Official agent skill

Test Tagging

by dotnet in dotnet/skills

Classifies existing tests by standard traits and reports their distribution.

OfficialMITAuto-check passed

Install Test Tagging

skills CLI
$ npx skills add dotnet/skills --skill test-tagging -a claude-code

Project install by default; add -g for ~/.claude/skills/.

GitHub CLI
$ gh skill install dotnet/skills test-tagging --agent claude-code

Project scope by default; add --scope user for a personal install. Needs GitHub CLI 2.90.0 or later (public preview).

Manual copy
$ git clone --depth 1 https://github.com/dotnet/skills.git skills-src && mkdir -p .claude/skills && cp -r skills-src/plugins/dotnet-test/skills/test-tagging .claude/skills/test-tagging && rm -rf skills-src

Use ~/.claude/skills/ instead of .claude/skills for a personal install. The folder must contain SKILL.md.

Claude Code skills documentation · loads skills from .claude/skills/

Facts

Skill name
test-tagging
GitHub stars
5.6k
Used in
1 other repo
Token cost
~5.5k tokens
SKILL.md length
2,430 words
Files
1
Skills in repo
91
Repo updated
First seen
Licence
MIT

At a glance

Classifies existing tests by standard traits and reports their distribution.

  • Works in 6 steps: Detect the language, framework, and… → Scan existing traits → Classify each test method → …
  • : tagging all tests with category attributes
  • SKILL.md covers When to Use, When Not to Use, Inputs and Trait Taxonomy, plus 3 more sections
  • Calls go, dotnet and pytest

What it does

Test Tagging is an agent skill from dotnet/skills, published by the product's own GitHub organization. Classifies existing tests by standard traits and reports their distribution. USE FOR: tagging all tests with category attributes, categorizing/tagging/ labeling each test, compare happy vs error paths, audit the test mix, describe coverage shape by test type, or tag then verify the project builds. Read bodies when names mislead. Apply canonical attributes; otherwise report only. DO NOT USE FOR: requests owned by test-anti-patterns, coverage-analysis, crap-score, test-gap-analysis, code-testing-agent, or migration…

Its SKILL.md is about 5.5k tokens, which your agent loads only when the skill is triggered. It is a single SKILL.md file with no bundled scripts.

It works with .NET. The repository describes itself as: Repository for skills to assist AI coding agents with .NET and C. The licence is MIT.

When your agent uses it

  • : tagging all tests with category attributes
  • Categorizing/tagging/ labeling each test
  • Compare happy vs error paths
  • Audit the test mix

Example prompts

  • “Use the test-tagging skill to classify existing tests by standard traits and reports their distribution”
  • “/test-tagging”

Workflow steps

6 steps, taken from the step headings in SKILL.md.

  1. Detect the language, framework, and tagging capability
  2. Scan existing traits
  3. Classify each test method
  4. Apply trait attributes (or report only)
  5. Generate trait summary
  6. Verify edits before reporting

What it can do on your machine

Read from SKILL.md and the folder at commit 8d670fa. It shows what the files ask for, not the result of running them.

  • Tool permissions

    Pre-approves nothing: there is no allowed-tools line, so your agent's usual permission prompts apply.

    From allowed-tools in the SKILL.md frontmatter.

  • Runs code

    Shell commands in SKILL.md call:

    • go
    • dotnet
    • pytest
    • mvn
    • cargo
    • npm

    From the folder's file list and the shell code blocks in SKILL.md.

  • Network

    No URLs in SKILL.md. Its commands use npm, which can reach the network depending on how they are called.

    From URLs in SKILL.md, links to its own repository left out.

  • Credentials

    Names no API keys, tokens, secrets or passwords.

    From names ending in _API_KEY, _TOKEN, _SECRET, _KEY or _PASSWORD in SKILL.md.

Context cost

Test Tagging loads about 5.5k tokens when it runs. Until then it costs about 135 tokens; SKILL.md has 2,430 words of instructions outside code blocks.

