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+ ---
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+ language:
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+ - en
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+ - fr
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+ - es
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+ - it
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+ inference: false
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+ license_link: https://mistral.ai/licenses/MRL-0.1.md
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+ If You want to use a Mistral Model, a Derivative or an Output for any purpose that
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+ To discuss such a license, please contact Mistral AI via the website contact form:
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+
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+ ## 1. Scope and acceptance
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+ ## 8. General provisions
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+ **8.1. Governing laws.** This Agreement will be governed by the laws of France,
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+ remain valid as if such provision had not been set forth herein.
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+
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+ ## 9. Definitions
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+
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+ "Agreement": means this Mistral AI Research License agreement governing the access,
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+ use, and Distribution of the Mistral Models, Derivatives and Outputs.
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+ "Derivative": means any (i) modified version of the Mistral Model (including but
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+ AI.
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+ *Mistral AI processes your personal data below to provide the model and enforce
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+ please see our <a href="https://mistral.ai/terms/">privacy policy</a>.*'
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+ extra_gated_fields:
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+ First Name: text
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+ I understand that I can only use the model, any derivative versions and their outputs for non-commercial research purposes: checkbox
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+ ? I understand that if I am a commercial entity, I am not permitted to use or distribute
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+ commercial license
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+ ? I understand that if I upload the model, or any derivative version, on any platform,
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+ I must include the Mistral Research License
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+ ? I understand that for commercial use of the model, I can contact Mistral or use
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+ the Mistral AI API on la Plateforme or any of our cloud provider partners
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+ the information I provide will be collected stored processed and shared in accordance
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+ with the Mistral Privacy Policy
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+ geo: ip_location
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+ extra_gated_description: Mistral AI processes your personal data below to provide
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+ the model and enforce its license. If you are affiliated with a commercial entity,
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+ we may also send you communications about our models. For more information on your
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+ rights and data handling, please see our <a href="https://mistral.ai/terms/">privacy
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+ policy</a>.
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+ extra_gated_button_content: Submit
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+ library_name: vllm
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+ ---
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+
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+ # Model Card for Pixtral-Large-Instruct-2411
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+
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+ Pixtral-Large-Instruct-2411 is a 124B multimodal model built on top of Mistral Large 2, i.e., [Mistral-Large-Instruct-2407](https://huggingface.co/mistralai/Mistral-Large-Instruct-2407). Pixtral Large is the second model in our multimodal family and demonstrates frontier-level image understanding. Particularly, the model is able to understand documents, charts and natural images, while maintaining the leading text-only understanding of Mistral Large 2.
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+
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+ For more details about this model please refer to the [Pixtral Large blog post](https://mistral.ai/news/pixtral-large/) and the [Pixtral 12B blog post](https://mistral.ai/news/pixtral-12b/).
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+
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+ ## Key features
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+ - Frontier-class multimodal performance
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+ - State-of-the-art on MathVista, DocVQA, VQAv2
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+ - Extends Mistral Large 2 without compromising text performance
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+ - 123B multimodal decoder, 1B parameter vision encoder
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+ - 128K context window: fits minimum of 30 high-resolution images
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+
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+ <!--
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+ - **Multi-lingual by design:** Dozens of languages supported, including English, French, German, Spanish, Italian, Chinese, Japanese, Korean, Portuguese, Dutch and Polish.
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+ - **Proficient in coding:** Trained on 80+ coding languages such as Python, Java, C, C++, Javacsript, and Bash. Also trained on more specific languages such as Swift and Fortran.
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+ - **Agentic-centric:** Best-in-class agentic capabilities with native function calling and JSON outputting.
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+ - **Advanced Reasoning:** State-of-the-art mathematical and reasoning capabilities.
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+ - **Mistral Research License:** Allows usage and modification for research and non-commercial usages.
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+ - **Large Context:** A large 128k context window.
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+ - **System Prompt:** Maintains strong adherence and support for more reliable system prompts.
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+ - **Vision:** A 1B parameter Vision Encoder achieving SOTA vision capabilities.
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+ -->
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+
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+ ### System Prompt Handling
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+
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+ We appreciate the feedback received from our community regarding our system prompt handling.
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+ In response, we have implemented stronger support for system prompts.
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+ To achieve optimal results, we recommend always including a system prompt that clearly outlines the bot's purpose, even if it is minimal.
