runninglsy
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Browse files- .gitattributes +1 -0
- README.md +105 -3
- config.json +248 -0
- configuration_ovis.py +359 -0
- generation_config.json +11 -0
- model-00001-of-00005.safetensors +3 -0
- model-00002-of-00005.safetensors +3 -0
- model-00003-of-00005.safetensors +3 -0
- model-00004-of-00005.safetensors +3 -0
- model-00005-of-00005.safetensors +3 -0
- model.safetensors.index.json +924 -0
- modeling_ovis.py +691 -0
- preprocessor_config.json +24 -0
- special_tokens_map.json +34 -0
- tokenizer.json +3 -0
- tokenizer.model +3 -0
- tokenizer_config.json +1757 -0
.gitattributes
CHANGED
@@ -33,3 +33,4 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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*tfevents* filter=lfs diff=lfs merge=lfs -text
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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*tfevents* filter=lfs diff=lfs merge=lfs -text
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tokenizer.json filter=lfs diff=lfs merge=lfs -text
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README.md
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@@ -1,3 +1,105 @@
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---
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license: apache-2.0
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---
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license: apache-2.0
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datasets:
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- AIDC-AI/Ovis-dataset
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library_name: transformers
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tags:
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- MLLM
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pipeline_tag: image-text-to-text
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---
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## Introduction
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Ovis is a novel Multimodal Large Language Model (MLLM) architecture, designed to structurally align visual and textual embeddings. For a comprehensive introduction, please refer to [Ovis paper](https://arxiv.org/abs/2405.20797) and [Ovis GitHub](https://github.com/AIDC-AI/Ovis).
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<div align="center">
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<img src="https://cdn-uploads.huggingface.co/production/uploads/658a8a837959448ef5500ce5/TIlymOb86R6_Mez3bpmcB.png" width="100%" />
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</div>
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## Model
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As always, Ovis1.5 remains fully open-source: we release the training datasets, training & inference codes, and model weights for **reproducible transparency** and community collaboration.
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| Ovis MLLMs | ViT | LLM | Training Datasets | Code | Model Weights |
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|:-------------------------|:-----------:|:------------------:|:-------------------------------------------------------------------:|:-------------------------------------------:|:----------------------------------------------------------------:|
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| Ovis1.5-Llama3-8B | Siglip-400M | Llama3-8B-Instruct | [Huggingface](https://huggingface.co/datasets/AIDC-AI/Ovis-dataset) | [Github](https://github.com/AIDC-AI/Ovis) | [Huggingface](https://huggingface.co/AIDC-AI/Ovis1.5-Llama3-8B) |
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| Ovis1.5-Gemma2-9B | Siglip-400M | Gemma2-9B-It | [Huggingface](https://huggingface.co/datasets/AIDC-AI/Ovis-dataset) | [Github](https://github.com/AIDC-AI/Ovis) | [Huggingface](https://huggingface.co/AIDC-AI/Ovis1.5-Gemma2-9B) |
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## Performance
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We evaluate Ovis across various multimodal benchmarks using [VLMEvalKit](https://github.com/open-compass/VLMEvalKit) and compare its performance to leading MLLMs with similar parameter scales.
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| | MiniCPM-Llama3-V2.5 | GLM-4V-9B | Ovis1.5-Llama3-8B | Ovis1.5-Gemma2-9B |
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|:------------------|--------------------:|----------:|------------------:|------------------:|
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| Open Weights | ✅ | ✅ | ✅ | ✅ |
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| Open Datasets | ❌ | ❌ | ✅ | ✅ |
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| MMTBench-VAL | 57.6 | 48.8 | 60.7 | **62.7** |
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| MMBench-EN-V1.1 | 74 | 68.7 | **78.2** | 78.0 |
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| MMBench-CN-V1.1 | 70.1 | 67.1 | **75.2** | 75.1 |
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| MMStar | 51.8 | 54.8 | 57.2 | **58.7** |
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| MMMU-Val | 45.8 | 46.9 | 48.6 | **49.8** |
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| MathVista-Mini | 54.3 | 51.1 | 62.4 | **65.7** |
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| HallusionBenchAvg | 42.4 | 45 | 44.5 | **48.0** |
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| AI2D | 78.4 | 71.2 | 82.5 | **84.7** |
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| OCRBench | 725 | **776** | 743 | 756 |
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| MMVet | 52.8 | **58** | 52.2 | 56.5 |
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| RealWorldQA | 63.5 | 66 | 64.6 | **66.9** |
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## Usage
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Below is a code snippet to run Ovis with multimodal inputs. For additional usage instructions, including inference wrapper and Gradio UI, please refer to [Ovis GitHub](https://github.com/AIDC-AI/Ovis?tab=readme-ov-file#inference).
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```bash
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pip install torch==2.1.2 transformers==4.43.2 pillow==10.3.0
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```
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```python
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import torch
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from PIL import Image
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from transformers import AutoModelForCausalLM
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# load model
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model = AutoModelForCausalLM.from_pretrained("AIDC-AI/Ovis1.5-Gemma2-9B",
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torch_dtype=torch.bfloat16,
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multimodal_max_length=8192,
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trust_remote_code=True).cuda()
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text_tokenizer = model.get_text_tokenizer()
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visual_tokenizer = model.get_visual_tokenizer()
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conversation_formatter = model.get_conversation_formatter()
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# enter image path and prompt
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image_path = input("Enter image path: ")
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image = Image.open(image_path)
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text = input("Enter prompt: ")
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query = f'<image>\n{text}'
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prompt, input_ids = conversation_formatter.format_query(query)
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input_ids = torch.unsqueeze(input_ids, dim=0).to(device=model.device)
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attention_mask = torch.ne(input_ids, text_tokenizer.pad_token_id).to(device=model.device)
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pixel_values = [visual_tokenizer.preprocess_image(image).to(
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dtype=visual_tokenizer.dtype, device=visual_tokenizer.device)]
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# generate output
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with torch.inference_mode():
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gen_kwargs = dict(
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max_new_tokens=1024,
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do_sample=False,
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top_p=None,
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top_k=None,
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temperature=None,
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repetition_penalty=None,
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eos_token_id=model.generation_config.eos_token_id,
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pad_token_id=text_tokenizer.pad_token_id,
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use_cache=True
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)
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output_ids = model.generate(input_ids, pixel_values=pixel_values, attention_mask=attention_mask, **gen_kwargs)[0]
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output = text_tokenizer.decode(output_ids, skip_special_tokens=True)
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print(f'Output: {output}')
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```
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## Citation
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If you find Ovis useful, please cite the paper
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```
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@article{lu2024ovis,
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title={Ovis: Structural Embedding Alignment for Multimodal Large Language Model},
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author={Shiyin Lu and Yang Li and Qing-Guo Chen and Zhao Xu and Weihua Luo and Kaifu Zhang and Han-Jia Ye},
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year={2024},
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journal={arXiv:2405.20797}
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}
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```
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## License
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The project is licensed under the Apache 2.0 License and is restricted to uses that comply with the license agreements of Qwen, Llama3, Clip, and Siglip.
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config.json
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{
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"architectures": [
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"Ovis"
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],
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"auto_map": {
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"AutoConfig": "configuration_ovis.OvisConfig",
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"AutoModelForCausalLM": "modeling_ovis.Ovis"
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},
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"conversation_formatter_class": "GemmaConversationFormatter",
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"hidden_size": 3584,
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"llm_config": {
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"_name_or_path": "google/gemma-2-9b-it",
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"add_cross_attention": false,
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"architectures": [
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"Gemma2ForCausalLM"
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],
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"attention_bias": false,
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"attention_dropout": 0.0,
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"attn_logit_softcapping": 50.0,
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"bad_words_ids": null,
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"begin_suppress_tokens": null,
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"bos_token_id": 2,
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"cache_implementation": "hybrid",
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"chunk_size_feed_forward": 0,
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"cross_attention_hidden_size": null,
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"decoder_start_token_id": null,
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"diversity_penalty": 0.0,
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"do_sample": false,
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"early_stopping": false,
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"encoder_no_repeat_ngram_size": 0,
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"eos_token_id": 1,
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"exponential_decay_length_penalty": null,
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"final_logit_softcapping": 30.0,
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"finetuning_task": null,
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"forced_bos_token_id": null,
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"forced_eos_token_id": null,
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"head_dim": 256,
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"hidden_act": "gelu_pytorch_tanh",
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"hidden_activation": "gelu_pytorch_tanh",
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"hidden_size": 3584,
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"id2label": {
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"0": "LABEL_0",
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"1": "LABEL_1"
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},
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"initializer_range": 0.02,
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"intermediate_size": 14336,
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"is_decoder": false,
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"is_encoder_decoder": false,
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"label2id": {
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"LABEL_0": 0,
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"LABEL_1": 1
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},
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"length_penalty": 1.0,
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"max_length": 20,
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"max_position_embeddings": 8192,
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"min_length": 0,
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"model_type": "gemma2",
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"no_repeat_ngram_size": 0,
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"num_attention_heads": 16,
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"num_beam_groups": 1,