Always · name and description, kept in context so the agent knows when to use it
~135
When it runs · the whole SKILL.md, loaded when a task matches
~5.5k

Estimates: characters ÷ 4, the usual rule of thumb; real counts depend on the model's tokenizer. Scripts and assets cost tokens only if the agent reads them.

Safety

Auto-check passed

The automated check found no risky patterns in SKILL.md.

Automated static check — not a guarantee. Review scripts before installing. It scans the text of SKILL.md for risky patterns (piping downloads into a shell, reading credential files, hidden Unicode, destructive commands); files beside SKILL.md are not scanned.

SKILL.md

The full file from dotnet/skills at commit 8d670fa, republished under its MIT licence (© dotnet). 2,430 words, ~5,512 tokens.

Download SKILL.mdSave it as .claude/skills/test-tagging/SKILL.md (or your agent's skills folder).
name
test-tagging
description
Classifies existing tests by standard traits and reports their distribution. USE FOR: tagging all tests with category attributes, categorizing/tagging/ labeling each test, compare happy vs error paths, audit the test mix, describe coverage shape by test type, or tag then verify the project builds. Read bodies when names mislead. Apply canonical attributes; otherwise report only. DO NOT USE FOR: requests owned by test-anti-patterns, coverage-analysis, crap-score, test-gap-analysis, code-testing-agent, or migration skills.
license
MIT

Test Trait Tagging

Analyze an existing test suite in any supported language and apply a standardized set of trait tags to each test method, giving teams visibility into their test distribution (positive vs. negative, critical-path coverage, smoke tests, etc.).

Language-specific guidance: Try test-analysis-extensions once. If it is unavailable, continue immediately with the built-in framework table below; never block tagging on the helper.

When to Use

  • Auditing a test project to understand the mix of test types
  • Adding trait attributes to untagged tests
  • Generating a summary report of trait distribution across a test suite
  • Reviewing whether critical paths have sufficient coverage

When Not to Use

  • Writing new tests from scratch (use code-testing-agent for any language, or writing-mstest-tests for MSTest)
  • Running or filtering tests (use run-tests for .NET; equivalent native runners elsewhere)
  • Migrating between test frameworks
  • General quality, smell, flakiness, or assertion audits (use test-anti-patterns or the matching analysis skill)
  • Diagnostic .NET executed line/branch/Cobertura interpretation or project-wide CRAP risk (use coverage-analysis); raw coverage collection (use run-tests for .NET, native tooling otherwise)
  • CRAP analysis for a named method, class, or file (use crap-score)
  • Behavioral gaps where a test would survive broken production logic (use test-gap-analysis)

Inputs

InputRequiredDescription
Test project or filesNoPath to the test project, folder, or specific test files. Discover from the current workspace when omitted.
ScopeNoInfer from the verb: tag/apply edits, audit/classify/report is report-only, and both applies only when both are requested. If ambiguous, default to audit to avoid unrequested edits. Frameworks declared report-only always emit a report; convention-based frameworks edit only after the user confirms the convention.
FrameworkNoAuto-detected. Override when detection fails.

Trait Taxonomy

Use exactly these trait names and values. Do not invent new trait values outside this table.

