| name | generative-ai-design |
| description | Generative design for construction: text-to-BIM concepts, option generation, and AI-assisted design iteration with cost and carbon feedback. Use when exploring early design options with AI. |
Generative AI Design for Construction (2026)
What is real in 2026
Generative design in construction is option generation with feedback, not autonomous architecture: given site constraints, program and budget, an AI generates massing/typology options and scores them on cost, carbon and buildability — the human designer selects and refines.
The loop
Constraints (site, program, budget)
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Generate options (LLM/parametric/optimisation)
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Quantify each option (BIM takeoff + CWICR cost + carbon)
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Score & rank (cost/m², kgCO₂e/m², GFA efficiency)
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Human selects → refine → detail
Toolchain
| Stage | Tools |
|---|
| Massing generation | parametric tools (Rhino/Grasshopper, Dynamo) + LLM sketches |
| Text-to-concept | image models (Midjourney/DALL·E) for moodboards; text-to-BIM is early-stage (Hypar, Finch, qbiq) |
| Quantification | OpenConstructionERP BIM takeoff (oce-bim-takeoff) |
| Cost scoring | CWICR cost bases (oce-load-cost-bases) |
| Carbon scoring | embodied-carbon-esg |
Prompt pattern for concept generation
"Generate 3 massing options for a 12,000 m² residential building on a 30×60 m
plot, 6 storeys, max 40% glazing, Berlin climate. For each: GFA, FAR,
indicative structure, kgCO₂e/m² (A1-A3), €/m² construction cost."
Then quantify and rank:
| Option | GFA | FAR | Cost/m² | kgCO₂e/m² | Verdict |
|---|
| A | 11,800 | 2.9 | 1,050 € | 310 | lowest cost |
| B | 12,400 | 3.1 | 1,180 € | 285 | lowest carbon |
| C | 12,100 | 3.0 | 1,120 € | 295 | balanced |
Guardrails
- AI options are starting points, always human-reviewed and code-checked.
- Cost/carbon scores come from real databases (CWICR + EPD), not LLM guesses.
- Keep every option's inputs logged (reproducibility, AI Act transparency).
- Text-to-BIM models are not yet permit-grade — treat outputs as concepts.
Resources