Run once per repo. Discovers the repo's shape and drafts the per-repo config. It DRAFTS;
a human reviews and corrects before any test generation. Never proceed to generation in
the same turn.
The manifest, the detected structure, and the baseline number must reflect the code that
ships, not an in-flight feature branch. Before doing anything else:
State the branch and commit you initialized against in the step 11 report, so the eventual
baseline.ref is traceable to a real production commit.
-
Detect SDK-style. Confirm projects are SDK-style .csproj (dotnet-coverage only
supports these). If any target project is a legacy non-SDK .csproj, stop and report
it — that project needs coverlet instead and is out of scope for this kit.
-
Inventory projects. List .csproj files and their references. Identify the test
project(s) and what they reference. Identify likely roles (domain, application,
infrastructure, presentation, workers) from project names, references, and folder
layout. Detect whether MediatR is present (handlers vs pipeline behaviors).
-
Derive the TARGET-set hypothesis from the repo's architecture — do NOT apply a fixed
template. The target is the code whose coverage is counted toward the headline
("Adjusted") number. This step only forms the hypothesis of where target code lives; the
sweep (step 4) classifies the actual files. Based on step 2:
- Clean / layered (distinct
*.Domain, *.Application assemblies): candidate target is
those layer assemblies; Infrastructure/Api/Web are informational.
- Service-oriented / flat (no layer assemblies; logic in service projects or sub-folders
of an API project): candidate target is the business-logic projects/sub-folders
(e.g.
Account.API/Service/**), by name + content — do not promote a whole API project if
its logic is confined to a sub-folder.
- No discernible structure:
uncategorized; do not invent layering.
Everything outside the target is informational: still collected and shown, but not
counted toward Adjusted. The report is two-pass — Raw (all instrumented code) and
Adjusted (target only); the ratchet gates Adjusted. Nothing is hidden.
-
Sweep — classify EVERY source file against the rubric, in parallel (ask first).
Enumerate all source files: the candidate-target globs from step 3 and the rest of the
instrumented production code (so exclusions are evidence-based, not assumed). Read every
file. Do not classify by name/folder alone, do not skip small files, do not sample —
small files get misclassified too, and fanning the sweep out removes the cost reason that
ever justified skipping.
Every file is classified by an objective signal in the source, cited at file:line
(each rule is a concrete condition — the spec a future static-analysis helper would
automate):
| Classification | Objective signal that justifies it |
|---|
dto-no-logic | only auto-properties / fields; no method body branches (if/switch/?:/loop); cyclomatic complexity ≈ 1. Not an AutoMapper Profile/mapping-config class (those are mapper-config, below) |
mapper-config | an AutoMapper Profile or mapping/DI-config class: declarative CreateMap/registration only, no branches today. Labeled distinctly from dto-no-logic so a future conditional MapFrom/ConvertUsing is not silently hidden under a "data carrier" label |
integration-scope | depends on a NON-SUBSTITUTABLE infrastructure boundary: a DbContext that is newed inline or reached through a static factory (no seam), raw SQL / provider-specific query translation an in-memory provider cannot run, HttpClient, file/network IO, or an external SDK client used directly. A DbContext INJECTED through the constructor is NOT this: it is a substitutable seam (EF in-memory / SQLite-in-memory), so its presence alone does not make a method integration-scope. See the exclusion-signal principle and signal table below. |
e2e-scope | ControllerBase/[ApiController], a hosted/background worker, or a Program/startup composition root |
generated | [GeneratedCode] attribute, a *.g.cs/*.Designer.cs file, or a Migrations/ path |
cannot_test: nondeterministic | a DateTime.Now/UtcNow, Guid.NewGuid, Random, Stopwatch, Environment call with no injected seam whose value flows into observable output — a return value, an emitted command/document, or persisted state. Dataflow-blind matching is the classic false positive: if the only consumer of the value is a logging/telemetry call (Serilog.Log.*, LogContext.PushProperty, ILogger, a Stopwatch timing an elapsed-ms log line), it is NOT nondeterministic — classify by the method's real behavior instead (usually the mapping → target/carve-out, or integration-scope if the body is DbContext-bound). A correlation-id/elapsed-ms logged on every handler is a house style, not an untestable seam |
| target (unit-scope) | ≥1 method whose body branches and every dependency is substitutable: an interface/abstract (mock it) OR a constructor-injected DbContext (back it with the EF in-memory / SQLite-in-memory provider). No inline-newed infra, no static factory, no clock/random used directly. |
The file's classification is a REPORTING label; testability is decided per method. A
non-trivial file is rarely uniformly testable or untestable — the classification is its
dominant signal, but the sweep must also record, for each non-trivial file, a per-method
breakdown: { method, lines, testable, reason } (e.g. MapResult lines 40–58 testable;
FetchRaw lines 60–95 not testable — direct HttpClient, no seam). This is what turns
"this file is untestable" into "lines 40–58 testable, lines 60–95 not testable because …".
