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+ tekken.json filter=lfs diff=lfs merge=lfs -text
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+ tokenizer.json filter=lfs diff=lfs merge=lfs -text
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+ assets/swe_bench.png filter=lfs diff=lfs merge=lfs -text
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+ assets/tuto_open_hands/agent_working.png filter=lfs diff=lfs merge=lfs -text
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+ assets/tuto_open_hands/build_app.png filter=lfs diff=lfs merge=lfs -text
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+ assets/tuto_open_hands/agent_prompting.png filter=lfs diff=lfs merge=lfs -text
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+ assets/tuto_open_hands/app_ui.png filter=lfs diff=lfs merge=lfs -text
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+ ---
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+ language:
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+ - en
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+ - fr
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+ - de
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+ - es
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+ - pt
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+ - it
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+ - ja
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+ - ko
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+ - ru
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+ - zh
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+ - ar
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+ - fa
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+ - id
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+ - ms
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+ - ne
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+ - pl
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+ - ro
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+ - sr
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+ - sv
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+ - tr
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+ - uk
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+ - vi
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+ - hi
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+ - bn
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+ license: apache-2.0
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+ library_name: vllm
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+ inference: false
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+ base_model:
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+ - mistralai/Devstrall-Small-2505
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+ extra_gated_description: >-
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+ If you want to learn more about how we process your personal data, please read
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+ our <a href="https://mistral.ai/terms/">Privacy Policy</a>.
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+ pipeline_tag: text2text-generation
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+ ---
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+
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+ # Devstral-Small-2505
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+
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+ Devstral is an agentic LLM for software engineering tasks built under a collaboration between [Mistral AI](https://mistral.ai/) and [All Hands AI](https://www.all-hands.dev/) 🙌. Devstral excels at using tools to explore codebases, editing multiple files and power software engineering agents. The model achieves remarkable performance on SWE-bench which positionates it as the #1 open source model on this [benchmark](#benchmark-results).
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+
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+ It is finetuned from [Mistral-Small-3.1](https://huggingface.co/mistralai/Mistral-Small-3.1-24B-Base-2503), therefore it has a long context window of up to 128k tokens. As a coding agent, Devstral is text-only and before fine-tuning from `Mistral-Small-3.1` the vision encoder was removed.
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+
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+ For enterprises requiring specialized capabilities (increased context, domain-specific knowledge, etc.), we will release commercial models beyond what Mistral AI contributes to the community.
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+
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+ Learn more about Devstral in our [blog post](https://mistral.ai/news/devstral).
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+
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+
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+ ## Key Features:
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+ - **Agentic coding**: Devstral is designed to excel at agentic coding tasks, making it a great choice for software engineering agents.
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+ - **lightweight**: with its compact size of just 24 billion parameters, Devstral is light enough to run on a single RTX 4090 or a Mac with 32GB RAM, making it an appropriate model for local deployment and on-device use.
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+ - **Apache 2.0 License**: Open license allowing usage and modification for both commercial and non-commercial purposes.
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+ - **Context Window**: A 128k context window.
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+ - **Tokenizer**: Utilizes a Tekken tokenizer with a 131k vocabulary size.
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+
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+
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+
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+ ## Benchmark Results
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+
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+ ### SWE-Bench
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+
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+ Devstral achieves a score of 46.8% on SWE-Bench Verified, outperforming prior open-source SoTA by 6%.
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+
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+ | Model | Scaffold | SWE-Bench Verified (%) |
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+ |------------------|--------------------|------------------------|
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+ | Devstral | OpenHands Scaffold | **46.8** |
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+ | GPT-4.1-mini | OpenAI Scaffold | 23.6 |
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+ | Claude 3.5 Haiku | Anthropic Scaffold | 40.6 |
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+ | SWE-smith-LM 32B | SWE-agent Scaffold | 40.2 |
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+
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+
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+ When evaluated under the same test scaffold (OpenHands, provided by All Hands AI 🙌), Devstral exceeds far larger models such as Deepseek-V3-0324 and Qwen3 232B-A22B.
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+
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+ ![SWE Benchmark](assets/swe_bench.png)
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+
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+ ## Usage
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+
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+ We recommend to use Devstral with the [OpenHands](https://github.com/All-Hands-AI/OpenHands/tree/main) scaffold.
