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Scientific Critical Thinking

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Evaluate scientific claims and evidence quality systematically.

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Free · Opens the source repo

What Scientific Critical Thinking does

The Scientific Critical Thinking skill provides a structured approach to evaluating scientific claims and the quality of evidence. It is designed for researchers, educators, and anyone involved in scientific analysis who needs to assess methodology, experimental design, and statistical validity. By utilizing established frameworks such as GRADE and Cochrane Risk of Bias, users can systematically identify biases, confounders, and the overall strength of evidence presented in research studies.

This skill encompasses several core capabilities, including methodology critique, bias detection, statistical analysis evaluation, and logical fallacy identification. It guides users through the critical evaluation process, enabling them to distinguish between valid conclusions and unsupported claims. The references included with this skill offer in-depth insights into common biases, statistical pitfalls, and the hierarchy of evidence, making it a comprehensive resource for anyone looking to enhance their critical thinking skills in a scientific context.

When employing this skill, users can conduct thorough reviews of research papers, assess the validity of experimental designs, and provide constructive feedback on scientific claims. The structured approach encourages a balanced critique that highlights both strengths and weaknesses, fostering a deeper understanding of scientific rigor. This skill is particularly valuable for those involved in peer review, systematic reviews, or meta-analyses, as it equips them with the tools needed to evaluate the quality and reliability of scientific evidence effectively.

In summary, the Scientific Critical Thinking skill is an essential tool for anyone engaged in scientific inquiry or evaluation, providing a clear framework for assessing research quality and fostering a culture of critical analysis in the scientific community.

When to use it

Use this skill when you need to critically analyze research methodology, assess statistical validity, or identify biases in scientific studies.

When not to use it

This skill may not be suitable for informal discussions or when a quick overview of research is needed without in-depth analysis.

What you can build with it

Evaluating Research Methodology

Use this skill to assess the validity of research designs and methodologies, ensuring that studies can accurately answer their research questions.

Conducting Systematic Reviews

Employ this skill to systematically evaluate and synthesize evidence from multiple studies, identifying strengths and weaknesses across the literature.

Teaching Critical Analysis

Leverage this skill in educational settings to teach students how to critically analyze scientific literature and develop their analytical skills.

How to install Scientific Critical Thinking

View source

1. Install with the skills CLI

npx skills add k-dense-ai/scientific-agent-skills/scientific-critical-thinking --agent claude-code

2. 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-ai

Scientific Critical Thinking

Overview

Critical thinking is a systematic process for evaluating scientific rigor. Assess methodology, experimental design, statistical validity, biases, confounding, and evidence quality using GRADE and Cochrane ROB frameworks. Apply this skill for critical analysis of scientific claims.

When to Use This Skill

This skill should be used when:

  • Evaluating research methodology and experimental design
  • Assessing statistical validity and evidence quality
  • Identifying biases and confounding in studies
  • Reviewing scientific claims and conclusions
  • Conducting systematic reviews or meta-analyses
  • Applying GRADE or Cochrane risk of bias assessments
  • Providing critical analysis of research papers

Visual Aids (Optional)

Only add figures when the user explicitly requests a diagram (for example, a GRADE flowchart, bias decision tree, or evidence-quality framework).

When figures help:

  • Critical thinking framework diagrams
  • Bias identification decision trees
  • Evidence quality assessment flowcharts
  • GRADE or risk-of-bias evaluation frameworks

How to create figures:

  • Preferred: Use the scientific-schematics skill for AI-generated diagrams from a natural-language description
  • Alternative: Build figures in your usual tools (draw.io, PowerPoint, matplotlib, etc.)

From the scientific-schematics skill directory, with OPENROUTER_API_KEY set:

python scripts/generate_schematic.py "GRADE evidence assessment flowchart with downgrade and upgrade factors" -o figures/grade_flowchart.png --doc-type report

Disclosure: AI schematic generation sends your prompt to OpenRouter (a third-party API). Do not include unpublished sensitive details unless that transmission is appropriate for your project.


Core Capabilities

Seven capability areas, each with the questions to ask and what the answers imply, are in references/core_capabilities.md:

  1. Methodology critique — design, controls, confounding, and whether the method can answer the question asked.
  2. Bias detection — selection, measurement, publication, and cognitive biases.
  3. Statistical analysis evaluation — power, multiplicity, p-value misuse, effect sizes.
  4. Evidence quality assessment — study hierarchy, replication, and strength of inference.
  5. Logical fallacy identification — the fallacies that recur in scientific argument.
  6. Research design guidance — how to strengthen a design before data collection.
  7. Claim evaluation — separating what was shown from what is being asserted.