Every method marked testable: true in a file that carries a non-target classification is a
carve-out and MUST be listed in carveOutMethods so the backfill covers it.
This applies to whole folders that "look" untestable, not just god-classes.
Controllers/, **/Api/**, and *.Infrastructure projects are the classic trap: they get a
blanket e2e-scope/integration-scope label, yet controller actions validate and branch
before delegating, and IO orchestrators have pure mapping/decision methods between their
calls. Read them for their carve-outs — do not let a folder-level verdict swallow the testable
slice. A god-class (large or dependency-heavy, >~300 lines or many injected collaborators) is
just the extreme case of this same rule: classify by dominant signal, carve out the pure logic
(the UserService pattern). A file gets trivial/no-carve-out treatment only when it genuinely
has zero deterministic branching methods.
Target vs carve-out is decided by the MAJORITY of the public surface, because target uses
the whole-file denominator. A target file counts every instrumented line toward Adjusted,
and cannot_test entries do NOT subtract from a target file's denominator. So a god-class whose
public methods are mostly IO-bound must NOT be labeled target: as target its unavoidable IO
lines are counted uncovered forever and no amount of testing lifts it. Decide by counting the
public methods. If a majority of the public surface is unit-testable (pure/seamable, injected
DbContext included), keep the file target and route the few genuinely IO-bound methods to
cannot_test. If a majority is genuinely IO-bound, classify the FILE as integration-scope and
carve OUT the pure methods; they stay in scope and counted over the carve-out denominator, not
the whole file. Getting this backwards is a recurring failure mode. An IO-dominant service
shipped as full target tanks Adjusted and cannot be fixed by adding tests, while a pure-logic
service demoted to integration-scope hides real coverage debt.
An exclusion signal names a boundary, not a verdict, and a reason may never be the signal
restated. Every rubric row except target is a SURFACE signal: a type, base class, folder, or
import. It marks WHERE an untestable boundary sits; it is never, on its own, proof the file's
logic is untestable. The most damaging and most repeated failure of this kit is excluding a
whole file because it "has" such a signal, with a reason that only echoes the signal ("uses a
DbContext", "it's a Controller", "Lambda entry point"). That is not a reasonable explanation and
is not accepted. For every non-trivial file carrying an exclusion signal you MUST walk its
methods, and each excluded method's reason must be a PROVEN NEGATIVE about that method (the
specific un-seamable dependency its own body reaches), not the file's surface signal. The
decision / validation / mapping / computation logic that sits around the boundary is testable and
is a carve-out (or, when it dominates, target). Common signals, where the genuine boundary is,
and what stays testable:
| Surface signal | The genuine untestable boundary | What stays testable (carve-out / target) |
|---|
constructor-injected DbContext | raw SQL (FromSqlRaw) / provider-specific LINQ; SaveChanges + external dispatch | validation, branching, mapping, computation, driven against an EF in-memory / SQLite context |
HttpClient / typed client | the send over the wire | request building, response mapping, retry/branch logic (stub HttpMessageHandler or the client interface) |
ControllerBase / [ApiController] | routing, model-binding, framework filters | the action's guard / validation / authorization branches before it delegates (construct the controller, call the action) |
Lambda / hosted worker / Program.cs | host and trigger wiring | the handler's injected services and its pure per-item steps |
*Repository / *.Infrastructure naming | the persistence / IO call itself | any decision or shaping logic the name hides |
static factory or inline-newed context (RedisCacheFactory, new SomeContext()) | THIS is the genuine no-seam case | nothing, until a seam is introduced: log requires-source-change with that seam as the mitigation |
Only the last row is a true whole-unit blocker. For every other signal a bare whole-file
exclusion is a false exclusion until a per-method walk proves each method genuinely reaches the
boundary. Fidelity caveat for the in-memory provider: it does not translate raw SQL or enforce
relational constraints, so it verifies logic shape, not query correctness; prefer
SQLite-in-memory when the query itself is under test, and leave raw-SQL methods in integration
scope. (Field-proven miss: dozens of CustomerContext-injected services labeled "no seam,
cannot unit test" while a sibling target service was already unit-tested against the same
in-memory context.)