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"num_beams": 1,
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"num_hidden_layers": 42,
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"num_key_value_heads": 8,
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"num_return_sequences": 1,
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"output_attentions": false,
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"output_hidden_states": false,
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"output_scores": false,
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"pad_token_id": 0,
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"prefix": null,
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"problem_type": null,
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"pruned_heads": {},
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"query_pre_attn_scalar": 256,
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"remove_invalid_values": false,
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"repetition_penalty": 1.0,
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"return_dict": true,
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"return_dict_in_generate": false,
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"rms_norm_eps": 1e-06,
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"rope_theta": 10000.0,
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"sep_token_id": null,
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"sliding_window": 4096,
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"sliding_window_size": 4096,
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"task_specific_params": null,
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"temperature": 1.0,
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"tf_legacy_loss": false,
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"tie_encoder_decoder": false,
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"tie_word_embeddings": true,
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"tokenizer_class": null,
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"top_k": 50,
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"top_p": 1.0,
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"torch_dtype": "bfloat16",
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"torchscript": false,
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"typical_p": 1.0,
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"use_bfloat16": false,
|
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"use_cache": true,
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"vocab_size": 256000
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},
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"model_type": "ovis",
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"multimodal_max_length": 8192,
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"torch_dtype": "bfloat16",
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"transformers_version": "4.43.2",
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"use_cache": true,
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"visual_tokenizer_config": {
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"_name_or_path": "",
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"architectures": null,
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"_name_or_path": "google/siglip-so400m-patch14-384",
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123 |
+
"exponential_decay_length_penalty": null,
|
124 |
+
"finetuning_task": null,
|
125 |
+
"forced_bos_token_id": null,
|
126 |
+
"forced_eos_token_id": null,
|
127 |
+
"hidden_act": "gelu_pytorch_tanh",
|
128 |
+
"hidden_size": 1152,
|
129 |
+
"id2label": {
|
130 |
+
"0": "LABEL_0",
|
131 |
+
"1": "LABEL_1"
|
132 |
+
},
|
133 |
+
"image_size": 384,
|
134 |
+
"intermediate_size": 4304,
|
135 |
+
"is_decoder": false,
|
136 |
+
"is_encoder_decoder": false,
|
137 |
+
"label2id": {
|
138 |
+
"LABEL_0": 0,
|
139 |
+
"LABEL_1": 1
|
140 |
+
},
|
141 |
+
"layer_norm_eps": 1e-06,
|
142 |
+
"length_penalty": 1.0,
|
143 |
+
"max_length": 20,
|
144 |
+
"min_length": 0,
|
145 |
+
"model_type": "siglip_vision_model",
|
146 |
+
"no_repeat_ngram_size": 0,
|
147 |
+
"num_attention_heads": 16,
|
148 |
+
"num_beam_groups": 1,
|
149 |
+
"num_beams": 1,
|
150 |
+
"num_channels": 3,
|
151 |
+
"num_hidden_layers": 27,
|
152 |
+
"num_return_sequences": 1,
|
153 |
+
"output_attentions": false,
|
154 |
+
"output_hidden_states": false,
|
155 |
+
"output_scores": false,
|
156 |
+
"pad_token_id": null,
|
157 |
+
"patch_size": 14,
|
158 |
+
"prefix": null,
|
159 |
+
"problem_type": null,
|
160 |
+
"pruned_heads": {},
|
161 |
+
"remove_invalid_values": false,
|
162 |
+
"repetition_penalty": 1.0,
|
163 |
+
"return_dict": true,
|
164 |
+
"return_dict_in_generate": false,
|
165 |
+
"sep_token_id": null,
|
166 |
+
"suppress_tokens": null,
|
167 |
+
"task_specific_params": null,
|
168 |
+
"temperature": 1.0,
|
169 |
+
"tf_legacy_loss": false,
|
170 |
+
"tie_encoder_decoder": false,
|
171 |
+
"tie_word_embeddings": true,
|
172 |
+
"tokenizer_class": null,
|
173 |
+
"top_k": 50,
|
174 |
+
"top_p": 1.0,
|
175 |
+
"torch_dtype": null,
|
176 |
+
"torchscript": false,
|
177 |
+
"typical_p": 1.0,
|
178 |
+
"use_bfloat16": false
|
179 |
+
},
|
180 |
+
"backbone_kwargs": {},
|
181 |
+
"bad_words_ids": null,
|
182 |
+
"begin_suppress_tokens": null,
|
183 |
+
"bos_token_id": null,
|
184 |
+
"chunk_size_feed_forward": 0,
|
185 |
+
"cross_attention_hidden_size": null,
|
186 |
+
"decoder_start_token_id": null,
|
187 |
+
"depths": null,
|
188 |
+
"diversity_penalty": 0.0,
|
189 |
+
"do_sample": false,
|
190 |
+
"drop_cls_token": false,
|
191 |
+
"early_stopping": false,
|
192 |
+
"encoder_no_repeat_ngram_size": 0,
|
193 |
+
"eos_token_id": null,
|
194 |
+
"exponential_decay_length_penalty": null,
|
195 |
+
"finetuning_task": null,
|
196 |
+
"forced_bos_token_id": null,
|
197 |
+
"forced_eos_token_id": null,
|
198 |
+
"hd_booster": "s2wrapper",
|
199 |
+
"hidden_stride": 1,
|
200 |
+
"id2label": {
|
201 |
+
"0": "LABEL_0",
|
202 |
+
"1": "LABEL_1"
|
203 |
+
},
|
204 |
+
"is_decoder": false,
|
205 |
+
"is_encoder_decoder": false,
|
206 |
+
"label2id": {
|
207 |
+
"LABEL_0": 0,
|
208 |
+
"LABEL_1": 1
|
209 |
+
},
|
210 |
+
"length_penalty": 1.0,
|
211 |
+
"max_length": 20,
|
212 |
+
"min_length": 0,
|
213 |
+
"model_type": "siglip_visual_tokenizer",
|
214 |
+
"no_repeat_ngram_size": 0,
|
215 |
+
"num_beam_groups": 1,
|
216 |
+
"num_beams": 1,
|
217 |
+
"num_return_sequences": 1,
|
218 |
+
"output_attentions": false,
|
219 |
+
"output_hidden_states": false,
|
220 |
+
"output_scores": false,
|
221 |
+
"pad_token_id": null,
|
222 |
+
"prefix": null,
|
223 |
+
"problem_type": null,
|
224 |
+
"pruned_heads": {},
|
225 |
+
"remove_invalid_values": false,
|
226 |
+
"repetition_penalty": 1.0,
|
227 |
+
"return_dict": true,
|
228 |
+
"return_dict_in_generate": false,
|
229 |
+
"sep_token_id": null,
|
230 |
+
"suppress_tokens": null,
|
231 |
+
"task_specific_params": null,
|
232 |
+
"tau": 1.0,
|
233 |
+
"temperature": 1.0,
|
234 |
+
"tf_legacy_loss": false,
|
235 |
+
"tie_encoder_decoder": false,
|
236 |
+
"tie_word_embeddings": true,
|
237 |
+
"tokenize_function": "softmax",
|
238 |
+
"tokenizer_class": null,
|
239 |
+
"top_k": 50,
|
240 |
+
"top_p": 1.0,
|
241 |
+
"torch_dtype": null,
|
242 |
+
"torchscript": false,
|
243 |
+
"typical_p": 1.0,
|
244 |
+
"use_bfloat16": false,
|
245 |
+
"use_indicators": true,
|
246 |
+
"vocab_size": 131072
|
247 |
+
}
|
248 |
+
}
|
configuration_ovis.py
ADDED
@@ -0,0 +1,359 @@
|
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|
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|
|
|
|
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|
|
|
|
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|
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|
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|
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|
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|
|
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|
|
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|
|
|
|
|
|
|
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|
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|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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|
|
|
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|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
import logging
|
2 |
+
from abc import ABC, abstractmethod
|
3 |
+
from typing import List, Dict, Union, Optional
|
4 |
+
|
5 |
+
import torch
|
6 |
+
from transformers import PretrainedConfig, AutoConfig
|
7 |
+
|
8 |
+
IGNORE_INDEX = -100
|
9 |
+
IMAGE_TOKEN_INDEX = -200
|
10 |
+
IMAGE_TOKEN = "<image>"
|
11 |
+
|
12 |
+
|
13 |
+
# ----------------------------------------------------------------------
|
14 |
+
# Visual Tokenizer Configuration
|
15 |
+
# ----------------------------------------------------------------------
|
16 |
+
class BaseVisualTokenizerConfig(PretrainedConfig):
|
17 |
+
def __init__(
|
18 |
+
self,
|
19 |
+
vocab_size=16384,
|
20 |
+
tokenize_function="softmax",
|
21 |
+
tau=1.0,
|
22 |
+
depths=None,
|
23 |
+
use_indicators=False,
|
24 |
+
drop_cls_token=False,
|
25 |
+
backbone_config: Optional[Union[PretrainedConfig, dict]] = None,
|
26 |
+
hidden_stride: int = 1,
|
27 |
+
hd_booster: Optional[str] = None,
|
28 |
+
**kwargs
|
29 |
+
):
|
30 |
+
super().__init__(**kwargs)
|
31 |
+
self.vocab_size = vocab_size
|
32 |
+
self.tokenize_function = tokenize_function
|
33 |
+
self.tau = tau
|
34 |
+
if isinstance(depths, str):
|
35 |
+
depths = [int(x) for x in depths.split('|')]
|
36 |
+
self.depths = depths
|
37 |
+
self.backbone_kwargs = {}
|
38 |
+
self.use_indicators = use_indicators
|
39 |
+
self.drop_cls_token = drop_cls_token
|
40 |
+
if backbone_config is not None:
|
41 |
+
assert isinstance(backbone_config, (PretrainedConfig, dict)), \
|
42 |
+
(f"expect `backbone_config` to be instance of PretrainedConfig or dict,"
|
43 |
+
f" but got {type(backbone_config)} type")
|
44 |
+
if not isinstance(backbone_config, PretrainedConfig):
|
45 |
+
model_type = backbone_config['model_type']
|
46 |
+
backbone_config.pop('model_type')
|
47 |
+
backbone_config = AutoConfig.for_model(model_type, **backbone_config)
|
48 |
+
self.backbone_config = backbone_config
|
49 |
+
self.hidden_stride = hidden_stride
|
50 |
+
self.hd_booster = hd_booster
|
51 |
+
|
52 |
+
|
53 |
+
class ClipVisualTokenizerConfig(BaseVisualTokenizerConfig):
|
54 |
+
model_type = "clip_visual_tokenizer"
|
55 |
+
|
56 |
+
def __init__(self, **kwargs):
|
57 |
+
super().__init__(**kwargs)
|
58 |
+
if self.depths:
|
59 |
+
assert len(self.depths) == 1
|
60 |
+
self.backbone_kwargs['num_hidden_layers'] = self.depths[0]
|
61 |
+
|
62 |
+
|
63 |
+
class SiglipVisualTokenizerConfig(BaseVisualTokenizerConfig):
|
64 |
+
model_type = "siglip_visual_tokenizer"
|
65 |
+
|
66 |
+
def __init__(self, **kwargs):
|
67 |
+
super().__init__(**kwargs)
|
68 |
+
if self.drop_cls_token:
|
69 |
+
logging.warning(
|
70 |
+
f'SiglipVisionModel has no cls token,'
|
71 |
+
f' so `drop_cls_token=True` is ignored and reset to `False`')
|
72 |
+
self.drop_cls_token = False
|
73 |
+
if self.depths:
|
74 |
+
assert len(self.depths) == 1
|
75 |
+
self.backbone_kwargs['num_hidden_layers'] = self.depths[0]
|
76 |
+
|
77 |
+
|
78 |
+
AutoConfig.register("clip_visual_tokenizer", ClipVisualTokenizerConfig)
|
79 |
+
AutoConfig.register("siglip_visual_tokenizer", SiglipVisualTokenizerConfig)
|
80 |
+
|
81 |
+
|
82 |
+
# ----------------------------------------------------------------------
|
83 |
+
# Ovis Configuration
|
84 |
+
# ----------------------------------------------------------------------
|
85 |
+
class OvisConfig(PretrainedConfig):
|
86 |
+
model_type = "ovis"
|
87 |
+
|
88 |
+
def __init__(
|
89 |
+
self,
|
90 |
+
llm_config: Optional[Union[PretrainedConfig, dict]] = None,
|
91 |
+
visual_tokenizer_config: Optional[Union[PretrainedConfig, dict]] = None,
|
92 |
+
multimodal_max_length=2048,
|
93 |
+
hidden_size=None,
|
94 |
+
conversation_formatter_class=None,
|
95 |
+
**kwargs
|
96 |
+
):
|
97 |
+
super().__init__(**kwargs)
|
98 |
+
if llm_config is not None:
|
99 |
+
assert isinstance(llm_config, (PretrainedConfig, dict)), \
|
100 |
+
(f"expect `llm_config` to be instance of PretrainedConfig or dict,"
|
101 |
+
f" but got {type(llm_config)} type")
|
102 |
+
if not isinstance(llm_config, PretrainedConfig):
|
103 |
+
model_type = llm_config['model_type']
|
104 |
+
llm_config.pop('model_type')
|
105 |
+
llm_config = AutoConfig.for_model(model_type, **llm_config)
|
106 |
+
self.llm_config = llm_config
|
107 |
+
if visual_tokenizer_config is not None:
|
108 |
+
assert isinstance(visual_tokenizer_config, (PretrainedConfig, dict)), \
|
109 |
+
(f"expect `visual_tokenizer_config` to be instance of PretrainedConfig or dict,"
|
110 |
+
f" but got {type(visual_tokenizer_config)} type")
|
111 |
+
if not isinstance(visual_tokenizer_config, PretrainedConfig):
|
112 |
+
model_type = visual_tokenizer_config['model_type']
|
113 |
+
visual_tokenizer_config.pop('model_type')
|
114 |
+
visual_tokenizer_config = AutoConfig.for_model(model_type, **visual_tokenizer_config)
|
115 |
+
self.visual_tokenizer_config = visual_tokenizer_config
|
116 |
+
self.multimodal_max_length = multimodal_max_length
|
117 |
+
self.hidden_size = hidden_size
|
118 |
+
self.conversation_formatter_class = conversation_formatter_class
|
119 |
+
|
120 |
+
|
121 |
+
# ----------------------------------------------------------------------
|
122 |
+
# Conversation Formatter
|
123 |
+
# ----------------------------------------------------------------------
|
124 |
+
class ConversationFormatter(ABC):
|
125 |
+
support_tokenizer_types = None
|
126 |
+
|
127 |
+
def __init__(self, tokenizer):
|
128 |
+
tokenizer_type = type(tokenizer).__name__
|
129 |
+
assert tokenizer_type in self.support_tokenizer_types, \
|
130 |
+
(f'Invalid tokenizer type, expected one from `{self.support_tokenizer_types}`,'
|
131 |
+
f' but got `{tokenizer_type}`')
|
132 |
+
self.tokenizer = tokenizer
|
133 |
+
self.image_symbol = IMAGE_TOKEN
|
134 |
+
self.image_token_index = IMAGE_TOKEN_INDEX
|
135 |
+
self.ignore_index = IGNORE_INDEX
|
136 |
+
|
137 |
+
def _tokenize_with_image_symbol(self, text):
|
138 |
+
text_chunks = [self.tokenizer(chunk, add_special_tokens=False).input_ids for chunk in
|
139 |
+
text.split(self.image_symbol)]
|
140 |
+
token_ids = []
|
141 |
+
num_chuck = len(text_chunks)
|
142 |
+
for i, chunk in enumerate(text_chunks):
|
143 |
+
token_ids.extend(chunk)
|
144 |
+
if i < num_chuck - 1:
|
145 |
+
token_ids.append(self.image_token_index)
|
146 |
+
return token_ids
|
147 |
+
|
148 |
+
@abstractmethod
|
149 |
+
def format(self, conversations: List[Dict], generation_preface=None):
|
150 |
+
pass
|
151 |
+
|
152 |
+
@abstractmethod
|
153 |
+
def format_query(self, query, generation_preface=""):
|
154 |
+
pass
|
155 |
+
|
156 |
+
|
157 |
+
class QwenConversationFormatter(ConversationFormatter):
|
158 |
+
support_tokenizer_types = ['QWenTokenizer', 'Qwen2TokenizerFast']
|
159 |
+
|
160 |
+
def __init__(self, tokenizer):
|
161 |
+
super().__init__(tokenizer)
|
162 |
+
self.from2role = {
|
163 |
+
"system": "<|im_start|>system\n",
|
164 |
+
"human": "<|im_start|>user\n",
|
165 |
+
"gpt": "<|im_start|>assistant\n",
|
166 |
+
}
|
167 |
+
self.gpt_token_num = None
|
168 |
+
self.im_end = "<|im_end|>\n"
|
169 |
+
self.default_system_prompt = "You are a helpful assistant."