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+ You can use it either through our API or by running locally.
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+
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+ ### API
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+ Follow these [instructions](https://docs.mistral.ai/getting-started/quickstart/#account-setup) to create a Mistral account and get an API key.
83
+
84
+ Then run these commands to start the OpenHands docker container.
85
+ ```bash
86
+ export MISTRAL_API_KEY=<MY_KEY>
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+
88
+ docker pull docker.all-hands.dev/all-hands-ai/runtime:0.39-nikolaik
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+
90
+ mkdir -p ~/.openhands-state && echo '{"language":"en","agent":"CodeActAgent","max_iterations":null,"security_analyzer":null,"confirmation_mode":false,"llm_model":"mistral/devstral-small-2505","llm_api_key":"'$MISTRAL_API_KEY'","remote_runtime_resource_factor":null,"github_token":null,"enable_default_condenser":true}' > ~/.openhands-state/settings.json
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+
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+ docker run -it --rm --pull=always \
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+ -e SANDBOX_RUNTIME_CONTAINER_IMAGE=docker.all-hands.dev/all-hands-ai/runtime:0.39-nikolaik \
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+ -e LOG_ALL_EVENTS=true \
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+ -v /var/run/docker.sock:/var/run/docker.sock \
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+ -v ~/.openhands-state:/.openhands-state \
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+ -p 3000:3000 \
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+ --add-host host.docker.internal:host-gateway \
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+ --name openhands-app \
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+ docker.all-hands.dev/all-hands-ai/openhands:0.39
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+ ```
102
+
103
+ ### Local inference
104
+
105
+ The model can also be deployed with the following libraries:
106
+ - [`vllm (recommended)`](https://github.com/vllm-project/vllm): See [here](#vllm-recommended)
107
+ - [`mistral-inference`](https://github.com/mistralai/mistral-inference): See [here](#mistral-inference)
108
+ - [`transformers`](https://github.com/huggingface/transformers): See [here](#transformers)
109
+ - [`LMStudio`](https://lmstudio.ai/): See [here](#lmstudio)
110
+ - [`ollama`](https://github.com/ollama/ollama): See [here](#ollama)
111
+
112
+
113
+ ### OpenHands (recommended)
114
+
115
+ #### Launch a server to deploy Devstral-Small-2505
116
+
117
+ Make sure you launched an OpenAI-compatible server such as vLLM or Ollama as described above. Then, you can use OpenHands to interact with `Devstral-Small-2505`.
118
+
119
+ In the case of the tutorial we spineed up a vLLM server running the command:
120
+ ```bash
121
+ vllm serve mistralai/Devstral-Small-2505 --tokenizer_mode mistral --config_format mistral --load_format mistral --tool-call-parser mistral --enable-auto-tool-choice --tensor-parallel-size 2
122
+ ```
123
+
124
+ The server address should be in the following format: `http://<your-server-url>:8000/v1`
125
+
126
+ #### Launch OpenHands
127
+
128
+ You can follow installation of OpenHands [here](https://docs.all-hands.dev/modules/usage/installation).
129
+
130
+ The easiest way to launch OpenHands is to use the Docker image:
131
+ ```bash
132
+ docker pull docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik
133
+
134
+ docker run -it --rm --pull=always \
135
+ -e SANDBOX_RUNTIME_CONTAINER_IMAGE=docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik \
136
+ -e LOG_ALL_EVENTS=true \
137
+ -v /var/run/docker.sock:/var/run/docker.sock \
138
+ -v ~/.openhands-state:/.openhands-state \
139
+ -p 3000:3000 \
140
+ --add-host host.docker.internal:host-gateway \
141
+ --name openhands-app \
142
+ docker.all-hands.dev/all-hands-ai/openhands:0.38
143
+ ```
144
+
145
+
146
+ Then, you can access the OpenHands UI at `http://localhost:3000`.
147
+
148
+ #### Connect to the server
149
+
150
+ When accessing the OpenHands UI, you will be prompted to connect to a server. You can use the advanced mode to connect to the server you launched earlier.
