minimax-m1 by openrouter - AI Model Details, Pricing, and Performance Metrics

minimax

minimax-m1

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byopenrouter

MiniMax-M1 is a large-scale, open-weight reasoning model designed for extended context and high-efficiency inference. It leverages a hybrid Mixture-of-Experts (MoE) architecture paired with a custom "lightning attention" mechanism, allowing it to process long sequences—up to 1 million tokens—while maintaining competitive FLOP efficiency. With 456 billion total parameters and 45.9B active per token, this variant is optimized for complex, multi-step reasoning tasks. Trained via a custom reinforcement learning pipeline (CISPO), M1 excels in long-context understanding, software engineering, agentic tool use, and mathematical reasoning. Benchmarks show strong performance across FullStackBench, SWE-bench, MATH, GPQA, and TAU-Bench, often outperforming other open models like DeepSeek R1 and Qwen3-235B.

Released
Jun 17, 2025
Knowledge
Dec 19, 2024
License
MIT
Context
1M
Input
$0.42 / 1M tokens
Output
$1.93 / 1M tokens
Accepts: text
Returns: text

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Category Scores

Benchmark Tests

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HLE
7.5
General Knowledge
AIME
81.3
Mathematics
GPQA
68.7
STEM (Physics, Chemistry, Biology)
SciCode
37.8
Scientific
MATH-500
97.2
Mathematics
MMLU-Pro
80.7
General Knowledge
LiveCodeBench
65.7
Programming
AA Math Index
13.7
Mathematics
AA Coding Index
35.2
Programming
AAII
40.0
General

Code Examples

Integration samples and API usage