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Quant for 6.5

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.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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+ tekken.json filter=lfs diff=lfs merge=lfs -text
README.md CHANGED
@@ -10,69 +10,211 @@ language:
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  - ru
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  - zh
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  - ja
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- quantized_by: bartowski
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- pipeline_tag: text-generation
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  ---
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17
- ## Exllama v2 Quantizations of Mistral-Nemo-Instruct-2407
18
 
19
- Using <a href="https://github.com/turboderp/exllamav2/releases/tag/v0.1.7">turboderp's ExLlamaV2 v0.1.7</a> for quantization.
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21
- <b>The "main" branch only contains the measurement.json, download one of the other branches for the model (see below)</b>
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23
- Each branch contains an individual bits per weight, with the main one containing only the meaurement.json for further conversions.
 
 
 
 
 
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25
- Conversion was done using the default calibration dataset.
 
 
 
 
 
 
 
 
 
 
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27
- Default arguments used except when the bits per weight is above 6.0, at that point the lm_head layer is quantized at 8 bits per weight instead of the default 6.
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29
- Original model: https://huggingface.co/mistralai/Mistral-Nemo-Instruct-2407
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32
- <a href="https://huggingface.co/bartowski/Mistral-Nemo-Instruct-2407-exl2/tree/8_0">8.0 bits per weight</a>
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- <a href="https://huggingface.co/bartowski/Mistral-Nemo-Instruct-2407-exl2/tree/6_5">6.5 bits per weight</a>
 
 
 
 
 
 
 
 
 
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- <a href="https://huggingface.co/bartowski/Mistral-Nemo-Instruct-2407-exl2/tree/5_0">5.0 bits per weight</a>
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- <a href="https://huggingface.co/bartowski/Mistral-Nemo-Instruct-2407-exl2/tree/4_25">4.25 bits per weight</a>
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- <a href="https://huggingface.co/bartowski/Mistral-Nemo-Instruct-2407-exl2/tree/3_5">3.5 bits per weight</a>
 
 
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43
- ## Download instructions
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45
- With git:
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47
- ```shell
48
- git clone --single-branch --branch 6_5 https://huggingface.co/bartowski/Mistral-Nemo-Instruct-2407-exl2
49
  ```
 
 
 
 
 
 
 
 
50
 
51
- With huggingface hub (credit to TheBloke for instructions):
 
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53
- ```shell
54
- pip3 install huggingface-hub
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  ```
56
 
57
- To download the `main` (only useful if you only care about measurement.json) branch to a folder called `Mistral-Nemo-Instruct-2407-exl2`:
 
 
 
 
 
 
58
 
59
- ```shell
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- mkdir Mistral-Nemo-Instruct-2407-exl2
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- huggingface-cli download bartowski/Mistral-Nemo-Instruct-2407-exl2 --local-dir Mistral-Nemo-Instruct-2407-exl2
62
  ```
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64
- To download from a different branch, add the `--revision` parameter:
 
 
 
 
 
 
 
 
 
 
 
 
 
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66
- Linux:
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68
- ```shell
69
- mkdir Mistral-Nemo-Instruct-2407-exl2-6_5
70
- huggingface-cli download bartowski/Mistral-Nemo-Instruct-2407-exl2 --revision 6_5 --local-dir Mistral-Nemo-Instruct-2407-exl2-6_5
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
71
  ```
72
 
73
- Windows (which apparently doesn't like _ in folders sometimes?):
 
 
 
 
 
 
 
 
74
 
75
- ```shell
76
- mkdir Mistral-Nemo-Instruct-2407-exl2-6.5
77
- huggingface-cli download bartowski/Mistral-Nemo-Instruct-2407-exl2 --revision 6_5 --local-dir Mistral-Nemo-Instruct-2407-exl2-6.5
 
 
 
 
 