Trait ValueMeaningHeuristics
positiveVerifies expected behavior under normal/valid conditionsAsserts success, valid output, expected state, no exceptions for valid input
negativeVerifies correct handling of invalid input, errors, or edge casesAsserts exceptions, error codes, validation failures, rejects bad input
boundaryTests limits, thresholds, empty/null/None/nil inputs, min/max valuesOperates on 0, -1, int.MaxValue / sys.maxsize / Number.MAX_SAFE_INTEGER / math.MaxInt64 / i32::MAX, empty string, null/None/nil/undefined, empty collection, boundary of valid range
critical-pathCore workflow that must never break; breakage blocks usersTests the primary success scenario of a key public API or user-facing feature
smokeQuick sanity check that the system is operationalFast, no complex setup, verifies basic wiring (e.g., service resolves, endpoint returns 200)
regressionReproduces a specific previously-reported bugReferences a bug ID, issue number, or describes a fix in its name or comments
integrationCrosses process, network, or persistence boundariesUses real database, HTTP client, file system, external service, or multi-component setup
end-to-endFull user workflow spanning the entire application stackExercises a complete scenario from entry point to final result, distinct from single-boundary integration
performanceValidates timing, throughput, or resource consumptionAsserts on elapsed time, memory, allocations, or uses benchmark harness (BenchmarkDotNet, pytest-benchmark, benchmark.js, JMH, go test -bench, criterion.rs, XCTMetric, kotlinx-benchmark, Google Benchmark)
securityVerifies authentication, authorization, input sanitization, or secrets handlingTests for SQL injection, XSS, CSRF, unauthorized access, token validation, permission checks
concurrencyValidates thread safety, parallelism, or async correctnessUses Task.WhenAll / Parallel.ForEach / SemaphoreSlim (.NET); asyncio.gather / threading.Lock / multiprocessing (Python); Promise.all / worker threads (JS/TS); CompletableFuture / ExecutorService / synchronized (Java); go func / sync.WaitGroup / sync.Mutex / chan (Go); Mutex / Thread.new (Ruby); tokio::spawn / Arc<Mutex<_>> / crossbeam (Rust); DispatchQueue / actor (Swift); coroutineScope / Mutex (Kotlin); Start-Job / RunspacePool (PowerShell); std::thread / std::mutex (C++); reproduces race conditions
resilienceTests retry logic, timeouts, circuit breakers, or graceful degradationAsserts behavior under transient failures, network drops, or service unavailability (e.g., Polly, tenacity, p-retry, resilience4j, hystrix, opossum, retry-go)
destructiveMutates shared or external state that is hard to roll backDeletes records, drops resources, modifies global config -- useful for CI isolation decisions
configurationVerifies settings loading, defaults, environment behaviorTests missing config keys, invalid values, environment variable fallbacks, options validation
flakyKnown to intermittently fail (meta-tag for test health tracking)Mark tests the team knows are unreliable; used to quarantine or prioritize stabilization

A single test may have multiple traits (e.g., both negative and boundary). At minimum, every test should receive one of positive or negative.

Workflow

Step 1: Detect the language, framework, and tagging capability

Resolve the requested test scope from the current workspace before asking for a path. The skill context's Base directory contains these instructions, not the user's repository. Always inspect the current working directory before claiming that repository files are unavailable. If the prompt's relative path is absent, search the workspace for the named project/file and retry the exact result. A successful search proves that the target is present; if the normal reader then reports that same path missing, treat the contradiction as a reader path-normalization or transport failure rather than asking the user for files. Use a shell text reader (sed/cat on Unix, Get-Content on PowerShell) only for a confirmed reader availability, transport, or path-normalization failure and only after verifying the canonical path remains inside the current workspace. Stop on content-exclusion, permission/policy, workspace-boundary, or unknown read failures. Never ask the user for a path or file contents after a workspace search found a readable target.

For an auto-edit framework, a failed patch/editor call is not a stopping condition only when the failure is confirmed tool availability, transport, or path normalization. Do not bypass stale-context, concurrent-change, permission/policy, or path-boundary errors. Before a shell fallback, resolve the canonical path inside the current workspace, freshly read the file, and use an anchored transformation that aborts unless the expected old text and exact match count are unchanged. Then re-open the complete file, inspect the diff, and run Step 6 validation. Do not report proposed attributes as completion when the user asked to apply them.

