedMCQA | Avg   |
         | 
| 223 | 
            +
            |--------------------|-------------|------------------|---------|--------------|-----------------|------------------|--------------|----------|---------|-------|
         | 
| 224 | 
            +
            | **OpenBioLLM-70B** | **92.93**       | **93.197**           | **83.904**  | 93.75       | 93.827          | **85.749**           | 78.162       | 78.97    | **74.014**  | **86.05588** |
         | 
| 225 | 
            +
            | Med-PaLM-2 (5-shot)            | 88.3        | 90               | 77.8    | **95.2**         | 94.4            | 80.9             | **79.7**         | **79.2**     | 71.3    | 84.08 |
         | 
| 226 | 
            +
            | **GPT-4**              | 86.04       | 91               | 80      | 93.01        | **95.14**           | 76.88            | 78.87        | 75.2     | 69.52   | 82.85 |
         | 
| 227 | 
            +
            | Med-PaLM-1 (Flan-PaLM, 5-shot) | 80.4        | 75               | 63.7    | 83.8         | 88.9            | 76.3             | 67.6         | 79       | 57.6    | 74.7  |
         | 
| 228 | 
            +
            | **OpenBioLLM-8B**    | 76.101      | 86.1               | 69.829  | 78.21        | 84.213         | 68.042           | 58.993       | 74.12     | 56.913  | 72.502 |
         | 
| 229 | 
            +
            | Gemini-1.0             | 76.7        | 75.8             | 66.7    | 77.7         | 88              | 69.2             | 58          | 70.7     | 54.3    | 70.79 |
         | 
| 230 | 
            +
            | GPT-3.5 Turbo 1106     | 74.71       | 74               | 72.79   | 72.79        | 72.91           | 64.73            | 57.71        | 72.66    | 53.79   | 66    |
         | 
| 231 | 
            +
            | Meditron-70B           | 66.79       | 69               | 53.33   | 71.69        | 76.38           | 63               | 57.1         | 76.6     | 46.85   | 64.52 |
         | 
| 232 | 
            +
            | gemma-7b               | 69.81       | 70               | 59.26   | 66.18        | 79.86           | 60.12            | 47.21        | 76.2     | 48.96   | 64.18 |
         | 
| 233 | 
            +
            | Mistral-7B-v0.1        | 68.68       | 71               | 55.56   | 68.38        | 68.06           | 59.54            | 50.82        | 75.4     | 48.2    | 62.85 |
         | 
| 234 | 
            +
            | Apollo-7B              | 62.26       | 72               | 61.48   | 69.12        | 70.83           | 55.49            | 55.22        | 39.8     | 53.77   | 60    |
         | 
| 235 | 
            +
            | MedAlpaca-7b           | 57.36       | 69               | 57.04   | 67.28        | 65.28           | 54.34            | 41.71        | 72.8     | 37.51   | 58.03 |
         | 
| 236 | 
            +
            | BioMistral-7B          | 59.9        | 64               | 56.5    | 60.4         | 59              | 54.7             | 50.6         | 77.5     | 48.1    | 57.3  |
         | 
| 237 | 
            +
            | AlpaCare-llama2-7b     | 49.81       | 49               | 45.92   | 33.82        | 50              | 43.35            | 29.77        | 72.2     | 34.42   | 45.36 |
         | 
| 238 | 
            +
            | ClinicalGPT            | 30.56       | 27               | 30.37   | 19.48        | 25              | 24.27            | 26.08        | 63.8     | 28.18   | 30.52 |
         | 
| 239 | 
            +
             | 
| 240 | 
            +
            <div align="center">
         | 
| 241 | 
            +
            <img width="1600px" src="https://cdn-uploads.huggingface.co/production/uploads/5f3fe13d79c1ba4c353d0c19/_SzdcJSBjZyo8RS1bTEkP.png">
         | 
| 242 | 
            +
            </div>
         | 
| 243 | 
            +
             | 
| 244 | 
            +
            ## Detailed Medical Subjectwise accuracy
         | 
| 245 | 
            +
             | 
| 246 | 
            +
             | 
| 247 | 
            +
            
         | 
| 248 | 
            +
             | 
| 249 | 
            +
            # Use Cases & Examples
         | 
| 250 | 
            +
             | 
| 251 | 
            +
            🚨 **Below results are from the quantized version of OpenBioLLM-70B
         | 
| 252 | 
            +
             | 
| 253 | 
            +
             | 
| 254 | 
            +
            # Summarize Clinical Notes
         | 
| 255 | 
            +
             | 
| 256 | 
            +
            OpenBioLLM-70B can efficiently analyze and summarize complex clinical notes, EHR data, and discharge summaries, extracting key information and generating concise, structured summaries
         | 
| 257 | 
            +
             | 
| 258 | 
            +
             | 
| 259 | 
            +
            
         | 
| 260 | 
            +
             | 
| 261 | 
            +
            # Answer Medical Questions
         | 
| 262 | 
            +
             | 
| 263 | 
            +
            OpenBioLLM-70B can provide answers to a wide range of medical questions.
         | 
| 264 | 
            +
             | 
| 265 | 
            +
             | 
| 266 | 
            +
            
         | 
| 267 | 
            +
            
         | 
| 268 | 
            +
             | 
| 269 | 
            +
            <details>
         | 
| 270 | 
            +
              <summary>Click to see details</summary>
         | 
| 271 | 
            +
             | 
| 272 | 
            +
             | 
| 273 | 
            +
            
         | 
| 274 | 
            +
            
         | 
| 275 | 
            +
            
         | 
| 276 | 
            +
             | 
| 277 | 
            +
            </details>
         | 
| 278 | 
            +
             | 
| 279 | 
            +
            # Clinical Entity Recognition
         | 
| 280 | 
            +
             | 
| 281 | 
            +
            OpenBioLLM-70B can perform advanced clinical entity recognition by identifying and extracting key medical concepts, such as diseases, symptoms, medications, procedures, and anatomical structures, from unstructured clinical text. By leveraging its deep understanding of medical terminology and context, the model can accurately annotate and categorize clinical entities, enabling more efficient information retrieval, data analysis, and knowledge discovery from electronic health records, research articles, and other biomedical text sources. This capability can support various downstream applications, such as clinical decision support, pharmacovigilance, and medical research.
         | 
| 282 | 
            +
             | 
| 283 | 
            +
             | 
| 284 | 
            +
            
         | 
| 285 | 
            +
            
         | 
| 286 | 
            +
            
         | 
| 287 | 
            +
             | 
| 288 | 
            +
            # Biomarkers Extraction
         | 
| 289 | 
            +
             | 
| 290 | 
            +
             | 
| 291 | 
            +
            
         | 
| 292 | 
            +
             | 
| 293 | 
            +
             | 
| 294 | 
            +
            # Classification
         | 
| 295 | 
            +
             | 
| 296 | 
            +
            OpenBioLLM-70B can perform various biomedical classification tasks, such as disease prediction, sentiment analysis, medical document categorization
         | 
| 297 | 
            +
             | 
| 298 | 
            +
            
         | 
| 299 | 
            +
             | 
| 300 | 
            +
            # De-Identification
         | 
| 301 | 
            +
             | 
| 302 | 
            +
            OpenBioLLM-70B can detect and remove personally identifiable information (PII) from medical records, ensuring patient privacy and compliance with data protection regulations like HIPAA.
         | 
| 303 | 
            +
             | 
| 304 | 
            +
            
