AI Model Comparison

GPT-5.6 Terra vs Nova 2.0 Omni

Verdict
GPT-5.6 Terra vs Nova 2.0 Omni: GPT-5.6 Terra scores higher on the Intelligence Index

Head-to-head specifications

MetricGPT-5.6 TerraNova 2.0 OmniDifference
Intelligence Index55.026.0+111.5%
Context window1M tokens1M tokens
Blended price ($/1M tokens)$1.14$0.43+165.1%
AccessProprietary APIProprietary API
  • GPT-5.6 Terra leads overall capability (Intelligence Index 55.0 vs 26.0).
  • Nova 2.0 Omni is the cheaper model to run at $0.43/1M blended tokens — about 2.7× cheaper.

Verdict: GPT-5.6 Terra or Nova 2.0 Omni?

Our recommendation
These two are closely matched — the right pick comes down to which specific strengths you value and the price you actually pay.

GPT-5.6 Terra advantages

  • General intelligence (+53%)

Nova 2.0 Omni advantages

  • Affordability (+62%)

Which should you choose?

  • Choose the GPT-5.6 Terra if you need the strongest overall reasoning and accuracy.
  • Choose the Nova 2.0 Omni if you want the lowest cost per token at scale.

Value for money

Nova 2.0 Omni offers more intelligence per dollar (1.3× the Intelligence-Index-per-cost of the alternative), making it the stronger value for high-volume use.

GPT-5.6 Terra vs Nova 2.0 Omni: which should you choose?

GPT-5.6 Terra — OpenAI multimodal model with an Intelligence Index of 55, a 1M-token context window and a blended price of $1.14/1M tokens.

Nova 2.0 Omni — Amazon multimodal model with an Intelligence Index of 26, a 1M-token context window and a blended price of $0.43/1M tokens.

GPT-5.6 Terra vs Nova 2.0 Omni: GPT-5.6 Terra scores higher on the Intelligence Index. GPT-5.6 Terra leads overall capability (Intelligence Index 55.0 vs 26.0). Nova 2.0 Omni is the cheaper model to run at $0.43/1M blended tokens — about 2.7× cheaper.

Capability: intelligence, coding and agentic work

On the composite Intelligence Index the GPT-5.6 Terra scores 55.0 versus 26.0. Composite indices summarize many evaluations, but always test on your own workload before committing.

Context window and speed

The GPT-5.6 Terra accepts up to 1 million tokens per request, which sets how much documentation, transcript or code it can reason over at once.

Pricing and access

At blended per-token rates, Nova 2.0 Omni is the cheaper model to run ($0.43 vs $1.14 per 1M tokens). GPT-5.6 Terra is proprietary api and Nova 2.0 Omni 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 GPT-5.6 Terra better than the Nova 2.0 Omni?

These two are closely matched — the right pick comes down to which specific strengths you value and the price you actually pay. GPT-5.6 Terra leads overall capability (Intelligence Index 55.0 vs 26.0).

What is the main difference between the GPT-5.6 Terra and the Nova 2.0 Omni?

GPT-5.6 Terra leads overall capability (Intelligence Index 55.0 vs 26.0). Nova 2.0 Omni is the cheaper model to run at $0.43/1M blended tokens — about 2.7× cheaper.

Which is better value?

Nova 2.0 Omni offers more intelligence per dollar (1.3× the Intelligence-Index-per-cost of the alternative), making it the stronger value for high-volume use.

Which should I choose?

Choose the GPT-5.6 Terra if you need the strongest overall reasoning and accuracy. Choose the Nova 2.0 Omni if you want the lowest cost per token at scale.

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
GPT-5.6 Terra profile → Nova 2.0 Omni profile → Compare something else

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