
Scientific Hypothesis Generation
FreeTransform observations into testable research plans.
Free · Opens the source repo
What Scientific Hypothesis Generation does
The Scientific Hypothesis Generation skill is designed to assist researchers and developers in formulating clear, evidence-bounded hypotheses from observations. This skill emphasizes the importance of treating hypotheses as testable propositions rather than established facts. It provides a structured approach to developing candidate explanations, rival hypotheses, and causal claims, ensuring that the resulting research plans are transparent and grounded in rigorous methodology.
This skill guides users through a comprehensive workflow that begins with the careful recording of observations and progresses through framing research questions, establishing evidence boundaries, and generating multiple rival hypotheses. Each step is designed to minimize bias and ensure that hypotheses are well-supported by evidence. Users are encouraged to document their processes meticulously, which not only aids in clarity but also aligns with ethical and regulatory standards in research.
Included with the skill are various templates and scripts that facilitate the organization of evidence, operational definitions, and analysis plans. For instance, users can utilize the provided templates for evidence ledgers and operationalization, ensuring that all relevant factors are considered before proceeding with research. Additionally, the skill emphasizes the importance of distinguishing between different types of claims and predictions, which is crucial for maintaining scientific rigor.
This skill is particularly valuable for researchers, data scientists, and developers working in fields that require a strong foundation in hypothesis testing and experimental design. By following the structured approach laid out by this skill, users can enhance the quality and reliability of their scientific inquiries, ultimately leading to more robust conclusions and advancements in their respective fields.
When to use it
Use this skill when you need to convert observations into structured, evidence-based research questions and hypotheses.
When not to use it
This skill is not suitable for casual or exploratory analysis where rigorous hypothesis testing is not required.
What you can build with it
Formulating Research Questions
Use this skill to turn preliminary findings into structured research questions that guide your investigation.
Creating Hypothesis Records
Generate comprehensive hypothesis records that document your candidate explanations and rival hypotheses.
Establishing Evidence Boundaries
Set clear evidence boundaries to ensure that your research is grounded in reliable and relevant sources.
How to install Scientific Hypothesis Generation
View source1. Install with the skills CLI
npx skills add k-dense-ai/scientific-agent-skills/hypothesis-generation --agent claude-code2. Or install it manually
Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.
Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs
Inside SKILL.md
Written by k-dense-aiScientific Hypothesis Generation
Turn an observation into a transparent set of candidate explanations and tests. A hypothesis is a proposal to be challenged, not a finding, fact, diagnosis, or recommendation.
Non-negotiable boundaries
Before using unpublished, sensitive, controlled, personal, proprietary, export-controlled, or security-relevant material:
- Confirm authorization and the applicable institutional, funder, publisher, data-use, privacy, and AI policies.
- Keep the material local unless an authorized human explicitly approves a named external destination and data scope.
- Minimize inputs. Do not place sensitive or unpublished data in web searches or external AI systems without authorization.
- Stop at the appropriate human, animal, biosafety, dual-use, data-governance, or regulatory gate.
Never:
- present a hypothesis, mechanism, causal effect, citation, or apparent pattern as established evidence;
- claim novelty because a quick search found nothing;
- infer causation from association, temporal order alone, predictive accuracy, or model output;
- supply patient-specific diagnosis, treatment, dose, prognosis, or other clinical advice;
- provide harmful experimental optimization or operational detail for pathogens, toxins, weapons, evasion, or other misuse;
- bypass IRB/REC, IACUC, IBC, biosafety, dual-use, privacy, legal, or regulatory review;
- fabricate sources, identifiers, search coverage, data, results, approvals, or preregistration;
- automatically score, rank, select, accept, or reject scientific hypotheses.
If a request crosses a safety gate, produce only a high-level risk/oversight note and route it to the qualified local authority. Do not continue with operational detail.
Keep the objects distinct
| Object | Meaning |
|---|---|
| Observation | What was measured, noticed, or reported, with provenance and uncertainty |
| Research question | The answerable question that defines scope |
| Hypothesis | A candidate explanatory or relational proposition |
| Mechanism | The proposed process connecting conditions to an outcome |
| Causal estimand | The precisely defined causal contrast to estimate |
| Prediction | An observable implication derived before checking the target result |
| Alternative explanation | A rival account, including bias or non-causal explanations |
| Null hypothesis | A specified no-effect/no-difference model used by an analysis |
| Negative control | A control expected not to operate through the proposed mechanism |
| Operationalization | How a construct becomes a variable, measurement, intervention, or category |
| Analysis plan | Prespecified transformations, models, contrasts, uncertainty, and decision rules |
| Evidence | Observations or sources that bear on a claim; never the claim itself |
Do not collapse these labels. A mechanistic story is not a prediction; a prediction is not evidence; rejection of one null does not prove a mechanism; support for one candidate does not eliminate unconsidered rivals.
