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# Atom-7B-Chat_a13650745442299904330981
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---
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license: Apache License 2.0
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---
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### Clone with HTTP
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```bash
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git clone https://www.modelscope.cn/FlagAlpha/Atom-7B-Chat.git
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```
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# Atom-7B-Chat
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Atom-7B-Chat基于Atom-7B的对话模型,完全开源可商用,由Llama中文社区和AtomEcho(原子回声)联合研发,我们会持续提供更新的模型参数,模型训练过程见[llama.family](https://llama.family)。
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模型的部署、训练、微调等方法详见Llama中文社区GitHub仓库:[**Llama2-Chinese**](https://github.com/FlagAlpha/Llama2-Chinese)。
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## 📝 中文数据
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| 类型 | 描述 |
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| ---------------------------------------------------------- | ------------------------------------------------------------ |
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| 网络数据 | 互联网上公开的网络数据,挑选出去重后的高质量中文数据,涉及到百科、书籍、博客、新闻、公告、小说等高质量长文本数据。 |
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| [Wikipedia](https://github.com/goldsmith/Wikipedia) | 中文Wikipedia的数据 |
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| [悟道](https://github.com/BAAI-WuDao/Model) | 中文悟道开源的200G数据 |
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| [Clue](https://github.com/CLUEbenchmark/CLUEDatasetSearch) | Clue开放的中文预训练数据,进行清洗后的高质量中文长文本数据 |
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| 竞赛数据集 | 近年来中文自然语言处理多任务竞赛数据集,约150个 |
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| [MNBVC](https://github.com/esbatmop/MNBVC) | MNBVC 中清洗出来的部分数据集 |
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**我们也欢迎大家在[llama.family](https://llama.family)中贡献自己的数据,您的数据通过审核后会加入模型训练,也将影响模型未来的能力走向。**
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## 📚 中文词表
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为了提高中文文本处理的效率,我们针对Llama2模型的词表进行了深度优化。
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首先,我们基于数百G的中文文本,**在Llama2词表的基础上扩展词库至65,000个单词**。
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经过测试,我们的改进使得**中文编码/解码速度提高了约350%**。
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此外,我们还扩大了中文字符集的覆盖范围,包括所有**emoji符号**,这使的生成带有表情符号的文章更加高效。
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对于Llama2原生词表中的一些特殊情况,如数字、英文等,我们尽可能地避免对其进行修改或替换。
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最终,成功地实现了一种既能提高中文处理效率又能保持Llama2原有性能的方法。
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## 📈 训练过程
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**模型结构**
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基于当前最优秀的开源模型Llama2,使用主流Decoder-only的标准Transformer网络结构,支持4K的上下文长度(Context Length),为同尺寸模型中最长,能满足更长的多轮对话、知识问答与摘要等需求,模型应用场景更广泛。
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**FlashAttention-2高效训练**
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Atom-7B采用了FlashAttention-2技术进行训练。由于在处理较长的输入序列时,内存消耗的问题可能会导致“内存爆炸”现象。FlashAttention-2是一种高效注意力机制的实现方式之一,相较于传统的注意力技术(Attention),它拥有更快速的速度以及更加优化的内存占用率。
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**基于NTK的自适应上下文扩展技术**
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- 可在不继续训练模型的情况下支持更长的上下文
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- 本项目中模型默认支持4K上下文,利用上述技术可扩展至18K+
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- 经过微调可以支持到32K+
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## 💻 推理配置
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实际应用中,消费级显卡要比专业显卡便宜的多(比如3090相比A10,同样都是24G显存)。
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对于消费级显卡,直接FP32肯定放不下,一般最基本的是FP16,而INT8和INT4量化就很有用,例如:
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- 对于3080显卡(10G显存),Atom-7B的INT8只需要8G显存可以直接部署。
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- 对于3080显卡(10G显存),Atom-7B的INT4只需要5G显存可以直接部署。
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---
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# Llama中文社区
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## 🚀 社区地址:
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Github:[**Llama2-Chinese**](https://github.com/FlagAlpha/Llama2-Chinese)
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在线体验链接:[**llama.family**](https://llama.family/)
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## 🔥 社区介绍
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欢迎来到Llama中文社区!
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我们是一个专注于Llama模型在中文方面的优化和上层建设的高级技术社区。
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**基于大规模中文数据,从预训练开始对Llama2模型进行中文能力的持续迭代升级**。
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我们热忱欢迎对大模型LLM充满热情的开发者和研究者加入我们的行列。
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## 🐼 社区资源
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- Llama2在线体验链接[**llama.family**](https://llama.family/),同时包含Meta原版和中文微调版本!
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- Llama2 Chat模型的[中文问答能力评测](https://github.com/FlagAlpha/Llama2-Chinese/tree/main#-%E6%A8%A1%E5%9E%8B%E8%AF%84%E6%B5%8B)!
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- [社区飞书知识库](https://chinesellama.feishu.cn/wiki/space/7257824476874768388?ccm_open_type=lark_wiki_spaceLink),欢迎大家一起共建!
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Atom-7B-Chat基于Atom-7B的32K长度的对话模型,由Llama中文社区和AtomEcho(原子回声)联合研发
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{
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"_name_or_path": "/mnt/data/zhangzheng/data/AtoM-7B/checkpoint-56000",
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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_length": 4096,
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"max_position_embeddings": 4096,
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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": 2,
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"pretraining_tp": 1,
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"rms_norm_eps": 1e-05,
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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": 65000
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}
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{
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"framework": "pytorch",
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"task": "text-generation",
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"model": {
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"type": "Atom-7B-Chat"
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},
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"pipeline": {
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"type": "Atom-7B-Chat-pipe"
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},
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"allow_remote": true
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}
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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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"max_length": 4096,
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"pad_token_id": 2,
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"transformers_version": "4.31.0"
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}
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{
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"metadata": {
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},
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@ -0,0 +1,24 @@
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@ -0,0 +1,34 @@
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}
|
Loading…
Reference in New Issue