jinjieyuan
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Upload model
Browse filesSigned-off-by: jinjieyuan <[email protected]>
- README.md +122 -0
- adapter_model/adapter_config.json +24 -0
- adapter_model/adapter_model.bin +3 -0
- base_model/config.json +25 -0
- base_model/generation_config.json +7 -0
- base_model/pytorch_model-00001-of-00002.bin +3 -0
- base_model/pytorch_model-00002-of-00002.bin +3 -0
- base_model/pytorch_model.bin.index.json +330 -0
- base_model/special_tokens_map.json +5 -0
- base_model/tokenizer.model +3 -0
- base_model/tokenizer_config.json +34 -0
README.md
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---
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language: en
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license: apache-2.0
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---
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# Shears Model Card: shears-llama-7b-50-commonsense-heuristic
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The heuristic subnetwork discovered from the [super-network](https://huggingface.co/IntelLabs/shears-llama-7b-50-commonsense-super) fine-tuned on LLaMA-7B with some commonsense reasoning datasets using Shears.
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## Model Details
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### Information
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- **Model name:** shears-llama-7b-50-commonsense-heuristic
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- **Base model:** [LLaMA-7b](https://huggingface.co/yahma/llama-7b-hf)
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- **Sparsity:** 50%
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- **Domain:** Commonsense
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- **Subnetwork version:** Heuristic
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- **NNCF Configuration:** [nncf_shears_llama_7b_sparsity50.json](https://github.com/IntelLabs/Hardware-Aware-Automated-Machine-Learning/tree/main/Shears/nncf_config/unified_commonsense/nncf_shears_llama_7b_sparsity50.json)
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### Adapter Configuration
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- **LoRA rank:** 32
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- **LoRA alpha:** 64
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- **LoRA target modules:** q_proj, k_proj, v_proj, up_proj, gate_proj, down_proj
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- **LoRA rank search space:** [32, 24, 16] (for each LoRA module)
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### Training Hyperparameters
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- **Batch size:** 16
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- **Learning rate:** 3e-4
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- **Epoch:** 3
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### Training Data
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Unified commonsense reasoning dataset: [commonsense_170k.json](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/ft-training_set/commonsense_170k.json).
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### Evaluation Data
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[BoolQ](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/dataset/boolq/test.json), [PIQA](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/dataset/piqa/test.json), [SIQA](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/dataset/social_i_qa/test.json), [HellaSwag](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/dataset/hellaswag/test.json), [WinoGrande](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/dataset/winogrande/test.json), [ARC-e](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/dataset/ARC-Easy/test.json), [ARC-c](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/dataset/ARC-Challenge/test.json), [OBQA](https://github.com/AGI-Edgerunners/LLM-Adapters/blob/main/dataset/openbookqa/test.json).
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## How to use
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Use our modified PEFT library (apply [patch](https://github.com/IntelLabs/Hardware-Aware-Automated-Machine-Learning/tree/main/Shears/patches/peft-modifications-for-shears-inference-usage.patch)):
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```bash
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git clone https://github.com/huggingface/peft.git
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pushd peft && git checkout v0.5.0 && git apply --ignore-space-change --ignore-whitespace peft-modifications-for-shears-inference-usage.patch && pip install -e . && popd
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```
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```python
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import torch
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from peft import PeftModel
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from transformers import AutoModelForCausalLM
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from transformers import AutoTokenizer
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def generate_prompt(instruction):
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return f"""Below is an instruction that describes a task. Write a response that appropriately completes the request.