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+
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+ ### Basic Instruct Template (V7)
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+
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+ ```
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+ <s>[SYSTEM_PROMPT] <system prompt>[/SYSTEM_PROMPT][INST] <user message>[/INST] <assistant response></s>[INST] <user message>[/INST]
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+ ```
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+
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+ **Be careful with subtle missing or trailing white spaces!**
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+
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+ *Please make sure to use [mistral-common](https://github.com/mistralai/mistral-common) as the source of truth*
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+
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+
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+ ## Metrics
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+
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+ | Model | MathVista (CoT) | MMMU (CoT) | ChartQA (CoT) | DocVQA (ANLS) | VQAv2 (VQA Match) | AI2D (BBox) | MM MT-Bench |
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+ |:----------------------------:|:---------------:|:----------:|:-------------:|:--------------:|:-----------------:|:-----------:|:-----------:|
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+ | **Pixtral Large (124B)** | **<u>69.4</u>** | 64.0 | 88.1 | **<u>93.3</u>**| **<u>80.9</u>** | 93.8 | **<u>7.4</u>**|
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+ | Gemini-1.5 Pro (measured) | 67.8 | 66.3 | 83.8 | 92.3 | 70.6 | **<u>94.6</u>**| 6.8 |
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+ | GPT-4o (measured) | 65.4 | **<u>68.6</u>**| 85.2 | 88.5 | 76.4 | 93.2 | 6.7 |
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+ | Claude-3.5 Sonnet (measured) | 67.1 | 68.4 | **<u>89.1</u>**| 88.6 | 69.5 | 76.9 | 7.3 |
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+ | Llama-3.2 90B (measured) | 49.1 | 53.7 | 70.8 | 85.7 | 67.0 | - | 5.5 |
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+
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+ Specific model versions evaluated: Claude-3.5 Sonnet (new) [Oct 24], Gemini-1.5 Pro (002) [Sep 24], GPT-4o (2024-08-06) [Aug 24].
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+
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+ See [mistral-evals](https://github.com/mistralai/mistral-evals) for open-source MM MT-Bench evaluation scripts.
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+
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+ ## Usage
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+
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+ The model can be used with the following frameworks
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+
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+ - [`vllm`](https://github.com/vllm-project/vllm): See [here](#vLLM)
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+
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+ ### vLLM
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+
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+ We recommend using Pixtral-Large-Instruct-2411 with the [vLLM library](https://github.com/vllm-project/vllm)
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+ to implement production-ready inference pipelines with Pixtral-Large-Instruct-2411.
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+
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+ **_Installation_**
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+
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+ Make sure you install [`vLLM >= v0.6.4.post1`](https://github.com/vllm-project/vllm/releases/tag/v0.6.4.post1):
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+
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+ ```
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+ pip install --upgrade vllm
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+ ```
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+
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+ Also make sure you have [`mistral_common >= 1.5.0`](https://github.com/mistralai/mistral-common/releases/tag/v1.5.0) installed:
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+
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+ ```
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+ pip install --upgrade mistral_common
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+ ```
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+
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+ 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/sha256-55a88146a4da0b6e193431b5b1d3492dfd7bebdc16919df4d031273e85a6157c?context=explore).
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+
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+
329
+ #### Server (Image)
330
+ We recommend to use Pixtral-Large-Instruct-2411 in a server/client setting.
331
+
332
+ 1. Spin up a server:
333
+
334
+ ```
335
+ vllm serve mistralai/Pixtral-Large-Instruct-2411 --tokenizer_mode mistral --limit_mm_per_prompt 'image=10' --tensor-parallel-size 8
336
+ ```
337
+
338
+ 2. And ping the client:
339
+
340
+ ```py
341
+ import requests
342
+ import json
343
+ from huggingface_hub import hf_hub_download
344
+ from datetime import datetime, timedelta
345
+
346
+ url = "http://<your-server-url>:8000/v1/chat/completions"
347
+ headers = {"Content-Type": "application/json", "Authorization": "Bearer token"}
348
+
349
+ model = "mistralai/Pixtral-Large-Instruct-2411"
350
+
351
+
352
+ def load_system_prompt(repo_id: str, filename: str) -> str:
353
+ file_path = hf_hub_download(repo_id=repo_id, filename=filename)
354
+ with open(file_path, "r") as file:
355
+ system_prompt = file.read()
356
+ today = datetime.today().strftime("%Y-%m-%d")
357
+ yesterday = (datetime.today() - timedelta(days=1)).strftime("%Y-%m-%d")
358
+ model_name = repo_id.split("/")[-1]
359
+ return system_prompt.format(name=model_name, today=today, yesterday=yesterday)
360
+
361
+
362
+ SYSTEM_PROMPT = load_system_prompt(model, "SYSTEM_PROMPT.txt")
363
+
364
+ image_url = "https://huggingface.co/datasets/patrickvonplaten/random_img/resolve/main/europe.png"
365
+
366
+ messages = [
367
+ {"role": "system", "content": SYSTEM_PROMPT},
368
+ {
369
+ "role": "user",
370
+ "content": [
371
+ {
372
+ "type": "text",
373
+ "text": "Which of the depicted countries has the best food? Which the second and third and fourth? Name the country, its color on the map and one its city that is visible on the map, but is not the capital. Make absolutely sure to only name a city that can be seen on the map.",
374
+ },
375
+ {"type": "image_url", "image_url": {"url": image_url}},
376
+ ],
377
+ },
378
+ ]
379
+
380
+ data = {"model": model, "messages": messages}
381
+
382
+ response = requests.post(url, headers=headers, data=json.dumps(data))
383
+ print(response.json()["choices"][0]["message"]["content"])
384
+ # Determining which country has the "best" food can be subjective and depends on personal preferences. However, based on popular culinary reputations, here are some countries known for their cuisine:
385
+
386
+ #1. **Italy** (Brown) - Known for its pasta, pizza, and diverse regional dishes.
