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  *.zip filter=lfs diff=lfs merge=lfs -text
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README.md ADDED
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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/Devstral-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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+ # Model Card for mistralai/Devstrall-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.
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+
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+ Then run these commands to start the OpenHands docker container.
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+ ```bash
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+ 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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+ ```
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+
103
+ ### Local inference
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+
105
+ You can also run the model locally. It can be done with LMStudio or other providers listed below.
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+
107
+ Launch Openhands
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+ You can now interact with the model served from LM Studio with openhands. Start the openhands server with the docker
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+
110
+ ```bash
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+ docker pull docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik
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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:0.38-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:0.38
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+ ```
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+
123
+ The server will start at http://0.0.0.0:3000. Open it in your browser and you will see a tab AI Provider Configuration.
124
+ Now you can start a new conversation with the agent by clicking on the plus sign on the left bar.
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+
126
+
127
+ The model can also be deployed with the following libraries:
128
+ - [`LMStudio (recommended for quantized model)`](https://lmstudio.ai/): See [here](#lmstudio-recommended-for-quantized-model)
129
+ - [`vllm (recommended)`](https://github.com/vllm-project/vllm): See [here](#vllm-recommended)
130
+ - [`mistral-inference`](https://github.com/mistralai/mistral-inference): See [here](#mistral-inference)
131
+ - [`transformers`](https://github.com/huggingface/transformers): See [here](#transformers)
132
+ - [`ollama`](https://github.com/ollama/ollama): See [here](#ollama)
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+
134
+
135
+ ### OpenHands (recommended)
136
+
137
+ #### Launch a server to deploy Devstral-Small-2505
138
+
139
+ 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`.
140
+
141
+ In the case of the tutorial we spineed up a vLLM server running the command:
142
+ ```bash
143
+ 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
144
+ ```
145
+
146
+ The server address should be in the following format: `http://<your-server-url>:8000/v1`
147
+
148
+ #### Launch OpenHands
149
+
150
+ You can follow installation of OpenHands [here](https://docs.all-hands.dev/modules/usage/installation).
151
+
152
+ The easiest way to launch OpenHands is to use the Docker image:
153
+ ```bash
154
+ docker pull docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik
155
+
156
+ docker run -it --rm --pull=always \
157
+ -e SANDBOX_RUNTIME_CONTAINER_IMAGE=docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik \
158
+ -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 \
161
+ -p 3000:3000 \
162
+ --add-host host.docker.internal:host-gateway \
163
+ --name openhands-app \
164
+ docker.all-hands.dev/all-hands-ai/openhands:0.38
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+ ```
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+
167
+
168
+ Then, you can access the OpenHands UI at `http://localhost:3000`.
169
+
170
+ #### Connect to the server
171
+
172
+ 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.
173
+
174
+ Fill the following fields:
175
+ - **Custom Model**: `openai/mistralai/Devstral-Small-2505`
176
+ - **Base URL**: `http://<your-server-url>:8000/v1`
177
+ - **API Key**: `token` (or any other token you used to launch the server if any)
178
+
179
+ #### Use OpenHands powered by Devstral
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+
181
+ Now you're good to use Devstral Small inside OpenHands by **starting a new conversation**. Let's build a To-Do list app.
182
+
183
+ <details>
184
+ <summary>To-Do list app</summary
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+
186
+ 1. Let's ask Devstral to generate the app with the following prompt:
187
+
188
+ ```txt
189
+ Build a To-Do list app with the following requirements:
190
+ - Built using FastAPI and React.
191
+ - Make it a one page app that:
192
+ - Allows to add a task.
193
+ - Allows to delete a task.
194
+ - Allows to mark a task as done.
195
+ - Displays the list of tasks.
196
+ - Store the tasks in a SQLite database.
197
+ ```
198
+
199
+ ![Agent prompting](assets/tuto_open_hands/agent_prompting.png)
200
+
201
+
202
+ 2. Let's see the result
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+
204
+ You should see the agent construct the app and be able to explore the code it generated.
205
+
206
+ 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.
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+
208
+ ![Agent working](assets/tuto_open_hands/agent_working.png)
209
+ ![App UI](assets/tuto_open_hands/app_ui.png)
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+
211
+
212
+ 3. Iterate
213
+
214
+ 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.