|
170 |
+
|
171 |
+
def format(self, conversations: List[Dict], generation_preface=None):
|
172 |
+
if self.gpt_token_num is None:
|
173 |
+
self.gpt_token_num = len(
|
174 |
+
self.tokenizer(self.from2role["gpt"], add_special_tokens=False).input_ids)
|
175 |
+
|
176 |
+
if conversations[0]["from"] != "system":
|
177 |
+
conversations.insert(0, {
|
178 |
+
"from": "system",
|
179 |
+
"value": self.default_system_prompt
|
180 |
+
})
|
181 |
+
|
182 |
+
if generation_preface is not None:
|
183 |
+
conversations.append({
|
184 |
+
"from": "gpt",
|
185 |
+
"value": generation_preface
|
186 |
+
})
|
187 |
+
|
188 |
+
prompt = ""
|
189 |
+
input_ids = []
|
190 |
+
labels = []
|
191 |
+
num_conversation = len(conversations)
|
192 |
+
for i, conversation in enumerate(conversations):
|
193 |
+
frm = conversation["from"]
|
194 |
+
role = self.from2role[frm]
|
195 |
+
message = conversation["value"]
|
196 |
+
text = role + message
|
197 |
+
if i < num_conversation - 1 or generation_preface is None:
|
198 |
+
text += self.im_end
|
199 |
+
prompt += text
|
200 |
+
token_ids = self._tokenize_with_image_symbol(text)
|
201 |
+
input_ids.extend(token_ids)
|
202 |
+
label_ids = [self.ignore_index] * len(token_ids)
|
203 |
+
if frm == "gpt" and generation_preface is None:
|
204 |
+
# learning `\n` following `im_end` is meaningless, so the last `\n` token is ignored in label
|
205 |
+
label_ids[self.gpt_token_num:-1] = token_ids[self.gpt_token_num:-1]
|
206 |
+
labels.extend(label_ids)
|
207 |
+
|
208 |
+
assert self._tokenize_with_image_symbol(prompt) == input_ids
|
209 |
+
assert len(input_ids) == len(labels)
|
210 |
+
input_ids = torch.tensor(input_ids, dtype=torch.long)
|
211 |
+
labels = torch.tensor(labels, dtype=torch.long)
|
212 |
+
|
213 |
+
return prompt, input_ids, labels
|
214 |
+
|
215 |
+
def format_query(self, query, generation_preface=""):
|
216 |
+
prompt, input_ids, _ = self.format([{
|
217 |
+
"from": "human",
|
218 |
+
"value": query
|
219 |
+
}], generation_preface=generation_preface)
|
220 |
+
|
221 |
+
return prompt, input_ids
|
222 |
+
|
223 |
+
|
224 |
+
class Llama3ConversationFormatter(ConversationFormatter):
|
225 |
+
support_tokenizer_types = ['PreTrainedTokenizerFast']
|
226 |
+
|
227 |
+
def __init__(self, tokenizer):
|
228 |
+
super().__init__(tokenizer)
|
229 |
+
self.from2role = {
|
230 |
+
"system": "<|start_header_id|>system<|end_header_id|>\n\n",
|
231 |
+
"human": "<|start_header_id|>user<|end_header_id|>\n\n",
|
232 |
+
"gpt": "<|start_header_id|>assistant<|end_header_id|>\n\n",
|
233 |
+
}
|
234 |
+
self.gpt_token_num = None
|
235 |
+
self.im_end = "<|eot_id|>"
|
236 |
+
self.default_system_prompt = "You are a helpful and honest multimodal assistant."
|
237 |
+
self.bos_token = "<|begin_of_text|>"
|
238 |
+
self.bos_token_ids = None
|
239 |
+
|
240 |
+
def format(self, conversations: List[Dict], generation_preface=None):
|
241 |
+
if self.gpt_token_num is None:
|
242 |
+
self.gpt_token_num = len(
|
243 |
+
self.tokenizer(self.from2role["gpt"], add_special_tokens=False).input_ids)
|
244 |
+
|
245 |
+
if self.bos_token_ids is None:
|
246 |
+
self.bos_token_ids = self.tokenizer(self.bos_token, add_special_tokens=False).input_ids
|
247 |
+
|
248 |
+
if conversations[0]["from"] != "system":
|
249 |
+
conversations.insert(0, {
|
250 |
+
"from": "system",
|
251 |
+
"value": self.default_system_prompt
|
252 |
+
})
|
253 |
+
|
254 |
+
if generation_preface is not None:
|
255 |
+
conversations.append({
|
256 |
+
"from": "gpt",
|
257 |
+
"value": generation_preface
|
258 |
+
})
|
259 |
+
|
260 |
+
prompt = "" + self.bos_token
|
261 |
+
input_ids = [] + self.bos_token_ids
|
262 |
+
labels = [] + [IGNORE_INDEX] * len(input_ids)
|
263 |
+
num_conversation = len(conversations)
|
264 |
+
for i, conversation in enumerate(conversations):
|
265 |
+
frm = conversation["from"]
|
266 |
+
role = self.from2role[frm]
|
267 |
+
message = conversation["value"].strip()
|
268 |
+
text = role + message
|
269 |
+
if i < num_conversation - 1 or generation_preface is None:
|
270 |
+
text += self.im_end
|
271 |
+
prompt += text
|
272 |
+
token_ids = self._tokenize_with_image_symbol(text)
|
273 |
+
input_ids.extend(token_ids)
|
274 |
+
label_ids = [self.ignore_index] * len(token_ids)
|
275 |
+
if frm == "gpt":
|
276 |
+
label_ids[self.gpt_token_num:] = token_ids[self.gpt_token_num:]
|
277 |
+
labels.extend(label_ids)
|
278 |
+
|
279 |
+
assert self._tokenize_with_image_symbol(prompt) == input_ids
|
280 |
+
assert len(input_ids) == len(labels)
|
281 |
+
input_ids = torch.tensor(input_ids, dtype=torch.long)
|
282 |
+
labels = torch.tensor(labels, dtype=torch.long)
|
283 |
+
|
284 |
+
return prompt, input_ids, labels
|
285 |
+
|
286 |
+
def format_query(self, query, generation_preface=""):
|
287 |
+
prompt, input_ids, _ = self.format([{
|
288 |
+
"from": "human",
|
289 |
+
"value": query
|
290 |
+
}], generation_preface=generation_preface)
|
291 |
+
|
292 |
+
return prompt, input_ids
|
293 |
+
|
294 |
+
|
295 |
+
class GemmaConversationFormatter(ConversationFormatter):
|
296 |
+
support_tokenizer_types = ['GemmaTokenizer', 'GemmaTokenizerFast']
|
297 |
+
|
298 |
+
def __init__(self, tokenizer):
|
299 |
+
super().__init__(tokenizer)
|
300 |
+
# Gemma does not support system prompt
|
301 |
+
self.from2role = {
|
302 |
+
"human": "<start_of_turn>user\n",
|
303 |
+
"gpt": "<start_of_turn>model\n",
|
304 |
+
}
|
305 |
+
self.gpt_token_num = None
|
306 |
+
self.im_end = "<end_of_turn>\n"
|
307 |
+
self.bos_token = "<bos>"
|
308 |
+
self.bos_token_ids = None
|
309 |
+
|
310 |
+
def format(self, conversations: List[Dict], generation_preface=None):
|
311 |
+
if self.gpt_token_num is None:
|
312 |
+
self.gpt_token_num = len(self.tokenizer(self.from2role["gpt"], add_special_tokens=False).input_ids)
|
313 |
+
|
314 |
+
if self.bos_token_ids is None:
|
315 |
+
self.bos_token_ids = self.tokenizer(self.bos_token, add_special_tokens=False).input_ids
|
316 |
+
|
317 |
+
if conversations[0]["from"] == "system":
|
318 |
+
raise ValueError("Gemma does not support system prompt")
|
319 |
+
|
320 |
+
if generation_preface is not None:
|
321 |
+
conversations.append({
|
322 |
+
"from": "gpt",
|
323 |
+
"value": generation_preface
|
324 |
+
})
|
325 |
+
|
326 |
+
prompt = "" + self.bos_token
|
327 |
+
input_ids = [] + self.bos_token_ids
|
328 |
+
labels = [] + [IGNORE_INDEX] * len(input_ids)
|
329 |
+
num_conversation = len(conversations)
|
330 |
+
for i, conversation in enumerate(conversations):
|
331 |
+
frm = conversation["from"]
|
332 |
+
role = self.from2role[frm]
|
333 |
+
message = conversation["value"].strip()
|
334 |
+
text = role + message
|
335 |
+
if i < num_conversation - 1 or generation_preface is None:
|
336 |
+
text += self.im_end
|
337 |
+
prompt += text
|
338 |
+
token_ids = self._tokenize_with_image_symbol(text)
|
339 |
+
input_ids.extend(token_ids)
|
340 |
+
label_ids = [self.ignore_index] * len(token_ids)
|
341 |
+
if frm == "gpt":
|
342 |
+
# learning `\n` following `im_end` is meaningless, so the last `\n` token is ignored in label
|
343 |
+
label_ids[self.gpt_token_num:-1] = token_ids[self.gpt_token_num:-1]
|
344 |
+
labels.extend(label_ids)
|
345 |
+
|
346 |
+
assert self._tokenize_with_image_symbol(prompt) == input_ids
|
347 |
+
assert len(input_ids) == len(labels)
|
348 |
+
input_ids = torch.tensor(input_ids, dtype=torch.long)
|
349 |
+
labels = torch.tensor(labels, dtype=torch.long)
|
350 |
+
|
351 |
+
return prompt, input_ids, labels
|
352 |
+
|
353 |
+
def format_query(self, query, generation_preface=""):
|
354 |
+
prompt, input_ids, _ = self.format([{
|
355 |
+
"from": "human",
|
356 |
+
"value": query
|
357 |
+
}], generation_preface=generation_preface)
|
358 |
+
|
359 |
+
return prompt, input_ids
|
generation_config.json
ADDED
@@ -0,0 +1,11 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
{
|
2 |
+
"_from_model_config": true,
|
3 |
+
"bos_token_id": 2,
|
4 |
+
"cache_implementation": "hybrid",
|
5 |
+
"eos_token_id": [
|
6 |
+
1,
|
7 |
+
107
|
8 |
+
],
|
9 |
+
"pad_token_id": 0,
|
10 |
+
"transformers_version": "4.43.2"
|
11 |
+
}
|
model-00001-of-00005.safetensors
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:82e359e93af136382bc2709013f6a9e1e5650a686ee0ac17f8ee33f52bfb9f71
|
3 |
+
size 4903352248
|
model-00002-of-00005.safetensors
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:5fc6212bdccce1a9721d62f8e17c8043abc404544059e1082487f247cea18a85
|
3 |
+
size 4947571432
|
model-00003-of-00005.safetensors
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:55e6655d231cf58a3c50a580bbca82b7a2a9e21f3caceae084aadec4d0fbc4e0
|
3 |
+
size 4962222000
|
model-00004-of-00005.safetensors
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:4682e643748338edc4f3f162128515cfd8eb3897aa864b71fc110b1e0d3ca128
|
3 |
+
size 3670322624
|
model-00005-of-00005.safetensors
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:113f0c89991a2cc80ac0db110e3b2200dee3f4410b7393392f6b395ea762c6ff
|
3 |
+
size 4235546240
|
model.safetensors.index.json
ADDED
@@ -0,0 +1,924 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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|
|
|
|
|
|
|
|
|
|
|
|
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|
|
|
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|
|
|
|
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|
|
|
|
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|
|
|
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|