 
78
  ```
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  - ru
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  - zh
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  - ja
 
 
13
  ---
14
 
15
+ # Model Card for Mistral-Nemo-Instruct-2407
16
 
17
+ The Mistral-Nemo-Instruct-2407 Large Language Model (LLM) is an instruct fine-tuned version of the [Mistral-Nemo-Base-2407](https://huggingface.co/mistralai/Mistral-Nemo-Base-2407). Trained jointly by Mistral AI and NVIDIA, it significantly outperforms existing models smaller or similar in size.
18
 
19
+ For more details about this model please refer to our release [blog post](https://mistral.ai/news/mistral-nemo/).
20
 
21
+ ## Key features
22
+ - Released under the **Apache 2 License**
23
+ - Pre-trained and instructed versions
24
+ - Trained with a **128k context window**
25
+ - Trained on a large proportion of **multilingual and code data**
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+ - Drop-in replacement of Mistral 7B
27
 
28
+ ## Model Architecture
29
+ Mistral Nemo is a transformer model, with the following architecture choices:
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+ - **Layers:** 40
31
+ - **Dim:** 5,120
32
+ - **Head dim:** 128
33
+ - **Hidden dim:** 14,436
34
+ - **Activation Function:** SwiGLU
35
+ - **Number of heads:** 32
36
+ - **Number of kv-heads:** 8 (GQA)
37
+ - **Vocabulary size:** 2**17 ~= 128k
38
+ - **Rotary embeddings (theta = 1M)**
39
 
40
+ ## Metrics
41
 
42
+ ### Main Benchmarks
43
 
44
+ | Benchmark | Score |
45
+ | --- | --- |
46
+ | HellaSwag (0-shot) | 83.5% |
47
+ | Winogrande (0-shot) | 76.8% |
48
+ | OpenBookQA (0-shot) | 60.6% |
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+ | CommonSenseQA (0-shot) | 70.4% |
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+ | TruthfulQA (0-shot) | 50.3% |
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+ | MMLU (5-shot) | 68.0% |
52
+ | TriviaQA (5-shot) | 73.8% |
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+ | NaturalQuestions (5-shot) | 31.2% |
54
 
55
+ ### Multilingual Benchmarks (MMLU)
56
 
57
+ | Language | Score |
58
+ | --- | --- |
59
+ | French | 62.3% |
60
+ | German | 62.7% |
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+ | Spanish | 64.6% |
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+ | Italian | 61.3% |
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+ | Portuguese | 63.3% |
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+ | Russian | 59.2% |
65
+ | Chinese | 59.0% |
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+ | Japanese | 59.0% |
67
 
68
+ ## Usage
69
 
70
+ The model can be used with three different frameworks
71
 
72
+ - [`mistral_inference`](https://github.com/mistralai/mistral-inference): See [here](https://huggingface.co/mistralai/Mistral-Nemo-Instruct-2407#mistral-inference)
73
+ - [`transformers`](https://github.com/huggingface/transformers): See [here](#transformers)
74
+ - [`NeMo`](https://github.com/NVIDIA/NeMo): See [nvidia/Mistral-NeMo-12B-Instruct](https://huggingface.co/nvidia/Mistral-NeMo-12B-Instruct)
75
 
76
+ ### Mistral Inference
77
 
78
+ #### Install
79
 
80
+ It is recommended to use `mistralai/Mistral-Nemo-Instruct-2407` with [mistral-inference](https://github.com/mistralai/mistral-inference). For HF transformers code snippets, please keep scrolling.
81
 
 
 
82
  ```
83
+ pip install mistral_inference
84
+ ```
85
+
86
+ #### Download
87
+
88
+ ```py
89
+ from huggingface_hub import snapshot_download
90
+ from pathlib import Path
91
 
92
+ mistral_models_path = Path.home().joinpath('mistral_models', 'Nemo-Instruct')
93
+ mistral_models_path.mkdir(parents=True, exist_ok=True)
94
 
95
+ snapshot_download(repo_id="mistralai/Mistral-Nemo-Instruct-2407", allow_patterns=["params.json", "consolidated.safetensors", "tekken.json"], local_dir=mistral_models_path)
 
96
  ```
97
 
98
+ #### Chat
99
+
100
+ After installing `mistral_inference`, a `mistral-chat` CLI command should be available in your environment. You can chat with the model using
101
+
102
+ ```
103
+ mistral-chat $HOME/mistral_models/Nemo-Instruct --instruct --max_tokens 256 --temperature 0.35
104
+ ```
105
 
106
+ *E.g.* Try out something like:
107
+ ```
108
+ How expensive would it be to ask a window cleaner to clean all windows in Paris. Make a reasonable guess in US Dollar.
109
  ```
110
 
111
+ #### Instruct following
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+
113
+ ```py
114
+ from mistral_inference.transformer import Transformer
115
+ from mistral_inference.generate import generate
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+
117
+ from mistral_common.tokens.tokenizers.mistral import MistralTokenizer
118
+ from mistral_common.protocol.instruct.messages import UserMessage
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+ from mistral_common.protocol.instruct.request import ChatCompletionRequest
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+
121
+ tokenizer = MistralTokenizer.from_file(f"{mistral_models_path}/tekken.json")
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+ model = Transformer.from_folder(mistral_models_path)
123
+
124
+ prompt = "How expensive would it be to ask a window cleaner to clean all windows in Paris. Make a reasonable guess in US Dollar."
125
 
126
+ completion_request = ChatCompletionRequest(messages=[UserMessage(content=prompt)])
127
 