Identify the language and framework. Try the matching test-analysis-extensions guidance once. If unavailable, classify capability from the built-in rules below:

  • auto-edit — framework has canonical tag syntax this skill can safely insert (.NET [TestCategory] / [Trait] / [Category] / [Property], pytest @pytest.mark.<name>, JUnit 5 @Tag("..."), TestNG groups = {"..."}, RSpec metadata it "..." , :tag => true, Pester -Tag '...', Kotest @Tags(...), Swift Testing @Tag(.tagName), Catch2 [tag], doctest * doctest::test_suite("tag") decorator).
  • report-only — framework has no canonical, agreed-upon tag attribute; report tags in a Markdown table only and do not edit source (Go standard testing without build-tag conventions, Jest/Vitest without consistent describe-prefix convention, Rust without project-specific cfg conventions, XCTest without a test plan, GoogleTest without test-name prefix conventions, Mocha without describe-prefix conventions).
  • convention-based — framework uses naming or file conventions for tagging (Go //go:build integration build tags, file-name suffixes like *_integration_test.go, GoogleTest INTEGRATION_* filter prefix). Only emit canonical edits when the user has confirmed the project convention; otherwise treat as report-only.

Capture the capability before Step 4.

Also lock the requested mode before classification. Do not turn an audit into source edits because canonical attributes are available; edit only for an explicit tagging/apply request.

Step 2: Scan existing traits

Check which tests already have trait attributes. Use the extension when loaded; otherwise use this built-in table as the source of truth:

FrameworkExisting AttributeExample
MSTest[TestCategory("...")][TestCategory("positive")]
xUnit[Trait("Category", "...")][Trait("Category", "positive")]
NUnit[Category("...")][Category("positive")]
TUnit[Property("Category", "...")][Property("Category", "positive")]
JUnit 5@Tag("...")@Tag("positive")
TestNG@Test(groups = {"..."})@Test(groups = {"positive"})
pytest@pytest.mark.<name>@pytest.mark.positive
RSpecmetadata after itit "...", :positive do
Pester-Tag '...'It '...' -Tag 'positive'
Kotest@Tags(...)@Tags(Positive)
Swift Testing@Tag(.<name>)@Test(.tags(.positive))
Catch2[tag] in nameTEST_CASE("...", "[positive]")
doctest* doctest::test_suite("...") decoratorTEST_CASE("..." *doctest::test_suite("positive"))

Record which tests already have tags to avoid duplication.

Step 3: Classify each test method

Build one canonical inventory containing each discovered test exactly once. Record the test identifier, behavioral classification, and traits in that inventory; use the same rows for source edits, per-test reporting, totals, and distribution counts. Do not hand-count a separate denominator. Before publishing, reconcile the reported total with the number of inventory rows and verify that every row contributes to each displayed trait count.

For each test method without traits, analyze:

  1. Method name -- names containing Invalid, Fail, Error, Throw, Reject, BadInput, Null, None, Nil, Negative, raises_, _throws_, _returns_error suggest negative
  2. Assertion type -- Assert.ThrowsException / Assert.Throws / Should().Throw() / pytest.raises / expect(fn).toThrow / assertThrows / assert.Error(t, err) / expect { ... }.to raise_error / #[should_panic] / XCTAssertThrowsError / Should -Throw / EXPECT_THROW suggest negative
  3. Input values -- null / None / nil / undefined, "", 0, -1, int.MaxValue / sys.maxsize / Number.MAX_SAFE_INTEGER / math.MaxInt64 / i32::MAX, empty collections suggest boundary
  4. Setup complexity -- minimal setup with basic assertions suggests smoke; external dependencies (file/db/net/env) suggest integration
  5. Comments and names -- references to issue numbers or "regression" / "bug" / "fix for #..." suggest regression
  6. Timing assertions -- Stopwatch, BenchmarkDotNet, elapsed-time checks; pytest-benchmark fixtures; benchmark.js; JMH @Benchmark; go test -bench; criterion.rs; XCTMetric; Google Benchmark; kotlinx-benchmark suggest performance
  7. Feature centrality -- tests on primary public API entry points or critical user workflows suggest critical-path
  8. Security patterns -- validates auth, checks permissions, sanitizes input, tests for injection, handles tokens/secrets suggest security
  9. Parallel/async constructs -- per-language concurrency primitives (see Trait Taxonomy table) suggest concurrency
  10. Fault injection -- simulates failures, tests retries, timeouts, or circuit breakers suggest resilience
  11. State mutation -- deletes external records, drops resources, modifies shared/global state suggest destructive
  12. Full-stack flow -- test spans entry point through data layer to final response, covering a complete user scenario suggest end-to-end
  13. Config/settings -- loads configuration, tests missing keys, validates options, checks environment variables suggest configuration
  14. Known instability -- test has skip / ignore annotations with comments about flakiness, or names contain "flaky" / "intermittent" suggest flaky
  15. Default -- if the test verifies a normal success path, tag positive

