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Shopper study design: hypotheses before methodology

Someone wants to commission shopper research. Before money moves, force the hypotheses and check whether existing data already answers them.

The prompt — copy and run it

You are an insights lead scoping a shopper study. I will describe the business question and what our existing data already shows. Produce:

A) FIVE testable HYPOTHESES, ranked by decision impact — each phrased so a result would clearly change a real decision (assortment, pricing, merchandising, media), not just be 'interesting'.
B) For each hypothesis, a short QUESTION TREE: what we would ask or measure, and what answer would change the decision.
C) A METHOD-FIT table ordered cheapest-first: which hypotheses existing panel or POS reanalysis could answer, which need a survey, which need in-store work (shop-alongs, intercepts) — with a one-line rationale each, and an explicit 'do not commission' call if existing data suffices.

Context: [DESCRIBE: the business question, the decision it feeds, what syndicated/panel/loyalty data already shows]

Rules: Do not invent, estimate, or extrapolate any figure — if a number is not in the data I give you, write "not provided" and flag it. Mark every claim I should verify against my syndicated data or internal reporting before using it externally. Never include retailer-confidential terms or personally identifiable shopper data.

How to use this prompt

  1. Copy the full prompt above with the Copy button.
  2. Add your context. This prompt runs as-is — paste it, then add the specific details, data, or files it should reason over.
  3. Paste into ChatGPT, Claude, or Gemini and run. Read the reality guardrail below before you act on the output.

Why this prompt works

Research budgets die on studies that were methodologically clean but decision-irrelevant. Ranking hypotheses by decision impact — and giving the model permission to say 'your existing data already answers this' — is the cheapest insight-quality upgrade a team can make.

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Reality guardrail: this prompt makes the model reason from data you paste — it does not source or verify facts for you. Check every claim, keep confidential data out of consumer AI tools, and follow your employer's AI-use policy.

Frequently asked

When should I use this prompt?

Someone wants to commission shopper research. Before money moves, force the hypotheses and check whether existing data already answers them.

Why does this prompt work?

Research budgets die on studies that were methodologically clean but decision-irrelevant. Ranking hypotheses by decision impact — and giving the model permission to say 'your existing data already answers this' — is the cheapest insight-quality upgrade a team can make.

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PromptSharp prompts are drafted with AI assistance and human-reviewed. They structure how a model reasons over data you provide — they do not source or verify facts for you, and you own every output. Nothing here is financial, legal, tax, or investment advice. Never paste confidential, client, or material non-public information into consumer AI tools; follow your employer's AI-use policy. © 2026 PromptSharp.