         | 
| 305 | 
            +
             | 
| 306 | 
            +
             | 
| 307 | 
            +
             | 
| 308 | 
            +
            **Advisory Notice!** 
         | 
| 309 | 
            +
             | 
| 310 | 
            +
            While OpenBioLLM-70B leverages high-quality data sources, its outputs may still contain inaccuracies, biases, or misalignments that could pose risks if relied upon for medical decision-making without further testing and refinement. The model's performance has not yet been rigorously evaluated in randomized controlled trials or real-world healthcare environments.
         | 
| 311 | 
            +
             | 
| 312 | 
            +
            Therefore, we strongly advise against using OpenBioLLM-70B for any direct patient care, clinical decision support, or other professional medical purposes at this time. Its use should be limited to research, development, and exploratory applications by qualified individuals who understand its limitations.
         | 
| 313 | 
            +
            OpenBioLLM-70B is intended solely as a research tool to assist healthcare professionals and should never be considered a replacement for the professional judgment and expertise of a qualified medical doctor.
         | 
| 314 | 
            +
             | 
| 315 | 
            +
            Appropriately adapting and validating OpenBioLLM-70B for specific medical use cases would require significant additional work, potentially including:
         | 
| 316 | 
            +
             | 
| 317 | 
            +
            - Thorough testing and evaluation in relevant clinical scenarios
         | 
| 318 | 
            +
            - Alignment with evidence-based guidelines and best practices
         | 
| 319 | 
            +
            - Mitigation of potential biases and failure modes
         | 
| 320 | 
            +
            - Integration with human oversight and interpretation
         | 
| 321 | 
            +
            - Compliance with regulatory and ethical standards
         | 
| 322 | 
            +
             | 
| 323 | 
            +
            Always consult a qualified healthcare provider for personal medical needs.
         | 
| 324 | 
            +
             | 
| 325 | 
            +
             | 
| 326 | 
            +
             | 
| 327 | 
            +
            # Citation
         | 
| 328 | 
            +
             | 
| 329 | 
            +
            If you find OpenBioLLM-70B & 8B useful in your work, please cite the model as follows:
         | 
| 330 | 
            +
             | 
| 331 | 
            +
            ```
         | 
| 332 | 
            +
            @misc{OpenBioLLMs,
         | 
| 333 | 
            +
              author = {Ankit Pal, Malaikannan Sankarasubbu},
         | 
| 334 | 
            +
              title = {OpenBioLLMs: Advancing Open-Source Large Language Models for Healthcare and Life Sciences},
         | 
| 335 | 
            +
              year = {2024},
         | 
| 336 | 
            +
              publisher = {Hugging Face},
         | 
| 337 | 
            +
              journal = {Hugging Face repository},
         | 
| 338 | 
            +
              howpublished = {\url{https://huggingface.co/aaditya/OpenBioLLM-Llama3-70B}}
         | 
| 339 | 
            +
            }
         | 
| 340 | 
            +
            ```
         | 
| 341 | 
            +
             | 
| 342 | 
            +
            The accompanying paper is currently in progress and will be released soon.
         | 
| 343 | 
            +
             | 
| 344 | 
            +
            <div align="center">
         | 
| 345 | 
            +
            <h2> 💌 Contact </h2>
         | 
| 346 | 
            +
            </div>
         | 
| 347 | 
            +
             | 
| 348 | 
            +
            We look forward to hearing you and collaborating on this exciting project!
         | 
| 349 | 
            +
             | 
| 350 | 
            +
            **Contributors:**
         | 
| 351 | 
            +
            - [Ankit Pal (Aaditya Ura)](https://aadityaura.github.io/) [aadityaura at gmail dot com]
         | 
| 352 | 
            +
            - Saama AI Labs
         | 
| 353 | 
            +
            - Note: I am looking for a funded PhD opportunity, especially if it fits my Responsible Generative AI, Multimodal LLMs, Geometric Deep Learning, and Healthcare AI skillset.
         | 
| 354 | 
            +
             | 
| 355 | 
            +
             | 
| 356 | 
            +
            # References
         | 
| 357 | 
            +
             | 
| 358 | 
            +
            We thank the [Meta Team](meta-llama/Meta-Llama-3-70B-Instruct) for their amazing models!
         | 
| 359 | 
            +
             | 
| 360 | 
            +
             | 
| 361 | 
            +
            Result sources
         | 
| 362 | 
            +
             | 
| 363 | 
            +
            - [1] GPT-4 [Capabilities of GPT-4 on Medical Challenge Problems] (https://arxiv.org/abs/2303.13375) 
         | 
| 364 | 
            +
            - [2] Med-PaLM-1 [Large Language Models Encode Clinical Knowledge](https://arxiv.org/abs/2212.13138)
         | 
| 365 | 
            +
            - [3] Med-PaLM-2 [Towards Expert-Level Medical Question Answering with Large Language Models](https://arxiv.org/abs/2305.09617)
         | 
| 366 | 
            +
            - [4] Gemini-1.0 [Gemini Goes to Med School](https://arxiv.org/abs/2402.07023)
         | 
    	
        config.json
    ADDED
    
    | @@ -0,0 +1,39 @@ | |
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         | 
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         | 
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         | 
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         | 
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                "torch_dtype": "bfloat16",
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         | 
| 28 | 
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                "quantization_config": {
         | 
| 29 | 
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                    "quant_method": "exl2",
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| 30 | 
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                    "version": "0.0.19",
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                    "bits": 6.0,
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                        "rows": 100,
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| 35 | 
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                        "length": 2048,
         | 
| 36 | 
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                        "dataset": "(default)"
         | 
| 37 | 
            +
                    }
         | 
| 38 | 
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                }
         | 
| 39 | 
            +
            }
         | 
    	
        generation_config.json
    ADDED
    
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         | 
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         | 
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         | 
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         | 
| 729 | 
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         | 
| 730 | 
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         | 
    	
        special_tokens_map.json
    ADDED
    
    | @@ -0,0 +1,23 @@ | |
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| 1 | 
            +
            {
         | 
| 2 | 
            +
              "bos_token": {
         | 
| 3 | 
            +
                "content": "<|begin_of_text|>",
         | 
| 4 | 
            +
                "lstrip": false,
         | 
| 5 | 
            +
                "normalized": false,
         | 
| 6 | 
            +
                "rstrip": false,
         | 
| 7 | 
            +
                "single_word": false
         | 
| 8 | 
            +
              },
         | 
| 9 | 
            +
              "eos_token": {
         | 
| 10 | 
            +
                "content": "<|end_of_text|>",
         | 
| 11 | 
            +
                "lstrip": false,
         | 
| 12 | 
            +
                "normalized": false,
         | 
| 13 | 
            +
                "rstrip": false,
         | 
| 14 | 
            +
                "single_word": false
         | 
| 15 | 
            +
              },
         | 
| 16 | 
            +
              "pad_token": {
         | 
| 17 | 
            +
                "content": "<|end_of_text|>",
         | 
| 18 | 
            +
                "lstrip": false,
         | 
| 19 | 
            +
                "normalized": false,
         | 
| 20 | 
            +
                "rstrip": false,
         | 
| 21 | 
            +
                "single_word": false
         | 
| 22 | 
            +
              }
         | 
| 23 | 
            +
            }
         | 
    	
        tokenizer.json
    ADDED
    
    | The diff for this file is too large to render. 
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        tokenizer_config.json
    ADDED
    