128
+ tokens = tokenizer.encode_chat_completion(completion_request).tokens
129
+
130
+ out_tokens, _ = generate([tokens], model, max_tokens=64, temperature=0.35, eos_id=tokenizer.instruct_tokenizer.tokenizer.eos_id)
131
+ result = tokenizer.decode(out_tokens[0])
132
+
133
+ print(result)
134
+ ```
135
+
136
+ #### Function calling
137
+
138
+ ```py
139
+ from mistral_common.protocol.instruct.tool_calls import Function, Tool
140
+ from mistral_inference.transformer import Transformer
141
+ from mistral_inference.generate import generate
142
+
143
+ from mistral_common.tokens.tokenizers.mistral import MistralTokenizer
144
+ from mistral_common.protocol.instruct.messages import UserMessage
145
+ from mistral_common.protocol.instruct.request import ChatCompletionRequest
146
+
147
+
148
+ tokenizer = MistralTokenizer.from_file(f"{mistral_models_path}/tekken.json")
149
+ model = Transformer.from_folder(mistral_models_path)
150
+
151
+ completion_request = ChatCompletionRequest(
152
+ tools=[
153
+ Tool(
154
+ function=Function(
155
+ name="get_current_weather",
156
+ description="Get the current weather",
157
+ parameters={
158
+ "type": "object",
159
+ "properties": {
160
+ "location": {
161
+ "type": "string",
162
+ "description": "The city and state, e.g. San Francisco, CA",
163
+ },
164
+ "format": {
165
+ "type": "string",
166
+ "enum": ["celsius", "fahrenheit"],
167
+ "description": "The temperature unit to use. Infer this from the users location.",
168
+ },
169
+ },
170
+ "required": ["location", "format"],
171
+ },
172
+ )
173
+ )
174
+ ],
175
+ messages=[
176
+ UserMessage(content="What's the weather like today in Paris?"),
177
+ ],
178
+ )
179
+
180
+ tokens = tokenizer.encode_chat_completion(completion_request).tokens
181
+
182
+ out_tokens, _ = generate([tokens], model, max_tokens=256, temperature=0.35, eos_id=tokenizer.instruct_tokenizer.tokenizer.eos_id)
183
+ result = tokenizer.decode(out_tokens[0])
184
+
185
+ print(result)
186
  ```
187
 
188
+ ### Transformers
189
+
190
+ > [!IMPORTANT]
191
+ > NOTE: Until a new release has been made, you need to install transformers from source:
192
+ > ```sh
193
+ > pip install git+https://github.com/huggingface/transformers.git
194
+ > ```
195
+
196
+ If you want to use Hugging Face `transformers` to generate text, you can do something like this.
197
 
198
+ ```py
199
+ from transformers import pipeline
200
+
201
+ messages = [
202
+ {"role": "system", "content": "You are a pirate chatbot who always responds in pirate speak!"},
203
+ {"role": "user", "content": "Who are you?"},
204
+ ]
205
+ chatbot = pipeline("text-generation", model="mistralai/Mistral-Nemo-Instruct-2407")
206
+ chatbot(messages)
207
  ```
208
+
209
+ > [!TIP]
210
+ > Unlike previous Mistral models, Mistral Nemo requires smaller temperatures. We recommend to use a temperature of 0.3.
211
+
212
+ ## Limitations
213
+
214
+ The Mistral Nemo Instruct model is a quick demonstration that the base model can be easily fine-tuned to achieve compelling performance.
215
+ It does not have any moderation mechanisms. We're looking forward to engaging with the community on ways to
216
+ make the model finely respect guardrails, allowing for deployment in environments requiring moderated outputs.
217
+
218
+ ## The Mistral AI Team
219
+
220
+ Albert Jiang, Alexandre Sablayrolles, Alexis Tacnet, Alok Kothari, Antoine Roux, Arthur Mensch, Audrey Herblin-Stoop, Augustin Garreau, Austin Birky, Bam4d, Baptiste Bout, Baudouin de Monicault, Blanche Savary, Carole Rambaud, Caroline Feldman, Devendra Singh Chaplot, Diego de las Casas, Eleonore Arcelin, Emma Bou Hanna, Etienne Metzger, Gaspard Blanchet, Gianna Lengyel, Guillaume Bour, Guillaume Lample, Harizo Rajaona, Henri Roussez, Hichem Sattouf, Ian Mack, Jean-Malo Delignon, Jessica Chudnovsky, Justus Murke, Kartik Khandelwal, Lawrence Stewart, Louis Martin, Louis Ternon, Lucile Saulnier, Lélio Renard Lavaud, Margaret Jennings, Marie Pellat, Marie Torelli, Marie-Anne Lachaux, Marjorie Janiewicz, Mickaël Seznec, Nicolas Schuhl, Niklas Muhs, Olivier de Garrigues, Patrick von Platen, Paul Jacob, Pauline Buche, Pavan Kumar Reddy, Perry Savas, Pierre Stock, Romain Sauvestre, Sagar Vaze, Sandeep Subramanian, Saurabh Garg, Sophia Yang, Szymon Antoniak, Teven Le Scao, Thibault Schueller, Thibaut Lavril, Thomas Wang, Théophile Gervet, Timothée Lacroix, Valera Nemychnikova, Wendy Shang, William El Sayed, William Marshall
config.json ADDED
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15
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24
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25
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26
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27
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28
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29
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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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