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cf01cfa
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Parent(s):
Duplicate from numind/NuExtract-v1.5
Browse filesCo-authored-by: Liam Cripwell <liamcripwell@users.noreply.huggingface.co>
- .gitattributes +35 -0
- 10-20_long_context.png +0 -0
- 8-10_long_context.png +0 -0
- README.md +184 -0
- config.json +138 -0
- english_bench.pdf +0 -0
- english_bench.png +0 -0
- fewshot_bench.png +0 -0
- finetuned_gains.pdf +0 -0
- generation_config.json +7 -0
- model-00001-of-00002.safetensors +3 -0
- model-00002-of-00002.safetensors +3 -0
- model.safetensors.index.json +202 -0
- multilingual_bench.pdf +0 -0
- multilingual_bench.png +0 -0
- special_tokens_map.json +30 -0
- tokenizer.json +0 -0
- tokenizer_config.json +137 -0
.gitattributes
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10-20_long_context.png
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8-10_long_context.png
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README.md
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---
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| 2 |
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license: mit
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language:
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- multilingual
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tags:
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- nlp
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base_model: microsoft/Phi-3.5-mini-instruct
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pipeline_tag: text-generation
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| 9 |
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---
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| 10 |
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| 11 |
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# NuExtract-v1.5 by NuMind 🔥
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| 12 |
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| 13 |
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NuExtract-v1.5 is a fine-tuning of [Phi-3.5-mini-instruct](https://huggingface.co/microsoft/Phi-3.5-mini-instruct), trained on a private high-quality dataset for structured information extraction. It supports long documents and several languages (English, French, Spanish, German, Portuguese, and Italian).
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| 14 |
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To use the model, provide an input text and a JSON template describing the information you need to extract.
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| 15 |
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Note: This model is trained to prioritize pure extraction, so in most cases all text generated by the model is present as is in the original text.
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| 17 |
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Check out the [blog post](https://numind.ai/blog/nuextract-1-5---multilingual-infinite-context-still-small-and-better-than-gpt-4o).
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Try it here: [Playground](https://huggingface.co/spaces/numind/NuExtract-v1.5)
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| 21 |
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We also provide a tiny (0.5B) version which is based on Qwen2.5-0.5B: [NuExtract-tiny-v1.5](https://huggingface.co/numind/NuExtract-tiny-v1.5)
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| 23 |
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## Benchmark
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| 25 |
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| 26 |
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Zero-shot performance (English):
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| 27 |
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| 28 |
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<p align="left">
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<img src="english_bench.png" style="height: auto;">
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| 30 |
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</p>
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| 31 |
+
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| 32 |
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Zero-shot performance (Multilingual):
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| 33 |
+
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| 34 |
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<p align="left">
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| 35 |
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<img src="multilingual_bench.png" style="height: auto;">
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| 36 |
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</p>
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| 37 |
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| 38 |
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Long documents (8-10k tokens):
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| 39 |
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| 40 |
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<p align="left">
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| 41 |
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<img src="8-10_long_context.png" style="height: auto;">
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| 42 |
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</p>
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| 43 |
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| 44 |
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Very long documents (10-20k tokens):
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| 45 |
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| 46 |
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<p align="left">
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| 47 |
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<img src="10-20_long_context.png" style="height: auto;">
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| 48 |
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</p>
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| 49 |
+
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| 50 |
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Few-shot fine-tuning:
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| 51 |
+
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| 52 |
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<p align="left">
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| 53 |
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<img src="fewshot_bench.png" style="height: auto;">
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| 54 |
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</p>
