initial commit
Browse files- README.md +142 -0
- config.json +25 -0
- generation_config.json +6 -0
- model-00001-of-00003.safetensors +3 -0
- model-00002-of-00003.safetensors +3 -0
- model-00003-of-00003.safetensors +3 -0
- model.safetensors.index.json +298 -0
- special_tokens_map.json +5 -0
- tokenizer.json +0 -0
- tokenizer.model +3 -0
- tokenizer_config.json +43 -0
README.md
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---
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license: apache-2.0
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---
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---
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license: apache-2.0
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inference: false
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---
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# MegaBeam-Mistral-7B-300k Model
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MegaBeam-Mistral-7B-300k is a fine-tuned [Mistral-7B-Instruct-v0.2](https://huggingface.co/mistralai/Mistral-7B-Instruct-v0.2) language model that supports input contexts up to 320k tokens. MegaBeam-Mistral-7B-300k can be deployed on a single AWS `g5.48xlarge` instance using serving frameworks such as [vLLM](https://github.com/vllm-project/vllm), Sagemaker [Huggingface Text Generation Inference (TGI)](https://github.com/huggingface/text-generation-inference) endpoint, and others. Similarities and differences beween MegaBeam-Mistral-7B-300k and [Mistral-7B-Instruct-v0.2](https://huggingface.co/mistralai/Mistral-7B-Instruct-v0.2) are summarized below:
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|Model|Max context length| rope_theta| prompt template|
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|----------|-------------:|------------:|------------:|
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| [Mistral-7B-Instruct-v0.2](https://huggingface.co/mistralai/Mistral-7B-Instruct-v0.2) | 32K | 1e6 | [instruction format](https://huggingface.co/mistralai/Mistral-7B-Instruct-v0.2#instruction-format)|
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| MegaBeam-Mistral-7B-300k | 320K | 25e6 | AS ABOVE|
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## Evaluations
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**[InfiniteBench: Extending Long Context Evaluation Beyond 100K Tokens](https://github.com/OpenBMB/InfiniteBench)**
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InfiniteBench is a cutting-edge benchmark tailored for evaluating the capabilities of language models to process, understand, and reason over super long contexts (100k+ tokens). We therefore evaluated MegaBeam-Mistral-7B-300k, [Mistral-7B-Instruct-v0.2](https://huggingface.co/mistralai/Mistral-7B-Instruct-v0.2), [Llama3-8B-1M](https://huggingface.co/gradientai/Llama-3-8B-Instruct-Gradient-1048k), and [Llama3-70B-1M](https://huggingface.co/gradientai/Llama-3-70B-Instruct-Gradient-1048k) on InfiniteBench. The InfiniteBench authors also evaluated SOTA proprietary and open-source LLMs on InfiniteBench. We thus combined both results in the table below.
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| Task Name | MegaBeam-Mistral<br>-7B-300k | [Mistral-7B<br>-Instruct-v0.2](https://huggingface.co/mistralai/Mistral-7B-Instruct-v0.2) | [Llama-3-8B<br>-Instruct-262k](https://huggingface.co/gradientai/Llama-3-8B-Instruct-262k) | [Llama3-<br>70B-1M](https://huggingface.co/gradientai/Llama-3-70B-Instruct-Gradient-1048k) | GPT-4 | YaRN-<br>Mistral-7B | Kimi-Chat | Claude 2 | Yi-6B<br>-200K | Yi-34B<br>-200K | Chatglm3-6B<br>-128K |
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| ---------------- | ---------------- | ---------------- | ---------------- | ---------------- | ------ | --------------- | --------- | -------- | -----------| -----------| -----------|
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| Retrieve.PassKey | 100% | 75.76% | 98.30% | 81.35% | 100% | 92.71% | 98.14% | 97.80% | 100.00% | 100.00% | 92.20% |
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| Retrieve.Number | 96.10% | 25.25% | 97.79% | 97.62% | 100% | 56.61% | 95.42% | 98.14% | 94.92% | 100.00% | 80.68% |
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| Retrieve.KV | 0% | 0% | 3.40% | 3% | 89.00% | < 5% | 53.60% | 65.40% | < 5% | < 5% | < 5% |
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| En.Sum | 29.39% | 22.13% | 16.40% | 20.72% | 14.73% | 9.09% | 17.93% | 14.45% | < 5% | < 5% |< 5% |
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| En.QA | 14.93% | 4.93% | 13.20% | 16.52% | 22.22% | 9.55% | 16.52% | 11.97% | 9.20% | 12.17% |< 5% |
