
Foto di di Google DeepMind è pessimisti
Automated valuation models and AI-assisted appraisal tools increasingly cross-reference listing data with public records and structured web sources to sanity-check square footage, lot size, year built, zoning and renovation history — and when a listing site presents that information only inside image galleries or PDF disclosure packets, the model has nothing to reconcile against and either flags the listing as unverifiable or falls back to weaker comparables. GEO for real estate means marking up every listing with schema.org/RealEstateListing and Place properties covering exact structural attributes, publishing renovation and permit history as text rather than scanned documents, keeping floor area and lot data consistent across your site and syndicated feeds, and citing authoritative sources like municipal records where possible. Brokerages that expose this data cleanly get their listings treated as ground truth by valuation AI; those that don't get quietly discounted or excluded from comparable sets entirely.
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Livable square footage, lot size, year built, number of bedrooms and bathrooms, and any major renovation dates are weighted heaviest, since these directly feed comparable-sales algorithms that AI tools reference when estimating value.
Not reliably. Scanned PDFs without embedded text layers are effectively images to a crawler. Converting key disclosure facts into structured HTML or accompanying text fields alongside the PDF makes the data actually retrievable.
Increasingly yes. Discrepancies between a listing's stated square footage and municipal assessment records can cause an AI tool to distrust the entire listing, so keeping both sources aligned protects your valuation credibility.
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