open-coding
Use when conducting line-by-line open coding, generating substantive codes, in vivo codes, and initial categories from qualitative data.
Codex または Claude でインストール この Prompt をコピーして Codex、Claude、または他のアシスタントに貼り付けると、Skill ページを確認してインストールできます。
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Use when conducting line-by-line open coding, generating substantive codes, in vivo codes, and initial categories from qualitative data.
Codex または Claude でインストール この Prompt をコピーして Codex、Claude、または他のアシスタントに貼り付けると、Skill ページを確認してインストールできます。
SOC 職業分類に基づく
Use when writing academic prose for qualitative research — findings, methods, discussion sections with appropriate voice and conventions.
Use when conducting participatory action research (PAR) involving collaborative inquiry, cycles of action and reflection.
Use when formatting academic work in APA 7th edition style — citations, references, headings, tables, and manuscript structure.
Use when designing or conducting case study research following Yin's multiple case study methodology or Stake's approach.
Use when developing and densifying categories with properties, dimensions, conditions, and consequences.
Use when formatting academic work in Chicago/Turabian style — notes-bibliography or author-date systems.
| name | open-coding |
| description | Use when conducting line-by-line open coding, generating substantive codes, in vivo codes, and initial categories from qualitative data. |
Open coding is the first major analytic move in classic grounded theory: you fracture qualitative data into incidents and label them with codes that stand for conceptual meanings. The goal is not to summarize paragraphs but to generate concepts that can be compared, refined, and later integrated around an emergent core category.
Use this skill whenever you are beginning analysis, returning to fresh data after a break, or deliberately re-opening coding after discovering a better fit.
Purpose: Turn raw data into discrete conceptual indicators that can enter constant comparison.
Typical outputs:
For rich narrative segments, move line by line (or sentence by sentence) asking:
Do not code “the whole paragraph” as one blob unless it truly expresses one incident.
An incident is a meaningful chunk of data that can be compared: an event, action, feeling, statement, turning point, or interactional move.
After coding an incident:
Conceptual labels derived from what the data is about. Examples (illustrative only): shielding credibility, deferring decisions, patching workflow. These should be abstract enough to travel across interviews, yet faithful to data.
Use participants’ own terms when they condense meaning powerfully. In vivo codes keep you close to emic language while still enabling comparison.
Caution: Not every catchy phrase is conceptual. If an in vivo term is too idiosyncratic, translate it into a more general substantive code while preserving the participant language in a memo.
Glaser often recommends gerunds to keep process in view: managing time, containing conflict, signaling competence. This helps you see action/interaction rather than static nouns.
Early codes that may be wrong are fine. Classic GT expects code churn. Rename, split, merge—document changes in memos.
Data excerpt (fictional):
“I didn’t tell my manager about the side project at first. I needed to see if it would even work. Once it looked real, I scheduled a short chat and framed it as ‘experiment’ not ‘commitment.’”
Possible open codes (illustrative):
Comparison prompts:
Memo seed:
“Hypothesis: disclosure timing is managed through viability thresholds + linguistic risk reduction. Need more negative cases where disclosure backfired.”
Code name:
Definition (1–3 sentences):
Inclusion criteria:
Exclusion criteria (common confusions):
Example incidents (2–3 brief quotes with source IDs):
Related codes (merge/split notes):
Open questions:
Date / dataset:
Incidents coded (count) + IDs:
New codes added:
Codes renamed/merged/split (why):
Memos written (titles):
Next comparison targets:
You are not finished with open coding in a single week; it matures through comparison. Move toward selective coding when:
If you move too early, you risk forcing a core. If you move too late, you risk endless sprawl. Let comparison + memo sorting guide the transition.
constant-comparison, memo-writing, theoretical-sensitivityselective-coding (next major transition)glaserian-grounded-theory (full process map)