    | @@ -0,0 +1,2063 @@ | |
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| 1 | 
            +
            {
         | 
| 2 | 
            +
              "added_tokens_decoder": {
         | 
| 3 | 
            +
                "128000": {
         | 
| 4 | 
            +
                  "content": "<|begin_of_text|>",
         | 
| 5 | 
            +
                  "lstrip": false,
         | 
| 6 | 
            +
                  "normalized": false,
         | 
| 7 | 
            +
                  "rstrip": false,
         | 
| 8 | 
            +
                  "single_word": false,
         | 
| 9 | 
            +
                  "special": true
         | 
| 10 | 
            +
                },
         | 
| 11 | 
            +
                "128001": {
         | 
| 12 | 
            +
                  "content": "<|end_of_text|>",
         | 
| 13 | 
            +
                  "lstrip": false,
         | 
| 14 | 
            +
                  "normalized": false,
         | 
| 15 | 
            +
                  "rstrip": false,
         | 
| 16 | 
            +
                  "single_word": false,
         | 
| 17 | 
            +
                  "special": true
         | 
| 18 | 
            +
                },
         | 
| 19 | 
            +
                "128002": {
         | 
| 20 | 
            +
                  "content": "<|reserved_special_token_0|>",
         | 
| 21 | 
            +
                  "lstrip": false,
         | 
| 22 | 
            +
                  "normalized": false,
         | 
| 23 | 
            +
                  "rstrip": false,
         | 
| 24 | 
            +
                  "single_word": false,
         | 
| 25 | 
            +
                  "special": true
         | 
| 26 | 
            +
                },
         | 
| 27 | 
            +
                "128003": {
         | 
| 28 | 
            +
                  "content": "<|reserved_special_token_1|>",
         | 
| 29 | 
            +
                  "lstrip": false,
         | 
| 30 | 
            +
                  "normalized": false,
         | 
| 31 | 
            +
                  "rstrip": false,
         | 
| 32 | 
            +
                  "single_word": false,
         | 
| 33 | 
            +
                  "special": true
         | 
| 34 | 
            +
                },
         | 
| 35 | 
            +
                "128004": {
         | 
| 36 | 
            +
                  "content": "<|reserved_special_token_2|>",
         | 
| 37 | 
            +
                  "lstrip": false,
         | 
| 38 | 
            +
                  "normalized": false,
         | 
| 39 | 
            +
                  "rstrip": false,
         | 
| 40 | 
            +
                  "single_word": false,
         | 
| 41 | 
            +
                  "special": true
         | 
| 42 | 
            +
                },
         | 
| 43 | 
            +
                "128005": {
         | 
| 44 | 
            +
                  "content": "<|reserved_special_token_3|>",
         | 
| 45 | 
            +
                  "lstrip": false,
         | 
| 46 | 
            +
                  "normalized": false,
         | 
| 47 | 
            +
                  "rstrip": false,
         | 
| 48 | 
            +
                  "single_word": false,
         | 
| 49 | 
            +
                  "special": true
         | 
| 50 | 
            +
                },
         | 
| 51 | 
            +
                "128006": {
         | 
| 52 | 
            +
                  "content": "<|start_header_id|>",
         | 
| 53 | 
            +
                  "lstrip": false,
         | 
| 54 | 
            +
                  "normalized": false,
         | 
| 55 | 
            +
                  "rstrip": false,
         | 
| 56 | 
            +
                  "single_word": false,
         | 
| 57 | 
            +
                  "special": true
         | 
| 58 | 
            +
                },
         | 
| 59 | 
            +
                "128007": {
         | 
| 60 | 
            +
                  "content": "<|end_header_id|>",
         | 
| 61 | 
            +
                  "lstrip": false,
         | 
| 62 | 
            +
                  "normalized": false,
         | 
| 63 | 
            +
                  "rstrip": false,
         | 
| 64 | 
            +
                  "single_word": false,
         | 
| 65 | 
            +
                  "special": true
         | 
| 66 | 
            +
                },
         | 
| 67 | 
            +
                "128008": {
         | 
| 68 | 
            +
                  "content": "<|reserved_special_token_4|>",
         | 
| 69 | 
            +
                  "lstrip": false,
         | 
| 70 | 
            +
                  "normalized": false,
         | 
| 71 | 
            +
                  "rstrip": false,
         | 
| 72 | 
            +
                  "single_word": false,
         | 
| 73 | 
            +
                  "special": true
         | 
| 74 | 
            +
                },
         | 
| 75 | 
            +
                "128009": {
         | 
| 76 | 
            +
                  "content": "<|eot_id|>",
         | 
| 77 | 
            +
                  "lstrip": false,
         | 
| 78 | 
            +
                  "normalized": false,
         | 
| 79 | 
            +
                  "rstrip": false,
         | 
| 80 | 
            +
                  "single_word": false,
         | 
| 81 | 
            +
                  "special": true
         | 
| 82 | 
            +
                },
         | 
| 83 | 
            +
                "128010": {
         | 
| 84 | 
            +
                  "content": "<|reserved_special_token_5|>",
         | 
| 85 | 
            +
                  "lstrip": false,
         | 
| 86 | 
            +
                  "normalized": false,
         | 
| 87 | 
            +
                  "rstrip": false,
         | 
| 88 | 
            +
                  "single_word": false,
         | 
| 89 | 
            +
                  "special": true
         | 
| 90 | 
            +
                },
         | 
| 91 | 
            +
                "128011": {
         | 
| 92 | 
            +
                  "content": "<|reserved_special_token_6|>",
         | 
| 93 | 
            +
                  "lstrip": false,
         | 
| 94 | 
            +
                  "normalized": false,
         | 
| 95 | 
            +
                  "rstrip": false,
         | 
| 96 | 
            +
                  "single_word": false,
         | 
| 97 | 
            +
                  "special": true
         | 
| 98 | 
            +
                },
         | 
| 99 | 
            +
                "128012": {
         | 
| 100 | 
            +
                  "content": "<|reserved_special_token_7|>",
         | 
| 101 | 
            +
                  "lstrip": false,
         | 
| 102 | 
            +
                  "normalized": false,
         | 
| 103 | 
            +
                  "rstrip": false,
         | 
| 104 | 
            +
                  "single_word": false,
         | 
| 105 | 
            +
                  "special": true
         | 
| 106 | 
            +
                },
         | 
| 107 | 
            +
                "128013": {
         | 
| 108 | 
            +
                  "content": "<|reserved_special_token_8|>",
         | 
| 109 | 
            +
                  "lstrip": false,
         | 
| 110 | 
            +
                  "normalized": false,
         | 
| 111 | 
            +
                  "rstrip": false,
         | 
| 112 | 
            +
                  "single_word": false,
         | 
| 113 | 
            +
                  "special": true
         | 
| 114 | 
            +
                },
         | 
| 115 | 
            +
                "128014": {
         | 
| 116 | 
            +
                  "content": "<|reserved_special_token_9|>",
         | 
| 117 | 
            +
                  "lstrip": false,
         | 
| 118 | 
            +
                  "normalized": false,
         | 
| 119 | 
            +
                  "rstrip": false,
         | 
| 120 | 
            +
                  "single_word": false,
         | 
| 121 | 
            +
                  "special": true
         | 
| 122 | 
            +
                },
         | 
| 123 | 
            +
                "128015": {
         | 
| 124 | 
            +
                  "content": "<|reserved_special_token_10|>",
         | 
| 125 | 
            +
                  "lstrip": false,
         | 
| 126 | 
            +
                  "normalized": false,
         | 
| 127 | 
            +
                  "rstrip": false,
         | 
| 128 | 
            +
                  "single_word": false,
         | 
| 129 | 
            +
                  "special": true
         | 
| 130 | 
            +
                },
         | 
| 131 | 
            +
                "128016": {
         | 
| 132 | 
            +
                  "content": "<|reserved_special_token_11|>",
         | 
| 133 | 
            +
                  "lstrip": false,
         | 
| 134 | 
            +
                  "normalized": false,
         | 
| 135 | 
            +
                  "rstrip": false,
         | 
| 136 | 
            +
                  "single_word": false,
         | 
| 137 | 
            +
                  "special": true
         | 
| 138 | 
            +
                },
         | 
| 139 | 
            +
                "128017": {
         | 
| 140 | 
            +
                  "content": "<|reserved_special_token_12|>",
         | 
| 141 | 
            +
                  "lstrip": false,
         | 
| 142 | 
            +
                  "normalized": false,
         | 
| 143 | 
            +
                  "rstrip": false,
         | 
| 144 | 
            +
                  "single_word": false,
         | 
| 145 | 
            +
                  "special": true
         | 
| 146 | 
            +
                },
         | 
| 147 | 
            +
                "128018": {
         | 
| 148 | 
            +
                  "content": "<|reserved_special_token_13|>",
         | 
| 149 | 
            +
                  "lstrip": false,
         | 
| 150 | 
            +
                  "normalized": false,
         | 
| 151 | 
            +
                  "rstrip": false,
         | 
| 152 | 
            +
                  "single_word": false,
         | 
| 153 | 
            +
                  "special": true
         | 
| 154 | 
            +
                },