Hard rule: no bare (no-carve-out) exclusion is accepted without a per-method re-scan. This
applies to EVERY non-trivial file with a non-target label; the largest files are the highest-risk
case, not the only one. A big multi-method service is the likeliest place to under-carve: the
file gets judged whole, one integration-scope label, and its pure validator/mapper cluster is
lost. So for any file above a size/method-count threshold (rule of thumb: >~400 lines OR >~10
methods) that you are about to label integration-scope/e2e-scope with an EMPTY
carveOutMethods, you MUST first walk its methods and prove each is genuinely IO-bound. A large
bare exclusion is a red flag, not a default — the real case (e.g. a 2,400-line preset service
hiding ValidateFileFormat, ValidateWidthHeight, IsInvalidAssignment) is that several pure
validators were missed. The critique (step 6) treats every large bare exclusion as a lead to
re-open.
Trivial files are marked, not surfaced. A tiny file (~15 lines or fewer) that is
high-confidence excluded — a DTO/record of auto-properties only, an interface, an enum with
no behavior — is flagged trivial. These get collapsed into glob patterns at synthesis
(step 5), not carried as per-file rows. On a large repo they are often ~40% of the files and
the lowest-signal rows; collapsing them keeps the manifest and the critique focused.
Run the sweep the same way as the backfill — fan it out at a user-chosen parallelism:
- Count the files to classify and ask the user how many agents to run, suggesting
counts scaled to that size and the context (rough: small repo → 1; medium → 3;
large / many-project → 6–10; more agents finish sooner but cost proportionally more
tokens).
- Clear
coverage/sweep/ first (rm -rf coverage/sweep) so a prior or crashed run
cannot leave stale chunk-N.json files behind — a different chunk count would otherwise
mix old and new evidence. Then write the enumerated paths to disk as a JSON array at
coverage/sweep/files.json (e.g. pipe your file enumeration through jq -R . | jq -s .,
or write the array directly). Pass the manifest path, never the list itself — a large
inline files array mis-parses in the tool call, and inlining it into the workflow script
trips the approval-dialog control-char guard (CRLF from a Windows heredoc). Then invoke
Workflow({ scriptPath: "${CLAUDE_PLUGIN_ROOT}/workflows/coverage-sweep.workflow.js", args: { concurrency: <chosen>, filesManifest: "coverage/sweep/files.json", rubric: "<the table above>", evidenceDir: "coverage/sweep" } }). If the user just says
"go", default concurrency: 3.
Evidence goes to disk, not into context. Each chunk agent writes ALL its per-file rows
{ path, classification, signal, confidence, trivial, carveOutMethods, methodBreakdown, notes }
to coverage/sweep/chunk-N.json, and returns only a compact summary: counts per classification,
the trivial count, and the rows that need a look (low-confidence, god-classes, surprising).
coverage/ is git-ignored (step 8), so this evidence is transient. The sweep is read-only on
production source and never writes the manifest.
-
Synthesize the draft at main (single — NOT parallel). Read the on-disk evidence
(coverage/sweep/chunk-*.json) — do not rely on rows being in the conversation; on a large
repo the full set is thousands of rows and lives in those files. Merge it into one coherent
draft: category_map (the target globs), exclusions (each non-target classification,
grouped into patterns with the rubric signal as the reason), and cannot_test (the
nondeterministic-no-seam methods only — each with a mitigation). Carve-outs are NOT
cannot_test: they are testable methods that stay IN scope. For every non-target file with
≥1 testable: true method, emit a PER-FILE exclusion entry (never a folder glob) carrying a
structured carve_outs: list, one item per method as { method, lines, testable }, plus an
excluded_rest note stating why the remainder is out of scope. The gate keeps each carve-out
method IN scope and counted. A folder glob may cover ONLY a uniformly-excluded set (no testable
method anywhere under it), so a mixed folder is split into one entry per file. This is what stops
a mixed file from collapsing into a single ambiguous line, and it ties each method to its own
file so a carve-out cannot leak across files (the gate warns when a carve-out-bearing pattern
matches more than one file). The legacy CARVE-OUT: MethodA, MethodB prose in reason is still
parsed for back-compat, but emit the structured form.