When in doubt between positive and negative, read the assertion: if it asserts success -> positive; if it asserts failure -> negative.

For a requested distribution or coverage-shape audit, use available production code to map each test to the exact outcome it exercises before summarizing. Call out duplicated boundary coverage and whether the test inventory represents both sides of named thresholds and the observable collaborator outcomes on business-critical paths. Keep these as concise distribution observations, not new trait values. Do not perform mutation reasoning, prescribe new tests, or expand into the behavioral-gap audit owned by test-gap-analysis.

Show full SKILL.md (796 more words)Show less
Step 4: Apply trait attributes (or report only)

Resolve the mode before applying the capability:

  • Audit mode (audit, classify, report, or ambiguous intent): emit the per-test mapping and summary without modifying source, regardless of capability.
  • Edit mode (tag, apply, or explicitly requested both): continue with the capability branch below.

In edit mode, if the resolved capability is auto-edit, add the appropriate attribute to each test method. Place trait attributes adjacent to the existing test attribute. Examples:

Apply traits at the individual test-method/case level. Do not substitute one class-level category for method-level classification: different methods usually exercise different positive, negative, and boundary behavior.

MSTest:

csharp
[TestMethod]
[TestCategory("negative")]
[TestCategory("boundary")]
public void Parse_NullInput_ThrowsArgumentNullException() { ... }

xUnit:

csharp
[Fact]
[Trait("Category", "positive")]
[Trait("Category", "critical-path")]
public void CreateOrder_ValidItems_ReturnsConfirmation() { ... }

NUnit:

csharp
[Test]
[Category("regression")]
[Category("negative")]
public void Calculate_OverflowInput_ReturnsError() // Fix for #1234
{ ... }

pytest:

python
@pytest.mark.negative
@pytest.mark.boundary
def test_parse_none_input_raises_value_error():
    ...

JUnit 5:

java
@Test
@Tag("positive")
@Tag("critical-path")
void createOrder_validItems_returnsConfirmation() { ... }

TestNG:

java
@Test(groups = {"negative", "boundary"})
public void parse_nullInput_throwsIllegalArgumentException() { ... }

RSpec:

ruby
it "rejects null input", :negative, :boundary do
  ...
end

Pester:

powershell
It 'Rejects null input' -Tag 'negative','boundary' {
    ...
}

Kotest:

kotlin
@Tags(Negative, Boundary)
class ParserSpec : StringSpec({
    "rejects null input" { ... }
})

Swift Testing:

swift
@Test(.tags(.negative, .boundary))
func parseNullInputThrows() throws { ... }

Catch2:

cpp
TEST_CASE("Parse null input throws", "[negative][boundary]") { ... }

In any mode, if the resolved capability is report-only (Go standard testing, plain Jest/Vitest without convention, Rust without project-specific cfg, plain XCTest, plain GoogleTest, plain Mocha), do NOT modify source files. Instead emit a concise mapping from each test to its suggested tags. Recommend a project-wide convention only when the user asks how to persist or filter those tags; an analysis-only request should report and stop.