         | 
| 155 | 
            +
                "128019": {
         | 
| 156 | 
            +
                  "content": "<|reserved_special_token_14|>",
         | 
| 157 | 
            +
                  "lstrip": false,
         | 
| 158 | 
            +
                  "normalized": false,
         | 
| 159 | 
            +
                  "rstrip": false,
         | 
| 160 | 
            +
                  "single_word": false,
         | 
| 161 | 
            +
                  "special": true
         | 
| 162 | 
            +
                },
         | 
| 163 | 
            +
                "128020": {
         | 
| 164 | 
            +
                  "content": "<|reserved_special_token_15|>",
         | 
| 165 | 
            +
                  "lstrip": false,
         | 
| 166 | 
            +
                  "normalized": false,
         | 
| 167 | 
            +
                  "rstrip": false,
         | 
| 168 | 
            +
                  "single_word": false,
         | 
| 169 | 
            +
                  "special": true
         | 
| 170 | 
            +
                },
         | 
| 171 | 
            +
                "128021": {
         | 
| 172 | 
            +
                  "content": "<|reserved_special_token_16|>",
         | 
| 173 | 
            +
                  "lstrip": false,
         | 
| 174 | 
            +
                  "normalized": false,
         | 
| 175 | 
            +
                  "rstrip": false,
         | 
| 176 | 
            +
                  "single_word": false,
         | 
| 177 | 
            +
                  "special": true
         | 
| 178 | 
            +
                },
         | 
| 179 | 
            +
                "128022": {
         | 
| 180 | 
            +
                  "content": "<|reserved_special_token_17|>",
         | 
| 181 | 
            +
                  "lstrip": false,
         | 
| 182 | 
            +
                  "normalized": false,
         | 
| 183 | 
            +
                  "rstrip": false,
         | 
| 184 | 
            +
                  "single_word": false,
         | 
| 185 | 
            +
                  "special": true
         | 
| 186 | 
            +
                },
         | 
| 187 | 
            +
                "128023": {
         | 
| 188 | 
            +
                  "content": "<|reserved_special_token_18|>",
         | 
| 189 | 
            +
                  "lstrip": false,
         | 
| 190 | 
            +
                  "normalized": false,
         | 
| 191 | 
            +
                  "rstrip": false,
         | 
| 192 | 
            +
                  "single_word": false,
         | 
| 193 | 
            +
                  "special": true
         | 
| 194 | 
            +
                },
         | 
| 195 | 
            +
                "128024": {
         | 
| 196 | 
            +
                  "content": "<|reserved_special_token_19|>",
         | 
| 197 | 
            +
                  "lstrip": false,
         | 
| 198 | 
            +
                  "normalized": false,
         | 
| 199 | 
            +
                  "rstrip": false,
         | 
| 200 | 
            +
                  "single_word": false,
         | 
| 201 | 
            +
                  "special": true
         | 
| 202 | 
            +
                },
         | 
| 203 | 
            +
                "128025": {
         | 
| 204 | 
            +
                  "content": "<|reserved_special_token_20|>",
         | 
| 205 | 
            +
                  "lstrip": false,
         | 
| 206 | 
            +
                  "normalized": false,
         | 
| 207 | 
            +
                  "rstrip": false,
         | 
| 208 | 
            +
                  "single_word": false,
         | 
| 209 | 
            +
                  "special": true
         | 
| 210 | 
            +
                },
         | 
| 211 | 
            +
                "128026": {
         | 
| 212 | 
            +
                  "content": "<|reserved_special_token_21|>",
         | 
| 213 | 
            +
                  "lstrip": false,
         | 
| 214 | 
            +
                  "normalized": false,
         | 
| 215 | 
            +
                  "rstrip": false,
         | 
| 216 | 
            +
                  "single_word": false,
         | 
| 217 | 
            +
                  "special": true
         | 
| 218 | 
            +
                },
         | 
| 219 | 
            +
                "128027": {
         | 
| 220 | 
            +
                  "content": "<|reserved_special_token_22|>",
         | 
| 221 | 
            +
                  "lstrip": false,
         | 
| 222 | 
            +
                  "normalized": false,
         | 
| 223 | 
            +
                  "rstrip": false,
         | 
| 224 | 
            +
                  "single_word": false,
         | 
| 225 | 
            +
                  "special": true
         | 
| 226 | 
            +
                },
         | 
| 227 | 
            +
                "128028": {
         | 
| 228 | 
            +
                  "content": "<|reserved_special_token_23|>",
         | 
| 229 | 
            +
                  "lstrip": false,
         | 
| 230 | 
            +
                  "normalized": false,
         | 
| 231 | 
            +
                  "rstrip": false,
         | 
| 232 | 
            +
                  "single_word": false,
         | 
| 233 | 
            +
                  "special": true
         | 
| 234 | 
            +
                },
         | 
| 235 | 
            +
                "128029": {
         | 
| 236 | 
            +
                  "content": "<|reserved_special_token_24|>",
         | 
| 237 | 
            +
                  "lstrip": false,
         | 
| 238 | 
            +
                  "normalized": false,
         | 
| 239 | 
            +
                  "rstrip": false,
         | 
| 240 | 
            +
                  "single_word": false,
         | 
| 241 | 
            +
                  "special": true
         | 
| 242 | 
            +
                },
         | 
| 243 | 
            +
                "128030": {
         | 
| 244 | 
            +
                  "content": "<|reserved_special_token_25|>",
         | 
| 245 | 
            +
                  "lstrip": false,
         | 
| 246 | 
            +
                  "normalized": false,
         | 
| 247 | 
            +
                  "rstrip": false,
         | 
| 248 | 
            +
                  "single_word": false,
         | 
| 249 | 
            +
                  "special": true
         | 
| 250 | 
            +
                },
         | 
| 251 | 
            +
                "128031": {
         | 
| 252 | 
            +
                  "content": "<|reserved_special_token_26|>",
         | 
| 253 | 
            +
                  "lstrip": false,
         | 
| 254 | 
            +
                  "normalized": false,
         | 
| 255 | 
            +
                  "rstrip": false,
         | 
| 256 | 
            +
                  "single_word": false,
         | 
| 257 | 
            +
                  "special": true
         | 
| 258 | 
            +
                },
         | 
| 259 | 
            +
                "128032": {
         | 
| 260 | 
            +
                  "content": "<|reserved_special_token_27|>",
         | 
| 261 | 
            +
                  "lstrip": false,
         | 
| 262 | 
            +
                  "normalized": false,
         | 
| 263 | 
            +
                  "rstrip": false,
         | 
| 264 | 
            +
                  "single_word": false,
         | 
| 265 | 
            +
                  "special": true
         | 
| 266 | 
            +
                },
         | 
| 267 | 
            +
                "128033": {
         | 
| 268 | 
            +
                  "content": "<|reserved_special_token_28|>",
         | 
| 269 | 
            +
                  "lstrip": false,
         | 
| 270 | 
            +
                  "normalized": false,
         | 
| 271 | 
            +
                  "rstrip": false,
         | 
| 272 | 
            +
                  "single_word": false,
         | 
| 273 | 
            +
                  "special": true
         | 
| 274 | 
            +
                },
         | 
| 275 | 
            +
                "128034": {
         | 
| 276 | 
            +
                  "content": "<|reserved_special_token_29|>",
         | 
| 277 | 
            +
                  "lstrip": false,
         | 
| 278 | 
            +
                  "normalized": false,
         | 
| 279 | 
            +
                  "rstrip": false,
         | 
| 280 | 
            +
                  "single_word": false,
         | 
| 281 | 
            +
                  "special": true
         | 
| 282 | 
            +
                },
         | 
| 283 | 
            +
                "128035": {
         | 
| 284 | 
            +
                  "content": "<|reserved_special_token_30|>",
         | 
| 285 | 
            +
                  "lstrip": false,
         | 
| 286 | 
            +
                  "normalized": false,
         | 
| 287 | 
            +
                  "rstrip": false,
         | 
| 288 | 
            +
                  "single_word": false,
         | 
| 289 | 
            +
                  "special": true
         | 
| 290 | 
            +
                },
         | 
| 291 | 
            +
                "128036": {
         | 
| 292 | 
            +
                  "content": "<|reserved_special_token_31|>",
         | 
| 293 | 
            +
                  "lstrip": false,
         | 
| 294 | 
            +
                  "normalized": false,
         | 
| 295 | 
            +
                  "rstrip": false,
         | 
| 296 | 
            +
                  "single_word": false,
         | 
| 297 | 
            +
                  "special": true
         | 
| 298 | 
            +
                },
         | 
| 299 | 
            +
                "128037": {
         | 
| 300 | 
            +
                  "content": "<|reserved_special_token_32|>",
         | 
| 301 | 
            +
                  "lstrip": false,
         | 
| 302 | 
            +
                  "normalized": false,
         | 
| 303 | 
            +
                  "rstrip": false,
         | 
| 304 | 
            +
                  "single_word": false,
         | 
| 305 | 
            +
                  "special": true
         | 
| 306 | 
            +
