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skills/geo-content-engineering/references/evidence-and-sources.md
1.76 KB · Oct 2, 2026 · 00:29 UTC
# Evidence and sources Intellectual honesty about what is well-established, what is plausible, and what was deliberately left out. GEO is a young field; treat confident claims with care. ## Well-established - AI crawlers such as GPTBot and ClaudeBot read the initial server HTML and generally do not execute JavaScript. Source: OpenAI crawler documentation (platform.openai.com/docs/bots) and published bot behavior. - Schema.org and JSON-LD are the standard machine-readable structured-data formats. Source: schema.org. - Retrieval scores blocks, and self-contained, fact-dense blocks are extracted and cited more reliably. This is consistent across retrieval-augmented systems. ## Plausible and widely observed, but iterative - Recency preference in generative answers. Observed repeatedly, but strength varies by engine and topic. - The specific effect sizes of any single rule. There is no public benchmark that fixes them; measure per case with Share of Mentions. ## Deliberately excluded The source material for this bundle included a Marketing 6.0 framing with content-type-specific token tables (for example IoT 50 to 150 tokens, spatial 150 to 300). These were dropped: they are unverified and contradict the well-supported point that no standard chunk length exists. Constructs like "phygital," "probability of inclusion in generated latent space," and beacon or AR metadata as mandatory fields were also excluded as unverifiable. Adopted from that source were only the entity-first principle and self-containment, which stand on their own. ## Posture Publish, measure, iterate. Do not present any rule as a guarantee. Retrieval is a black box, engines change often, and the honest KPI is a measured shift in Share of Mentions against a benchmark, not a promise of placement.
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