In edit mode, if the resolved capability is convention-based (e.g., Go //go:build integration, *_integration_test.go, GoogleTest INTEGRATION_* prefix), only emit canonical edits when the user has confirmed the project's convention. Otherwise treat as report-only.

Step 5: Generate trait summary

After tagging, produce a summary table. Include only traits with a non-zero count unless the user asks for the full taxonomy; zero-filled rows obscure the suite's actual shape. For a small report-only suite, keep the per-test mapping and non-zero distribution together rather than expanding into a dashboard.

## Trait Distribution

| Trait         | Count | % of Total |
|---------------|-------|------------|
| positive      |    50 |      64.1% |
| negative      |    28 |      35.9% |
| boundary      |     8 |      10.3% |
| critical-path |    12 |      15.4% |
| **Total tests** | **78** | -- |

Note: Percentages exceed 100% because tests can have multiple traits.

Include observations such as:

  • Ratio of positive to negative tests
  • Whether critical-path tests exist for key public APIs
  • Any tests that could not be confidently classified (list them for manual review)

boundary and every other specialized trait are additive. A boundary success case still counts as positive; a rejected boundary still counts as negative. Derive the positive/negative distribution after applying this rule.

Step 6: Verify edits before reporting

For every auto-edit framework, run the narrowest command that compiles the edited attributes and confirms test discovery. This is required even when the user asks only to add tags: syntactically plausible attributes are not a completed edit.

FrameworkMinimum verification
.NETRun dotnet build <test-project>, then confirm discovery with dotnet test <test-project> --list-tests --no-build. Do not execute the suite unless the user asks; route execution to run-tests.
pytestcollect the edited suite with the repository's configured pytest command
JUnit/TestNGcompile tests through the repository's Maven/Gradle test task
Other auto-edit frameworksUse the repository's narrowest compile or test-discovery command

If an edit or patch application was uncertain, re-open the complete edited file before verification and reconcile every inventory row with the actual attribute next to that test. Do not report success from a partial diff or from the intended patch. If verification fails, report the exact command and error; never publish a successful distribution handoff for uncompiled edits.

Validation

  • Every test method has at least one trait classification (positive or negative at minimum) — in the report for report-only frameworks, or as an attribute for auto-edit frameworks
  • The total equals the per-test inventory count, and displayed trait counts were derived from that inventory
  • No invented trait values outside the taxonomy table
  • Existing trait attributes were preserved, not duplicated
  • The trait summary table was generated
  • For auto-edit frameworks, the project still builds / tests still discover without executing unrequested tests (dotnet build plus list mode / pytest --collect-only / mvn test-compile / go vet ./... / cargo check --tests / npm run test:list / equivalent)
  • The final summary cites successful validation commands and the discovered test count when a discovery command is available
  • For report-only frameworks, no source files were modified
  • For convention-based frameworks, edits were applied ONLY when a project convention was confirmed

Common Pitfalls

PitfallSolution
Guessing traits without reading the test bodyAlways read assertions and setup to classify accurately
Tagging a test only as boundary without positive/negativeEvery test should also be positive or negative -- boundary is additive
Using the wrong attribute syntax for the detected frameworkMatch the loaded extension or built-in table (don't put [TestCategory] in xUnit or @pytest.mark.x in unittest)
Duplicating an existing category attributeCheck for pre-existing traits in Step 2 before adding
Over-tagging as critical-pathReserve for tests on primary public entry points, not every helper
Editing Go / plain Jest / plain Rust / plain XCTest / plain GoogleTest sourceThese are report-only by default — emit a Markdown table instead. Only edit if the user confirms a project-wide convention (build tag, file suffix, describe-prefix, test-plan grouping).
Inventing tag prefixes for convention-based frameworksConfirm the project's existing convention before adopting one — don't guess between _integration_test.go, //go:build integration, or IntegrationTest prefix
Missing language-specific concurrency / async primitivesUse the loaded extension when available; otherwise use the Trait Taxonomy concurrency row

© dotnet, MIT. Rendered from Markdown: HTML in the file is shown as text, images as links, and headings moved down two levels. Raw file

Files

Just SKILL.md in plugins/dotnet-test/skills/test-tagging of dotnet/skills.