215
+
216
+ Enjoy building with Devstral Small and OpenHands!
217
+
218
+ </details>
219
+
220
+
221
+ ### LMStudio (recommended for quantized model)
222
+ Download the weights from huggingface:
223
+
224
+ ```
225
+ pip install -U "huggingface_hub[cli]"
226
+ huggingface-cli download \
227
+ "mistralai/Devstral-Small-2505_gguf" \
228
+ --include "devstralQ4_K_M.gguf" \
229
+ --local-dir "mistralai/Devstral-Small-2505_gguf/"
230
+ ```
231
+
232
+ You can serve the model locally with [LMStudio](https://lmstudio.ai/).
233
+ * Download [LM Studio](https://lmstudio.ai/) and install it
234
+ * Install `lms cli ~/.lmstudio/bin/lms bootstrap`
235
+ * In a bash terminal, run `lms import devstralQ4_K_M.ggu` in the directory where you've downloaded the model checkpoint (e.g. `mistralai/Devstral-Small-2505_gguf`)
236
+ * 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 oggle Serve on Local Network to be on.
237
+ * 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.
238
+
239
+ Launch Openhands
240
+ You can now interact with the model served from LM Studio with openhands. Start the openhands server with the docker
241
+
242
+ ```bash
243
+ docker pull docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik
244
+ docker run -it --rm --pull=always \
245
+ -e SANDBOX_RUNTIME_CONTAINER_IMAGE=docker.all-hands.dev/all-hands-ai/runtime:0.38-nikolaik \
246
+ -e LOG_ALL_EVENTS=true \
247
+ -v /var/run/docker.sock:/var/run/docker.sock \
248
+ -v ~/.openhands-state:/.openhands-state \
249
+ -p 3000:3000 \
250
+ --add-host host.docker.internal:host-gateway \
251
+ --name openhands-app \
252
+ docker.all-hands.dev/all-hands-ai/openhands:0.38
253
+ ```
254
+
255
+ Click “see advanced setting” on the second line.
256
+ 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.
257
+
258
+ ### vLLM (recommended)
259
+
260
+ We recommend using this model with the [vLLM library](https://github.com/vllm-project/vllm)
261
+ to implement production-ready inference pipelines.
262
+
263
+ **_Installation_**
264
+
265
+ Make sure you install [`vLLM >= 0.8.5`](https://github.com/vllm-project/vllm/releases/tag/v0.8.5):
266
+
267
+ ```
268
+ pip install vllm --upgrade
269
+ ```
270
+
271
+ Doing so should automatically install [`mistral_common >= 1.5.5`](https://github.com/mistralai/mistral-common/releases/tag/v1.5.5).
272
+
273
+ To check:
274
+ ```
275
+ python -c "import mistral_common; print(mistral_common.__version__)"
276
+ ```
277
+
278
+ 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).
279
+
280
+ #### Server
281
+
282
+ We recommand that you use Devstral in a server/client setting.
283
+
284
+ 1. Spin up a server:
285
+
286
+ ```
287
+ 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
288
+ ```
289
+
290
+
291
+ 2. To ping the client you can use a simple Python snippet.
292
+
293
+ ```py
294
+ import requests
295
+ import json
296
+ from huggingface_hub import hf_hub_download
297
+
298
+
299
+ url = "http://<your-server-url>:8000/v1/chat/completions"
300
+ headers = {"Content-Type": "application/json", "Authorization": "Bearer token"}
301
+
302
+ model = "mistralai/Devstral-Small-2505"
303
+
304
+ def load_system_prompt(repo_id: str, filename: str) -> str:
305
+ file_path = hf_hub_download(repo_id=repo_id, filename=filename)
306
+ with open(file_path, "r") as file:
307
+ system_prompt = file.read()
308
+ return system_prompt
309
+
310
+ SYSTEM_PROMPT = load_system_prompt(model, "SYSTEM_PROMPT.txt")
311
+
312
+ messages = [
313
+ {"role": "system", "content": SYSTEM_PROMPT},
314
+ {
315
+ "role": "user",
316
+ "content": [
317
+ {
318
+ "type": "text",
319
+ "text": "<your-command>",
320
+ },
321
+ ],
322
+ },
323
+ ]
324
+
325
+ data = {"model": model, "messages": messages, "temperature": 0.15}
326
+
327
+ response = requests.post(url, headers=headers, data=json.dumps(data))
328
+ print(response.json()["choices"][0]["message"]["content"])
329
+ ```
330
+
331
+
332
+ ### Mistral-inference
333
+
334
+ We recommend using mistral-inference to quickly try out / "vibe-check" Devstral.