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| En.MC | 51.52% | 7.80% | 50.65% | 62% | 67.25% | 27.95% | 72.49% | 62.88% | 36.68% |38.43% |10.48% |
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| En.Dia | 9.50% | 3.50% | 1% | 12.50% | 8.50% | 7.50% | 11.50% | 46.50% | < 5% |< 5% |< 5% |
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| Zh.QA | 10.71% | 3.43% | 19.02% | 26% | 25.96% | 14.43% | 17.93% | 9.64% | 15.07% |13.61% |< 5% |
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| Code.Debug | 27.41% | 11.60% | 22.08% | 23.85% | 39.59% | < 5% | 18.02% | < 5% | < 5% |< 5% |< 5% |
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| Code.Run | 1.75% | 0.25% | 0% | 0% | 23.25% | < 5% | < 5% | < 5% | < 5% |< 5% |< 5% |
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| Math.Calc | 0% | 0% | 0% | 0% | < 5% | < 5% | < 5% | < 5% | < 5% |< 5% |< 5% |
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| Math.Find | 24.28% | 26.28% | 15.40% | 30% | 60.00% | 17.14% | 12.57% | 32.29% | < 5% |25.71% |7.71% |
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| Average | 30.70% | 15.08% | 28.10% | 31.13% | 46.08% | 20.41% | 34.93% | 37.21% | 22.78% |25.41% |17.59% |
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The 12 tasks evaluated in the InfiniteBench are summarized below:
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| Task Name | Context | # Examples | Avg Input Tokens | Avg Output Tokens | Description |
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| -------------------- | ------------- | ---------- | ---------------- | ----------------- | ------------------------------------------------------------------------------------------- |
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| En.Sum | Fake Book | 103 | 171.5k | 1.1k | Summarization of a fake book created with core entity substitution. |
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| En.QA | Fake Book | 351 | 192.6k | 4.8 | Free-form question answering based on the fake book. |
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| En.MC | Fake Book | 229 | 184.4k | 5.3 | Multiple choice questions derived from the fake book. |
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| En.Dia | Script | 200 | 103.6k | 3.4 | Identification of talkers in partially anonymized scripts. |
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| Zh.QA | New Book | 175 | 2068.6k | 6.3 | Question answering on a set of newly collected books. |
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| Code.Debug | Code Document | 394 | 114.7k | 4.8 | Finding which function in a code repo contains an crashing error (in multiple choice form). |
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| Code.Run | Synthetic | 400 | 75.2k | 1.3 | Simulating execution of multiple simple, synthetic functions. |
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| Math.Calc | Synthetic | 50 | 43.9k | 43.9k | Calculations involving super-long arithmetic equations. |
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| Math.Find | Synthetic | 350 | 87.9k | 1.3 | Finding special integers in a lengthy list. |
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| Retrieve.PassKey | Synthetic | 590 | 122.4k | 2.0 | Retrieving hidden keys in a noisy long context. |
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| Retrieve.Number | Synthetic | 590 | 122.4k | 4.0 | Locating repeated hidden numbers in a noisy long context. |
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| Retrieve.KV | Synthetic | 500 | 89.9k | 22.7 | Finding the corresponding value from a dictionary and a key. |
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## How to Serve MegaBeam-Mistral-7B-300k on vLLM ##
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On an AWS `g5.48xlarge` instance, upgrade vLLM to the latest version as per [documentation on vLLM](https://vllm.readthedocs.io/en/latest/).
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### Start the server
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```shell
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python3 -m vllm.entrypoints.openai.api_server --model amazon/MegaBeam-Mistral-7B-300k --tensor-parallel-size 8
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```
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Note that we have set the `max_position_embeddings` in the [`config.json`](config.json) to 288,800 in order to fit model's KV-cache on a single `g5.48xlarge` instance, which has 8 x A10 GPUs (24GB RAM per GPU).
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On an instance with larger GPU RAM (e.g. `p4d.24xlarge`), feel free to increase the value of the `max_position_embeddings`(e.g. to 350K), which the model should be able to process.