387
+ # - City: Milan
388
+
389
+ #2. **France** (Dark Brown) - Renowned for its fine dining, pastries, and wine.
390
+ # - City: Lyon
391
+
392
+ #3. **Spain** (Yellow) - Famous for tapas, paella, and a variety of seafood dishes.
393
+ # - City: Barcelona
394
+
395
+ #4. **Greece** (Yellow) - Known for its Mediterranean cuisine, including moussaka, souvlaki, and fresh seafood.
396
+ # - City: Thessaloniki
397
+
398
+ #These rankings are based on general culinary reputations and can vary widely depending on individual tastes.
399
+ ```
400
+
401
+ #### Server (Text-only)
402
+
403
+ You can also ping the client with a text-only example. The following example
404
+ shows how the system prompt can be used to make sure the model always knows
405
+ the current date.
406
+
407
+ ```py
408
+ import requests
409
+ import json
410
+ from huggingface_hub import hf_hub_download
411
+ from datetime import datetime, timedelta
412
+
413
+ url = "http://<your-server-url>:8000/v1/chat/completions"
414
+ headers = {"Content-Type": "application/json", "Authorization": "Bearer token"}
415
+
416
+ model = "mistralai/Pixtral-Large-Instruct-2411"
417
+
418
+
419
+ def load_system_prompt(repo_id: str, filename: str) -> str:
420
+ file_path = hf_hub_download(repo_id=repo_id, filename=filename)
421
+ with open(file_path, "r") as file:
422
+ system_prompt = file.read()
423
+ today = datetime.today().strftime("%Y-%m-%d")
424
+ yesterday = (datetime.today() - timedelta(days=1)).strftime("%Y-%m-%d")
425
+ model_name = repo_id.split("/")[-1]
426
+ return system_prompt.format(name=model_name, today=today, yesterday=yesterday)
427
+
428
+
429
+ SYSTEM_PROMPT = load_system_prompt(model, "SYSTEM_PROMPT.txt")
430
+
431
+ image_url = "https://huggingface.co/datasets/patrickvonplaten/random_img/resolve/main/europe.png"
432
+
433
+ messages = [
434
+ {"role": "system", "content": SYSTEM_PROMPT},
435
+ {
436
+ "role": "user",
437
+ "content": "Without browsing the web, how many days ago was Mistral founded?"
438
+ },
439
+ ]
440
+
441
+ data = {"model": model, "messages": messages}
442
+
443
+ response = requests.post(url, headers=headers, data=json.dumps(data))
444
+ print(response.json()["choices"][0]["message"]["content"])
445
+ # Mistral AI was founded in April 2023. Since the current date is November 18, 2024, we can calculate the number of days between April 2023 and November 18, 2024.
446
+
447
+ #First, calculate the days from April 2023 to the end of 2023:
448
+ #- April: 27 days (30 - 3)
449
+ #- May: 31 days
450
+ #- June: 30 days
451
+ #- July: 31 days
452
+ #- August: 31 days
453
+ #- September: 30 days
454
+ #- October: 31 days
455
+ #- November: 30 days
456
+ #- December: 31 days
457
+
458
+ #Total days from April 2023 to December 31, 2023: 27 + 31 + 30 + 31 + 31 + 30 + 31 + 30 + 31 = 272 days
459
+
460
+ #Next, calculate the days from January 1, 2024, to November 18, 2024:
461
+ #- January: 31 days
462
+ #- February: 29 days (2024 is a leap year)
463
+ #- March: 31 days
464
+ #- April: 30 days
465
+ #- May: 31 days
466
+ #- June: 30 days
467
+ #- July: 31 days
468
+ #- August: 31 days
469
+ #- September: 30 days
470
+ #- October: 31 days
471
+ #- November: 18 days
472
+
473
+ #Total days from January 1, 2024, to November 18, 2024: 31 + 29 + 31 + 30 + 31 + 30 + 31 + 31 + 30 + 31 + 18 = 323 days
474
+
475
+ #Adding the two periods together:
476
+ #272 days (from April 2023 to December 2023) + 323 days (from January 2024 to November 18, 2024) = 595 days
477
+
478
+ #Therefore, Mistral AI was founded 595 days ago from November 18, 2024.
