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Voxtral mini 2407

door Mistral AI

AI Model
Laag vertrouwen

Voxtral-mini-2407 is a lightweight, multilingual large language model (LLM) developed by Mistral AI. It is designed for efficient text generation, conversation, and language understanding tasks with a focus on low-latency performance and reduced computational requirements. The model is part of Mistral AI's broader suite of AI models, which emphasize accessibility, multilingual support, and adaptability for various applications, including chatbots, content generation, and code assistance. Voxtral-mini-2407 is optimized for deployment in resource-constrained environments while maintaining competitive performance in natural language processing (NLP) tasks.

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Transparantiescore

Gewogen over vier pijlers · bijgewerkt February 13, 2026

Totaalscore
75% gewogen
ABCDF
Model
—
Nog niet beoordeeld
Infrastructuur
—
Nog niet beoordeeld

Functionaliteiten

Text Generation
Conversation
Translation
Summarization
Code Generation

Leveranciersinformatie

Volledige informatie over de leverancier/provider van deze AI-applicatie

Mistral AIBekijk alle producten →
Mistral AI
Contactinformatie
mistral.ai/
support@mistral.ai
Geregistreerd adres
15 rue des Halles, Paris, 75001, France

Leveranciersinformatie volgens de EU AI Act

Verificatiestatus:
Verified
Mistral AI
15 rue des Halles, Paris, 75001, France
support@mistral.ai
Mistral AI
15 rue des Halles, Paris, France
Nalevingsdocumenten
CE-markering: Not Applicable
Mistral AI conducts post-market monitoring to track the performance, safety, and compliance of its AI models, including open-source releases, after deployment. This involves continuous evaluation of model outputs, user feedback, and incident reporting to detect and address risks, biases, or unintended behaviors. Mistral actively monitors for compliance with ethical guidelines and regulatory frameworks, such as the EU AI Act, ensuring responsible AI use.
Mistral models have a finite context window (e.g., 32k tokens for some versions). This means they may struggle with very long documents or conversations, potentially losing track of earlier details. While strong at many tasks, the models can make logical errors or oversimplify nuanced reasoning, especially in highly technical or abstract domains. Mistral models are trained on data up to a specific cutoff date (e.g., November 2024 for some versions). They may not have real-time or post-cutoff knowledge unless fine-tuned or augmented with external tools. While multilingual, performance is generally stronger in high-resource languages (e.g., English, French) compared to low-resource languages.

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Naleving & risico

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Toegevoegd: February 13, 2026
Bijgewerkt: February 13, 2026

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