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Report: Demo brand
Weighted visibility across models (mock + spec formula §6).
Visibility by model
Key metrics
Share of voice, trend, recommendation placement, and factual risk—in one view. SoV is recomputed from mock model answers.
Per model: share of queried models where the brand appears in at least one answer in this check. A detailed breakdown is filled from the run data.
SoV % · hover a point
From — to —: started at 58% → now 70% (illustrative demo trend).
SoV % · bars by week
Average brand rank in recommendation lists: 1 is first—lower is better.
Rank in list (1 = top)
Disputed or unverified brand claims: 2 of 54 extracted snippets (mock). Watch threshold is usually ≥5 per period.
Cases per week · dashed = threshold 5
Visibility trend
History from visibility_history. Y-axis: mock index 0–100.
This check at a glance
| Model | Brand in answers | Position |
|---|
Sentiment and competitors
Answer sentiment
Competitors in answers
| Brand | Index | Mentions | Models |
|---|
Per-model lists
Hallucination detector
Verification per spec §5.2.
Facts and numbers to verify
Model quotes
| # | Model | Brand | Sentiment | Full quote |
|---|
Sub-queries from one prompt
A user asks one question, but the model often leans on several semantic branches when answering: pricing, fees, alternatives, adjacent topics. That branching is query fan-out: not one monolithic reply, but multiple sub-questions inside a single prompt.
Why it’s in the report: you can see which branches mention your brand and which are still on-topic for you but drop the brand name — typical gaps to close with content and prompt strategy.
Below is a demo with three sub-queries from one check.
| Sub-query wording | Your brand in this branch |
|---|---|
| best flight aggregator 2026 | yes |
| metasearch fee comparison | no |
| how to earn miles with a credit card | no |
Sub-queries (fan-out)
Prompt gaps
What this is: query wordings where model answers surface competitors or clear substitutes but not your brand. In a live report the list comes from this check: most models did not mention your brand for that prompt.
Why it matters: a ready backlog for content, landing pages, ad clusters, and internal briefs—so you cover demand where the market is already compared side by side, but you are unnamed.
Demo: a few queries from a sample run.
Citation sources
Дрейф источников vs прошлый месяц: 54% (мок).
- vc.ru — 18%
- Отзовик — 14%
- Официальный блог — 9%
Citation sources
AEO и Shopping
AEO Content Score
61 / 100
- llms.txt — нет
- Schema.org — да
- Sitemap — да
- Wikipedia — нет
Shopping visibility
0
Карточки ChatGPT Shopping не обнаружены (мок).
AEO & Shopping
Краулеры и техаудит
Crawler visits
- GPTBot — 1240
- ClaudeBot — 780
- PerplexityBot — 210
Чеклист
Crawlers & technical audit
Plan рекомендаций
Правила ТЗ §10.
Action plan from this check
Actions
PDF is a stub in this prototype.
Daily report runs
Paid planRun this check every day automatically and get a fresh snapshot without clicking “New check”.
Requires a Pro subscription or higher. In this prototype the button only shows a hint.