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| 55 |
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| 56 |
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## Usage
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| 57 |
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| 58 |
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To use the model:
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| 59 |
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| 60 |
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```python
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| 61 |
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import json
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| 62 |
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from transformers import AutoModelForCausalLM, AutoTokenizer
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| 63 |
+
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| 64 |
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def predict_NuExtract(model, tokenizer, texts, template, batch_size=1, max_length=10_000, max_new_tokens=4_000):
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| 65 |
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template = json.dumps(json.loads(template), indent=4)
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| 66 |
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prompts = [f"""<|input|>\n### Template:\n{template}\n### Text:\n{text}\n\n<|output|>""" for text in texts]
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| 67 |
+
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| 68 |
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outputs = []
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| 69 |
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with torch.no_grad():
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| 70 |
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for i in range(0, len(prompts), batch_size):
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| 71 |
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batch_prompts = prompts[i:i+batch_size]
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| 72 |
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batch_encodings = tokenizer(batch_prompts, return_tensors="pt", truncation=True, padding=True, max_length=max_length).to(model.device)
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| 73 |
+
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| 74 |
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pred_ids = model.generate(**batch_encodings, max_new_tokens=max_new_tokens)
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| 75 |
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outputs += tokenizer.batch_decode(pred_ids, skip_special_tokens=True)
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| 76 |
+
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| 77 |
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return [output.split("<|output|>")[1] for output in outputs]
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| 78 |
+
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| 79 |
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model_name = "numind/NuExtract-v1.5"
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| 80 |
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device = "cuda"
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| 81 |
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model = AutoModelForCausalLM.from_pretrained(model_name, torch_dtype=torch.bfloat16, trust_remote_code=True).to(device).eval()
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| 82 |
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tokenizer = AutoTokenizer.from_pretrained(model_name, trust_remote_code=True)
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| 83 |
+
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| 84 |
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text = """We introduce Mistral 7B, a 7–billion-parameter language model engineered for
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| 85 |
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superior performance and efficiency. Mistral 7B outperforms the best open 13B
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| 86 |
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model (Llama 2) across all evaluated benchmarks, and the best released 34B
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| 87 |
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model (Llama 1) in reasoning, mathematics, and code generation. Our model
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| 88 |
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leverages grouped-query attention (GQA) for faster inference, coupled with sliding
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| 89 |
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window attention (SWA) to effectively handle sequences of arbitrary length with a
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| 90 |
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reduced inference cost. We also provide a model fine-tuned to follow instructions,
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| 91 |
+
Mistral 7B – Instruct, that surpasses Llama 2 13B – chat model both on human and
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| 92 |
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automated benchmarks. Our models are released under the Apache 2.0 license.
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| 93 |
+
Code: <https://github.com/mistralai/mistral-src>
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| 94 |
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Webpage: <https://mistral.ai/news/announcing-mistral-7b/>"""
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| 95 |
+
|
| 96 |
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template = """{
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| 97 |
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"Model": {
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| 98 |
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"Name": "",
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| 99 |
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"Number of parameters": "",
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| 100 |
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"Number of max token": "",
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| 101 |
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"Architecture": []
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| 102 |
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},
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| 103 |
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"Usage": {
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| 104 |