479
+ ```
480
+
481
+ #### Offline Example
482
+ ```py
483
+ from vllm import LLM
484
+ from vllm.sampling_params import SamplingParams
485
+ from huggingface_hub import hf_hub_download
486
+ from datetime import datetime, timedelta
487
+
488
+ model_name = "mistralai/Pixtral-Large-Instruct-2411"
489
+
490
+ def load_system_prompt(repo_id: str, filename: str) -> str:
491
+ file_path = hf_hub_download(repo_id=repo_id, filename=filename)
492
+ with open(file_path, 'r') as file:
493
+ system_prompt = file.read()
494
+ today = datetime.today().strftime('%Y-%m-%d')
495
+ yesterday = (datetime.today() - timedelta(days=1)).strftime('%Y-%m-%d')
496
+ model_name = repo_id.split("/")[-1]
497
+ return system_prompt.format(name=model_name, today=today, yesterday=yesterday)
498
+
499
+ SYSTEM_PROMPT = load_system_prompt(model_name, "SYSTEM_PROMPT.txt")
500
+
501
+ image_url = "https://huggingface.co/datasets/patrickvonplaten/random_img/resolve/main/europe.png"
502
+
503
+ messages = [
504
+ {"role": "system", "content": SYSTEM_PROMPT},
505
+ {
506
+ "role": "user",
507
+ "content": [
508
+ {
509
+ "type": "text",
510
+ "text": "Which of the depicted countries has the best food? Which the second and third and fourth? Name the country, its color on the map and one its city that is visible on the map, but is not the capital. Make absolutely sure to only name a city that can be seen on the map.",
511
+ },
512
+ {"type": "image_url", "image_url": {"url": image_url}},
513
+ ],
514
+ },
515
+ ]
516
+
517
+ sampling_params = SamplingParams(max_tokens=512)
518
+
519
+ # note that running this model on GPU requires over 300 GB of GPU RAM
520
+ llm = LLM(model=model_name, tokenizer_mode="mistral", tensor_parallel_size=8, limit_mm_per_prompt={"image": 4})
521
+
522
+ outputs = llm.chat(messages, sampling_params=sampling_params)
523
+
524
+ print(outputs[0].outputs[0].text)
525
+ ```
526
+
527
+ ## The Mistral AI Team
528
+
529
+ 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, Diogo Costa, 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
SYSTEM_PROMPT.txt ADDED
@@ -0,0 +1,19 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ You are {name}, a Large Language Model (LLM) created by Mistral AI, a French startup headquartered in Paris.
2
+ You power an AI assistant called Le Chat.
3
+ Your knowledge base was last updated on 2023-10-01.
4
+ The current date is {today}.
5
+
6
+ When you're not sure about some information, you say that you don't have the information and don't make up anything.
7
+ If the user's question is not clear, ambiguous, or does not provide enough context for you to accurately answer the question, you do not try to answer it right away and you rather ask the user to clarify their request (e.g. "What are some good restaurants around me?" => "Where are you?" or "When is the next flight to Tokyo" => "Where do you travel from?").
8
+ You are always very attentive to dates, in particular you try to resolve dates (e.g. "yesterday" is {yesterday}) and when asked about information at specific dates, you discard information that is at another date.
9
+ You follow these instructions in all languages, and always respond to the user in the language they use or request.
10
+ Next sections describe the capabilities that you have.
11
+
12
+ # WEB BROWSING INSTRUCTIONS
13
+
14
+ You cannot perform any web search or access internet to open URLs, links etc. If it seems like the user is expecting you to do so, you clarify the situation and ask the user to copy paste the text directly in the chat.
15
+
16
+ # MULTI-MODAL INSTRUCTIONS
17
+
18
+ You have the ability to read images, but you cannot generate images. You also cannot transcribe audio files or videos.
19
+ You cannot read nor transcribe audio files or videos and you cannot read images.
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