|
|
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|
|
|
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|
|
|
|
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|
|
|
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|
|
|
|
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|
|
|
|
|
|
|
|
|
|
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|
|
|
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|
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|
|
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|
|
|
|
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|
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|
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|
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|
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|
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|
|
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|
|
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|
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|
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|
|
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|
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|
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|
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|
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|
897 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.mlp.fc2.weight": "model-00005-of-00005.safetensors",
|
898 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.self_attn.k_proj.bias": "model-00005-of-00005.safetensors",
|
899 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.self_attn.k_proj.weight": "model-00005-of-00005.safetensors",
|
900 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.self_attn.out_proj.bias": "model-00005-of-00005.safetensors",
|
901 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.self_attn.out_proj.weight": "model-00005-of-00005.safetensors",
|
902 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.self_attn.q_proj.bias": "model-00005-of-00005.safetensors",
|
903 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.self_attn.q_proj.weight": "model-00005-of-00005.safetensors",
|
904 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.self_attn.v_proj.bias": "model-00005-of-00005.safetensors",
|
905 |
+
"visual_tokenizer.backbone.vision_model.encoder.layers.9.self_attn.v_proj.weight": "model-00005-of-00005.safetensors",
|
906 |
+
"visual_tokenizer.backbone.vision_model.head.attention.in_proj_bias": "model-00005-of-00005.safetensors",
|
907 |
+
"visual_tokenizer.backbone.vision_model.head.attention.in_proj_weight": "model-00005-of-00005.safetensors",
|
908 |
+
"visual_tokenizer.backbone.vision_model.head.attention.out_proj.bias": "model-00005-of-00005.safetensors",
|
909 |
+
"visual_tokenizer.backbone.vision_model.head.attention.out_proj.weight": "model-00005-of-00005.safetensors",
|
910 |
+
"visual_tokenizer.backbone.vision_model.head.layernorm.bias": "model-00005-of-00005.safetensors",
|
911 |
+
"visual_tokenizer.backbone.vision_model.head.layernorm.weight": "model-00005-of-00005.safetensors",
|
912 |
+
"visual_tokenizer.backbone.vision_model.head.mlp.fc1.bias": "model-00005-of-00005.safetensors",
|
913 |
+
"visual_tokenizer.backbone.vision_model.head.mlp.fc1.weight": "model-00005-of-00005.safetensors",
|
914 |
+
"visual_tokenizer.backbone.vision_model.head.mlp.fc2.bias": "model-00005-of-00005.safetensors",
|
915 |
+
"visual_tokenizer.backbone.vision_model.head.mlp.fc2.weight": "model-00005-of-00005.safetensors",
|
916 |
+
"visual_tokenizer.backbone.vision_model.head.probe": "model-00005-of-00005.safetensors",
|
917 |
+
"visual_tokenizer.backbone.vision_model.post_layernorm.bias": "model-00005-of-00005.safetensors",
|
918 |
+
"visual_tokenizer.backbone.vision_model.post_layernorm.weight": "model-00005-of-00005.safetensors",
|
919 |
+
"visual_tokenizer.head.0.weight": "model-00005-of-00005.safetensors",
|
920 |
+
"visual_tokenizer.head.1.bias": "model-00005-of-00005.safetensors",
|
921 |
+
"visual_tokenizer.head.1.weight": "model-00005-of-00005.safetensors",
|
922 |
+
"vte.weight": "model-00005-of-00005.safetensors"
|
923 |
+
}
|
924 |
+
}
|
modeling_ovis.py
ADDED
@@ -0,0 +1,691 @@
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|
1 |
+
import os
|
2 |
+
from importlib import import_module
|
3 |
+
from typing import List, Callable, Union, Optional
|
4 |
+
|
5 |
+
import PIL.Image
|
6 |
+
import torch
|
7 |
+
import torch.nn.functional as F
|
8 |
+
from torch import LongTensor, IntTensor, Tensor
|
9 |
+
from transformers import CLIPImageProcessor, CLIPVisionModel, SiglipImageProcessor, SiglipVisionModel
|
10 |
+
from transformers import PreTrainedModel, AutoModel, AutoTokenizer, AutoModelForCausalLM, AutoImageProcessor
|
11 |
+
from transformers.generation.utils import GenerateOutput
|
12 |
+
from transformers.cache_utils import HybridCache
|
13 |
+
|
14 |
+
from .configuration_ovis import BaseVisualTokenizerConfig, ClipVisualTokenizerConfig, SiglipVisualTokenizerConfig
|
15 |
+
from .configuration_ovis import OvisConfig, ConversationFormatter, IGNORE_INDEX, IMAGE_TOKEN_INDEX
|
16 |
+
|
17 |
+
|
18 |
+
# ----------------------------------------------------------------------
|
19 |
+
# Visual Tokenizer
|
20 |
+
# ----------------------------------------------------------------------
|
21 |
+
class BaseVisualTokenizer(PreTrainedModel):
|
22 |
+
base_model_prefix = "backbone"
|
23 |
+
main_input_name = None
|
24 |
+
_image_processor_class = None
|
25 |
+
_image_processor_kwargs = {}
|
26 |
+
_backbone_class = None
|
27 |
+
_backbone_name_or_path = None
|
28 |
+
|
29 |
+
def __init__(self, config: BaseVisualTokenizerConfig, *inputs, **kwargs):
|
30 |
+
super().__init__(config, *inputs, **kwargs)
|
31 |
+
if kwargs.get('train_from_scratch'):
|
32 |
+
self.image_processor = self._image_processor_class.from_pretrained(
|
33 |
+
self._backbone_name_or_path, **self._image_processor_kwargs)
|
34 |
+
self.backbone = self._backbone_class.from_pretrained(
|
35 |
+
self._backbone_name_or_path, **self.config.backbone_kwargs)
|
36 |
+
self.config.backbone_config = self.backbone.config
|
37 |
+
else:
|
38 |
+
self.image_processor = AutoImageProcessor.from_pretrained(
|
39 |
+
kwargs['image_processor_name_or_path'])
|
40 |
+
self.backbone = AutoModel.from_config(self.config.backbone_config)
|
41 |
+
self.head = None
|
42 |
+
|
43 |
+
assert all((self.image_processor.do_resize,
|
44 |
+
not getattr(self.image_processor, 'do_center_crop', False),
|
45 |
+
self.image_processor.do_rescale,
|
46 |
+
self.image_processor.do_normalize
|
47 |
+
)), f"image_processor `{self.image_processor}` is not supported currently"
|
48 |
+
|
49 |
+
def get_backbone(self):
|
50 |
+
return self.backbone
|
51 |
+
|
52 |
+
def get_image_processor(self):
|
53 |
+
return self.image_processor
|
54 |
+
|
55 |
+
def get_zero_pixel_values(self, n=1):
|
56 |
+
height, width = self.get_image_size()
|
57 |
+
if self.config.hd_booster is None:
|
58 |
+
return torch.zeros(n, 3, height, width)
|
59 |
+
elif self.config.hd_booster in ['s2wrapper', 's2wrapper-adaptive']:
|
60 |
+
return torch.zeros(n, 3 * 5, height, width)
|
61 |
+
else:
|
62 |
+
raise ValueError(f'Unsupported hd_booster {self.config.hd_booster}')
|
63 |
+
|
64 |
+
def get_head(self):
|
65 |
+
return self.head
|
66 |
+
|
67 |
+
def get_image_size(self):
|
68 |
+
raise NotImplementedError
|
69 |
+
|
70 |
+
def preprocess_image(self, image: PIL.Image.Image, convert_to_rgb=True):
|
71 |
+
def _preprocess(img: PIL.Image.Image):
|
72 |
+
# first resize and preprocess
|
73 |
+
sides = self.get_image_size()
|
74 |
+
if sides[0] != sides[1]:
|
75 |
+
raise ValueError('get_image_size() returns non-square size')
|
76 |
+
side = sides[0]
|
77 |
+
|
78 |
+
w, h = img.size
|
79 |
+
if w == h:
|
80 |
+
new_width = new_height = side
|
81 |
+
elif w > h:
|
82 |
+
new_width = side
|
83 |
+
new_height = int(h / w * new_width)
|
84 |
+
else:
|
85 |
+
new_height = side
|
86 |
+
new_width = int(w / h * new_height)
|
87 |
+
new_size = dict(height=new_height, width=new_width)
|
88 |
+
pixel_values = self.image_processor.preprocess(
|
89 |
+
img, size=new_size, return_tensors='pt')['pixel_values']
|
90 |
+
|
91 |
+
# then pad to square
|
92 |
+
square_values = torch.zeros(
|
93 |
+
[1, 3, side, side], dtype=pixel_values.dtype, device=pixel_values.device)
|
94 |
+
new_height, new_width = pixel_values.shape[2:]
|
95 |
+
if new_height == new_width:
|
96 |
+
square_values[:, :, :, :] = pixel_values
|
97 |
+
elif new_height > new_width:
|
98 |
+
from_index = (side - new_width) // 2
|
99 |
+
square_values[:, :, :, from_index:from_index + new_width] = pixel_values
|
100 |
+
else:
|
101 |
+
from_index = (side - new_height) // 2
|
102 |
+
square_values[:, :, from_index:from_index + new_height, :] = pixel_values
|
103 |
+
|
104 |
+
return square_values
|
105 |
+
|
106 |
+
if convert_to_rgb and image.mode != 'RGB':
|
107 |
+
image = image.convert('RGB')
|
108 |
+
|
109 |
+
if self.config.hd_booster is None:
|
110 |
+
return _preprocess(image) # [1, 3, side, side]
|
111 |
+
elif self.config.hd_booster in ['s2wrapper', 's2wrapper-adaptive']:
|
112 |
+
width, height = image.size
|
113 |
+
is_low_resolution = (height < self.get_image_size()[0] * 1.5 or
|
114 |
+
width < self.get_image_size()[1] * 1.5)
|
115 |
+