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### Run the client
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```python
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from openai import OpenAI
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# Modify OpenAI's API key and API base to use vLLM's API server.
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openai_api_key = "EMPTY"
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openai_api_base = "http://localhost:8000/v1"
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client = OpenAI(
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# defaults to os.environ.get("OPENAI_API_KEY")
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api_key=openai_api_key,
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base_url=openai_api_base,
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)
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models = client.models.list()
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model = models.data[0].id
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chat_completion = client.chat.completions.create(
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messages = [
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{"role": "user", "content": "What is your favourite condiment?"}, # insert your long context here
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{"role": "assistant", "content": "Well, I'm quite partial to a good squeeze of fresh lemon juice. It adds just the right amount of zesty flavour to whatever I'm cooking up in the kitchen!"},
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{"role": "user", "content": "Do you have mayonnaise recipes?"} # insert your long context here
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],
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model=model,
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)
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print("Chat completion results:")
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print(chat_completion)
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```
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### Deploy the Model as A SageMaker Endpoint ###
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To deploy MegaBeam-Mistral-7B-300k on a SageMaker endpoint, please follow the example code as below.
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```shell
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#Requires: [sagemaker](https://pypi.org/project/sagemaker/) 2.192.1 or later.
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pip install -U sagemaker
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```
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```python
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import sagemaker
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from sagemaker.huggingface import HuggingFaceModel, get_huggingface_llm_image_uri
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import time
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sagemaker_session = sagemaker.Session()
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region = sagemaker_session.boto_region_name
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role = sagemaker.get_execution_role()
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image_uri = get_huggingface_llm_image_uri(
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backend="huggingface", # or lmi
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region=region,
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)
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model_name = "MegaBeam-Mistral-7B-300k-" + time.strftime("%Y-%m-%d-%H-%M-%S", time.gmtime())
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hub = {
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'HF_MODEL_ID':'amazon/MegaBeam-Mistral-7B-300k',
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'HF_TASK':'text-generation',
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'SM_NUM_GPUS':'8',
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"MAX_INPUT_LENGTH": '288416',
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"MAX_TOTAL_TOKENS": '288800',
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"MAX_BATCH_PREFILL_TOKENS": '288800',
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"MAX_BATCH_TOTAL_TOKENS": '288800',
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}
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model = HuggingFaceModel(
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name=model_name,
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env=hub,
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role=role,
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image_uri=image_uri
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)
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predictor = model.deploy(
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initial_instance_count=1,
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instance_type="ml.g5.48xlarge",
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endpoint_name=model_name,
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)
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```
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## Limitations ##
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Before using the MegaBeam-Mistral-7B-300k model, it is important to perform your own independent assessment, and take measures to ensure that your use would comply with your own specific quality control practices and standards, and that your use would comply with the local rules, laws, regulations, licenses and terms that apply to you, and your content.
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config.json
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{
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"architectures": [
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"MistralForCausalLM"
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],
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"attention_dropout": 0.0,
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"bos_token_id": 1,
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"eos_token_id": 2,
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"hidden_act": "silu",
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"hidden_size": 4096,
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"initializer_range": 0.02,
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"intermediate_size": 14336,
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"max_position_embeddings": 524288,
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"model_type": "mistral",
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"num_attention_heads": 32,
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"num_hidden_layers": 32,
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"num_key_value_heads": 8,
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"rms_norm_eps": 1e-05,
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"rope_theta": 25000000.0,
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"sliding_window": null,
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"tie_word_embeddings": false,
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"torch_dtype": "bfloat16",
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"transformers_version": "4.36.0",
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"use_cache": true,
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"vocab_size": 32000
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}
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generation_config.json
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{
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"_from_model_config": true,
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"bos_token_id": 1,
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"eos_token_id": 2,
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"transformers_version": "4.36.0"
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}
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model-00001-of-00003.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:0daffec32968e29d5ead43fd533bf32f08027bb4bac574dd1ee52df18de519ed
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size 4943162336
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model-00002-of-00003.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:ebce173601842e82284325148fe1da3031d4dcc494b9d1f6cfb2e281c6405265
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size 4999819336
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model-00003-of-00003.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:fd97dbf6e8846b50f1a9abc791db4330d1c4dde0c9a91288da10e0feacf730ff
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size 4540516344
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model.safetensors.index.json
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