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Comparison · 3 models · Updated Oct 4, 2026

Claude Fable 5 vs GPT-5.6 Sol vs Laguna XS.2

Too close to call on our weighted score (GPT-5.6 Sol 72, Claude Fable 5 72, Laguna XS.2 36). The right pick depends on what you value most.

  1. Anthropic

    Claude Fable 5

    Released Jun 9, 2026

    72/100
    • ECI162.2
    • Price$10.00 / $50.00
    • Context1M
  2. OpenAI

    GPT-5.6 Sol

    Released Jul 9, 2026

    72/100
    • ECI161.8
    • Price$4.00 / $20.00
    • Context1.05M
  3. Poolside

    Laguna XS.2

    Released Apr 28, 2026

    36/100
    • ECI—
    • Price—
    • Context262K
01 — Verdict

Too close to call

It is close. Our weighted score puts them within a point (GPT-5.6 Sol 72/100, Claude Fable 5 72/100, Laguna XS.2 36/100), so choose by what matters most for your work: GPT-5.6 Sol on price and GPT-5.6 Sol for long inputs. The score weighs inputs & features 60%, context window 40%. None of the shared benchmarks cover every model here yet, so capability is left out of this verdict.

  • CapabilityNot enough dataNo independent benchmark covers every model here yet
  • Lowest priceGPT-5.6 SolGPT-5.6 Sol $8.00 · Claude Fable 5 $20.00 per 1M tokens (3:1 blend) · Laguna XS.2 unpriced
  • Longest contextGPT-5.6 SolGPT-5.6 Sol 1,050,000 · Claude Fable 5 1,000,000 · Laguna XS.2 262,144 tokens
  • Widest inputsClaude Fable 5 and GPT-5.6 SolClaude Fable 5: Text, Images, PDFs · GPT-5.6 Sol: Text, Images, PDFs · Laguna XS.2: Text
  • Self-hostingLaguna XS.2Publishes downloadable weights
How the score is built
MeasureWeightClaude Fable 5GPT-5.6 SolLaguna XS.2
Inputs & features60%808035
Context window40%606137
Overall100%72/10072/10036/100

Left out because at least one model lacks the data: capability and price. The remaining weights were rescaled.

02 — Side by side

Every spec in one table

Highlighted cells lead their row. Dashes mean the data is not published.

Claude Fable 5 vs GPT-5.6 Sol vs Laguna XS.2 specifications side by side
SpecificationClaude Fable 5AnthropicGPT-5.6 SolOpenAILaguna XS.2Poolside
Capability
Capabilities Index (ECI)162.2 (best)161.8—
ECI rank#7 of 148 (best)#8 of 148—
GPQA DiamondGraduate-level science questions85.9%93.5% (best)—
FrontierMath Tiers 1–3Research-level mathematics87.0%89.1% (best)—
OTIS Mock AIME 2024–2025Competition mathematics100%100%—
SimpleQA VerifiedShort factual questions70.7% (best)69.7%—
Price per million tokens
Input$10.00$4.00 (best)—
Output$50.00$20.00 (best)—
Cached input$1.00$0.40 (best)—
Blended (3:1)$20.00$8.00 (best)—
Long-context rateSame rateOver 272K: $8.00 / $30.00—
Price sourceOfficial Anthropic APIOfficial OpenAI API—
Limits
Context window1,000,000 tokens1,050,000 tokens (best)262,144 tokens
Max output128,000 tokens (best)128,000 tokens (best)32,768 tokens
Inputs and features
TextYesYesYes
ImagesYesYesNo
PDFsYesYesNo
AudioNoNoNo
VideoNoNoNo
ReasoningYeslow · medium · high · xhigh · maxYeslow · medium · high · xhigh · maxYes
Tool callingYesYesYes
Structured outputYesYesNo
Availability
WeightsProprietaryProprietaryOpen
API model IDclaude-fable-5gpt-5.6-sol—
API providers3840 (best)1
ReleasedJun 9, 2026Jul 9, 2026Apr 28, 2026
Knowledge cutoffJan 31, 2026Feb 16, 2026—
03 — Cost

What would a month cost?

Enter your expected volume in millions of tokens. List prices only; caching and batch discounts would lower these.

  • Claude Fable 5$200.00
  • GPT-5.6 Sol$80.00
  • Laguna XS.2—
04 — Questions

Which should you choose?

Which is better: Claude Fable 5, GPT-5.6 Sol or Laguna XS.2?

It is close. Our weighted score puts them within a point (GPT-5.6 Sol 72/100, Claude Fable 5 72/100, Laguna XS.2 36/100), so choose by what matters most for your work: GPT-5.6 Sol on price and GPT-5.6 Sol for long inputs. The score weighs inputs & features 60%, context window 40%. None of the shared benchmarks cover every model here yet, so capability is left out of this verdict.

Which is cheaper, Claude Fable 5, GPT-5.6 Sol or Laguna XS.2?

GPT-5.6 Sol is cheaper at $4.00 input / $20.00 output per million tokens (official OpenAI API price). Claude Fable 5 costs $10.00 input / $50.00 output per million tokens (official Anthropic API price). At a typical mix of three input tokens to one output token, that is $8.00 per million tokens for GPT-5.6 Sol versus $20.00 for Claude Fable 5 (2.5× as much). Laguna XS.2 has no published per-token price.

Which scores higher on benchmarks?

There is no independent benchmark that covers all three models yet. Claude Fable 5 has an ECI of 162.2, GPT-5.6 Sol has an ECI of 161.8 and Laguna XS.2 has not been scored yet.

Which is better for coding?

There are no published SWE-bench Verified results for Claude Fable 5, GPT-5.6 Sol and Laguna XS.2 yet, so there is no like-for-like coding score. Test both on a sample of your own tasks. All three support tool calling for agent workflows.

Which has the bigger context window?

GPT-5.6 Sol has the largest context window at 1,050,000 tokens, against 1,000,000 for Claude Fable 5 and 262,144 for Laguna XS.2. Maximum output per response: Claude Fable 5 up to 128,000, GPT-5.6 Sol up to 128,000, Laguna XS.2 up to 32,768 tokens.

Which can read images, PDFs, audio or video?

Claude Fable 5 accepts text, images and PDFs; GPT-5.6 Sol accepts text, images and PDFs; Laguna XS.2 accepts text. Claude Fable 5 handles the widest range of inputs.

Are any of these open source?

Laguna XS.2 publishes its weights and can be self-hosted; Claude Fable 5 and GPT-5.6 Sol is proprietary.

Which is newer?

GPT-5.6 Sol is the newest, released Jul 9, 2026. Claude Fable 5 came out Jun 9, 2026; Laguna XS.2 came out Apr 28, 2026. Knowledge cutoff: Claude Fable 5 Jan 31, 2026, GPT-5.6 Sol Feb 16, 2026.

How do you decide the winner?

Each model gets a 0–100 score on capability (50%, independent benchmark results); price (25%, blended price per million tokens (3 input : 1 output), log scale); inputs & features (15%, image, PDF, audio and video input, tool calling, structured output and reasoning); context window (10%, maximum tokens per request, log scale). Dimensions missing for any model are dropped and the remaining weights rescaled, so every model is judged on the same evidence. Specs and prices come from public model listings and the labs’ own API pages; capability scores come from independent benchmark runs. Data updated Oct 4, 2026.