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/Index/Dataïads/Product-page-level AI-readiness corpus for e-commerce catalogues
D

Product-page-level AI-readiness corpus for e-commerce catalogues

DATAÏADSManage supplier listing

Product-page-level AI-readiness corpus for e-commerce catalogues: for each scanned public product URL, a Readiness Score decomposed into a 2x3 matrix — two parallel readings (agent-agnostic and major-AI-specific) across three sub-scores: (1) Reach & Read (fetch success, robots.txt, sitemap, raw vs rendered HTML divergence, plus confirmation that Gemini/OpenAI actually read the URL); (2) Product Data (crawler-side Schema.org Product/Offer presence, and strict-JSON facts extracted independently on the Gemini and OpenAI sides with multi-provider confidence); (3) Semantic Decisioning (use cases, target audience, differentiation, FAQ, specs, reviews extracted from the content the agents actually observed). Underlying raw material is a paired capture per URL — the site's raw HTML vs its rendered DOM, the crawler-visible markup, and the JSON that each AI provider independently derives from it. Published as the Agentic Commerce Index plus a Baromètre E-commerce France 2026 sector benchmark, from a Google-certified Generative AI for Marketing partner with a Media Readiness Program and paid product-feed/Shopping expertise.

Dataïads/Product-page-level AI-readiness corpus for e-commerce catalogues
SampleCoverage

Sample

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Coverage

Universe, instruments and categories.

Industry
Internet & Direct Marketing RetailMarketing
Instruments
equities
Categories
Open buyer room →
Alternative
Reference
Sentiment
Regions
OtherUSUK
Sample tickers
WBEA.PAHO.PARWE.PAACA.PAMRD.PAAMZNETSYSHOP
Dataset card
Type
not stated
Format
Multimodal — scored readiness reports per URL, strict JSON fact extractions per AI provider, raw vs rendered HTML captures, and aggregated barometer/benchmark tables
Volume
Unknown at absolute scale, but each scanned URL yields a rich multi-part record (raw + rendered HTML, crawler markup, two per-provider JSON extractions, six sub-scores), so a 1,000-URL sector sample is already a large capture corpus. The Baromètre E-commerce France 2026 implies a systematic multi-retailer cohort crawl — its sample size is the key number to request; not stated on the page.
Users
~30-150 French retail/e-commerce brand clients (inferred from a 33-person, $7.2M-funded Paris agency serving enterprise retail, with a free public checker as the top-of-funnel); client count is not published
History
not stated
Update frequency
not stated
Growth
Active — Methodology V1 dated 2026, the Agentic Commerce Index spun out of a current Media Readiness Program 2026, a Baromètre E-commerce France 2026 published, and the company in the first wave of Google's Generative AI for Marketing certification in France
Launched
2026 for the Agentic Commerce Index (labelled Methodology V1 and dated 'Dataiads Research · 2026', spun out of the Media Readiness Program 2026). The parent Dataïads is older — $7.2M raised and 33 staff predate the index; it was established as a Google Shopping / product-feed specialist before pivoting into GEO/LLMO.
Delivery
not stated
Entity mapping
not stated
Sample
not stated
Point-in-time
not stated
Licence
not stated

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Dataïads has not added their own details yet. Not yet on file:

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