MiniMax M2.5 vs Gemini Deep Research Max

At a Glance

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Pricing and Limits
Input priceFrom · USD / 1M tokens$0.27Openrouter · Aug 28, 2026Not reported
Output priceFrom · USD / 1M tokens$1.08Openrouter · Aug 28, 2026Not reported
Context windowMaximum documented tokens197K1,049K
Model facts checkedAug 28, 2026View model evidence →Aug 29, 2026View model evidence →

Token prices are the lowest available sourced USD rates; input and output may use different providers. Cost ranking estimates output spend on LiveBench, not a full request bill. Ranking methodology →

Available Benchmarks

All benchmark results →
No Protocol-Matched Benchmark Yet.Results appear here only when both models share the same benchmark version, metric, evaluation protocol, and evidence class.

Side-by-Side Facts

FieldMiniMax-M2.5Gemini Deep Research Max
DeveloperMiniMaxGoogle DeepMind
FamilyMinimax M2 5Gemini Agents
ModelMiniMax-M2.5Gemini Deep Research Max
VersionMiniMax-M2.5Gemini Deep Research Max
Lifecycleactivepreview
Released2026-02-12Unknown
Knowledge cutoffUnknownUnknown
Input modalitiesTextText, Image, Video, Audio, Document
Output modalitiesTextText, Image
Context window197K1,049K
Total parameters228.7BUnknown
Active parametersUnknownUnknown
LicenseotherUnknown
Open weightsYesNo
API availableYesYes
Self-hostableYesNo
Provider accessHugging Face (Standard), Openrouter (Standard)Google AI (Standard), Google Gemini (Standard)
Capabilitieschat, generation, toolsgeneration, reasoning, research, tools

MiniMax M2.5 Capabilities

chatgenerationtools
Serving providers2
Canonical IDMiniMaxAI/MiniMax-M2.5

Gemini Deep Research Max Capabilities

generationreasoningresearchtools
Serving providers2
Canonical IDgoogle-deepmind/deep-research-max-preview-04-2026

Primary Evidence

Sources and Freshness

Questions

MiniMax M2.5 vs Gemini Deep Research Max FAQs

Is MiniMax M2.5 or Gemini Deep Research Max better for coding?+

This comparison does not currently contain a protocol-matched coding benchmark for both MiniMax M2.5 and Gemini Deep Research Max, so Model Markets cannot name a coding leader from pricing, context size, or capability labels alone.

Which is cheaper, MiniMax M2.5 or Gemini Deep Research Max?+

Only MiniMax M2.5 has a directly sourced input price: $0.27 per million tokens. Only MiniMax M2.5 has a directly sourced output price: $1.08 per million tokens.

Which has a larger context window, MiniMax M2.5 or Gemini Deep Research Max?+

Gemini Deep Research Max has the larger sourced context window. MiniMax M2.5 supports 197K and Gemini Deep Research Max supports 1,049K.

Which performs better in benchmarks, MiniMax M2.5 or Gemini Deep Research Max?+

There is no overall benchmark winner: At least two independently verified, protocol-matched benchmarks are required for an overall winner.

Can MiniMax M2.5 or Gemini Deep Research Max be self-hosted?+

MiniMax M2.5 is the only model in this pair currently marked as self-hostable. MiniMax M2.5 is open weight; Gemini Deep Research Max is not marked open weight.

Can MiniMax M2.5 and Gemini Deep Research Max understand images?+

MiniMax M2.5 is not documented with image input; Gemini Deep Research Max is documented with image input. This reflects supported input modalities, not vision quality.

Which can generate longer answers, MiniMax M2.5 or Gemini Deep Research Max?+

Neither has a larger sourced maximum output. MiniMax M2.5 is — and Gemini Deep Research Max is 66K.

Do MiniMax M2.5 and Gemini Deep Research Max support reasoning and tool use?+

MiniMax M2.5: tool calling. Gemini Deep Research Max: reasoning, tool calling, and image input. Feature support does not establish relative quality.

Which is available from more inference providers, MiniMax M2.5 or Gemini Deep Research Max?+

MiniMax M2.5 has 2 sourced provider routes; Gemini Deep Research Max has 2, a tie.

Which offers better value, MiniMax M2.5 or Gemini Deep Research Max?+

There is no universal value winner. Compare the input and output prices above with the matched benchmark result for your workload: cheaper tokens can be offset by different quality, token usage, latency, or provider availability.

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