335
+
336
+ #### Install
337
+
338
+ Make sure to have mistral_inference >= 1.6.0 installed.
339
+
340
+ ```bash
341
+ pip install mistral_inference --upgrade
342
+ ```
343
+
344
+ #### Download
345
+
346
+ ```python
347
+ from huggingface_hub import snapshot_download
348
+ from pathlib import Path
349
+
350
+ mistral_models_path = Path.home().joinpath('mistral_models', 'Devstral')
351
+ mistral_models_path.mkdir(parents=True, exist_ok=True)
352
+
353
+ snapshot_download(repo_id="mistralai/Devstral-Small-2505", allow_patterns=["params.json", "consolidated.safetensors", "tekken.json"], local_dir=mistral_models_path)
354
+ ```
355
+
356
+ #### Python
357
+
358
+ You can run the model using the following command:
359
+
360
+ ```bash
361
+ mistral-chat $HOME/mistral_models/Devstral --instruct --max_tokens 300
362
+ ```
363
+
364
+ You can then prompt it with anything you'd like.
365
+
366
+ ### Ollama
367
+
368
+ You can run Devstral using the [Ollama](https://ollama.ai/) CLI.
369
+
370
+ ```bash
371
+ ollama run devstral
372
+ ```
373
+
374
+ ### Transformers
375
+
376
+ 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.
377
+
378
+ ```bash
379
+ pip install mistral-common --upgrade
380
+ ```
381
+
382
+ Then load our tokenizer along with the model and generate:
383
+
384
+ ```python
385
+ import torch
386
+
387
+ from mistral_common.protocol.instruct.messages import (
388
+ SystemMessage, UserMessage
389
+ )
390
+ from mistral_common.protocol.instruct.request import ChatCompletionRequest
391
+ from mistral_common.tokens.tokenizers.mistral import MistralTokenizer
392
+ from mistral_common.tokens.tokenizers.tekken import SpecialTokenPolicy
393
+ from huggingface_hub import hf_hub_download
394
+ from transformers import AutoModelForCausalLM
395
+
396
+ def load_system_prompt(repo_id: str, filename: str) -> str:
397
+ file_path = hf_hub_download(repo_id=repo_id, filename=filename)
398
+ with open(file_path, "r") as file:
399
+ system_prompt = file.read()
400
+ return system_prompt
401
+
402
+ model_id = "mistralai/Devstral-Small-2505"
403
+ tekken_file = hf_hub_download(repo_id=model_id, filename="tekken.json")
404
+ SYSTEM_PROMPT = load_system_prompt(model_id, "SYSTEM_PROMPT.txt")
405
+
406
+ tokenizer = MistralTokenizer.from_file(tekken_file)
407
+
408
+ model = AutoModelForCausalLM.from_pretrained(model_id)
409
+
410
+ tokenized = tokenizer.encode_chat_completion(
411
+ ChatCompletionRequest(
412
+ messages=[
413
+ SystemMessage(content=SYSTEM_PROMPT),
414
+ UserMessage(content="<your-command>"),
415
+ ],
416
+ )
417
+ )
418
+
419
+ output = model.generate(
420
+ input_ids=torch.tensor([tokenized.tokens]),
421
+ max_new_tokens=1000,
422
+ )[0]
423
+
424
+ decoded_output = tokenizer.decode(output[len(tokenized.tokens):])
425
+ print(decoded_output)
426
+ ```
chat_template.jinja ADDED
@@ -0,0 +1,51 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ {%- set today = strftime_now("%Y-%m-%d") %}
2
+ {%- set default_system_message = "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.\n\n<ROLE>\nYour 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.\n* 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.\n</ROLE>\n\n<EFFICIENCY>\n* 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.\n* When exploring the codebase, use efficient tools like find, grep, and git commands with appropriate filters to minimize unnecessary operations.\n</EFFICIENCY>\n\n<FILE_SYSTEM_GUIDELINES>\n* 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.\n* If asked to edit a file, edit the file directly, rather than creating a new file with a different filename.\n* For global search-and-replace operations, consider using `sed` instead of opening file editors multiple times.\n</FILE_SYSTEM_GUIDELINES>\n\n<CODE_QUALITY>\n* Write clean, efficient code with minimal comments. Avoid redundancy in comments: Do not repeat information that can be easily inferred from the code itself.\n* When implementing solutions, focus on making the minimal changes needed to solve the problem.\n* Before implementing any changes, first thoroughly understand the codebase through exploration.\n* If you are adding a lot of code to a function or file, consider splitting the function or file into smaller pieces when appropriate.