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"Use case": [],
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| 105 |
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"Licence": ""
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| 106 |
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}
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| 107 |
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}"""
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| 108 |
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| 109 |
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prediction = predict_NuExtract(model, tokenizer, [text], template)[0]
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| 110 |
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print(prediction)
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| 111 |
+
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| 112 |
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```
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| 113 |
+
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| 114 |
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Sliding window prompting:
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| 115 |
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| 116 |
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```python
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| 117 |
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import json
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| 118 |
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| 119 |
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MAX_INPUT_SIZE = 20_000
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| 120 |
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MAX_NEW_TOKENS = 6000
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| 121 |
+
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| 122 |
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def clean_json_text(text):
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| 123 |
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text = text.strip()
|
| 124 |
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text = text.replace("\#", "#").replace("\&", "&")
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| 125 |
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return text
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| 126 |
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|
| 127 |
+
def predict_chunk(text, template, current, model, tokenizer):
|
| 128 |
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current = clean_json_text(current)
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| 129 |
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| 130 |
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input_llm = f"<|input|>\n### Template:\n{template}\n### Current:\n{current}\n### Text:\n{text}\n\n<|output|>" + "{"
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| 131 |
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input_ids = tokenizer(input_llm, return_tensors="pt", truncation=True, max_length=MAX_INPUT_SIZE).to("cuda")
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| 132 |
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output = tokenizer.decode(model.generate(**input_ids, max_new_tokens=MAX_NEW_TOKENS)[0], skip_special_tokens=True)
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| 133 |
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| 134 |
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return clean_json_text(output.split("<|output|>")[1])
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| 135 |
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| 136 |
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def split_document(document, window_size, overlap):
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| 137 |
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tokens = tokenizer.tokenize(document)
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| 138 |
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print(f"\tLength of document: {len(tokens)} tokens")
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| 139 |
+
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| 140 |
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chunks = []
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| 141 |
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if len(tokens) > window_size:
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| 142 |
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for i in range(0, len(tokens), window_size-overlap):
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| 143 |
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print(f"\t{i} to {i + len(tokens[i:i + window_size])}")
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| 144 |
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chunk = tokenizer.convert_tokens_to_string(tokens[i:i + window_size])
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| 145 |
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chunks.append(chunk)
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| 146 |
+
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| 147 |
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if i + len(tokens[i:i + window_size]) >= len(tokens):
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| 148 |
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break
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| 149 |
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else:
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| 150 |
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chunks.append(document)
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| 151 |
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print(f"\tSplit into {len(chunks)} chunks")
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| 152 |
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return chunks
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| 154 |
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| 155 |
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def handle_broken_output(pred, prev):
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| 156 |
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try:
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| 157 |
+
if all([(v in ["", []]) for v in json.loads(pred).values()]):
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| 158 |
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# if empty json, return previous
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| 159 |
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pred = prev
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except:
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# if broken json, return previous
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pred = prev