151
+
152
+ Fill the following fields:
153
+ - **Custom Model**: `openai/mistralai/Devstral-Small-2505`
154
+ - **Base URL**: `http://<your-server-url>:8000/v1`
155
+ - **API Key**: `token` (or any other token you used to launch the server if any)
156
+
157
+ #### Use OpenHands powered by Devstral
158
+
159
+ Now you're good to use Devstral Small inside OpenHands by **starting a new conversation**. Let's build a To-Do list app.
160
+
161
+ <details>
162
+ <summary>To-Do list app</summary
163
+
164
+ 1. Let's ask Devstral to generate the app with the following prompt:
165
+
166
+ ```txt
167
+ Build a To-Do list app with the following requirements:
168
+ - Built using FastAPI and React.
169
+ - Make it a one page app that:
170
+ - Allows to add a task.
171
+ - Allows to delete a task.
172
+ - Allows to mark a task as done.
173
+ - Displays the list of tasks.
174
+ - Store the tasks in a SQLite database.
175
+ ```
176
+
177
+ ![Agent prompting](assets/tuto_open_hands/agent_prompting.png)
178
+
179
+
180
+ 2. Let's see the result
181
+
182
+ You should see the agent construct the app and be able to explore the code it generated.
183
+
184
+ If it doesn't do it automatically, ask Devstral to deploy the app or do it manually, and then go the front URL deployment to see the app.
185
+
186
+ ![Agent working](assets/tuto_open_hands/agent_working.png)
187
+ ![App UI](assets/tuto_open_hands/app_ui.png)
188
+
189
+
190
+ 3. Iterate
191
+
192
+ Now that you have a first result you can iterate on it by asking your agent to improve it. For example, in the app generated we could click on a task to mark it checked but having a checkbox would improve UX. You could also ask it to add a feature to edit a task, or to add a feature to filter the tasks by status.
193
+
194
+ Enjoy building with Devstral Small and OpenHands!
195
+
196
+ </details>
197
+
198
+
199
+ ### vLLM (recommended)
200
+
201
+ We recommend using this model with the [vLLM library](https://github.com/vllm-project/vllm)
202
+ to implement production-ready inference pipelines.
203
+
204
+ **_Installation_**
205
+
206
+ Make sure you install [`vLLM >= 0.8.5`](https://github.com/vllm-project/vllm/releases/tag/v0.8.5):
207
+
208
+ ```
209
+ pip install vllm --upgrade
210
+ ```
211
+
212
+ Doing so should automatically install [`mistral_common >= 1.5.5`](https://github.com/mistralai/mistral-common/releases/tag/v1.5.5).
213
+
214
+ To check:
215
+ ```
216
+ python -c "import mistral_common; print(mistral_common.__version__)"
217
+ ```
218
+
219
+ You can also make use of a ready-to-go [docker image](https://github.com/vllm-project/vllm/blob/main/Dockerfile) or on the [docker hub](https://hub.docker.com/layers/vllm/vllm-openai/latest/images/sha256-de9032a92ffea7b5c007dad80b38fd44aac11eddc31c435f8e52f3b7404bbf39).
220
+
221
+ #### Server
222
+
223
+ We recommand that you use Devstral in a server/client setting.
224
+
225
+ 1. Spin up a server:
226
+
227
+ ```
228
+ vllm serve mistralai/Devstral-Small-2505 --tokenizer_mode mistral --config_format mistral --load_format mistral --tool-call-parser mistral --enable-auto-tool-choice --tensor-parallel-size 2
229
+ ```
230
+
231
+
232
+ 2. To ping the client you can use a simple Python snippet.
233
+
234
+ ```py
235
+ import requests
236
+ import json
237
+ from huggingface_hub import hf_hub_download
238
+
239
+
240
+ url = "http://<your-server-url>:8000/v1/chat/completions"
241
+ headers = {"Content-Type": "application/json", "Authorization": "Bearer token"}
242
+
243
+ model = "mistralai/Devstral-Small-2505"
244
+
245
+ def load_system_prompt(repo_id: str, filename: str) -> str:
246
+ file_path = hf_hub_download(repo_id=repo_id, filename=filename)
247
+ with open(file_path, "r") as file:
248
+ system_prompt = file.read()
249
+ return system_prompt
250
+
251
+ SYSTEM_PROMPT = load_system_prompt(model, "SYSTEM_PROMPT.txt")
252
+
253
+ messages = [
254
+ {"role": "system", "content": SYSTEM_PROMPT},
255
+ {
256
+ "role": "user",
257
+ "content": [
258
+ {
259
+ "type": "text",
260
+ "text": "<your-command>",
261
+ },
262
+ ],
263
+ },
264
+ ]
265
+
266
+ data = {"model": model, "messages": messages, "temperature": 0.15}
267
+
268
+ response = requests.post(url, headers=headers, data=json.dumps(data))
269
+ print(response.json()["choices"][0]["message"]["content"])
270
+ ```
271
+
272
+ ### Mistral-inference
273
+
274
+ We recommend using mistral-inference to quickly try out / "vibe-check" Devstral.