Per-topic detail is in references/scientific_method.md, references/common_biases.md, references/statistical_pitfalls.md, references/evidence_hierarchy.md, references/logical_fallacies.md, and references/experimental_design.md.

Application Guidelines

General Approach

  1. Be Constructive

    • Identify strengths as well as weaknesses
    • Suggest improvements rather than just criticizing
    • Distinguish between fatal flaws and minor limitations
    • Recognize that all research has limitations
  2. Be Specific

    • Point to specific instances (e.g., "Table 2 shows..." or "In the Methods section...")
    • Quote problematic statements
    • Provide concrete examples of issues
    • Reference specific principles or standards violated
  3. Be Proportionate

    • Match criticism severity to issue importance
    • Distinguish between major threats to validity and minor concerns
    • Consider whether issues affect primary conclusions
    • Acknowledge uncertainty in your own assessments
  4. Apply Consistent Standards

    • Use same criteria across all studies
    • Don't apply stricter standards to findings you dislike
    • Acknowledge your own potential biases
    • Base judgments on methodology, not results
  5. Consider Context

    • Acknowledge practical and ethical constraints
    • Consider field-specific norms for effect sizes and methods
    • Recognize exploratory vs. confirmatory contexts
    • Account for resource limitations in evaluating studies

When Providing Critique

Structure feedback as:

  1. Summary: Brief overview of what was evaluated
  2. Strengths: What was done well (important for credibility and learning)
  3. Concerns: Issues organized by severity
    • Critical issues (threaten validity of main conclusions)
    • Important issues (affect interpretation but not fatally)
    • Minor issues (worth noting but don't change conclusions)
  4. Specific Recommendations: Actionable suggestions for improvement
  5. Overall Assessment: Balanced conclusion about evidence quality and what can be concluded

Use precise terminology:

  • Name specific biases, fallacies, and methodological issues
  • Reference established standards and guidelines
  • Cite principles from scientific methodology
  • Use technical terms accurately

When Uncertain

  • Acknowledge uncertainty: "This could be X or Y; additional information needed is Z"
  • Ask clarifying questions: "Was [methodological detail] done? This affects interpretation."
  • Provide conditional assessments: "If X was done, then Y follows; if not, then Z is concern"
  • Note what additional information would resolve uncertainty

Reference Materials

This skill includes comprehensive reference materials that provide detailed frameworks for critical evaluation:

  • references/scientific_method.md - Core principles of scientific methodology, the scientific process, critical evaluation criteria, red flags in scientific claims, causal inference standards, peer review, and open science principles

  • references/common_biases.md - Comprehensive taxonomy of cognitive, experimental, methodological, statistical, and analysis biases with detection and mitigation strategies

  • references/statistical_pitfalls.md - Common statistical errors and misinterpretations including p-value misunderstandings, multiple comparisons problems, sample size issues, effect size mistakes, correlation/causation confusion, regression pitfalls, and meta-analysis issues

  • references/evidence_hierarchy.md - Traditional evidence hierarchy, GRADE system, study quality assessment criteria, domain-specific considerations, evidence synthesis principles, and practical decision frameworks

  • references/logical_fallacies.md - Logical fallacies common in scientific discourse organized by type (causation, generalization, authority, relevance, structure, statistical) with examples and detection strategies

  • references/experimental_design.md - Comprehensive experimental design checklist covering research questions, hypotheses, study design selection, variables, sampling, blinding, randomization, control groups, procedures, measurement, bias minimization, data management, statistical planning, ethical considerations, validity threats, and reporting standards

When to consult references:

  • Load references into context when detailed frameworks are needed
  • Use grep to search references for specific topics: grep -r "pattern" references/
  • References provide depth; SKILL.md provides procedural guidance
  • Consult references for comprehensive lists, detailed criteria, and specific examples

Remember

Scientific critical thinking is about:

  • Systematic evaluation using established principles
  • Constructive critique that improves science
  • Proportional confidence to evidence strength
  • Transparency about uncertainty and limitations
  • Consistent application of standards
  • Recognition that all research has limitations
  • Balance between skepticism and openness to evidence

Always distinguish between:

  • Data (what was observed) and interpretation (what it means)
  • Correlation and causation
  • Statistical significance and practical importance
  • Exploratory and confirmatory findings
  • What is known and what is uncertain
  • Evidence against a claim and evidence for the null

Goals of critical thinking:

  1. Identify strengths and weaknesses accurately
  2. Determine what conclusions are supported
  3. Recognize limitations and uncertainties
  4. Suggest improvements for future work
  5. Advance scientific understanding

Frequently asked questions about Scientific Critical Thinking

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