Same-named files MUST be disambiguated by full repo-relative path. Repos routinely have
several files sharing a basename (UserService.cs, Handler.cs, Mapper.cs) in different
projects or folders. A bare UserService.cs or **/UserService.cs glob silently collapses them
into one row: one classification wrongly applied to all of them, and carve-out methods leaking
across unrelated files. Every manifest pattern (target glob, exclusion, carve-out entry) whose
basename is not unique in the repo MUST use the file's full repo-relative path
(src/Account.Api/Services/UserService.cs), never the basename alone. The sweep already records
the full path per row; carry it through to the manifest verbatim. The gate's "pattern matches
more than one file" warning is the backstop, but resolve it at synthesis rather than shipping the
ambiguous glob. Putting a carve-out into cannot_test
would drop the very method the backfill must cover, the opposite of the granularity goal. Collapse trivial files into
glob exclusion patterns by directory (e.g. **/Dtos/** → dto-no-logic) instead of one
row each; emit per-file detail only for non-trivial files. Normalize across chunks —
parallel agents drift in vocabulary (one says integration-scope, another infra);
reconcile to one category set and resolve cross-project boundaries. This must be one head:
the whole-repo view is what makes the manifest coherent and consistent.
Verify every pattern actually matches the paths it intends — a written pattern is a
hypothesis until joined against real paths. A glob that silently matches nothing leaks
those files into application/uncategorized, inflating the Adjusted denominator with
uncovered code (and a glob that matches too much wrongly shrinks it). After collapsing to
globs, re-apply the globs to the swept file list and assert each file lands in the bucket
its sweep row assigned; any divergence is a pattern bug to fix now, not at measure time.
Watch the failure modes that caused real leaks in the field:
- Path/segment typos. A file under
Integration/Looker/Implemetations/LookerService.cs
is NOT matched by **/Integration/LookerService.cs. Pattern the real path, and don't trust
folder names from memory (note the misspelled Implemetations).
- Dot-segment vs plain-segment.
**/*.Model/** matches a project folder named
Foo.Model but NOT a plain Model/ folder; **/DataAccess/** matches DataAccess/ but
NOT Foo.DataAccess/. Add both forms (**/Model/** / **/*.DataAccess/**) when the repo
uses both. DTOs/host files also leak when they live outside the expected folder
(Program.cs, Startup.cs, **/Filters/**, **/*Assembly.cs, DI ServiceExtensions.cs).
- Filename collisions across projects. The same class name in N projects (e.g.
SendEmailService.cs, RedisHelper.cs, AccountService.cs, UserInfoService.cs) often
has DIFFERENT classifications per project. A bare **/Name.cs applies one verdict to all;
when they differ, emit a path-qualified entry per project and confirm each resolves to
its own bucket. Also exclude test code itself (**/Tests/** → non-product) so test
fixtures never count toward Adjusted.
This pattern-vs-path verification is cheap (it runs against the swept file list already on
disk — no coverage run needed) and catches the class of bug that otherwise only surfaces as a
mysteriously-low Adjusted number after the whole backfill is done.
-
Critique the synthesized draft (a single agent, deliberately NOT parallel). A wrong
manifest is the most damaging error here — excluding testable code hides real gaps,
including untestable code produces churn and false "needs attention" noise. One reviewer
reads the draft and the on-disk evidence (coverage/sweep/chunk-*.json) — load it in slices
/ group by signal, do not pull all rows into context at once. Kept single on purpose: a
systematic mistake — the same misclassification repeated across projects (e.g.
mappers-with-branches labelled dto-no-logic everywhere) — is only visible to a reviewer
who sees all of it at once, and one reviewer applies one consistent standard; parallel
critics would each rationalize the repeated error locally. Group by signal → label to
surface repeated mismatches cheaply, prioritize the sweep's attention rows, and
spot-read — you do not re-read every file. Using the step 4 rubric, a classification is a
mismatch when the label is not supported by its signal; check both directions:
- False exclusions (testable code wrongly skipped): a file labelled
dto-no-logic that
actually branches, or integration-scope with no infra dependency, has the target
signal and belongs in scope.