275
+
276
+ #### Install
277
+
278
+ Make sure to have mistral_inference >= 1.6.0 installed.
279
+
280
+ ```bash
281
+ pip install mistral_inference --upgrade
282
+ ```
283
+
284
+ #### Download
285
+
286
+ ```python
287
+ from huggingface_hub import snapshot_download
288
+ from pathlib import Path
289
+
290
+ mistral_models_path = Path.home().joinpath('mistral_models', 'Devstral')
291
+ mistral_models_path.mkdir(parents=True, exist_ok=True)
292
+
293
+ snapshot_download(repo_id="mistralai/Devstral-Small-2505", allow_patterns=["params.json", "consolidated.safetensors", "tekken.json"], local_dir=mistral_models_path)
294
+ ```
295
+
296
+ #### Python
297
+
298
+ You can run the model using the following command:
299
+
300
+ ```bash
301
+ mistral-chat $HOME/mistral_models/Devstral --instruct --max_tokens 300
302
+ ```
303
+
304
+ You can then prompt it with anything you'd like.
305
+
306
+ ### Transformers
307
+
308
+ To make the best use of our model with transformers make sure to have [installed](https://github.com/mistralai/mistral-common) ` mistral-common >= 1.5.5` to use our tokenizer.
309
+
310
+ ```bash
311
+ pip install mistral-common --upgrade
312
+ ```
313
+
314
+ Then load our tokenizer along with the model and generate:
315
+
316
+ ```python
317
+ import torch
318
+
319
+ from mistral_common.protocol.instruct.messages import (
320
+ SystemMessage, UserMessage
321
+ )
322
+ from mistral_common.protocol.instruct.request import ChatCompletionRequest
323
+ from mistral_common.tokens.tokenizers.mistral import MistralTokenizer
324
+ from mistral_common.tokens.tokenizers.tekken import SpecialTokenPolicy
325
+ from huggingface_hub import hf_hub_download
326
+ from transformers import AutoModelForCausalLM
327
+
328
+ def load_system_prompt(repo_id: str, filename: str) -> str:
329
+ file_path = hf_hub_download(repo_id=repo_id, filename=filename)
330
+ with open(file_path, "r") as file:
331
+ system_prompt = file.read()
332
+ return system_prompt
333
+
334
+ model_id = "mistralai/Devstral-Small-2505"
335
+ tekken_file = hf_hub_download(repo_id=model_id, filename="tekken.json")
336
+ SYSTEM_PROMPT = load_system_prompt(model_id, "SYSTEM_PROMPT.txt")
337
+
338
+ tokenizer = MistralTokenizer.from_file(tekken_file)
339
+
340
+ model = AutoModelForCausalLM.from_pretrained(model_id)
341
+
342
+ tokenized = tokenizer.encode_chat_completion(
343
+ ChatCompletionRequest(
344
+ messages=[
345
+ SystemMessage(content=SYSTEM_PROMPT),
346
+ UserMessage(content="<your-command>"),
347
+ ],
348
+ )
349
+ )
350
+
351
+ output = model.generate(
352
+ input_ids=torch.tensor([tokenized.tokens]),
353
+ max_new_tokens=1000,
354
+ )[0]
355
+
356
+ decoded_output = tokenizer.decode(output[len(tokenized.tokens):])
357
+ print(decoded_output)
358
+ ```
359
+
360
+ ### LMStudio
361
+ Download the weights from huggingface:
362
+
363
+ ```
364
+ pip install -U "huggingface_hub[cli]"
365
+ huggingface-cli download \
366
+ "mistralai/Devstral-Small-2505_gguf" \
367
+ --include "devstralQ4_K_M.gguf" \
368
+ --local-dir "mistralai/Devstral-Small-2505_gguf/"
369
+ ```
370
+
371
+ You can serve the model locally with [LMStudio](https://lmstudio.ai/).