                },
         | 
| 307 | 
            +
                "128038": {
         | 
| 308 | 
            +
                  "content": "<|reserved_special_token_33|>",
         | 
| 309 | 
            +
                  "lstrip": false,
         | 
| 310 | 
            +
                  "normalized": false,
         | 
| 311 | 
            +
                  "rstrip": false,
         | 
| 312 | 
            +
                  "single_word": false,
         | 
| 313 | 
            +
                  "special": true
         | 
| 314 | 
            +
                },
         | 
| 315 | 
            +
                "128039": {
         | 
| 316 | 
            +
                  "content": "<|reserved_special_token_34|>",
         | 
| 317 | 
            +
                  "lstrip": false,
         | 
| 318 | 
            +
                  "normalized": false,
         | 
| 319 | 
            +
                  "rstrip": false,
         | 
| 320 | 
            +
                  "single_word": false,
         | 
| 321 | 
            +
                  "special": true
         | 
| 322 | 
            +
                },
         | 
| 323 | 
            +
                "128040": {
         | 
| 324 | 
            +
                  "content": "<|reserved_special_token_35|>",
         | 
| 325 | 
            +
                  "lstrip": false,
         | 
| 326 | 
            +
                  "normalized": false,
         | 
| 327 | 
            +
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         | 
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| 996 | 
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| 1004 | 
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| 1012 | 
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| 1020 | 
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| 1027 | 
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| 1028 | 
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| 1029 | 
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| 1033 | 
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| 1034 | 
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| 1035 | 
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         | 
| 1036 | 
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| 1037 | 
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| 1042 | 
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| 1043 | 
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| 1044 | 
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| 1045 | 
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| 1400 | 
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| 1401 | 
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| 1402 | 
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| 1403 | 
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         | 
| 1404 | 
            +
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| 1405 | 
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| 1406 | 
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| 1407 | 
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| 1408 | 
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| 1409 | 
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         | 
| 1410 | 
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| 1411 | 
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         | 
| 1412 | 
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| 1413 | 
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| 1414 | 
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| 1415 | 
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| 1417 | 
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| 1418 | 
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| 1419 | 
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         | 
| 1420 | 
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         | 
| 1421 | 
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| 1422 | 
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| 1423 | 
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| 1424 | 
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| 1425 | 
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         | 
| 1426 | 
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         | 
| 1427 | 
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         | 
| 1428 | 
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         | 
| 1429 | 
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| 1430 | 
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| 1431 | 
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| 1432 | 
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| 1433 | 
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| 1434 | 
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         | 
| 1435 | 
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         | 
| 1436 | 
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| 1437 | 
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| 1438 | 
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| 1439 | 
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| 1441 | 
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         | 
| 1442 | 
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| 1443 | 
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         | 
| 1444 | 
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| 1445 | 
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| 1446 | 
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| 1448 | 
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| 1449 | 
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| 1450 | 
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| 1451 | 
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         | 
| 1452 | 
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         | 
| 1453 | 
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| 1454 | 
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| 1457 | 
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| 1458 | 
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| 1459 | 
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         | 
| 1460 | 
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| 1461 | 
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| 1462 | 
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| 1464 | 
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| 1465 | 
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| 1466 | 
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| 1467 | 
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         | 
| 1468 | 
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| 1469 | 
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| 1470 | 
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| 1473 | 
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| 1474 | 
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| 1475 | 
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         | 
| 1476 | 
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| 1477 | 
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| 1478 | 
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| 1481 | 
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| 1482 | 
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| 1483 | 
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         | 
| 1484 | 
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| 1485 | 
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| 1486 | 
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| 1489 | 
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| 1490 | 
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| 1491 | 
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         | 
| 1492 | 
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| 1493 | 
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| 1494 | 
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| 1497 | 
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| 1498 | 
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| 1499 | 
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         | 
| 1500 | 
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| 1501 | 
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| 1502 | 
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| 1505 | 
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| 1506 | 
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| 1507 | 
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         | 
| 1508 | 
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| 1509 | 
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| 1510 | 
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| 1513 | 
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| 1514 | 
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| 1515 | 
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| 1516 | 
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| 1517 | 
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| 1518 | 
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| 1521 | 
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| 1522 | 
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| 1523 | 
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         | 
| 1524 | 
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| 1525 | 
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| 1526 | 
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| 1529 | 
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| 1530 | 
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| 1531 | 
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| 1532 | 
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| 1533 | 
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| 1534 | 
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| 1537 | 
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| 1538 | 
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| 1539 | 
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         | 
| 1540 | 
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| 1541 | 
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| 1542 | 
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| 1545 | 
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| 1546 | 
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| 1547 | 
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| 1548 | 
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| 1549 | 
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| 1550 | 
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| 1553 | 
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| 1554 | 
