Derive explicit evaluation criteria from the research objective and candidate set.
Scanned 9/24/2026
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---
name: define-criteria
description: "Derive explicit evaluation criteria from the research objective and candidate set."
---
# define-criteria
## Purpose
Derive explicit evaluation criteria from the research objective and candidate set.
## Input contract
```yaml
required: [research_objective, candidate_set, decision_context]
optional: [stakeholder_priorities, measurement_constraints, candidate_domains]
constraints: [criteria must be mutually interpretable across candidates]
```
## Procedure
1. Extract desired outcomes and constraints from the objective.
2. Translate them into candidate-discriminating criteria with definitions and units.
3. Check completeness, overlap, direction, and measurability.
4. Return the criterion schema and unresolved measurement questions.
## Output contract
```yaml
produces: [criterion_schema, measurement_definitions, direction_labels, coverage_notes]
delta_fields: [findings, open_questions, uncertainties]
```
## Quality gates
- Criteria count is between 3 and 12 unless caller explicitly authorizes another range.
- Every criterion has name, definition, unit, and higher/lower-is-better direction.
- Criteria are non-overlapping enough that double counting is documented.
## Parameterization
Caller supplies objective schema, candidate schema, criterion count bounds, measurement units, direction vocabulary, and overlap policy.
## Failure and counterexamples
Reject vague criteria lacking an observable measurement or criteria that cannot distinguish any candidate.
## Provenance map
- resolved: criterion-definition
- concept: hypothesis-formation/scoring-matrix-construction (criteria-extraction core)
- resolved: hypothesis-formation-scoring-matrix-construction
- intermediate: Pass4/define-success-criteria
## Preserved source criteria ledger
| source | criterion |
|---|---|
| criterion-definition | Criteria count is between 3-12. |
| criterion-definition | Each criterion includes name, definition, unit of measurement, and direction (higher-is-better/lower-is-better). |
| convergence-scoring-matrix-construction | Normalization method matches the aggregation method. |
| convergence-scoring-matrix-construction | Sensitivity testing perturbs at least 3 weight parameters by +/-10%. |
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