Workflow
1. Run the scope and safety gate
Record:
- accountable human owner and intended use;
- data sensitivity, authorization, retention, and permitted processing;
- affected people, animals, ecosystems, communities, or security interests;
- required ethics, feasibility, biosafety, dual-use, and regulatory reviews;
- unresolved blocks and domain expertise needed.
No script approval is an ethics, safety, regulatory, or scientific approval.
2. Freeze the observation
Write the observation before interpretation:
- measurement or source;
- population, system, place, and time;
- unit of observation and unit of analysis;
- uncertainty, missingness, exclusions, and preprocessing;
- whether the pattern was expected, exploratory, or selected after viewing results.
Use “reported,” “observed,” or “associated,” not causal language, unless a causal design and estimand justify it.
3. Frame the research question
Choose a framework only when it fits:
- PICO/PICOT for intervention/effectiveness questions: population, intervention, comparator, outcome, and optionally time.
- PECO for exposure questions.
- Population–index test–reference standard–target condition for diagnostic accuracy.
- Population–prognostic factor–outcome–time for prognosis.
- A domain-specific construct–context–outcome frame for qualitative, descriptive, mechanistic, or theoretical work.
PICO is not a universal template. Define stakeholders, context, boundaries, feasibility, and what answer would change knowledge or practice. FINER is a question-refinement mnemonic—Feasible, Interesting, Novel, Ethical, Relevant—not a scoring system. Treat “Novel” as unresolved until a documented, fit-for-purpose search and expert review support it.
4. Establish a dated evidence boundary
Search before making literature-dependent statements. Prefer primary research, official policies, primary methods papers, current reporting guidelines, and systematic reviews used for orientation.
Record:
- search date and cutoff;
- databases/indexes, queries, filters, and screening boundary;
- included and excluded source types;
- sources supporting, challenging, or contextualizing each claim;
- known access, language, database, and time limitations.
A search can establish what was searched, not universal absence. Say “not located within the documented search boundary,” never “no prior work exists.” Use assets/search_boundary_template.json, assets/evidence_ledger_template.csv, and references/literature_search_strategies.md.
5. Generate rivals before choosing tests
Create multiple candidates from genuinely different explanatory classes when plausible:
- proposed mechanism;
- measurement or processing artifact;
- confounding or common cause;
- selection or attrition;
- conditioning on a collider;
- reverse causation;
- temporal, contextual, or boundary-condition differences;
- stochastic variation;
- competing mechanisms at another scale.
Generate an initial rival set independently before AI-assisted expansion to reduce anchoring and homogenization. Do not force a fixed number or false symmetry. Keep every candidate labeled candidate.
Platt’s strong-inference pattern motivates alternative hypotheses and crucial tests, but failed alternatives do not make the survivor true. Unknown alternatives, auxiliary assumptions, measurement error, and mixed mechanisms remain possible.
6. Declare the claim type and estimand
Classify each target as:
- descriptive;
- associational;
- predictive;
- causal;
- mechanistic.
For a causal target, define before analysis:
- target population or system;
- intervention/exposure and comparator;
- outcome and time horizon;
- population-level summary;
- treatment versions and intercurrent-event handling where relevant;
- identification assumptions and target-trial/design analogue.
Document confounding, selection, collider, measurement, and reverse-causation risks separately. An observational causal estimate remains assumption-dependent. Use references/causal_inference_and_claims.md.
7. Derive discriminating predictions
For every candidate:
- State conditions and boundary conditions.
- Name the observable and measurement.
- State the expected pattern and uncertainty.
- State a result incompatible with the candidate under declared assumptions.
- Contrast the expected result with at least one rival.
- Define indeterminate outcomes and what would be learned from them.
Prefer tests where rivals predict meaningfully different outcomes. Add positive, procedural, and negative controls when scientifically appropriate. A negative control must be incapable of operating through the target mechanism while sharing relevant bias pathways; it is not a decorative untreated group.
Use assets/prediction_rival_matrix_template.csv and assets/falsification_controls_template.json.
8. Operationalize and validate measurement
For every construct record:
- variable role and operational definition;
- population/system, unit, timing, and conditions;
- instrument/method, calibration, quality control, and masking;
- reliability/repeatability;
- validity evidence and applicability;
- missingness, detection limits, transformations, cut points, and their rationales;
- measurement invariance or cross-group comparability when relevant;
- foreseeable measurement bias and limitations.