\n</CODE_QUALITY>\n\n<VERSION_CONTROL>\n* When configuring git credentials, use \"openhands\" as the user.name and \"[email protected]\" as the user.email by default, unless explicitly instructed otherwise.\n* Exercise caution with git operations. Do NOT make potentially dangerous changes (e.g., pushing to main, deleting repositories) unless explicitly asked to do so.\n* When committing changes, use `git status` to see all modified files, and stage all files necessary for the commit. Use `git commit -a` whenever possible.\n* Do NOT commit files that typically shouldn't go into version control (e.g., node_modules/, .env files, build directories, cache files, large binaries) unless explicitly instructed by the user.\n* If unsure about committing certain files, check for the presence of .gitignore files or ask the user for clarification.\n</VERSION_CONTROL>\n\n<PULL_REQUESTS>\n* When creating pull requests, create only ONE per session/issue unless explicitly instructed otherwise.\n* When working with an existing PR, update it with new commits rather than creating additional PRs for the same issue.\n* When updating a PR, preserve the original PR title and purpose, updating description only when necessary.\n</PULL_REQUESTS>\n\n<PROBLEM_SOLVING_WORKFLOW>\n1. EXPLORATION: Thoroughly explore relevant files and understand the context before proposing solutions\n2. ANALYSIS: Consider multiple approaches and select the most promising one\n3. TESTING:\n * For bug fixes: Create tests to verify issues before implementing fixes\n * For new features: Consider test-driven development when appropriate\n * If the repository lacks testing infrastructure and implementing tests would require extensive setup, consult with the user before investing time in building testing infrastructure\n * If the environment is not set up to run tests, consult with the user first before investing time to install all dependencies\n4. IMPLEMENTATION: Make focused, minimal changes to address the problem\n5. VERIFICATION: If the environment is set up to run tests, test your implementation thoroughly, including edge cases. If the environment is not set up to run tests, consult with the user first before investing time to run tests.\n</PROBLEM_SOLVING_WORKFLOW>\n\n<SECURITY>\n* Only use GITHUB_TOKEN and other credentials in ways the user has explicitly requested and would expect.\n* Use APIs to work with GitHub or other platforms, unless the user asks otherwise or your task requires browsing.\n</SECURITY>\n\n<ENVIRONMENT_SETUP>\n* When user asks you to run an application, don't stop if the application is not installed. Instead, please install the application and run the command again.\n* If you encounter missing dependencies:\n 1. First, look around in the repository for existing dependency files (requirements.txt, pyproject.toml, package.json, Gemfile, etc.)\n 2. If dependency files exist, use them to install all dependencies at once (e.g., `pip install -r requirements.txt`, `npm install`, etc.)\n 3. Only install individual packages directly if no dependency files are found or if only specific packages are needed\n* Similarly, if you encounter missing dependencies for essential tools requested by the user, install them when possible.\n</ENVIRONMENT_SETUP>\n\n<TROUBLESHOOTING>\n* If you've made repeated attempts to solve a problem but tests still fail or the user reports it's still broken:\n 1. Step back and reflect on 5-7 different possible sources of the problem\n 2. Assess the likelihood of each possible cause\n 3. Methodically address the most likely causes, starting with the highest probability\n 4. Document your reasoning process\n* When you run into any major issue while executing a plan from the user, please don't try to directly work around it. Instead, propose a new plan and confirm with the user before proceeding.\n</TROUBLESHOOTING>" %}
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+ {%- endif %}
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+ "vocab_size": 131072
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tokenizer_config.json ADDED
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