if self.config.hd_booster == 's2wrapper-adaptive' and is_low_resolution:
|
116 |
+
values = self.get_zero_pixel_values() + torch.inf
|
117 |
+
values[0][:3] = _preprocess(image)[0]
|
118 |
+
else:
|
119 |
+
center_x, center_y = width // 2, height // 2
|
120 |
+
image_top_left = image.crop((0, 0, center_x, center_y))
|
121 |
+
image_top_right = image.crop((center_x, 0, width, center_y))
|
122 |
+
image_bottom_left = image.crop((0, center_y, center_x, height))
|
123 |
+
image_bottom_right = image.crop((center_x, center_y, width, height))
|
124 |
+
imgs = [image, image_top_left, image_top_right, image_bottom_left, image_bottom_right]
|
125 |
+
values = torch.cat([_preprocess(img) for img in imgs], dim=1)
|
126 |
+
return values # [1, 3*5, side, side]
|
127 |
+
else:
|
128 |
+
raise ValueError(f'Unsupported hd_booster {self.config.hd_booster}')
|
129 |
+
|
130 |
+
def get_backbone_layer(self, index):
|
131 |
+
return self.backbone.vision_model.encoder.layers[index]
|
132 |
+
|
133 |
+
def tokenize(self, logits):
|
134 |
+
def st_argmax(y_soft, dim): # straight-through softmax
|
135 |
+
index = y_soft.max(dim, keepdim=True)[1]
|
136 |
+
y_hard = torch.zeros_like(
|
137 |
+
y_soft, memory_format=torch.legacy_contiguous_format).scatter_(dim, index, 1.0)
|
138 |
+
ret = y_hard - y_soft.detach() + y_soft
|
139 |
+
return ret
|
140 |
+
|
141 |
+
if self.config.tokenize_function == 'softmax':
|
142 |
+
tokens = F.softmax(logits, dim=-1)
|
143 |
+
elif self.config.tokenize_function == 'gumbel_argmax':
|
144 |
+
tokens = F.gumbel_softmax(logits, tau=self.config.tau, hard=True)
|
145 |
+
elif self.config.tokenize_function == 'st_argmax':
|
146 |
+
tokens = st_argmax(logits, dim=-1)
|
147 |
+
else:
|
148 |
+
raise ValueError(
|
149 |
+
f'Invalid `max_type`, expected softmax or gumbel_argmax or st_argmax,'
|
150 |
+
f' but got {self.config.tokenize_function}')
|
151 |
+
return tokens
|
152 |
+
|
153 |
+
|
154 |
+
class ClipVisualTokenizer(BaseVisualTokenizer):
|
155 |
+
config_class = ClipVisualTokenizerConfig
|
156 |
+
supports_gradient_checkpointing = True
|
157 |
+
_no_split_modules = ["CLIPEncoderLayer"]
|
158 |
+
_image_processor_class = CLIPImageProcessor
|
159 |
+
_image_processor_kwargs = dict(do_center_crop=False)
|
160 |
+
_backbone_class = CLIPVisionModel
|
161 |
+
_backbone_name_or_path = "openai/clip-vit-large-patch14-336"
|
162 |
+
|
163 |
+
def __init__(self, config: ClipVisualTokenizerConfig = None, *inputs, **kwargs):
|
164 |
+
super().__init__(config, *inputs, **kwargs)
|
165 |
+
head_dim = self.config.vocab_size
|
166 |
+
if self.config.use_indicators:
|
167 |
+
head_dim -= 2 # reserved for two image indicator tokens
|
168 |
+
if self.config.hd_booster is None:
|
169 |
+
self.head = torch.nn.Sequential(
|
170 |
+
torch.nn.Linear(self.backbone.config.hidden_size, head_dim, bias=False),
|
171 |
+
torch.nn.LayerNorm(head_dim)
|
172 |
+
)
|
173 |
+
elif self.config.hd_booster in ['s2wrapper', 's2wrapper-adaptive']:
|
174 |
+
self.head = torch.nn.Sequential(
|
175 |
+
torch.nn.Linear(self.backbone.config.hidden_size * 2, head_dim, bias=False),
|
176 |
+
torch.nn.LayerNorm(head_dim)
|
177 |
+
)
|
178 |
+
else:
|
179 |
+
raise ValueError(f'Unsupported hd_booster {self.config.hd_booster}')
|
180 |
+
|
181 |
+
def get_image_size(self):
|
182 |
+
height = self.image_processor.crop_size["height"]
|
183 |
+
width = self.image_processor.crop_size["width"]
|
184 |
+
return height, width
|
185 |
+
|
186 |
+
def encode(self, pixel_values):
|
187 |
+
if self.config.hd_booster is None:
|
188 |
+
output = self.backbone(pixel_values, output_hidden_states=True, return_dict=True)
|
189 |
+
features = output.hidden_states[-1]
|
190 |
+
if self.config.drop_cls_token:
|
191 |
+
features = features[:, 1:, :]
|
192 |
+
elif self.config.hd_booster in ['s2wrapper', 's2wrapper-adaptive']:
|
193 |
+
n, c, side, _ = pixel_values.shape
|
194 |
+
if self.config.hd_booster == 's2wrapper-adaptive':
|
195 |
+
pixel_values_mask = torch.isinf(pixel_values) # [n, c, side, side]
|
196 |
+
pixel_values = torch.masked_fill(pixel_values, pixel_values_mask, 0.0)
|
197 |
+
pixel_values = pixel_values.reshape(n * 5, c // 5, side, side)
|
198 |
+
output = self.backbone(pixel_values, output_hidden_states=True, return_dict=True)
|
199 |
+
features = output.hidden_states[-1]
|
200 |
+
if self.config.drop_cls_token:
|
201 |
+
features = features[:, 1:, :]
|
202 |
+
_, l, d = features.shape
|
203 |
+
features = features.reshape(n, 5, l, d)
|
204 |
+
features_overall = features[:, 0, :, :] # [n, l, d]
|
205 |
+
features_parts = features[:, 1:, :, :] # [n, 4, l, d]
|
206 |
+
sqrt_l = int(l ** 0.5)
|
207 |
+
assert sqrt_l ** 2 == l, "The token sequence length should be a perfect square."
|
208 |
+
features_parts = features_parts.reshape(n, 4, sqrt_l, sqrt_l, d) # [n, 4, sqrt(l), sqrt(l), d]
|
209 |
+
features_top = torch.concat(
|
210 |
+
[features_parts[:, 0, :, :, :], features_parts[:, 1, :, :, :]], dim=-2) # [n, sqrt(l), sqrt(l)*2, d]
|
211 |
+
features_bottom = torch.concat(
|
212 |
+
[features_parts[:, 2, :, :, :], features_parts[:, 3, :, :, :]], dim=-2) # [n, sqrt(l), sqrt(l)*2, d]
|
213 |
+
features_merge = torch.concat([features_top, features_bottom], dim=-3) # [n, sqrt(l)*2, sqrt(l)*2, d]
|
214 |
+
features_pool = F.interpolate(
|
215 |
+
features_merge.permute(0, 3, 1, 2).to(torch.float32),
|
216 |
+
size=sqrt_l,
|
217 |
+
mode='area'
|
218 |
+
) # [n, d, sqrt_l, sqrt_l]
|
219 |
+
features_pool = features_pool.flatten(2).permute(0, 2, 1).to(features.dtype) # [n, l, d]
|
220 |
+
if self.config.hd_booster == 's2wrapper-adaptive':
|
221 |
+
features_pool_mask = torch.unsqueeze(
|
222 |
+
torch.unsqueeze(pixel_values_mask[:, -1, -1, -1], dim=-1), dim=-1) # [n, 1, 1]
|
223 |
+
features_pool = torch.masked_fill(features_pool, features_pool_mask, 0.0)
|
224 |
+
features = torch.cat([features_overall, features_pool], dim=-1) # [n, l, 2*d]
|
225 |
+
else:
|
226 |
+
raise ValueError(f'Unsupported hd_booster {self.config.hd_booster}')
|
227 |
+
return features
|
228 |
+
|
229 |
+
def forward(self, pixel_values) -> Tensor: # [BatchSize, ImageShape] -> [BatchSize, #Token, VocabSize]
|
230 |
+
features = self.encode(pixel_values)
|
231 |
+
logits = self.head(features)
|
232 |
+
tokens = self.tokenize(logits)
|
233 |
+
if self.config.use_indicators:
|
234 |
+
# tokens' shape is [BatchSize, #Token, VocabSize-2], so padding with [BatchSize, #Token, 2],
|
235 |
+
# after which, tokens' shape should become [BatchSize, #Token, VocabSize]
|
236 |
+
batch_size, token_len, _ = tokens.shape
|
237 |
+
padding_tensor = torch.zeros(
|
238 |
+
size=(batch_size, token_len, 2),
|
239 |
+
dtype=tokens.dtype,
|
240 |
+
device=tokens.device,
|
241 |
+
layout=tokens.layout,
|
242 |
+
requires_grad=False
|
243 |
+
)
|
244 |
+
tokens = torch.cat((tokens, padding_tensor), dim=2)
|
245 |
+
|
246 |
+
# adding indicator tokens, after which tokens' shape should become [BatchSize, 1+#Token+1, VocabSize]
|
247 |
+
begin_indicator = torch.zeros(
|
248 |
+
size=(batch_size, 1),
|
249 |
+
dtype=torch.long,
|
250 |
+
device=tokens.device,
|
251 |
+
requires_grad=False
|
252 |
+
) + self.config.vocab_size - 2
|
253 |
+
begin_indicator_token = F.one_hot(
|
254 |
+
begin_indicator, num_classes=self.config.vocab_size).to(dtype=tokens.dtype)
|
255 |
+
end_indicator = torch.zeros(
|
256 |
+
size=(batch_size, 1),
|
257 |
+
dtype=torch.long,
|
258 |
+
device=tokens.device,
|
259 |
+
requires_grad=False
|
260 |
+
) + self.config.vocab_size - 1
|
261 |
+
end_indicator_token = F.one_hot(
|
262 |
+
end_indicator, num_classes=self.config.vocab_size).to(dtype=tokens.dtype)
|
263 |
+
tokens = torch.cat((begin_indicator_token, tokens, end_indicator_token), dim=1)
|
264 |
+
return tokens
|
265 |
+
|
266 |
+
|
267 |
+
class SiglipVisualTokenizer(BaseVisualTokenizer):
|
268 |
+
config_class = SiglipVisualTokenizerConfig
|
269 |
+
supports_gradient_checkpointing = True
|
270 |
+
_no_split_modules = ["SiglipVisionTransformer"]
|
271 |
+
_image_processor_class = SiglipImageProcessor
|
272 |
+
_image_processor_kwargs = {}
|
273 |
+
_backbone_class = SiglipVisionModel
|
274 |
+
_backbone_name_or_path = "google/siglip-so400m-patch14-384"
|
275 |
+
|
276 |
+
def __init__(self, config: SiglipVisualTokenizerConfig = None, *inputs, **kwargs):
|
277 |
+
super().__init__(config, *inputs, **kwargs)
|
278 |
+
head_dim = self.config.vocab_size
|
279 |
+
if self.config.use_indicators:
|
280 |
+
head_dim -= 2 # reserved for two image indicator tokens
|
281 |
+
if self.config.hd_booster is None:
|
282 |
+
self.head = torch.nn.Sequential(
|
283 |
+
torch.nn.Linear(
|
284 |
+
self.backbone.config.hidden_size * self.config.hidden_stride * self.config.hidden_stride,
|
285 |
+
head_dim,
|
286 |
+
bias=False
|
287 |
+
),
|
288 |
+
torch.nn.LayerNorm(head_dim)
|
289 |
+
)
|
290 |
+
elif self.config.hd_booster in ['s2wrapper', 's2wrapper-adaptive']:
|
291 |
+
self.head = torch.nn.Sequential(
|
292 |
+
torch.nn.Linear(
|
293 |
+
self.backbone.config.hidden_size * self.config.hidden_stride * self.config.hidden_stride * 2,
|
294 |
+
head_dim,
|
295 |
+
bias=False
|
296 |
+
),
|
297 |
+
torch.nn.LayerNorm(head_dim)
|
298 |
+
)
|
299 |
+
else:
|
300 |
+
raise ValueError(f'Unsupported hd_booster {self.config.hd_booster}')
|
301 |
+
|
302 |
+
def get_image_size(self):
|
303 |
+
height = self.image_processor.size["height"]
|
304 |
+
width = self.image_processor.size["width"]
|
305 |
+
return height, width
|
306 |
+
|
