AI Model Comparison

o3-mini vs GPT-5.6 Sol

Verdict
o3-mini vs GPT-5.6 Sol: GPT-5.6 Sol scores higher on the Intelligence Index

Head-to-head specifications

Metrico3-miniGPT-5.6 SolDifference
Intelligence Index24.059.0-59.3%
Coding Index16.377.4-78.9%
Agentic Index1.754.0
Context window256K tokens1M tokens
Blended price ($/1M tokens)$0.70$1.54-54.5%
Output speed (tokens/s)21157+270.2%
AccessProprietary APIProprietary API
  • GPT-5.6 Sol leads overall capability (Intelligence Index 59.0 vs 24.0).
  • o3-mini is the cheaper model to run at $0.70/1M blended tokens — about 2.2× cheaper.
  • GPT-5.6 Sol offers the larger context window (1M tokens), useful for long documents and codebases.

Verdict: o3-mini or GPT-5.6 Sol?

Our recommendation
GPT-5.6 Sol takes the overall edge, though o3-mini wins in specific areas worth weighing.

o3-mini advantages

  • Affordability (+55%)
  • Output speed (+73%)

GPT-5.6 Sol advantages

  • General intelligence (+59%)
  • Coding ability (+79%)
  • Agentic task performance (+97%)
  • Context window (+74%)

Which should you choose?

  • Choose the o3-mini if you want the lowest cost per token at scale.
  • Choose the GPT-5.6 Sol if you need the strongest overall reasoning and accuracy.
  • Choose the o3-mini if low latency and fast generation matter for your application.

Value for money

GPT-5.6 Sol offers more intelligence per dollar (1.1× the Intelligence-Index-per-cost of the alternative), making it the stronger value for high-volume use.

o3-mini vs GPT-5.6 Sol: which should you choose?

o3-mini — OpenAI multimodal model with an Intelligence Index of 24, a 256K-token context window and a blended price of $0.7/1M tokens.

GPT-5.6 Sol — OpenAI multimodal model with an Intelligence Index of 59, a 1M-token context window and a blended price of $1.54/1M tokens.

o3-mini vs GPT-5.6 Sol: GPT-5.6 Sol scores higher on the Intelligence Index. GPT-5.6 Sol leads overall capability (Intelligence Index 59.0 vs 24.0). o3-mini is the cheaper model to run at $0.70/1M blended tokens — about 2.2× cheaper.

Capability: intelligence, coding and agentic work

On the composite Intelligence Index the GPT-5.6 Sol scores 59.0 versus 24.0. For software development, the Coding Index puts GPT-5.6 Sol ahead (77.4 vs 16.3). On agentic, multi-step tool-use tasks, GPT-5.6 Sol measures stronger. Composite indices summarize many evaluations, but always test on your own workload before committing.

Context window and speed

The GPT-5.6 Sol accepts up to 1 million tokens per request, which sets how much documentation, transcript or code it can reason over at once. In measured throughput, o3-mini generates faster (211 vs 57 tokens/s), which matters for interactive apps and high-volume pipelines.

Pricing and access

At blended per-token rates, o3-mini is the cheaper model to run ($0.70 vs $1.54 per 1M tokens). o3-mini is proprietary api and GPT-5.6 Sol is proprietary api. Open-weight models can be self-hosted, trading per-call cost for infrastructure you manage; for production also weigh rate limits, throughput and data-residency requirements.

The verdict

Both are credible choices in the ai model comparison space; the specification table above lays out every metric so you can weigh the trade-offs that matter to you. Pick the one whose strengths line up with how you will actually use it.

Frequently asked questions

Is the o3-mini better than the GPT-5.6 Sol?

GPT-5.6 Sol takes the overall edge, though o3-mini wins in specific areas worth weighing. GPT-5.6 Sol leads overall capability (Intelligence Index 59.0 vs 24.0).

What is the main difference between the o3-mini and the GPT-5.6 Sol?

GPT-5.6 Sol leads overall capability (Intelligence Index 59.0 vs 24.0). o3-mini is the cheaper model to run at $0.70/1M blended tokens — about 2.2× cheaper.

Which is better value?

GPT-5.6 Sol offers more intelligence per dollar (1.1× the Intelligence-Index-per-cost of the alternative), making it the stronger value for high-volume use.

Which should I choose?

Choose the o3-mini if you want the lowest cost per token at scale. Choose the GPT-5.6 Sol if you need the strongest overall reasoning and accuracy.

Methodology

Large language models are compared on independent leaderboard metrics: an Intelligence Index (a composite of reasoning and knowledge evaluations), Coding and Agentic indices where measured, community arena Elo, maximum context window, a blended API price per million tokens (weighted across cache-hit, input and output rates), and measured output speed in tokens per second. Where a model ships multiple reasoning-effort variants, we report its strongest variant. Benchmarks capture only part of real-world quality, which also depends on tool use, latency, safety and task fit — and this space moves quickly, so figures reflect the leaderboard snapshot on the page date.

ER
EquivalentTo Research
Data & Benchmarks Team

We compile published benchmark results (Cinebench 2024, Geekbench 6, AnTuTu v10, 3DMark), manufacturer specifications and market pricing from nine regions into normalized, comparable datasets. Every figure traces to a named public source listed on each page.

Benchmark leaderboard compilationMulti-market pricing normalizationUnit & currency conversion
✓ Reviewed by EquivalentTo Editorial Review, Data Quality & Methodology.
Last updated 2026-07-01
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