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MiniMax: MiniMax M1

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Paid

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.

Parameters

-

Context Window

1,000,000

tokens

Input Price

$0.3

per 1M tokens

Output Price

$1.65

per 1M tokens

Capabilities

Model capabilities and supported modalities

Performance

Reasoning

Excellent reasoning capabilities with strong logical analysis

Math

Strong mathematical capabilities, handles complex calculations well

Coding

-

Knowledge

-

Modalities

Input Modalities

text

Output Modalities

text

LLM Price Calculator

Calculate the cost of using this model

$0.000450
$0.004950
Input Cost:$0.000450
Output Cost:$0.004950
Total Cost:$0.005400
Estimated usage: 4,500 tokens

Monthly Cost Estimator

Based on different usage levels

Light Usage
$0.0195
~10 requests
Moderate Usage
$0.1950
~100 requests
Heavy Usage
$1.9500
~1000 requests
Enterprise
$19.5000
~10,000 requests
Note: Estimates based on current token count settings per request.
Last Updated: 1970/01/21