307 |
+
def encode(self, pixel_values):
|
308 |
+
if self.config.hd_booster is None:
|
309 |
+
output = self.backbone(pixel_values, output_hidden_states=True, return_dict=True)
|
310 |
+
features = output.hidden_states[-1]
|
311 |
+
if self.config.drop_cls_token:
|
312 |
+
features = features[:, 1:, :]
|
313 |
+
elif self.config.hd_booster in ['s2wrapper', 's2wrapper-adaptive']:
|
314 |
+
n, c, side, _ = pixel_values.shape
|
315 |
+
if self.config.hd_booster == 's2wrapper-adaptive':
|
316 |
+
pixel_values_mask = torch.isinf(pixel_values) # [n, c, side, side]
|
317 |
+
pixel_values = torch.masked_fill(pixel_values, pixel_values_mask, 0.0)
|
318 |
+
pixel_values = pixel_values.reshape(n * 5, c // 5, side, side)
|
319 |
+
output = self.backbone(pixel_values, output_hidden_states=True, return_dict=True)
|
320 |
+
features = output.hidden_states[-1]
|
321 |
+
if self.config.drop_cls_token:
|
322 |
+
features = features[:, 1:, :]
|
323 |
+
_, l, d = features.shape
|
324 |
+
features = features.reshape(n, 5, l, d)
|
325 |
+
features_overall = features[:, 0, :, :] # [n, l, d]
|
326 |
+
features_parts = features[:, 1:, :, :] # [n, 4, l, d]
|
327 |
+
sqrt_l = int(l ** 0.5)
|
328 |
+
assert sqrt_l ** 2 == l, "The token sequence length should be a perfect square."
|
329 |
+
features_parts = features_parts.reshape(n, 4, sqrt_l, sqrt_l, d) # [n, 4, sqrt(l), sqrt(l), d]
|
330 |
+
features_top = torch.concat(
|
331 |
+
[features_parts[:, 0, :, :, :], features_parts[:, 1, :, :, :]], dim=-2) # [n, sqrt(l), sqrt(l)*2, d]
|
332 |
+
features_bottom = torch.concat(
|
333 |
+
[features_parts[:, 2, :, :, :], features_parts[:, 3, :, :, :]], dim=-2) # [n, sqrt(l), sqrt(l)*2, d]
|
334 |
+
features_merge = torch.concat([features_top, features_bottom], dim=-3) # [n, sqrt(l)*2, sqrt(l)*2, d]
|
335 |
+
features_pool = F.interpolate(
|
336 |
+
features_merge.permute(0, 3, 1, 2).to(torch.float32),
|
337 |
+
size=sqrt_l,
|
338 |
+
mode='area'
|
339 |
+
) # [n, d, sqrt_l, sqrt_l]
|
340 |
+
features_pool = features_pool.flatten(2).permute(0, 2, 1).to(features.dtype) # [n, l, d]
|
341 |
+
if self.config.hd_booster == 's2wrapper-adaptive':
|
342 |
+
features_pool_mask = torch.unsqueeze(
|
343 |
+
torch.unsqueeze(pixel_values_mask[:, -1, -1, -1], dim=-1), dim=-1) # [n, 1, 1]
|
344 |
+
features_pool = torch.masked_fill(features_pool, features_pool_mask, 0.0)
|
345 |
+
features = torch.cat([features_overall, features_pool], dim=-1) # [n, l, 2*d]
|
346 |
+
else:
|
347 |
+
raise ValueError(f'Unsupported hd_booster {self.config.hd_booster}')
|
348 |
+
|
349 |
+
# merge number of `hidden_stride * hidden_stride` hidden states together to reduce token sequence length
|
350 |
+
# e.g., for hidden_stride=3, this leads to a token length reduction: 729 -> 81
|
351 |
+
if self.config.hidden_stride > 1:
|
352 |
+
n, l, d = features.shape # this `d` maybe different from the above `d
|
353 |
+
sqrt_l = int(l ** 0.5)
|
354 |
+
assert sqrt_l ** 2 == l, "The token sequence length should be a perfect square."
|
355 |
+
assert l % (self.config.hidden_stride ** 2) == 0, \
|
356 |
+
"The token sequence length should be divisible by `hidden_stride**2`."
|
357 |
+
features = features.reshape(n, sqrt_l, sqrt_l, d)
|
358 |
+
features = features.reshape(n, sqrt_l // self.config.hidden_stride, self.config.hidden_stride,
|
359 |
+
sqrt_l // self.config.hidden_stride, self.config.hidden_stride, d)
|
360 |
+
features = features.permute(0, 1, 3, 2, 4, 5) # [n, sqrt_l/hs, sqrt_l/hs, hs, hs, d]
|
361 |
+
features = features.flatten(3) # [n, sqrt_l/hs, sqrt_l/hs, hs*hs*d]
|
362 |
+
features = features.reshape(n, l // (self.config.hidden_stride * self.config.hidden_stride),
|
363 |
+
self.config.hidden_stride * self.config.hidden_stride * d)
|
364 |
+
|
365 |
+
return features
|
366 |
+
|
367 |
+
def forward(self, pixel_values) -> Tensor: # [BatchSize, ImageShape] -> [BatchSize, #Token, VocabSize]
|
368 |
+
features = self.encode(pixel_values)
|
369 |
+
logits = self.head(features)
|
370 |
+
tokens = self.tokenize(logits)
|
371 |
+
if self.config.use_indicators:
|
372 |
+
# tokens' shape is [BatchSize, #Token, VocabSize-2], so padding with [BatchSize, #Token, 2], after
|
373 |
+
# which, tokens' shape should become [BatchSize, #Token, VocabSize]
|
374 |
+
batch_size, token_len, _ = tokens.shape
|
375 |
+
padding_tensor = torch.zeros(
|
376 |
+
size=(batch_size, token_len, 2),
|
377 |
+
dtype=tokens.dtype,
|
378 |
+
device=tokens.device,
|
379 |
+
layout=tokens.layout,
|
380 |
+
requires_grad=False
|
381 |
+
)
|
382 |
+
tokens = torch.cat((tokens, padding_tensor), dim=2)
|
383 |
+
|
384 |
+
# adding indicator tokens, after which tokens' shape should become [BatchSize, 1+#Token+1, VocabSize]
|
385 |
+
begin_indicator = torch.zeros(
|
386 |
+
size=(batch_size, 1),
|
387 |
+
dtype=torch.long,
|
388 |
+
device=tokens.device,
|
389 |
+
requires_grad=False
|
390 |
+
) + self.config.vocab_size - 2
|
391 |
+
begin_indicator_token = F.one_hot(
|
392 |
+
begin_indicator, num_classes=self.config.vocab_size).to(dtype=tokens.dtype)
|
393 |
+
end_indicator = torch.zeros(
|
394 |
+
size=(batch_size, 1),
|
395 |
+
dtype=torch.long,
|
396 |
+
device=tokens.device,
|
397 |
+
requires_grad=False
|
398 |
+
) + self.config.vocab_size - 1
|
399 |
+
end_indicator_token = F.one_hot(
|
400 |
+
end_indicator, num_classes=self.config.vocab_size).to(dtype=tokens.dtype)
|
401 |
+
tokens = torch.cat((begin_indicator_token, tokens, end_indicator_token), dim=1)
|
402 |
+
return tokens
|
403 |
+
|
404 |
+
|
405 |
+
AutoModel.register(ClipVisualTokenizerConfig, ClipVisualTokenizer)
|
406 |
+
AutoModel.register(SiglipVisualTokenizerConfig, SiglipVisualTokenizer)
|
407 |
+
|
408 |
+
|
409 |
+
# ----------------------------------------------------------------------
|
410 |
+
# Ovis
|
411 |
+
# ----------------------------------------------------------------------
|
412 |
+
class VisualEmbedding(torch.nn.Embedding):
|
413 |
+
def forward(self, input: Tensor) -> Tensor:
|
414 |
+
if any((isinstance(input, LongTensor), isinstance(input, IntTensor))):
|
415 |
+
return super().forward(input)
|
416 |
+
return torch.matmul(input, self.weight)
|
417 |
+
|
418 |
+
|
419 |
+
class OvisPreTrainedModel(PreTrainedModel):
|
420 |
+
config_class = OvisConfig
|
421 |
+
base_model_prefix = "ovis"
|
422 |
+
|
423 |
+
|
424 |
+
class Ovis(OvisPreTrainedModel):
|
425 |
+
|
426 |
+
def __init__(self, config: OvisConfig, *inputs, **kwargs):
|
427 |
+
super().__init__(config, *inputs, **kwargs)
|
428 |
+
self.llm = AutoModelForCausalLM.from_config(self.config.llm_config, attn_implementation="sdpa")
|
429 |
+
assert self.config.hidden_size == self.llm.config.hidden_size, "hidden size mismatch"
|
430 |
+
self.text_tokenizer = AutoTokenizer.from_pretrained(self.config.name_or_path)
|
431 |
+
self.visual_tokenizer = AutoModel.from_config(
|
432 |
+
self.config.visual_tokenizer_config,
|
433 |
+
image_processor_name_or_path=self.config.name_or_path
|
434 |
+
)
|
435 |
+
self.vte = VisualEmbedding(
|
436 |
+
self.config.visual_tokenizer_config.vocab_size,
|
437 |
+
self.config.hidden_size,
|
438 |
+
device=self.visual_tokenizer.device,
|
439 |
+
dtype=self.visual_tokenizer.dtype
|
440 |
+
)
|
441 |
+
|
442 |
+
def _merge_modules(modules_list: tuple):
|
443 |
+
merged_modules = []
|
444 |
+
for modules in modules_list:
|
445 |
+
merged_modules.extend(modules if modules else [])
|
446 |
+
return merged_modules
|
447 |
+
|
448 |
+
self._no_split_modules = _merge_modules(
|
449 |
+
(self.llm._no_split_modules, self.visual_tokenizer._no_split_modules))
|
450 |
+
self._skip_keys_device_placement = self.llm._skip_keys_device_placement
|
451 |
+
self._keep_in_fp32_modules = _merge_modules(
|
452 |
+
(self.llm._keep_in_fp32_modules, self.visual_tokenizer._keep_in_fp32_modules))
|
453 |
+
self.is_parallelizable = all((self.llm.is_parallelizable, self.visual_tokenizer.is_parallelizable))
|
454 |
+
self.supports_gradient_checkpointing = all(
|
455 |
+
(self.llm.supports_gradient_checkpointing, self.visual_tokenizer.supports_gradient_checkpointing))
|
456 |
+
self._supports_flash_attn_2 = all(
|
457 |
+
(self.llm._supports_flash_attn_2, self.visual_tokenizer._supports_flash_attn_2))
|
458 |
+
self._supports_sdpa = all((self.llm._supports_sdpa, self.visual_tokenizer._supports_sdpa))
|
459 |
+
|
460 |
+
def get_text_tokenizer(self):
|
461 |
+
return self.text_tokenizer
|
462 |
+
|
463 |
+
def get_visual_tokenizer(self):
|
464 |
+
return self.visual_tokenizer
|
465 |
+
|
466 |
+
def get_llm(self):
|
467 |
+
return self.llm
|
468 |
+
|
469 |
+
def get_vte(self):
|
470 |
+
return self.vte
|
471 |
+
|
472 |
+
def get_wte(self):
|
473 |
+
return self.llm.get_input_embeddings()
|
474 |
+
|
475 |
+
def get_conversation_formatter(self) -> ConversationFormatter:
|
476 |
+
if getattr(self, 'conversation_formatter', None) is None:
|
477 |
+
self.conversation_formatter = getattr(
|
478 |
+
import_module(".configuration_ovis", __package__),
|
479 |
+
self.config.conversation_formatter_class
|
480 |
+
)(self.text_tokenizer)
|
481 |
+
return self.conversation_formatter
|
482 |
+
|
483 |
+
def forward(
|
484 |
+
self,
|
485 |
+
input_ids: torch.Tensor,
|
486 |
+
attention_mask: torch.Tensor,
|
487 |
+
labels: Optional[torch.Tensor],
|
488 |
+
pixel_values: List[Optional[torch.Tensor]],
|
489 |
+
**kwargs
|
490 |
+
):
|
491 |
+
assert self.training, "`forward` can only be used in training. For inference, use `generate`."