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| 163 |
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| 164 |
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return pred
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| 165 |
+
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| 166 |
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def sliding_window_prediction(text, template, model, tokenizer, window_size=4000, overlap=128):
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| 167 |
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# split text into chunks of n tokens
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| 168 |
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tokens = tokenizer.tokenize(text)
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| 169 |
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chunks = split_document(text, window_size, overlap)
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| 170 |
+
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| 171 |
+
# iterate over text chunks
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| 172 |
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prev = template
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| 173 |
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for i, chunk in enumerate(chunks):
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| 174 |
+
print(f"Processing chunk {i}...")
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| 175 |
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pred = predict_chunk(chunk, template, prev, model, tokenizer)
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| 176 |
+
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| 177 |
+
# handle broken output
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| 178 |
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pred = handle_broken_output(pred, prev)
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| 179 |
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| 180 |
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# iterate
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| 181 |
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prev = pred
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| 182 |
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| 183 |
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return pred
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```
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config.json
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|
| 1 |
+
{
|
| 2 |
+
"add_bos_token": false,
|
| 3 |
+
"add_eos_token": false,
|
| 4 |
+
"add_prefix_space": null,
|
| 5 |
+
"added_tokens_decoder": {
|
| 6 |
+
"0": {
|
| 7 |
+
"content": "<unk>",
|
| 8 |
+
"lstrip": false,
|
| 9 |
+
"normalized": false,
|
| 10 |
+
"rstrip": false,
|
| 11 |
+
"single_word": false,
|
| 12 |
+
"special": true
|
| 13 |
+
},
|
| 14 |
+
"1": {
|
| 15 |
+
"content": "<s>",
|
| 16 |
+
"lstrip": false,
|
| 17 |
+
"normalized": false,
|
| 18 |
+
"rstrip": false,
|
| 19 |
+
"single_word": false,
|
| 20 |
+
"special": true
|
| 21 |
+
},
|
| 22 |
+
"2": {
|
| 23 |
+
"content": "</s>",
|
| 24 |
+
"lstrip": false,
|
| 25 |
+
"normalized": false,
|
| 26 |
+
"rstrip": true,
|
| 27 |
+
"single_word": false,
|
| 28 |
+
"special": false
|
| 29 |
+
},
|
| 30 |
+
"32000": {
|
| 31 |
+
"content": "<|endoftext|>",
|
| 32 |
+
"lstrip": false,
|
| 33 |
+
"normalized": false,
|
| 34 |
+
"rstrip": false,
|
| 35 |
+
"single_word": false,
|
| 36 |
+
"special": true
|
| 37 |
+
},
|
| 38 |
+
"32001": {
|
| 39 |
+
"content": "<|assistant|>",
|
| 40 |
+
"lstrip": false,
|
| 41 |
+
"normalized": false,
|
| 42 |
+
"rstrip": true,
|
| 43 |
+
"single_word": false,
|
| 44 |
+
"special": true
|
| 45 |
+
},
|
| 46 |
+
"32002": {
|
| 47 |
+
"content": "<|placeholder1|>",
|
| 48 |
+
"lstrip": false,
|
| 49 |
+
"normalized": false,
|
| 50 |
+
"rstrip": true,
|
| 51 |
+
"single_word": false,
|
| 52 |
+
"special": true
|
| 53 |
+
},
|
| 54 |
+
"32003": {
|
| 55 |
+
"content": "<|placeholder2|>",
|
| 56 |
+
"lstrip": false,
|
| 57 |
+
"normalized": false,
|
| 58 |
+
"rstrip": true,
|
| 59 |
+
"single_word": false,
|
| 60 |
+
"special": true
|
| 61 |
+
},
|
| 62 |
+
"32004": {
|
| 63 |
+
"content": "<|placeholder3|>",
|
| 64 |
+
"lstrip": false,
|
| 65 |
+
"normalized": false,
|
| 66 |
+
"rstrip": true,
|
| 67 |
+
"single_word": false,
|
| 68 |
+
"special": true
|
| 69 |
+
},
|
| 70 |
+
"32005": {
|
| 71 |
+
"content": "<|placeholder4|>",
|
| 72 |
+
"lstrip": false,
|
| 73 |
+
"normalized": false,
|
| 74 |
+
"rstrip": true,
|
| 75 |
+
"single_word": false,
|
| 76 |
+
"special": true
|
| 77 |
+
},
|
| 78 |
+
"32006": {
|
| 79 |
+
"content": "<|system|>",
|
| 80 |
+
"lstrip": false,
|
| 81 |
+
"normalized": false,
|
| 82 |
+
"rstrip": true,
|
| 83 |
+
"single_word": false,
|
| 84 |
+
"special": true
|
| 85 |
+
},
|
| 86 |
+
"32007": {
|
| 87 |
+
"content": "<|end|>",
|
| 88 |
+
"lstrip": false,
|
| 89 |
+
"normalized": false,
|
| 90 |
+
"rstrip": true,
|
| 91 |
+
"single_word": false,
|
| 92 |
+
"special": true
|
| 93 |
+
},
|
| 94 |
+
"32008": {
|
| 95 |
+
"content": "<|placeholder5|>",
|
| 96 |
+
"lstrip": false,
|
| 97 |
+
"normalized": false,
|
| 98 |
+
"rstrip": true,
|
| 99 |
+
"single_word": false,
|
| 100 |
+
"special": true
|
| 101 |
+
},
|
| 102 |
+
"32009": {
|
| 103 |
+
"content": "<|placeholder6|>",
|
| 104 |
+
"lstrip": false,
|
| 105 |
+
"normalized": false,
|
| 106 |
+
"rstrip": true,
|
| 107 |
+
"single_word": false,
|
| 108 |
+
"special": true
|
| 109 |
+
},
|
| 110 |
+
"32010": {
|
| 111 |
+
"content": "<|user|>",
|
| 112 |
+
"lstrip": false,
|
| 113 |
+
"normalized": false,
|
| 114 |
+
"rstrip": true,
|
| 115 |
+
"single_word": false,
|
| 116 |
+
"special": true
|
| 117 |
+
}
|
| 118 |
+
},
|
| 119 |
+
"bos_token": "<s>",
|
| 120 |
+
"chat_template": "{% for message in messages %}{% if message['role'] == 'system' and message['content'] %}{{'<|system|>\n' + message['content'] + '<|end|>\n'}}{% elif message['role'] == 'user' %}{{'<|user|>\n' + message['content'] + '<|end|>\n'}}{% elif message['role'] == 'assistant' %}{{'<|assistant|>\n' + message['content'] + '<|end|>\n'}}{% endif %}{% endfor %}{% if add_generation_prompt %}{{ '<|assistant|>\n' }}{% else %}{{ eos_token }}{% endif %}",
|
| 121 |
+
"clean_up_tokenization_spaces": false,
|
| 122 |
+
"eos_token": "<|endoftext|>",
|
| 123 |
+
"legacy": false,
|
| 124 |
+
"max_length": 4000,
|
| 125 |
+
"model_max_length": 131072,
|
| 126 |
+
"pad_to_multiple_of": null,
|
| 127 |
+
"pad_token": "<|endoftext|>",
|
| 128 |
+
"pad_token_type_id": 0,
|
| 129 |
+
"padding_side": "left",
|
| 130 |
+
"sp_model_kwargs": {},
|
| 131 |
+
"stride": 0,
|
| 132 |
+
"tokenizer_class": "LlamaTokenizer",
|
| 133 |
+
"truncation_side": "right",
|
| 134 |
+
"truncation_strategy": "longest_first",
|
| 135 |
+
"unk_token": "<unk>",
|
| 136 |
+
"use_default_system_prompt": false
|
| 137 |
+
}
|