Add link to tech report. Fix typo in usage example #2

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NOTICE Normal file
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Copyright (c) 2024 NVIDIA CORPORATION & AFFILIATES. All rights reserved.
NVIDIA CORPORATION, its affiliates and licensors retain all intellectual property and proprietary rights in and to this material, related documentation and any modifications thereto. Any use, reproduction, disclosure or distribution of this material and related documentation without an express license agreement from NVIDIA CORPORATION or its affiliates is strictly prohibited.
Llama 3.1 is licensed under the Llama 3.1 Community License, Copyright © Meta Platforms, Inc. All Rights Reserved.

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README.md
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---
license: Apache License 2.0
#model-type:
##如 gpt、phi、llama、chatglm、baichuan 等
#- gpt
#domain:
##如 nlp、cv、audio、multi-modal
#- nlp
#language:
##语言代码列表 https://help.aliyun.com/document_detail/215387.html?spm=a2c4g.11186623.0.0.9f8d7467kni6Aa
#- cn
#metrics:
##如 CIDEr、Blue、ROUGE 等
#- CIDEr
#tags:
##各种自定义,包括 pretrained、fine-tuned、instruction-tuned、RL-tuned 等训练方法和其他
#- pretrained
#tools:
##如 vllm、fastchat、llamacpp、AdaSeq 等
#- vllm
license: other
license_name: nvidia-open-model-license
license_link: >-
https://developer.download.nvidia.com/licenses/nvidia-open-model-license-agreement-june-2024.pdf
---
### 当前模型的贡献者未提供更加详细的模型介绍。模型文件和权重,可浏览“模型文件”页面获取。
#### 您可以通过如下git clone命令或者ModelScope SDK来下载模型
# Llama-3.1-Minitron-4B-Width-Base
SDK下载
```bash
#安装ModelScope
pip install modelscope
## Model Overview
Llama-3.1-Minitron-4B-Width-Base is a base text-to-text model that can be adopted for a variety of natural language generation tasks.
It is obtained by pruning Llama-3.1-8B; specifically, we prune model embedding size and MLP intermediate dimension.
Following pruning, we perform continued training with distillation using 94 billion tokens to arrive at the final model; we use the continuous pre-training data corpus used in Nemotron-4 15B for this purpose. Please refer to our [technical report](https://arxiv.org/abs/2408.11796) for more details.
This model is ready for commercial use.
**Model Developer:** NVIDIA
**Model Dates:** Llama-3.1-Minitron-4B-Width-Base was trained between July 29, 2024 and Aug 3, 2024.
## License
This model is released under the [NVIDIA Open Model License Agreement](https://developer.download.nvidia.com/licenses/nvidia-open-model-license-agreement-june-2024.pdf).
## Model Architecture
Llama-3.1-Minitron-4B-Width-Base uses a model embedding size of 3072, 32 attention heads, MLP intermediate dimension of 9216, with 32 layers in total. Additionally, it uses Grouped-Query Attention (GQA) and Rotary Position Embeddings (RoPE).