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| 1555 | 
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| 1556 | 
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| 1557 | 
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| 1561 | 
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| 1562 | 
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| 1563 | 
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| 1564 | 
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| 1565 | 
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| 1569 | 
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| 1570 | 
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| 1571 | 
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| 1572 | 
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| 1573 | 
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| 1574 | 
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| 1577 | 
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| 1578 | 
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| 1579 | 
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| 1580 | 
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| 1581 | 
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| 1582 | 
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| 1585 | 
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| 1586 | 
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| 1587 | 
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         | 
| 1588 | 
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| 1589 | 
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| 1590 | 
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| 1593 | 
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| 1594 | 
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| 1595 | 
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         | 
| 1596 | 
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| 1597 | 
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| 1598 | 
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| 1600 | 
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| 1601 | 
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| 1602 | 
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| 1603 | 
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         | 
| 1604 | 
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| 1605 | 
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| 1606 | 
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| 1609 | 
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| 1610 | 
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| 1611 | 
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         | 
| 1612 | 
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| 1613 | 
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| 1617 | 
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| 1618 | 
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| 1619 | 
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         | 
| 1620 | 
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| 1621 | 
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| 1625 | 
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| 1626 | 
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| 1627 | 
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         | 
| 1628 | 
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| 1629 | 
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| 1630 | 
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| 1633 | 
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| 1634 | 
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| 1635 | 
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         | 
| 1636 | 
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| 1637 | 
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| 1638 | 
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| 1641 | 
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| 1642 | 
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| 1643 | 
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         | 
| 1644 | 
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| 1645 | 
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| 1646 | 
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| 1649 | 
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| 1650 | 
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| 1651 | 
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         | 
| 1652 | 
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| 1653 | 
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| 1654 | 
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| 1656 | 
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| 1657 | 
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| 1658 | 
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| 1659 | 
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         | 
| 1660 | 
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| 1661 | 
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| 1662 | 
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| 1664 | 
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| 1665 | 
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| 1666 | 
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| 1667 | 
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| 1668 | 
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| 1669 | 
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| 1670 | 
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| 1673 | 
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| 1674 | 
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| 1675 | 
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         | 
| 1676 | 
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| 1677 | 
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| 1678 | 
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| 1681 | 
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| 1682 | 
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| 1683 | 
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| 1684 | 
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| 1685 | 
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| 1686 | 
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| 1689 | 
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| 1690 | 
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| 1691 | 
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| 1692 | 
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| 1693 | 
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| 1694 | 
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| 1697 | 
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| 1698 | 
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| 1699 | 
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| 1700 | 
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| 1701 | 
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| 1705 | 
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| 1706 | 
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| 1707 | 
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| 1708 | 
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| 1709 | 
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| 1713 | 
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| 1714 | 
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| 1715 | 
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| 1716 | 
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| 1717 | 
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| 1721 | 
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| 1722 | 
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| 1723 | 
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| 1724 | 
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| 1725 | 
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| 1726 | 
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| 1729 | 
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| 1730 | 
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| 1731 | 
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         | 
| 1732 | 
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| 1733 | 
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| 1734 | 
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| 1736 | 
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| 1737 | 
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| 1738 | 
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| 1739 | 
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         | 
| 1740 | 
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| 1741 | 
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| 1742 | 
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| 1743 | 
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| 1744 | 
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| 1745 | 
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| 1746 | 
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| 1747 | 
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         | 
| 1748 | 
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| 1749 | 
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| 1750 | 
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| 1751 | 
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            +
                  "single_word": false,
         | 
| 1753 | 
            +
                  "special": true
         | 
| 1754 | 
            +
                },
         | 
| 1755 | 
            +
                "128219": {
         | 
| 1756 | 
            +
                  "content": "<|reserved_special_token_214|>",
         | 
| 1757 | 
            +
                  "lstrip": false,
         | 
| 1758 | 
            +
                  "normalized": false,
         | 
| 1759 | 
            +
                  "rstrip": false,
         | 
| 1760 | 
            +
                  "single_word": false,
         | 
| 1761 | 
            +
                  "special": true
         | 
| 1762 | 
            +
                },
         | 
| 1763 | 
            +
                "128220": {
         | 
| 1764 | 
            +
                  "content": "<|reserved_special_token_215|>",
         | 
| 1765 | 
            +
                  "lstrip": false,
         | 
| 1766 | 
            +
                  "normalized": false,
         | 
| 1767 | 
            +
                  "rstrip": false,
         | 
| 1768 | 
            +
                  "single_word": false,
         | 
| 1769 | 
            +
                  "special": true
         | 
| 1770 | 