- False inclusions (untestable code wrongly kept): a target file that is really IO
orchestration →
integration-scope with a carve-out; nondeterministic-no-seam →
cannot_test.
- Classic traps (signal hiding under a misleading name): DTOs with validation/computed
members; "infrastructure"-named pure logic; mappers with conditional logic; enums with
behavior.
- Verify NEGATIVE citations against source — the sweep's
attention list cannot catch
these. A confidently-wrong exclusion rests on a negative claim ("auto-properties only",
"no seam", "no branches") that is high-confidence, so it never appears in attention, and
reading only the evidence rows cannot reveal that the claim itself is false. Sample the
high-confidence exclusions per bucket and per project and open the actual file to confirm
the negative claim holds (no if/switch/?:/loop; the collaborator really is not an
injected interface). One wrong negative claim, repeated across a project by pattern, is the
largest silent false-exclusion — spend the reads here, not on the already-flagged rows.
- Missing carve-outs are false exclusions. For every
integration-scope/e2e-scope
file, check its per-method breakdown: any deterministic branching method not listed in
carveOutMethods is testable code silently dropped. Add it as a carve-out.
- A reason that only restates a surface signal is a defect; audit exclusions by signal-class.
Group the exclusions by their signal (DbContext, HttpClient, Controller, Lambda,
Repository/Infrastructure naming) and check each group as a population. Any file excluded
because it "uses" the signal, with no per-method proven negative, is re-opened. The label
survives only for the specific methods that reach a genuine boundary (raw SQL, provider-specific
translation, an inline-
newed/static context, the send over the wire, bare persistence
plumbing); the decision/validation/mapping logic around it is carved out or promoted. A
constructor-injected DbContext treated as whole-file-untestable is the classic instance.
- Dataflow-blind
nondeterministic is THE recurring false positive — audit it as a
population, not row-by-row. Pull every nondeterministic entry at once and check where the
flagged Guid.NewGuid/Stopwatch/DateTime.Now value actually goes. If its only consumer
is a logging/telemetry call (Serilog.Log.*, LogContext.PushProperty, ILogger, a
Stopwatch for an elapsed-ms log), the entry is wrong: reclassify to the method's real
behavior — target/carve-out if the body is a pure mapping, or integration-scope if the
body is DbContext-bound (correctly frozen, but for the wrong reason). This is a house-style
pattern (correlation-id + elapsed-ms on every handler), so it clusters — a batch of
near-identical handler entries frozen for a logged Guid is the signature. Expect to reclassify
most of them.
- Large bare exclusions. Any
integration-scope/e2e-scope file above ~400 lines / ~10
methods with an EMPTY carveOutMethods is a lead to re-open — a whole-file judgment likely
missed a pure validator/mapper cluster. Re-scan its methods before accepting the bare label.
- EF / LINQ query logic runs on the in-memory provider, so it is testable. A method doing
.Where/.Select/.OrderBy/.GroupBy/.ToListAsync over an INJECTED DbContext executes on
UseInMemoryDatabase/SQLite and is testable, INCLUDING the projection inside a
.Select(x => new Dto{...}). Only genuinely provider-specific bits are not: FromSqlRaw/raw
SQL, a stored proc, or a SQL function/collation the in-memory provider cannot translate. Treat
"the LINQ is too provider-specific to run" as a claim to VERIFY against the actual query, never
a default. After the DbContext-seam fix, over-excluded EF queries are the single most likely
remaining swallow.
- Half-testable methods: the validation/guard/mapping FRONT of an IO method is testable even
when the tail is not. A method that validates inputs (throws), branches, or maps BEFORE it
touches the DbContext/HttpClient has a testable slice, those pre-IO branches are assertable (a
thrown validation, an early return). Do not stamp the whole method
testable:false; carve out
the pre-IO logic with its line range and exclude only the IO tail.
