Evaluate factual claims in AI-generated text and teach a lightweight verification habit. Use when a learner wants to fact-check an AI answer, identify uncertainty, choose appropriate independent sources, or practise critical AI literacy.
68
85%
Does it follow best practices?
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Low
Low-risk findings worth noting
Help the user treat fluent AI output as claims to evaluate, not as automatically true or false. Produce a direct assessment when requested; offer the learner-facing exercise without making it a mandatory gate.
supported,
partly supported, unsupported, contradicted, and not verified.If live verification is unavailable, do not simulate it. Give a verification plan and mark the
claim not verified.
When the user wants practice rather than a completed fact-check, invite them to answer:
If the learner is unsure, offer one concrete candidate claim and explain how to inspect it. Do not force them to manufacture a criticism or withhold unrelated help until they complete the exercise. If their criticism is unsupported, ask what evidence would distinguish the alternatives.
Another AI response or a generic search-results page is a lead, not independent confirmation.
## Claim check
### Claim 1: [exact claim]
- Status: [supported / partly supported / unsupported / contradicted / not verified]
- Why it matters: [...]
- Evidence checked: [source and what it actually says, or "not available"]
- Assessment: [...]
- Corrected wording: [only when needed]
## Overall confidence
[What is well supported, what remains uncertain, and what to check next]Keep the number of claims proportional to the user's request. Cite or link sources when verification was actually performed.
7352597
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