Do not treat a convenient proxy as the construct itself. Validate with:
python3 scripts/check_operationalization.py local-operationalization.json
9. Match design and analysis to the claim
Specify:
- sampling, experimental unit, allocation, randomization, masking, and controls;
- inclusion/exclusion and stopping rules;
- sample-size, precision, or information rationale based on declared assumptions;
- outcomes, contrasts, estimands, models, effect measures, and uncertainty;
- missing-data and intercurrent-event handling;
- multiplicity across outcomes, models, subgroups, looks, and hypotheses;
- assumptions, diagnostics, robustness, and sensitivity analyses;
- replication or independent validation plan;
- what is confirmatory versus exploratory.
Do not use universal sample-size minima. Do not interpret a thresholded p-value as the probability a hypothesis is true or as effect importance. See references/experimental_design_patterns.md.
For intervention trials, use the current SPIRIT 2025 protocol guidance and CONSORT 2025 reporting guidance where applicable. These improve completeness; they do not certify design quality, ethics, or regulatory compliance.
10. Prevent HARKing and expose deviations
Before accessing the target outcomes, timestamp the question, candidates, predictions, outcomes, exclusions, transformations, analysis, multiplicity, missing-data plan, and stopping rule when feasible.
Afterward:
- label data-dependent ideas and analyses exploratory;
- preserve and report planned analyses;
- list deviations with date, rationale, who decided, and expected impact;
- never rewrite an observed pattern as an a priori prediction.
Preregistration is a transparent plan, not a ban on adaptation. Registered Reports add results-blind peer review and in-principle acceptance under journal policy. See references/preregistration_and_open_science.md.
11. Plan replication and updating
Distinguish:
- reproducibility: consistent computational results from the same data/code/conditions;
- replicability: consistency across studies collecting new data for the same question.
Preserve provenance, versions, code, materials, and decision logs when sharing is authorized. Plan independent replication or transport tests across relevant boundaries. Update candidate status when contrary, null, or replication evidence arrives; do not hide negative results.
12. Apply human accountability
The accountable human must verify:
- every citation and source-to-claim link;
- domain plausibility and measurement validity;
- causal assumptions and statistical design;
- ethics, feasibility, safety, privacy, and regulatory status;
- all AI-assisted text, ideas, and citations;
- whether broader expertise or community input is required.
AI can confabulate citations, anchor reasoning, and homogenize candidate sets. Record permitted AI use and material influence. Keep independent human ideation and rival generation in the process.
Local tool index
All CLIs are bounded, dependency-free, local, deterministic, and non-scoring:
| Task | Asset | Command |
|---|---|---|
| Hypothesis-record schema | assets/hypothesis_record_template.json | python3 scripts/validate_hypothesis_schema.py record.json |
| Measurement checklist | assets/operationalization_template.json | python3 scripts/check_operationalization.py checklist.json |
| Prediction/rival matrix | assets/prediction_rival_matrix_template.csv | python3 scripts/validate_prediction_matrix.py matrix.csv |
| Claim-language lint | Annotated Markdown | python3 scripts/lint_causal_claims.py draft.md |
| Falsification/controls | assets/falsification_controls_template.json | python3 scripts/check_falsification_controls.py controls.json |
| Evidence/source audit | assets/evidence_ledger_template.csv + assets/search_boundary_template.json | python3 scripts/audit_evidence_ledger.py ledger.csv boundary.json |
| Preregistration scaffold | assets/preregistration_scaffold_template.md | python3 scripts/generate_preregistration_scaffold.py record.json -o preregistration.md |
Exit codes are 0 for structurally valid output, 1 for completed validation with errors, and 2 for malformed/unsafe input. Reports validate declarations and internal consistency only; they do not verify scientific truth or choose a hypothesis. Full schemas are in references/tool_reference.md.
References
references/concepts_and_workflow.md— object model, strong inference, uncertainty, and candidate lifecyclereferences/hypothesis_quality_criteria.md— non-scoring human review criteriareferences/literature_search_strategies.md— traceable, bounded evidence searchreferences/causal_inference_and_claims.md— estimands and causal-bias risksreferences/experimental_design_patterns.md— design, controls, measurement, multiplicity, and replicationreferences/preregistration_and_open_science.md— preregistration, Registered Reports, deviations, and open sciencereferences/ethics_safety_and_ai.md— oversight gates, dual use, data handling, and responsible AIreferences/tool_reference.md— CLI schemas, limits, and examplesreferences/source_ledger.md— dated authoritative source notesreferences/security_validation.md— baseline findings and validation record
The bundled source ledger is assets/source_ledger.csv, verified through 2026-07-23. Recheck time-sensitive policy and guidance before a later or jurisdiction-specific use.
Frequently asked questions about Scientific Hypothesis Generation
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