- Static, extension,
internal, and base-class logic is testable, so a folder or an access
modifier must not hide it. A pure static helper or a public static ... this extension
method is directly unit-testable wherever it sits. An internal method is testable via
InternalsVisibleTo (adding it is a seam, not a blocker). Concrete branching logic on an
abstract/base class is testable through a minimal test subclass. Each is a routine swallow
when a file is judged by its folder or by "cannot instantiate".
- Inline
new is a no-seam problem ONLY for infrastructure. new SomeDbContext() /
new HttpClient() / a static infra factory blocks unit testing; new-ing a PURE value object,
DTO, Regex, calculator, or comparer does not. Never mark a method untestable for constructing
a deterministic in-process object.
- Nondeterminism with an ALREADY-injected seam is
requires-source-change, not permanent. If
the class injects an IClock/IClockService/id/random provider yet a method reads
DateTime.UtcNow/Guid.NewGuid DIRECTLY, routing it through the injected seam is a one-line
fix: log requires-source-change with that mitigation, never a permanent nondeterministic
exemption.
- Whole-project / whole-folder exclusions are the coarsest swallow, so open at least one file
per excluded project. A project-level glob (
**/*.Infrastructure/**, **/DataAccess/**,
**/*.Api/**) is valid only if EVERY file under it is genuinely untestable. Sample a file from
each blanket-excluded project/folder and confirm no pure calculator/validator/mapper lives
there; one testable class in an "Infrastructure" project is a false exclusion.
- Vendored third-party code stays excluded, but only by its copyright header, not its folder.
A file carrying a third-party copyright (e.g.
Copyright (c) Microsoft) is non-product; a
sibling file in the SAME folder WITHOUT that header is the repo's OWN code and is classified by
its logic. Never blanket a whole vendored-SDK folder as non-product when the repo's concrete
provider/service (e.g. a SCIM Scim*Service doing user/group CRUD over an injected context)
lives beside it, that is exactly how a real product implementation gets swallowed.
Reconcile as a loop: apply the clear-cut corrections (signal unambiguously contradicts the
label) to the draft, then re-check the corrected entries; repeat until no clear-cut mismatch
remains. Only then carry the genuine gray-zone disagreements into the step 11 report as
explicit questions — do not silently resolve them. The human adjudicates only the few
ambiguous cases.
STRICT exit condition — no testable code swallowed. The critique does not pass until, for
EVERY exclusion entry, each class above has been checked against the actual source and the entry
is backed by a per-method PROVEN NEGATIVE (the specific no-seam boundary each excluded method
hits), never a surface signal. An exclusion whose only justification is a type, folder, base
class, access modifier, or "uses a DbContext" is a defect and is re-opened. When in doubt about a
single method, the default is IN scope (carve it out), not swallowed — a wrongly-included method
costs one skippable test; a wrongly-excluded one hides a real gap forever.
-
Write files into the repo (do not overwrite without confirmation). Lay .claude/coverage/
out in subfolders by role — tools/ (executable scripts), refs/ (config + the testing-rules
overlay), reports/ (the committed report snapshot), history/ (gitignored local trend):
.claude/coverage/refs/coverage-manifest.yml — from the template, filled with the
critique-corrected draft. Unresolved open questions are written with their current
(pre-critique) classification and noted as pending in the step 11 report. Keep the template's
target block (default C0 95% / C1 85% on the Adjusted slice) as the coverage goal, and set
gate.diff_coverage_min_* to match it so new code lands at the target. Confirm the goal with
the user in the step 11 report (a thin Adjusted slice may not sustain 95% C1).
.claude/coverage/refs/coverage.runsettings — copied from the kit template.
.claude/coverage/tools/run-coverage.sh — copied from the kit's scripts/. Committed so CI
(which does not run Claude Code) can invoke it at a stable path, identical to local runs.
.claude/coverage/tools/coverage-gate.py — copied from the kit's scripts/. The in-scope
join + gate + Unit Test Report CI runs after run-coverage.sh (needs Python + PyYAML).
.claude/coverage/tools/report.sh — copied from the kit's scripts/. One-command wrapper
(collect + gate + write a dated reports/<YYYY-MM-DD>/ with REPORT.{md,html} + generated
CANNOT-TEST.md, one folder per run). It resolves ../refs and ../reports
relative to itself, so the tools/refs/reports split is a hard contract — keep the scripts in
tools/ and config in refs/.