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### Instruction:
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{instruction}
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### Response:
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"""
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base_model_path = "shears-llama-7b-50-commonsense-heuristic/base_model"
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adapter_model_path = "shears-llama-7b-50-commonsense-heuristic/adapter_model"
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base_model = AutoModelForCausalLM.from_pretrained(base_model_path)
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model = PeftModel.from_pretrained(base_model, adapter_model_path)
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model.eval()
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non_zero_params = sum([(param.data != 0).sum().item() for _, param in model.named_parameters()])
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print(f"Number of all non-zero parameters: {non_zero_params}")
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tokenizer = AutoTokenizer.from_pretrained(base_model_path)
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tokenizer.pad_token_id = 0
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instruction = "Please choose the correct answer to the question: A cactus stem is used to store\n\nAnswer1: fruit "
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"Answer2: liquid Answer3: food Answer4: spines\n\nAnswer format: answer1/answer2/answer3/answer4"
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prompt = generate_prompt(instruction)
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inputs = tokenizer(prompt, return_tensors="pt")
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input_ids = inputs["input_ids"].to(model.device)
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with torch.no_grad():
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generation_output = model.generate(
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input_ids=input_ids,
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return_dict_in_generate=True,
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output_scores=True,
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max_new_tokens=256,
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use_cache=True,
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num_beams=4,
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)
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s = generation_output.sequences[0]
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output = tokenizer.decode(s)
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print(output)
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```
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## Evaluation Results
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| Model | Sparsity | BoolQ | PIQA | SIQA | HellaSwag | WinoG | ARC-e | ARC-c | OBQA | Average |
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|----------------------|-----------|---------|--------|--------|------------|--------|--------|---------|--------|----------|
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| ChatGPT | - | 73.1 | 85.4 | 68.5 | 78.5 | 66.1 | 89.8 | 79.9 | 74.8 | 77.0 |
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| LLaMA-7B-LoRA | - | 68.9 | 80.7 | 77.4 | 78.1 | 78.8 | 77.8 | 61.3 | 74.8 | 74.7 |
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| [**LLaMA-7B-Shears**](https://huggingface.co/IntelLabs/shears-llama-7b-50-commonsense-heuristic) | **50%** | 67.3 | 79.1 | 77.5 | 73.3 | 77.7 | 74.4 | 57.9 | 72.8 | 72.5 |
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## Model Sources
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- **Repository:** [https://github.com/IntelLabs/Hardware-Aware-Automated-Machine-Learning/tree/main/Shears](https://github.com/IntelLabs/Hardware-Aware-Automated-Machine-Learning/tree/main/Shears)
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- **Paper:** [Shears: Unstructured Sparsity with Neural Low-rank Adapter Search]()
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## Citation
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```bash
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@article{munoz2024shears,
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title = {Shears: Unstructured Sparsity with Neural Low-rank Adapter Search},
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author={J. Pablo Munoz and Jinjie Yuan and Nilesh Jain},
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journal={},
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year={2024}
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}
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```
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## License
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Apache-2.0
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adapter_model/adapter_config.json
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{
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"auto_mapping": null,
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"base_model_name_or_path": "shears-llama-7b-50-commonsense-heuristic/base_model",
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"bias": "none",
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"fan_in_fan_out": false,
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"inference_mode": true,
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"init_lora_weights": true,
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"layers_pattern": null,
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"layers_to_transform": null,
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"lora_alpha": 64.0,
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"lora_dropout": 0.1,
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"modules_to_save": null,
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"peft_type": "LORA",
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"r": 32,
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"revision": null,
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"target_modules": [
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"q_proj",
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"k_proj",
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"v_proj",
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"up_proj",
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"down_proj"
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],
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"task_type": "CAUSAL_LM"
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}
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adapter_model/adapter_model.bin
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version https://git-lfs.github.com/spec/v1
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oid sha256:6725dd42aae49246b8d9205bb5d03af87b08bcf68ac56483ed0170a877267ea2
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size 224507969
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base_model/config.json
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{
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"architectures": [
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"LlamaForCausalLM"
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],
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"bos_token_id": 1,
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"eos_token_id": 2,
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"hidden_act": "silu",
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"hidden_size": 4096,
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"initializer_range": 0.02,
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"intermediate_size": 11008,
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"max_position_embeddings": 2048,
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"model_type": "llama",
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"num_attention_heads": 32,
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"num_hidden_layers": 32,
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"num_key_value_heads": 32,
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"pad_token_id": 0,
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"pretraining_tp": 1,
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"rms_norm_eps": 1e-06,
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"rope_scaling": null,
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"tie_word_embeddings": false,
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"torch_dtype": "float16",
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"transformers_version": "4.31.0",
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"use_cache": true,
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"vocab_size": 32000
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}
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base_model/generation_config.json
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{
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"_from_model_config": true,
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"bos_token_id": 1,
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+
"eos_token_id": 2,
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"pad_token_id": 0,
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"transformers_version": "4.31.0"
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}
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base_model/pytorch_model-00001-of-00002.bin
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version https://git-lfs.github.com/spec/v1
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oid sha256:f730a83a084b7576560f5e86ba98e44e11844d5789e39eb4dd8970b71fcc75f4
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size 9976632655
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base_model/pytorch_model-00002-of-00002.bin
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version https://git-lfs.github.com/spec/v1
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oid sha256:6a91b24a6c6494d0a22eef1ef17bcee5b2b7c4ba80e0f1f4d477e914fb8fec79
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size 3500314223
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base_model/pytorch_model.bin.index.json
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