Open the folder on GitHubat commit 8d670fa

Used in 1 other repository

We found 2 copies of this SKILL.md (exact, near-identical or edited) in other folders, from 1 other GitHub owner. This page covers the copy in dotnet/skills, which our catalogue first saw on October 7, 2026.

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Works with

Questions about Test Tagging

What does Test Tagging do?

Classifies existing tests by standard traits and reports their distribution. Test Tagging is an agent skill from dotnet/skills, published by the product's own GitHub organization. Classifies existing tests by standard traits and reports their distribution.

When should I use Test Tagging?

Test Tagging fits situations like: : tagging all tests with category attributes; categorizing/tagging/ labeling each test; compare happy vs error paths; audit the test mix.

How do I install Test Tagging in Claude Code?

Run `npx skills add dotnet/skills --skill test-tagging -a claude-code`. Or copy the skill folder (plugins/dotnet-test/skills/test-tagging in dotnet/skills) into .claude/skills/test-tagging in your project. Claude Code loads it when a task matches its description.

How do I install Test Tagging in Codex?

Run `npx skills add dotnet/skills --skill test-tagging -a codex`. Or copy the skill folder (plugins/dotnet-test/skills/test-tagging in dotnet/skills) into .agents/skills/test-tagging in your project. Codex loads it when a task matches its description.

Can I use Test Tagging in Cursor, Gemini CLI or GitHub Copilot?

Cursor, Gemini CLI, GitHub Copilot and OpenCode also load SKILL.md folders. With the skills CLI, run `npx skills add dotnet/skills --skill test-tagging -a cursor` (or -a gemini-cli, github-copilot or opencode for the others). To copy it by hand, put the folder in .cursor/skills/test-tagging, .gemini/skills/test-tagging, .github/skills/test-tagging and .opencode/skills/test-tagging in your project.

What does Test Tagging need to run?

Going by SKILL.md and its folder, Test Tagging needs the command-line tools its instructions call (go, dotnet, pytest, mvn, cargo and npm).

Does Test Tagging access the network?

SKILL.md contains no URLs. Its commands use npm, which can reach the network depending on how they are called. This is read from the text; nothing was executed.

Is Test Tagging safe to install?

Our automated static check of SKILL.md found no risky patterns, such as piping downloads into a shell, reading credential files or hidden Unicode. It is not a guarantee. Review the folder before installing.

What licence does Test Tagging use?

Test Tagging is published under the MIT licence (declared in SKILL.md). It allows redistribution, so the full SKILL.md is shown on this page.

How many tokens does Test Tagging use?

About 5.5k tokens (SKILL.md is roughly 22k characters). Agents keep only the skill's name and description in context until a task matches; then they load SKILL.md in full.

What are the alternatives to Test Tagging?

Skills that share tags, products or a category with Test Tagging: Minimax DOCX (poco-ai/poco-claw, 1.4k stars), Microsoft Skill Creator (MicrosoftDocs/mcp, 1.9k stars), Speckit Constitution (WeihanLi/WeihanLi.Common, 242 stars) and Copilot Session Failure Analysis (dotnet/maui, 23k stars). The comparison table on this page puts their stars, adoption, token cost, safety result and licence side by side.

Who maintains Test Tagging?

dotnet (a GitHub organization, an official publisher) maintains it in dotnet/skills, which has 5,568 GitHub stars. The repository holds 91 skills in this directory. The repository was last updated on October 7, 2026.

Source: dotnet/skills on GitHub. Facts on this page come from the repository at the commit we read; the author's words are quoted as theirs.