.claude/coverage/refs/unit-testing.md — the per-repo overlay. Starts as a pointer to the
base rules plus this repo's specifics: which projects the test project may reference, the
mocking strategy for this stack, repo-specific exclusions, the Enforcement section, and
the Maintaining the manifest contract (from the base rule). For a flat/legacy repo this
carries more; for clean-arch it is thin.
.claude/coverage/reports/ — created empty; the first report.sh run fills it. Committed.
-
Set .gitignore correctly — committed config vs throwaway output vs local trend:
- Ignore the regenerated output dir
coverage/ at the repo root (HTML drill-down, cobertura,
results) — never commit it.
- Ignore
.claude/coverage/history/ — ReportGenerator drops one trend snapshot per run there;
committing a per-run XML is churn and CI can't accumulate it anyway. Local-only.
- Do NOT ignore the rest of
.claude/coverage/ — tools/, refs/, and reports/ are
committed config + the report snapshot.
-
Scaffold the PR coverage workflow — without clobbering or duplicating existing CI.
First, verify every test project is a member of the target .sln. Compare the discovered
test projects (those referencing Microsoft.NET.Test.Sdk) against dotnet sln <solution> list.
CI does a clean dotnet build <solution> then dotnet test <proj> --no-build, so a test project
that is NOT in the solution is never built and runs 0 tests while still exiting 0: a silent,
misleading undercount (a real onboarding ran 596 of 2004 tests and reported 35% instead of
82.9%). For any test project missing from the solution, tell the user to add it
(dotnet sln <solution> add <project>) before relying on CI, and list the missing projects in
the step 11 report. run-coverage.sh now hard-fails on this, so an unfixed one breaks CI loudly
rather than undercounting, but catching it here avoids a red first run.
Then inspect .github/workflows/ for existing workflow files. Decide, in this order:
- A coverage workflow already exists (a
coverage.yml, or any workflow that already
runs run-coverage.sh) → do not overwrite or add a second one. Report it; at most
offer a diff for the user to apply by hand.
- A workflow already runs the test suite on PRs into the production branch (look for
dotnet test under a pull_request trigger targeting master) → do not add a second
workflow that rebuilds and retests — that doubles CI minutes and creates two competing
gates. Instead, propose adding the two coverage steps (run run-coverage.sh, then
publish SummaryGithub.md to $GITHUB_STEP_SUMMARY) into that existing workflow, and
present it as a suggested diff. Do not edit their workflow automatically.
- No existing PR-test or coverage workflow → write
.github/workflows/coverage.yml
from ${CLAUDE_PLUGIN_ROOT}/templates/coverage-workflow.yml, filled with the detected
solution path, SDK version, and production branch name. Confirm the gate step keeps
--base origin/${{ github.base_ref }} — without it only the ratchet runs and new untested
code is not caught (the ratchet barely moves on a large repo). If step 2's inventory found
relative ProjectReferences into sibling repos (e.g. ..\..\..\<sibling>\...), fill the
sibling-checkout block: check this repo out under path: and each sibling out beside it,
or CI cannot build and the gate never runs. State the sibling repos + assumed org/ref in the
step 11 report for the human to confirm.
Never modify or delete any other workflow file. Record which path you took (created /
skipped-because-exists / proposed-merge) in the step 11 report.
Tell the user the gate is only advisory until they make it binding (you cannot do this
for them — it is a GitHub setting): in branch protection for the production branch, require
the Coverage status check to pass before merging, and treat the baseline floor in the
manifest as move-up-only (lowering it is a reviewed change). Surface this as an explicit
action item in the step 11 report.
-
Wire context loading. A plugin's rules do not auto-load into a repo's context.
Tell the user to add an import of .claude/coverage/refs/unit-testing.md to the repo's
CLAUDE.md so the convention is in context while writing tests.
-
Comprehensiveness gate — do not report or stop until the scan is provably complete.
The point of stopping is to hand a human a trustworthy, complete draft; a report over a
partial or unreconciled scan is worse than no report. Before writing the step-11 report,
assert ALL of the following, and if any fails, fix it and re-check — do not proceed:
State in the report that this gate passed, with the file counts. Only genuine ambiguity is
deferred to the human — incompleteness is not.