            +
                },
         | 
| 1771 | 
            +
                "128221": {
         | 
| 1772 | 
            +
                  "content": "<|reserved_special_token_216|>",
         | 
| 1773 | 
            +
                  "lstrip": false,
         | 
| 1774 | 
            +
                  "normalized": false,
         | 
| 1775 | 
            +
                  "rstrip": false,
         | 
| 1776 | 
            +
                  "single_word": false,
         | 
| 1777 | 
            +
                  "special": true
         | 
| 1778 | 
            +
                },
         | 
| 1779 | 
            +
                "128222": {
         | 
| 1780 | 
            +
                  "content": "<|reserved_special_token_217|>",
         | 
| 1781 | 
            +
                  "lstrip": false,
         | 
| 1782 | 
            +
                  "normalized": false,
         | 
| 1783 | 
            +
                  "rstrip": false,
         | 
| 1784 | 
            +
                  "single_word": false,
         | 
| 1785 | 
            +
                  "special": true
         | 
| 1786 | 
            +
                },
         | 
| 1787 | 
            +
                "128223": {
         | 
| 1788 | 
            +
                  "content": "<|reserved_special_token_218|>",
         | 
| 1789 | 
            +
                  "lstrip": false,
         | 
| 1790 | 
            +
                  "normalized": false,
         | 
| 1791 | 
            +
                  "rstrip": false,
         | 
| 1792 | 
            +
                  "single_word": false,
         | 
| 1793 | 
            +
                  "special": true
         | 
| 1794 | 
            +
                },
         | 
| 1795 | 
            +
                "128224": {
         | 
| 1796 | 
            +
                  "content": "<|reserved_special_token_219|>",
         | 
| 1797 | 
            +
                  "lstrip": false,
         | 
| 1798 | 
            +
                  "normalized": false,
         | 
| 1799 | 
            +
                  "rstrip": false,
         | 
| 1800 | 
            +
                  "single_word": false,
         | 
| 1801 | 
            +
                  "special": true
         | 
| 1802 | 
            +
                },
         | 
| 1803 | 
            +
                "128225": {
         | 
| 1804 | 
            +
                  "content": "<|reserved_special_token_220|>",
         | 
| 1805 | 
            +
                  "lstrip": false,
         | 
| 1806 | 
            +
                  "normalized": false,
         | 
| 1807 | 
            +
                  "rstrip": false,
         | 
| 1808 | 
            +
                  "single_word": false,
         | 
| 1809 | 
            +
                  "special": true
         | 
| 1810 | 
            +
                },
         | 
| 1811 | 
            +
                "128226": {
         | 
| 1812 | 
            +
                  "content": "<|reserved_special_token_221|>",
         | 
| 1813 | 
            +
                  "lstrip": false,
         | 
| 1814 | 
            +
                  "normalized": false,
         | 
| 1815 | 
            +
                  "rstrip": false,
         | 
| 1816 | 
            +
                  "single_word": false,
         | 
| 1817 | 
            +
                  "special": true
         | 
| 1818 | 
            +
                },
         | 
| 1819 | 
            +
                "128227": {
         | 
| 1820 | 
            +
                  "content": "<|reserved_special_token_222|>",
         | 
| 1821 | 
            +
                  "lstrip": false,
         | 
| 1822 | 
            +
                  "normalized": false,
         | 
| 1823 | 
            +
                  "rstrip": false,
         | 
| 1824 | 
            +
                  "single_word": false,
         | 
| 1825 | 
            +
                  "special": true
         | 
| 1826 | 
            +
                },
         | 
| 1827 | 
            +
                "128228": {
         | 
| 1828 | 
            +
                  "content": "<|reserved_special_token_223|>",
         | 
| 1829 | 
            +
                  "lstrip": false,
         | 
| 1830 | 
            +
                  "normalized": false,
         | 
| 1831 | 
            +
                  "rstrip": false,
         | 
| 1832 | 
            +
                  "single_word": false,
         | 
| 1833 | 
            +
                  "special": true
         | 
| 1834 | 
            +
                },
         | 
| 1835 | 
            +
                "128229": {
         | 
| 1836 | 
            +
                  "content": "<|reserved_special_token_224|>",
         | 
| 1837 | 
            +
                  "lstrip": false,
         | 
| 1838 | 
            +
                  "normalized": false,
         | 
| 1839 | 
            +
                  "rstrip": false,
         | 
| 1840 | 
            +
                  "single_word": false,
         | 
| 1841 | 
            +
                  "special": true
         | 
| 1842 | 
            +
                },
         | 
| 1843 | 
            +
                "128230": {
         | 
| 1844 | 
            +
                  "content": "<|reserved_special_token_225|>",
         | 
| 1845 | 
            +
                  "lstrip": false,
         | 
| 1846 | 
            +
                  "normalized": false,
         | 
| 1847 | 
            +
                  "rstrip": false,
         | 
| 1848 | 
            +
                  "single_word": false,
         | 
| 1849 | 
            +
                  "special": true
         | 
| 1850 | 
            +
                },
         | 
| 1851 | 
            +
                "128231": {
         | 
| 1852 | 
            +
                  "content": "<|reserved_special_token_226|>",
         | 
| 1853 | 
            +
                  "lstrip": false,
         | 
| 1854 | 
            +
                  "normalized": false,
         | 
| 1855 | 
            +
                  "rstrip": false,
         | 
| 1856 | 
            +
                  "single_word": false,
         | 
| 1857 | 
            +
                  "special": true
         | 
| 1858 | 
            +
                },
         | 
| 1859 | 
            +
                "128232": {
         | 
| 1860 | 
            +
                  "content": "<|reserved_special_token_227|>",
         | 
| 1861 | 
            +
                  "lstrip": false,
         | 
| 1862 | 
            +
                  "normalized": false,
         | 
| 1863 | 
            +
                  "rstrip": false,
         | 
| 1864 | 
            +
                  "single_word": false,
         | 
| 1865 | 
            +
                  "special": true
         | 
| 1866 | 
            +
                },
         | 
| 1867 | 
            +
                "128233": {
         | 
| 1868 | 
            +
                  "content": "<|reserved_special_token_228|>",
         | 
| 1869 | 
            +
                  "lstrip": false,
         | 
| 1870 | 
            +
                  "normalized": false,
         | 
| 1871 | 
            +
                  "rstrip": false,
         | 
| 1872 | 
            +
                  "single_word": false,
         | 
| 1873 | 
            +
                  "special": true
         | 
| 1874 | 
            +
                },
         | 
| 1875 | 
            +
                "128234": {
         | 
| 1876 | 
            +
                  "content": "<|reserved_special_token_229|>",
         | 
| 1877 | 
            +
                  "lstrip": false,
         | 
| 1878 | 
            +
                  "normalized": false,
         | 
| 1879 | 
            +
                  "rstrip": false,
         | 
| 1880 | 
            +
                  "single_word": false,
         | 
| 1881 | 
            +
                  "special": true
         | 
| 1882 | 
            +
                },
         | 
| 1883 | 
            +
                "128235": {
         | 
| 1884 | 
            +
                  "content": "<|reserved_special_token_230|>",
         | 
| 1885 | 
            +
                  "lstrip": false,
         | 
| 1886 | 
            +
                  "normalized": false,
         | 
| 1887 | 
            +
                  "rstrip": false,
         | 
| 1888 | 
            +
                  "single_word": false,
         | 
| 1889 | 
            +
                  "special": true
         | 
| 1890 | 
            +
                },
         | 
| 1891 | 
            +
                "128236": {
         | 
| 1892 | 
            +
                  "content": "<|reserved_special_token_231|>",
         | 
| 1893 | 
            +
                  "lstrip": false,
         | 
| 1894 | 
            +
                  "normalized": false,
         | 
| 1895 | 
            +
                  "rstrip": false,
         | 
| 1896 | 
            +
                  "single_word": false,
         | 
| 1897 | 
            +
                  "special": true
         | 
| 1898 | 
            +
                },
         | 
| 1899 | 
            +
                "128237": {
         | 
| 1900 | 
            +
                  "content": "<|reserved_special_token_232|>",
         | 
| 1901 | 
            +
                  "lstrip": false,
         | 
| 1902 | 
            +
                  "normalized": false,
         | 
| 1903 | 
            +
                  "rstrip": false,
         | 
| 1904 | 
            +
                  "single_word": false,
         | 
| 1905 | 
            +
                  "special": true
         | 
| 1906 | 
            +
                },
         | 
| 1907 | 
            +
                "128238": {
         | 
| 1908 | 
            +
                  "content": "<|reserved_special_token_233|>",
         | 
| 1909 | 
            +
                  "lstrip": false,
         | 
| 1910 | 
            +
                  "normalized": false,
         | 
| 1911 | 
            +
                  "rstrip": false,
         | 
| 1912 | 
            +
                  "single_word": false,
         | 
| 1913 | 
            +
                  "special": true
         | 
| 1914 | 
            +
                },
         | 
| 1915 | 
            +
                "128239": {
         | 
| 1916 | 
            +
                  "content": "<|reserved_special_token_234|>",
         | 
| 1917 | 
            +
                  "lstrip": false,
         | 
| 1918 | 
            +
                  "normalized": false,
         | 
| 1919 | 
            +
                  "rstrip": false,