**Architecture Type:** Transformer Decoder (Auto-Regressive Language Model)
**Network Architecture:** Llama-3.1
**Input Type(s):** Text
**Input Format(s):** String
**Input Parameters:** None
**Other Properties Related to Input:** Works well within 8k characters or less.
**Output Type(s):** Text
**Output Format:** String
**Output Parameters:** 1D
**Other Properties Related to Output:** None
## Usage
Support for this model will be added in the upcoming `transformers` release. In the meantime, please install the library from source:
```
pip install git+https://github.com/huggingface/transformers
```
We can now run inference on this model:
```python
#SDK模型下载
from modelscope import snapshot_download
model_dir = snapshot_download('AI-ModelScope/Llama-3.1-Minitron-4B-Width-Base')
```
Git下载
```
#Git模型下载
git clone https://www.modelscope.cn/AI-ModelScope/Llama-3.1-Minitron-4B-Width-Base.git
import torch
from transformers import AutoTokenizer, LlamaForCausalLM
# Load the tokenizer and model
model_path = "nvidia/Llama-3.1-Minitron-4B-Width-Base"
tokenizer = AutoTokenizer.from_pretrained(model_path)
device = 'cuda'
dtype = torch.bfloat16
model = LlamaForCausalLM.from_pretrained(model_path, torch_dtype=dtype, device_map=device)
# Prepare the input text
prompt = 'Complete the paragraph: our solar system is'
inputs = tokenizer.encode(prompt, return_tensors='pt').to(model.device)
# Generate the output
outputs = model.generate(inputs, max_length=20)
# Decode and print the output
output_text = tokenizer.decode(outputs[0])
print(output_text)
```
<p style="color: lightgrey;">如果您是本模型的贡献者,我们邀请您根据<a href="https://modelscope.cn/docs/ModelScope%E6%A8%A1%E5%9E%8B%E6%8E%A5%E5%85%A5%E6%B5%81%E7%A8%8B%E6%A6%82%E8%A7%88" style="color: lightgrey; text-decoration: underline;">模型贡献文档</a>,及时完善模型卡片内容。</p>
## Software Integration
**Runtime Engine(s):**
* NeMo 24.05
**Supported Hardware Microarchitecture Compatibility:** <br>
* NVIDIA Ampere
* NVIDIA Blackwell
* NVIDIA Hopper
* NVIDIA Lovelace
**[Preferred/Supported] Operating System(s):** <br>
* Linux
## Dataset & Training
**Data Collection Method by Dataset:** Automated
**Labeling Method by Dataset:** Not Applicable
**Properties:**
The training corpus for Llama-3.1-Minitron-4B-Width-Base consists of English and multilingual text, as well as code. Our sources cover a variety of document types such as: webpages, dialogue, articles, and other written materials. The corpus spans domains including legal, math, science, finance, and more. In our continued training set, we introduce a small portion of question-answering, and alignment style data to improve model performance.
**Data Freshness:** The pretraining data has a cutoff of June 2023.
## Evaluation Results
### Overview
_5-shot performance._ Language Understanding evaluated using [Massive Multitask Language Understanding](https://arxiv.org/abs/2009.03300):
| Average |
| :---- |
| 60.5 |
_Zero-shot performance._ Evaluated using select datasets from the [LM Evaluation Harness](https://github.com/EleutherAI/lm-evaluation-harness) with additions:
| HellaSwag | Winogrande | GSM8K| ARC-Challenge | XLSum |
| :---- | :---- | :---- | :---- | :---- |
| 76.1 | 73.5 | 41.2 | 55.6 | 28.7
_Code generation performance._ Evaluated using [MBPP](https://github.com/google-research/google-research/tree/master/mbpp):
| Score |
| :---- |
| 32.0 |
## Inference
**Engine:** TensorRT-LLM
**Test Hardware:** NVIDIA A100
**DType:** BFloat16
## Limitations
The model was trained on data that contains toxic language, unsafe content, and societal biases originally crawled from the internet. Therefore, the model may amplify those biases and return toxic responses especially when prompted with toxic prompts. The model may generate answers that may be inaccurate, omit key information, or include irrelevant or redundant text producing socially unacceptable or undesirable text, even if the prompt itself does not include anything explicitly offensive.
## Ethical Considerations
NVIDIA believes Trustworthy AI is a shared responsibility and we have established policies and practices to enable development for a wide array of AI applications. When downloaded or used in accordance with our terms of service, developers should work with their internal model team to ensure this model meets requirements for the relevant industry and use case and addresses unforeseen product misuse.
Please report security vulnerabilities or NVIDIA AI Concerns [here](https://www.nvidia.com/en-us/support/submit-security-vulnerability/).
## References
* [Compact Language Models via Pruning and Knowledge Distillation](https://arxiv.org/abs/2407.14679)
* [LLM Pruning and Distillation in Practice: The Minitron Approach](https://arxiv.org/abs/2408.11796)

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{
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"architectures": [
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"transformers_version": "4.45.0.dev0",
"use_cache": true,
"vocab_size": 128256
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