372
+ * Download [LM Studio](https://lmstudio.ai/) and install it
373
+ * Install `lms cli ~/.lmstudio/bin/lms bootstrap`
374
+ * In a bash terminal, run `lms import devstralQ4_K_M.gguf` in the directory where you've downloaded the model checkpoint (e.g. `mistralai/Devstral-Small-2505_gguf`)
375
+ * Open the LMStudio application, click the terminal icon to get into the developer tab. Click select a model to load and select Devstral Q4 K M. Toggle the status button to start the model, in setting toggle Serve on Local Network to be on.
376
+ * On the right tab, you will see an API identifier which should be devstralq4_k_m and an api address under API Usage. Keep note of this address, we will use it in the next step.
377
+
378
+ Launch Openhands
379
+ You can now interact with the model served from LM Studio with openhands. Start the openhands server with the docker
380
+
381
+ ```bash
382
+ docker pull docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik
383
+ docker run -it --rm --pull=always \
384
+ -e SANDBOX_RUNTIME_CONTAINER_IMAGE=docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik \
385
+ -e LOG_ALL_EVENTS=true \
386
+ -v /var/run/docker.sock:/var/run/docker.sock \
387
+ -v ~/.openhands-state:/.openhands-state \
388
+ -p 3000:3000 \
389
+ --add-host host.docker.internal:host-gateway \
390
+ --name openhands-app \
391
+ docker.all-hands.dev/all-hands-ai/openhands:0.38
392
+ ```
393
+
394
+ Click “see advanced setting” on the second line.
395
+ In the new tab, toggle advanced to on. Set the custom model to be mistral/devstralq4_k_m and Base URL the api address we get from the last step in LM Studio. Set API Key to dummy. Click save changes.
396
+
397
+
398
+ ### Ollama
399
+
400
+ You can run Devstral using the [Ollama](https://ollama.ai/) CLI.
401
+
402
+ ```bash
403
+ ollama run devstral
404
+ ```
SYSTEM_PROMPT.txt ADDED
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1
+ You are Devstral, a helpful agentic model trained by Mistral AI and using the OpenHands scaffold. You can interact with a computer to solve tasks.
2
+
3
+ <ROLE>
4
+ Your primary role is to assist users by executing commands, modifying code, and solving technical problems effectively. You should be thorough, methodical, and prioritize quality over speed.
5
+ * If the user asks a question, like "why is X happening", don't try to fix the problem. Just give an answer to the question.
6
+ </ROLE>
7
+
8
+ <EFFICIENCY>
9
+ * Each action you take is somewhat expensive. Wherever possible, combine multiple actions into a single action, e.g. combine multiple bash commands into one, using sed and grep to edit/view multiple files at once.
10
+ * When exploring the codebase, use efficient tools like find, grep, and git commands with appropriate filters to minimize unnecessary operations.
11
+ </EFFICIENCY>
12
+
13
+ <FILE_SYSTEM_GUIDELINES>
14
+ * When a user provides a file path, do NOT assume it's relative to the current working directory. First explore the file system to locate the file before working on it.
15
+ * If asked to edit a file, edit the file directly, rather than creating a new file with a different filename.
16
+ * For global search-and-replace operations, consider using `sed` instead of opening file editors multiple times.
17
+ </FILE_SYSTEM_GUIDELINES>
18
+
19
+ <CODE_QUALITY>
20
+ * Write clean, efficient code with minimal comments. Avoid redundancy in comments: Do not repeat information that can be easily inferred from the code itself.
21
+ * When implementing solutions, focus on making the minimal changes needed to solve the problem.
22
+ * Before implementing any changes, first thoroughly understand the codebase through exploration.
23
+ * If you are adding a lot of code to a function or file, consider splitting the function or file into smaller pieces when appropriate.
24
+ </CODE_QUALITY>
25
+
26
+ <VERSION_CONTROL>
27
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+ <TROUBLESHOOTING>
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+ 2. Assess the likelihood of each possible cause
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+ 3. Methodically address the most likely causes, starting with the highest probability
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+ 4. Document your reasoning process
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+ "<unk>",
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