         | 
| 1920 | 
            +
                  "single_word": false,
         | 
| 1921 | 
            +
                  "special": true
         | 
| 1922 | 
            +
                },
         | 
| 1923 | 
            +
                "128240": {
         | 
| 1924 | 
            +
                  "content": "<|reserved_special_token_235|>",
         | 
| 1925 | 
            +
                  "lstrip": false,
         | 
| 1926 | 
            +
                  "normalized": false,
         | 
| 1927 | 
            +
                  "rstrip": false,
         | 
| 1928 | 
            +
                  "single_word": false,
         | 
| 1929 | 
            +
                  "special": true
         | 
| 1930 | 
            +
                },
         | 
| 1931 | 
            +
                "128241": {
         | 
| 1932 | 
            +
                  "content": "<|reserved_special_token_236|>",
         | 
| 1933 | 
            +
                  "lstrip": false,
         | 
| 1934 | 
            +
                  "normalized": false,
         | 
| 1935 | 
            +
                  "rstrip": false,
         | 
| 1936 | 
            +
                  "single_word": false,
         | 
| 1937 | 
            +
                  "special": true
         | 
| 1938 | 
            +
                },
         | 
| 1939 | 
            +
                "128242": {
         | 
| 1940 | 
            +
                  "content": "<|reserved_special_token_237|>",
         | 
| 1941 | 
            +
                  "lstrip": false,
         | 
| 1942 | 
            +
                  "normalized": false,
         | 
| 1943 | 
            +
                  "rstrip": false,
         | 
| 1944 | 
            +
                  "single_word": false,
         | 
| 1945 | 
            +
                  "special": true
         | 
| 1946 | 
            +
                },
         | 
| 1947 | 
            +
                "128243": {
         | 
| 1948 | 
            +
                  "content": "<|reserved_special_token_238|>",
         | 
| 1949 | 
            +
                  "lstrip": false,
         | 
| 1950 | 
            +
                  "normalized": false,
         | 
| 1951 | 
            +
                  "rstrip": false,
         | 
| 1952 | 
            +
                  "single_word": false,
         | 
| 1953 | 
            +
                  "special": true
         | 
| 1954 | 
            +
                },
         | 
| 1955 | 
            +
                "128244": {
         | 
| 1956 | 
            +
                  "content": "<|reserved_special_token_239|>",
         | 
| 1957 | 
            +
                  "lstrip": false,
         | 
| 1958 | 
            +
                  "normalized": false,
         | 
| 1959 | 
            +
                  "rstrip": false,
         | 
| 1960 | 
            +
                  "single_word": false,
         | 
| 1961 | 
            +
                  "special": true
         | 
| 1962 | 
            +
                },
         | 
| 1963 | 
            +
                "128245": {
         | 
| 1964 | 
            +
                  "content": "<|reserved_special_token_240|>",
         | 
| 1965 | 
            +
                  "lstrip": false,
         | 
| 1966 | 
            +
                  "normalized": false,
         | 
| 1967 | 
            +
                  "rstrip": false,
         | 
| 1968 | 
            +
                  "single_word": false,
         | 
| 1969 | 
            +
                  "special": true
         | 
| 1970 | 
            +
                },
         | 
| 1971 | 
            +
                "128246": {
         | 
| 1972 | 
            +
                  "content": "<|reserved_special_token_241|>",
         | 
| 1973 | 
            +
                  "lstrip": false,
         | 
| 1974 | 
            +
                  "normalized": false,
         | 
| 1975 | 
            +
                  "rstrip": false,
         | 
| 1976 | 
            +
                  "single_word": false,
         | 
| 1977 | 
            +
                  "special": true
         | 
| 1978 | 
            +
                },
         | 
| 1979 | 
            +
                "128247": {
         | 
| 1980 | 
            +
                  "content": "<|reserved_special_token_242|>",
         | 
| 1981 | 
            +
                  "lstrip": false,
         | 
| 1982 | 
            +
                  "normalized": false,
         | 
| 1983 | 
            +
                  "rstrip": false,
         | 
| 1984 | 
            +
                  "single_word": false,
         | 
| 1985 | 
            +
                  "special": true
         | 
| 1986 | 
            +
                },
         | 
| 1987 | 
            +
                "128248": {
         | 
| 1988 | 
            +
                  "content": "<|reserved_special_token_243|>",
         | 
| 1989 | 
            +
                  "lstrip": false,
         | 
| 1990 | 
            +
                  "normalized": false,
         | 
| 1991 | 
            +
                  "rstrip": false,
         | 
| 1992 | 
            +
                  "single_word": false,
         | 
| 1993 | 
            +
                  "special": true
         | 
| 1994 | 
            +
                },
         | 
| 1995 | 
            +
                "128249": {
         | 
| 1996 | 
            +
                  "content": "<|reserved_special_token_244|>",
         | 
| 1997 | 
            +
                  "lstrip": false,
         | 
| 1998 | 
            +
                  "normalized": false,
         | 
| 1999 | 
            +
                  "rstrip": false,
         | 
| 2000 | 
            +
                  "single_word": false,
         | 
| 2001 | 
            +
                  "special": true
         | 
| 2002 | 
            +
                },
         | 
| 2003 | 
            +
                "128250": {
         | 
| 2004 | 
            +
                  "content": "<|reserved_special_token_245|>",
         | 
| 2005 | 
            +
                  "lstrip": false,
         | 
| 2006 | 
            +
                  "normalized": false,
         | 
| 2007 | 
            +
                  "rstrip": false,
         | 
| 2008 | 
            +
                  "single_word": false,
         | 
| 2009 | 
            +
                  "special": true
         | 
| 2010 | 
            +
                },
         | 
| 2011 | 
            +
                "128251": {
         | 
| 2012 | 
            +
                  "content": "<|reserved_special_token_246|>",
         | 
| 2013 | 
            +
                  "lstrip": false,
         | 
| 2014 | 
            +
                  "normalized": false,
         | 
| 2015 | 
            +
                  "rstrip": false,
         | 
| 2016 | 
            +
                  "single_word": false,
         | 
| 2017 | 
            +
                  "special": true
         | 
| 2018 | 
            +
                },
         | 
| 2019 | 
            +
                "128252": {
         | 
| 2020 | 
            +
                  "content": "<|reserved_special_token_247|>",
         | 
| 2021 | 
            +
                  "lstrip": false,
         | 
| 2022 | 
            +
                  "normalized": false,
         | 
| 2023 | 
            +
                  "rstrip": false,
         | 
| 2024 | 
            +
                  "single_word": false,
         | 
| 2025 | 
            +
                  "special": true
         | 
| 2026 | 
            +
                },
         | 
| 2027 | 
            +
                "128253": {
         | 
| 2028 | 
            +
                  "content": "<|reserved_special_token_248|>",
         | 
| 2029 | 
            +
                  "lstrip": false,
         | 
| 2030 | 
            +
                  "normalized": false,
         | 
| 2031 | 
            +
                  "rstrip": false,
         | 
| 2032 | 
            +
                  "single_word": false,
         | 
| 2033 | 
            +
                  "special": true
         | 
| 2034 | 
            +
                },
         | 
| 2035 | 
            +
                "128254": {
         | 
| 2036 | 
            +
                  "content": "<|reserved_special_token_249|>",
         | 
| 2037 | 
            +
                  "lstrip": false,
         | 
| 2038 | 
            +
                  "normalized": false,
         | 
| 2039 | 
            +
                  "rstrip": false,
         | 
| 2040 | 
            +
                  "single_word": false,
         | 
| 2041 | 
            +
                  "special": true
         | 
| 2042 | 
            +
                },
         | 
| 2043 | 
            +
                "128255": {
         | 
| 2044 | 
            +
                  "content": "<|reserved_special_token_250|>",
         | 
| 2045 | 
            +
                  "lstrip": false,
         | 
| 2046 | 
            +
                  "normalized": false,
         | 
| 2047 | 
            +
                  "rstrip": false,
         | 
| 2048 | 
            +
                  "single_word": false,
         | 
| 2049 | 
            +
                  "special": true
         | 
| 2050 | 
            +
                }
         | 
| 2051 | 
            +
              },
         | 
| 2052 | 
            +
              "bos_token": "<|begin_of_text|>",
         | 
| 2053 | 
            +
              "chat_template": "{% set loop_messages = messages %}{% for message in loop_messages %}{% set content = '<|start_header_id|>' + message['role'] + '<|end_header_id|>\n\n'+ message['content'] | trim + '<|eot_id|>' %}{% if loop.index0 == 0 %}{% set content = bos_token + content %}{% endif %}{{ content }}{% endfor %}{% if add_generation_prompt %}{{ '<|start_header_id|>assistant<|end_header_id|>\n\n' }}{% endif %}",
         | 
| 2054 | 
            +
              "clean_up_tokenization_spaces": true,
         | 
| 2055 | 
            +
              "eos_token": "<|end_of_text|>",
         | 
| 2056 | 
            +
              "model_input_names": [
         | 
| 2057 | 
            +
                "input_ids",
         | 
| 2058 | 
            +
                "attention_mask"
         | 
| 2059 | 
            +
              ],
         | 
| 2060 | 
            +
              "model_max_length": 1000000000000000019884624838656,
         | 
| 2061 | 
            +
              "pad_token": "<|end_of_text|>",
         | 
| 2062 | 
            +
              "tokenizer_class": "PreTrainedTokenizerFast"
         | 
| 2063 | 
            +
            }
         |