MiniMax: MiniMax M2
ID: minimax/minimax-m2
29,06 ₽
Запрос / 1М
113,96 ₽
Ответ / 1М
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Изображение вход / 1М
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Изображение выход / 1М
197K
Контекст
197K
Макс. ответ
Провайдеры для MiniMax: MiniMax M2
atlas-cloud/fp8
Статус
google-vertex
Статус
minimax/fp8
Статус
novita/fp8
Статус
API и примеры кода
Наш сервис предоставляет единый API, совместимый с OpenAI SDK. Просто укажите наш base_url и используйте ключ, полученныйв личном кабинете.
Подробнее о «MiniMax: MiniMax M2»
MiniMax-M2 is a compact, high-efficiency large language model optimized for end-to-end coding and agentic workflows. With 10 billion activated parameters (230 billion total), it delivers near-frontier intelligence across general reasoning, tool use, and multi-step task execution while maintaining low latency and deployment efficiency.
The model excels in code generation, multi-file editing, compile-run-fix loops, and test-validated repair, showing strong results on SWE-Bench Verified, Multi-SWE-Bench, and Terminal-Bench. It also performs competitively in agentic evaluations such as BrowseComp and GAIA, effectively handling long-horizon planning, retrieval, and recovery from execution errors.
Benchmarked by Artificial Analysis, MiniMax-M2 ranks among the top open-source models for composite intelligence, spanning mathematics, science, and instruction-following. Its small activation footprint enables fast inference, high concurrency, and improved unit economics, making it well-suited for large-scale agents, developer assistants, and reasoning-driven applications that require responsiveness and cost efficiency.
To avoid degrading this model's performance, MiniMax highly recommends preserving reasoning between turns. Learn more about using reasoning_details to pass back reasoning in our docs.
