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AI answer accuracy checks

AI answer accuracy checks compare what AI engines say about your business with an approved fact sheet. Axiom GEO breaks each answer into claims and marks every one as correct, partly true, wrong, out of date or not covered. Problems are grouped into issues with the engines involved, the pages behind them and a suggested fix.

verdicts for every claim
5
verdicts for every claim
checks before an issue is raised
2
checks before an issue is raised
accuracy score over time
Per engine
accuracy score over time

Key points

  • A fact sheet is drafted from your website, Google Business Profile and brief, then approved by a person.
  • Every answer is split into claims and each claim is checked against the fact sheet.
  • A second check reviews anything flagged, so the issue list stays low on noise.
  • A source finder shows the pages that state a wrong detail, even for engines that name no source.
  • Issues can go to Work as tasks and are marked fixed when later answers stop repeating them.

What do AI answer accuracy checks answer for you?

They answer a question most businesses only ask after something goes wrong. Is what the AI engines say about us actually true? Wrong opening hours, a closed branch, an old price or a service you never offered can all turn up in AI answers.

Being mentioned is only half the job. If the details are wrong, a buyer may ring the wrong number or turn up at a shop that closed last year. Accuracy checks catch those errors so you can deal with them. Our guide on when AI gets your business wrong explains why this happens.

How do accuracy checks work?

They compare every answer with a fact sheet that a person has approved.

  1. Build the fact sheet. A draft is made from your website, your Google Business Profile and your brief.
  2. Approve it. A person reviews and approves the fact sheet, so the checks rest on facts you have signed off.
  3. Split answers into claims. Each AI answer is broken into single claims, such as an address, a price or a service.
  4. Check each claim. Every claim is marked correct, partly true, wrong, out of date or not covered.
  5. Review the flags. A second check reviews anything flagged, which keeps false alarms low.
  6. Group into issues. Similar problems are grouped, with the engines that said it, how many answers and a suggested fix.

Checks run on a schedule you set, for example every 14 days.

What do the verdicts mean?

Each claim gets one of five verdicts. The table shows what each one means.

VerdictWhat it means
CorrectThe claim matches your fact sheet
Partly trueSome of it is right, but part is wrong or missing
WrongThe claim goes against your fact sheet
Out of dateIt was true once, but no longer is
Not coveredYour fact sheet doesn't say either way

"Not covered" is useful in its own right. It often shows a gap in your fact sheet, or a detail you have never published clearly.

How are locations and offers handled?

Locations and offers each have their own list, with start and end dates. That lets the checks spot a branch that has closed or an offer that has ended.

Each list has one setting that matters a lot. If you mark a list as complete, anything not on it is flagged. If it is not complete, only details that can be proven wrong are flagged. This is helpful for multi-location brands, where the full branch list is known.

How do you find where a wrong detail came from?

For ChatGPT and Perplexity, each claim links to the page the engine cited for it. So you can often see the exact source straight away.

Gemini and Claude are asked without web search and name no source. For those, a source finder does the digging. It searches the cited pages, your own website, pages other engines cited for the same question, and Google. It then shows the pages that state the wrong detail, with the matching text. The page on Perplexity, Gemini and Claude tracking explains why those engines work differently.

What do you see on screen?

You see an accuracy score over time and per engine, with a list of open issues underneath. Each issue shows the claim, the engines that made it, how many answers it appeared in and a suggested fix.

Issues can be sent to Work as tasks, with the evidence attached. When later answers stop repeating the error, the issue is marked fixed. That gives you a record of what was wrong and when it cleared.

Because people act on what AI engines tell them. A wrong detail costs you a call, a visit or a sale, and you may never know it happened. AI engines can also produce a hallucination, a detail with no real source at all.

No tool can make an AI engine say the right thing. What you can do is fix the pages it relies on and make your facts clear everywhere. The entity audit helps with the second part.

Who uses it?

Multi-location brands use it to keep branch details right. Regulated firms use it to catch claims they could never make themselves. Agencies use it across clients, and can keep accuracy hidden from client users until staff turn it on. It is on the Professional plan and above.

Where it fits

Accuracy checks read the answers collected by AI visibility tracking. Work turns each issue into a task and measures whether it cleared. The entity audit and Perplexity, Gemini and Claude tracking help you understand how each engine forms its view of you.

Frequently asked questions

Why do AI engines get business details wrong?

They repeat what they find or what they learned in training, and some of that is out of date or simply wrong. An old directory listing, a past offer or a closed branch can all end up in an answer. The engine can also mix up two businesses with similar names.

How does Axiom GEO check if an AI answer is accurate?

It compares each answer with your approved fact sheet. The answer is broken into single claims, and each one is marked correct, partly true, wrong, out of date or not covered. A second check reviews anything flagged before it is raised as an issue.

How do I find where a wrong detail came from?

For ChatGPT and Perplexity, each claim links to the page the engine cited for it. For engines that name no source, the source finder searches cited pages, your own website, pages other engines cited for the same question, and Google. It shows the pages that state the wrong detail, with the matching text.

What happens with branches or offers that have ended?

Locations and offers lists carry start and end dates. So a closed branch or an expired offer can be flagged when an engine still mentions it. If you mark a list as complete, anything not on it is flagged too.

Which plan includes answer accuracy?

Answer accuracy is on the Professional plan and above. Checks run on a schedule you set, for example every 14 days. Agencies can keep accuracy hidden from client users until staff choose to turn it on.

Can Axiom GEO correct what an AI engine says?

No one can edit an AI engine's answer directly, and we don't claim to. What Axiom GEO does is find the wrong detail, show the pages behind it and suggest a fix. When later answers stop repeating the error, the issue is marked fixed.
Reviewed
AI answer accuracy: catch what AI engines get wrong