|
492 |
+
_, inputs_embeds, labels, attention_mask = self.merge_multimodal(
|
493 |
+
text_input_ids=input_ids,
|
494 |
+
text_attention_masks=attention_mask,
|
495 |
+
text_labels=labels,
|
496 |
+
pixel_values=pixel_values
|
497 |
+
)
|
498 |
+
return self.llm(inputs_embeds=inputs_embeds, labels=labels, attention_mask=attention_mask, **kwargs)
|
499 |
+
|
500 |
+
def merge_multimodal(
|
501 |
+
self,
|
502 |
+
text_input_ids: torch.Tensor,
|
503 |
+
text_attention_masks: torch.Tensor,
|
504 |
+
text_labels: Optional[torch.Tensor],
|
505 |
+
pixel_values: List[Optional[torch.Tensor]]
|
506 |
+
):
|
507 |
+
input_device = text_input_ids.device
|
508 |
+
if self.training:
|
509 |
+
# When training, to be compatible with deepspeed zero, each sample has to include pixel_value tensor.
|
510 |
+
# For text-only sample, one can simply use a full zero tensor as pixel_value, which will be ignored
|
511 |
+
# (see below in this function); so, the gradient will not be affected.
|
512 |
+
num_images = [x.shape[0] for x in pixel_values]
|
513 |
+
visual_tokens = self.visual_tokenizer(torch.cat([x for x in pixel_values], dim=0))
|
514 |
+
visual_embeds = torch.split(
|
515 |
+
self.get_vte()(visual_tokens).to(dtype=self.dtype, device=input_device),
|
516 |
+
split_size_or_sections=num_images,
|
517 |
+
dim=0
|
518 |
+
)
|
519 |
+
visual_input_ids = torch.split(
|
520 |
+
torch.argmax(visual_tokens, dim=-1).to(device=input_device),
|
521 |
+
split_size_or_sections=num_images,
|
522 |
+
dim=0
|
523 |
+
)
|
524 |
+
visual_labels = [
|
525 |
+
torch.full(
|
526 |
+
x.shape, IGNORE_INDEX, dtype=torch.long, device=input_device
|
527 |
+
) for x in visual_input_ids
|
528 |
+
]
|
529 |
+
else:
|
530 |
+
# When inference, sample can include only text with `None` pixel_value
|
531 |
+
num_images = [x.shape[0] if x is not None else 0 for x in pixel_values]
|
532 |
+
if sum(num_images) > 0:
|
533 |
+
visual_tokens = self.visual_tokenizer(torch.cat([x for x in pixel_values if x is not None], dim=0))
|
534 |
+
visual_embeds = torch.split(
|
535 |
+
self.get_vte()(visual_tokens).to(dtype=self.dtype, device=input_device),
|
536 |
+
split_size_or_sections=num_images,
|
537 |
+
dim=0
|
538 |
+
)
|
539 |
+
visual_input_ids = torch.split(
|
540 |
+
torch.argmax(visual_tokens, dim=-1).to(device=input_device),
|
541 |
+
split_size_or_sections=num_images,
|
542 |
+
dim=0
|
543 |
+
)
|
544 |
+
visual_labels = [
|
545 |
+
torch.full(
|
546 |
+
x.shape, IGNORE_INDEX, dtype=torch.long, device=input_device
|
547 |
+
) for x in visual_input_ids
|
548 |
+
]
|
549 |
+
else:
|
550 |
+
# just placeholders
|
551 |
+
visual_embeds = [None] * len(num_images)
|
552 |
+
visual_input_ids = [None] * len(num_images)
|
553 |
+
visual_labels = [None] * len(num_images)
|
554 |
+
# just placeholders
|
555 |
+
text_labels = torch.full(text_input_ids.shape, IGNORE_INDEX, dtype=torch.long, device=input_device)
|
556 |
+
|
557 |
+
input_embeds = []
|
558 |
+
attention_masks = []
|
559 |
+
labels = []
|
560 |
+
for text_input_id, text_label, text_attention_mask, visual_embed, visual_input_id, visual_label in zip(
|
561 |
+
text_input_ids, text_labels, text_attention_masks, visual_embeds, visual_input_ids, visual_labels
|
562 |
+
):
|
563 |
+
image_token_mask = torch.eq(text_input_id, IMAGE_TOKEN_INDEX)
|
564 |
+
text_embed = self.get_wte()(torch.masked_fill(text_input_id, image_token_mask, 0))
|
565 |
+
image_token_positions = torch.where(image_token_mask)[0].tolist()
|
566 |
+
if len(image_token_positions) > 0:
|
567 |
+
input_embed_parts = []
|
568 |
+
attention_mask_parts = []
|
569 |
+
label_parts = []
|
570 |
+
prev_image_token_position = -1
|
571 |
+
for index, image_token_position in enumerate(image_token_positions):
|
572 |
+
input_embed_parts.append(
|
573 |
+
text_embed[prev_image_token_position + 1:image_token_position, :])
|
574 |
+
label_parts.append(
|
575 |
+
text_label[prev_image_token_position + 1:image_token_position])
|
576 |
+
attention_mask_parts.append(
|
577 |
+
text_attention_mask[prev_image_token_position + 1:image_token_position])
|
578 |
+
input_embed_parts.append(visual_embed[index])
|
579 |
+
attention_mask_parts.append(
|
580 |
+
torch.ones_like(visual_label[index], dtype=torch.bool))
|
581 |
+
label_parts.append(visual_label[index])
|
582 |
+
prev_image_token_position = image_token_position
|
583 |
+
if prev_image_token_position + 1 < text_input_id.shape[0]:
|
584 |
+
input_embed_parts.append(
|
585 |
+
text_embed[prev_image_token_position + 1:, :])
|
586 |
+
attention_mask_parts.append(
|
587 |
+
text_attention_mask[prev_image_token_position + 1:])
|
588 |
+
label_parts.append(
|
589 |
+
text_label[prev_image_token_position + 1:])
|
590 |
+
input_embed = torch.cat(input_embed_parts, dim=0)
|
591 |
+
attention_mask = torch.cat(attention_mask_parts, dim=0)
|
592 |
+
label = torch.cat(label_parts, dim=0)
|
593 |
+
else:
|
594 |
+
input_embed = text_embed
|
595 |
+
attention_mask = text_attention_mask
|
596 |
+
label = text_label
|
597 |
+
if self.training:
|
598 |
+
# Make visual_embed involved in the backward graph,
|
599 |
+
# to be compatible with deepspeed zero and ddp.
|
600 |
+
input_embed += torch.sum(visual_embed * 0.0)
|
601 |
+
input_embeds.append(input_embed)
|
602 |
+
attention_masks.append(attention_mask)
|
603 |
+
labels.append(label)
|
604 |
+
|
605 |
+
batch_input_embeds = torch.nn.utils.rnn.pad_sequence(
|
606 |
+
input_embeds, batch_first=True, padding_value=0.0)[:, :self.config.multimodal_max_length, :]
|
607 |
+
batch_attention_mask = torch.nn.utils.rnn.pad_sequence(
|
608 |
+
attention_masks, batch_first=True, padding_value=False)[:, :self.config.multimodal_max_length]
|
609 |
+
batch_labels = torch.nn.utils.rnn.pad_sequence(
|
610 |
+
labels, batch_first=True, padding_value=IGNORE_INDEX)[:, :self.config.multimodal_max_length]
|
611 |
+
|
612 |
+
return visual_input_ids, batch_input_embeds, batch_labels, batch_attention_mask
|
613 |
+
|
614 |
+
def save_pretrained(
|
615 |
+
self,
|
616 |
+
save_directory: Union[str, os.PathLike],
|
617 |
+
is_main_process: bool = True,
|
618 |
+
state_dict: Optional[dict] = None,
|
619 |
+
save_function: Callable = torch.save,
|
620 |
+
push_to_hub: bool = False,
|
621 |
+
max_shard_size: Union[int, str] = "5GB",
|
622 |
+
safe_serialization: bool = True,
|
623 |
+
variant: Optional[str] = None,
|
624 |
+
token: Optional[Union[str, bool]] = None,
|
625 |
+
save_peft_format: bool = True,
|
626 |
+
**kwargs
|
627 |
+
):
|
628 |
+
super().save_pretrained(save_directory,
|
629 |
+
is_main_process=is_main_process,
|
630 |
+
state_dict=state_dict,
|
631 |
+
save_function=save_function,
|
632 |
+
safe_serialization=safe_serialization)
|
633 |
+
self.get_text_tokenizer().save_pretrained(save_directory)
|
634 |
+
self.get_visual_tokenizer().get_image_processor().save_pretrained(save_directory)
|
635 |
+
|
636 |
+
# uncomment the following will additionally save a separate visual tokenizer
|
637 |
+
# visual_tokenizer_directory = os.path.join(save_directory, 'visual_tokenizer')
|
638 |
+
# self.get_visual_tokenizer().save_pretrained(visual_tokenizer_directory,
|
639 |
+
# is_main_process=is_main_process,
|
640 |
+
# state_dict=None,
|
641 |
+
# save_function=save_function,
|
642 |
+
# safe_serialization=safe_serialization)
|
643 |
+
# self.get_visual_tokenizer().get_image_processor().save_pretrained(visual_tokenizer_directory)
|
644 |
+
|
645 |
+
def _get_hybrid_cache_for_llm(self, max_batch_size: int, max_cache_len: int):
|
646 |
+
cache_cls = HybridCache
|
647 |
+
llm = self.get_llm()
|
648 |
+
|
649 |
+
need_new_cache = (
|
650 |
+
not hasattr(llm, "_cache")
|
651 |
+
or (not isinstance(llm._cache, cache_cls))
|
652 |
+
or llm._cache.max_batch_size != max_batch_size
|
653 |
+
or llm._cache.max_cache_len < max_cache_len
|
654 |
+
)
|
655 |
+
|
656 |
+
if need_new_cache:
|
657 |
+
if hasattr(llm.config, "_pre_quantization_dtype"):
|
658 |
+
cache_dtype = llm.config._pre_quantization_dtype
|
659 |
+
else:
|
660 |
+
cache_dtype = llm.dtype
|
661 |
+
llm._cache = cache_cls(
|
662 |
+
config=llm.config,
|
663 |
+
max_batch_size=max_batch_size,
|
664 |
+
max_cache_len=max_cache_len,
|
665 |
+
device=llm.device,
|
666 |
+
dtype=cache_dtype,
|
667 |
+
)
|
668 |
+
else:
|
669 |
+
llm._cache.reset()
|
670 |
+
return llm._cache
|
671 |
+
|
672 |
+
# TODO: support batch generation
|
673 |
+
def generate(
|
674 |
+
self,
|
675 |
+
inputs: Optional[torch.Tensor] = None,
|
676 |
+
**kwargs
|
677 |
+
) -> Union[GenerateOutput, torch.LongTensor]:
|
678 |
+
assert inputs.shape[0] == 1, 'Currently, only support `batch_size=1`'
|
679 |
+
_, inputs_embeds, labels, attention_mask = self.merge_multimodal(
|
680 |
+
text_input_ids=inputs,
|
681 |
+
text_attention_masks=kwargs.pop('attention_mask'),
|
682 |
+
text_labels=None,
|
683 |
+
pixel_values=kwargs.pop('pixel_values')
|
684 |
+
)
|
685 |
+
if getattr(self.generation_config, 'cache_implementation') == 'hybrid': # mainly for Gemma2
|
686 |
+
kwargs['past_key_values'] = self._get_hybrid_cache_for_llm(
|
687 |
+
getattr(kwargs, "num_beams", 1), kwargs['max_new_tokens'] + inputs_embeds.shape[-2])
|
688 |
+
self.get_llm()._supports_cache_class = True
|
689 |
+
kwargs['cache_implementation'] = None
|
690 |
+
|
691 |
+
return self.llm.generate(inputs=None, inputs_embeds=inputs_embeds, attention_mask=attention_mask, **kwargs)
|
preprocessor_config.json
ADDED
@@ -0,0 +1,24 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
{
|
2 |
+
"do_convert_rgb": null,
|
3 |
+
"do_normalize": true,
|
4 |
+
"do_rescale": true,
|
5 |
+
"do_resize": true,
|
6 |
+
"image_mean": [
|
7 |
+
0.5,
|
8 |
+
0.5,
|
9 |
+
0.5
|
10 |
+
],
|
11 |
+
"image_processor_type": "SiglipImageProcessor",
|
12 |
+
"image_std": [
|
13 |
+
0.5,
|
14 |
+
0.5,
|
15 |
+
0.5
|
16 |
+
],
|
17 |
+
"processor_class": "SiglipProcessor",
|
18 |
+
"resample": 3,
|
19 |
+
"rescale_factor": 0.00392156862745098,
|
20 |
+
"size": {
|
21 |
+
"height": 384,
|
22 |
+
"width": 384
|
23 |
+
}
|
24 |
+
}
|
special_tokens_map.json
ADDED
@@ -0,0 +1,34 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
{
|
2 |
+
"additional_special_tokens": [
|
3 |
+
"<start_of_turn>",
|
4 |
+
"<end_of_turn>"
|
5 |
+
],
|
6 |
+
"bos_token": {
|
7 |
+
"content": "<bos>",
|
8 |
+
"lstrip": false,
|
9 |
+
"normalized": false,
|
10 |
+
"rstrip": false,
|
11 |
+
"single_word": false
|
12 |
+
},
|
13 |
+
"eos_token": {
|
14 |
+
"content": "<eos>",
|
15 |
+
"lstrip": false,
|
16 |
+
"normalized": false,
|
17 |
+
"rstrip": false,
|
18 |
+
"single_word": false
|
19 |
+
},
|
20 |
+
"pad_token": {
|
21 |
+
"content": "<pad>",
|
22 |
+
"lstrip": false,
|
23 |
+
"normalized": false,
|
24 |
+
"rstrip": false,
|
25 |
+
"single_word": false
|
26 |
+
},
|
27 |
+
"unk_token": {
|
28 |
+
"content": "<unk>",
|
29 |
+
"lstrip": false,
|
30 |
+
"normalized": false,
|
31 |
+
"rstrip": false,
|
32 |
+
"single_word": false
|
33 |
+
}
|
34 |
+
}
|
tokenizer.json
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:7da53ca29fb16f6b2489482fc0bc6a394162cdab14d12764a1755ebc583fea79
|
3 |
+
size 17518525
|
tokenizer.model
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
|
|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:61a7b147390c64585d6c3543dd6fc636906c9af3865a5548f27f31aee1d4c8e2
|
3 |
+
size 4241003
|
tokenizer_config.json
ADDED
@@ -0,0 +1,1757 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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1 |
+
{
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2 |
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"add_bos_token": true,
|
3 |
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"add_eos_token": false,
|
4 |
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"added_tokens_decoder": {
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5 |
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6 |
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7 |
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8 |
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10 |
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11 |
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12 |
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18 |
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|
19 |
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20 |
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21 |
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24 |
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26 |
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27 |
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28 |
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30 |
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31 |
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32 |
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33 |
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34 |
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35 |
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36 |
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37 |
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38 |
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39 |
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40 |
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42 |
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44 |
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46 |
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50 |
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52 |
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54 |
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55 |
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1643 |
+
"special": false
|
1644 |
+
},
|
1645 |
+
"205": {
|
1646 |
+
"content": "<sub>",
|
1647 |
+
"lstrip": false,
|
1648 |
+
"normalized": false,
|
1649 |
+
"rstrip": false,
|
1650 |
+
"single_word": false,
|
1651 |
+
"special": false
|
1652 |
+
},
|
1653 |
+
"206": {
|
1654 |
+
"content": "<sup>",
|
1655 |
+
"lstrip": false,
|
1656 |
+
"normalized": false,
|
1657 |
+
"rstrip": false,
|
1658 |
+
"single_word": false,
|
1659 |
+
"special": false
|
1660 |
+
},
|
1661 |
+
"207": {
|
1662 |
+
"content": "<code>",
|
1663 |
+
"lstrip": false,
|
1664 |
+
"normalized": false,
|
1665 |
+
"rstrip": false,
|
1666 |
+
"single_word": false,
|
1667 |
+
"special": false
|
1668 |
+
},
|
1669 |
+
"208": {
|
1670 |
+
"content": "</strong>",
|
1671 |
+
"lstrip": false,
|
1672 |
+
"normalized": false,
|
1673 |
+
"rstrip": false,
|
1674 |
+
"single_word": false,
|
1675 |
+
"special": false
|
1676 |
+
},
|
1677 |
+
"209": {
|
1678 |
+
"content": "</em>",
|
1679 |
+
"lstrip": false,
|
1680 |
+
"normalized": false,
|
1681 |
+
"rstrip": false,
|
1682 |
+
"single_word": false,
|
1683 |
+
"special": false
|
1684 |
+
},
|
1685 |
+
"210": {
|
1686 |
+
"content": "</b>",
|
1687 |
+
"lstrip": false,
|
1688 |
+
"normalized": false,
|
1689 |
+
"rstrip": false,
|
1690 |
+
"single_word": false,
|
1691 |
+
"special": false
|
1692 |
+
},
|
1693 |
+
"211": {
|
1694 |
+
"content": "</i>",
|
1695 |
+
"lstrip": false,
|
1696 |
+
"normalized": false,
|
1697 |
+
"rstrip": false,
|
1698 |
+
"single_word": false,
|
1699 |
+
"special": false
|
1700 |
+
},
|
1701 |
+
"212": {
|
1702 |
+
"content": "</u>",
|
1703 |
+
"lstrip": false,
|
1704 |
+
"normalized": false,
|
1705 |
+
"rstrip": false,
|
1706 |
+
"single_word": false,
|
1707 |
+
"special": false
|
1708 |
+
},
|
1709 |
+
"213": {
|
1710 |
+
"content": "</s>",
|
1711 |
+
"lstrip": false,
|
1712 |
+
"normalized": false,
|
1713 |
+
"rstrip": false,
|
1714 |
+
"single_word": false,
|
1715 |
+
"special": false
|
1716 |
+
},
|
1717 |
+
"214": {
|
1718 |
+
"content": "</sub>",
|
1719 |
+
"lstrip": false,
|
1720 |
+
"normalized": false,
|
1721 |
+
"rstrip": false,
|
1722 |
+
"single_word": false,
|
1723 |
+
"special": false
|
1724 |
+
},
|
1725 |
+
"215": {
|
1726 |
+
"content": "</sup>",
|
1727 |
+
"lstrip": false,
|
1728 |
+
"normalized": false,
|
1729 |
+
"rstrip": false,
|
1730 |
+
"single_word": false,
|
1731 |
+
"special": false
|
1732 |
+
},
|
1733 |
+
"216": {
|
1734 |
+
"content": "</code>",
|
1735 |
+
"lstrip": false,
|
1736 |
+
"normalized": false,
|
1737 |
+
"rstrip": false,
|
1738 |
+
"single_word": false,
|
1739 |
+
"special": false
|
1740 |
+
}
|
1741 |
+
},
|
1742 |
+
"additional_special_tokens": [
|
1743 |
+
"<start_of_turn>",
|
1744 |
+
"<end_of_turn>"
|
1745 |
+
],
|
1746 |
+
"bos_token": "<bos>",
|
1747 |
+
"chat_template": "{{ bos_token }}{% if messages[0]['role'] == 'system' %}{{ raise_exception('System role not supported') }}{% endif %}{% for message in messages %}{% if (message['role'] == 'user') != (loop.index0 % 2 == 0) %}{{ raise_exception('Conversation roles must alternate user/assistant/user/assistant/...') }}{% endif %}{% if (message['role'] == 'assistant') %}{% set role = 'model' %}{% else %}{% set role = message['role'] %}{% endif %}{{ '<start_of_turn>' + role + '\n' + message['content'] | trim + '<end_of_turn>\n' }}{% endfor %}{% if add_generation_prompt %}{{'<start_of_turn>model\n'}}{% endif %}",
|
1748 |
+
"clean_up_tokenization_spaces": false,
|
1749 |
+
"eos_token": "<eos>",
|
1750 |
+
"model_max_length": 1000000000000000019884624838656,
|
1751 |
+
"pad_token": "<pad>",
|
1752 |
+
"sp_model_kwargs": {},
|
1753 |
+
"spaces_between_special_tokens": false,
|
1754 |
+
"tokenizer_class": "GemmaTokenizer",
|
1755 |
+
"unk_token": "<unk>",
|
1756 |
+
"use_default_system_prompt": false
|
1757 |
+
}
|