Route gh-aw workflow design/create/debug/upgrade requests to the right prompts.
日本語の概要は準備中です。原文の説明を表示しています。
Guide for optimizing MSBuild incremental builds. USE FOR: builds slower than expected on subsequent runs, 'nothing changed but it rebuilds anyway', diagnosing why targets re-execute unnecessarily, fixing broken no-op builds. Covers 8 common causes: missing Inputs/Outputs on custom targets, volatile properties in output paths (timestamps/GUIDs), file writes outside tracked Outputs, missing FileWrites registration, glob changes, Visual Studio Fast Up-to-Date Check (FUTDC) issues. Key diagnostic: look for 'Building target completely' vs 'Skipping target' in binlog. DO NOT USE FOR: first-time build slowness (use build-perf-baseline), parallelism issues (use build-parallelism), evaluation-phase slowness (use eval-performance), non-MSBuild build systems.
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For every diagnose or explain request, the final answer must explicitly cover
all of these points, even when the immediate cause is simply missing
Inputs/Outputs:
Do not edit unless the user asks for a fix. If a check cannot be run, label it
as an unverified check rather than omitting it or claiming success. When
Inputs or Outputs are absent, report timestamp comparison or one-to-one
mapping as not applicable — the incremental mechanism is not engaged, not
as an unverified comparison.
MSBuild's incremental build mechanism allows targets to be skipped when their outputs are already up to date, dramatically reducing build times on subsequent runs.
Inputs and Outputs attributes: MSBuild compares the timestamps of all files listed in Inputs against all files listed in Outputs. If every output file is newer than every input file, the target is skipped entirely.Inputs/Outputs: The target runs every time the build is invoked. This is the default behavior and the most common cause of slow incremental builds.<!-- This target is incremental: skipped if Output is newer than all Inputs -->
<Target Name="Transform"
Inputs="@(TransformFiles)"
Outputs="@(TransformFiles->'$(OutputPath)%(Filename).out')">
<!-- work here -->
</Target>
<!-- This target always runs because it has no Inputs/Outputs -->
<Target Name="PrintMessage">
<Message Text="This runs every build" />
</Target>
Missing Inputs/Outputs on custom targets — Without both attributes, the target always runs. This is the single most common cause of unnecessary rebuilds.
Volatile properties in Outputs path — If the output path includes something that changes between builds (e.g., a timestamp, build number, or random GUID), MSBuild will never find the previous output and will always rebuild.
File writes outside of tracked Outputs — If a target writes files that aren't listed in its Outputs, MSBuild doesn't know about them. The target may be skipped (because its declared outputs are up to date), but downstream targets may still be triggered.
Missing FileWrites registration — Files created during the build but not registered in the FileWrites item group won't be cleaned by dotnet clean. Over time, stale files can confuse incremental checks.
Glob changes — When you add or remove source files, the item set (e.g., @(Compile)) changes. Since these items feed into Inputs, the set of inputs changes and triggers a rebuild. This is expected behavior but can be surprising.
Property changes — Properties that feed into Inputs or Outputs paths (e.g., $(Configuration), $(TargetFramework)) will cause rebuilds when changed. Switching between Debug and Release is a full rebuild by design.
NuGet package updates — Changing a package version updates project.assets.json and potentially many resolved assembly paths. This changes the inputs to ResolveAssemblyReferences and CoreCompile, triggering a rebuild.
Build server VBCSCompiler cache invalidation — The Roslyn compiler server (VBCSCompiler) caches compilation state. If the server is recycled (timeout, crash, or manual kill), the next build may be slower even though MSBuild's incremental checks pass, because the compiler must repopulate its in-memory caches.
Use binary logs (binlogs) to understand exactly why targets ran instead of being skipped.
Before recommending a fix, report this compact checklist for each target that reran:
Inputs includes every file that should invalidate the output, including volatile or generated dependencies. If a producer touches an input on every build, check whether its content changes. Fix unnecessary rewrites in the producer (for example, write only when content changes); if relevant content really changes, the dependent target must rerun. Exclude a file only with evidence that it cannot affect the output, never just because it changes often.For a diagnosis or explanation request, do not edit the project unless the user asks for a fix. If build execution is unavailable, distinguish inspected facts from expected behavior and do not claim the fix was applied or verified.
Overwrite="true" on WriteLinesToFile is not itself a reason that an
incremental target reruns. The task rewrites the file only after MSBuild has
already scheduled the target; correct Inputs/Outputs can skip the target
before the task executes.
dotnet build /bl:first.binlog
dotnet build /bl:second.binlog -fl "-flp:v=diag;logfile=second-full.log;performancesummary"
The first build establishes the baseline. The second build is the one you want to be incremental. Analyze second.binlog.Use the binlog MCP server (Microsoft.AITools.BinlogMcp, exposed under the binlog MCP namespace) to analyze the second binlog:
load_binlog to load second.binlog.search_binlog for "Building target completely", "Building target incrementally", "Skipping target", and "is newer than output".get_target_info_by_name for the target that reran.get_project_target_list to confirm the target and its project context.get_expensive_targets only to rank the non-skipped targets after the skip reason is understood.Read the diagnostic log captured during the second build. Do not run another build or depend on replay support for the default fallback:
grep 'Building target\|Target.*was not skipped' second-full.log
In a perfectly incremental build, most targets should be skipped.
Inspect non-skipped targets by looking for their execution messages in the diagnostic log. Check for "out of date" messages that indicate why a target ran.
Look for key messages in the binlog:
"Building target 'X' completely" — means MSBuild found no outputs or all outputs are missing; this is a full target execution."Building target 'X' incrementally" — means some (but not all) outputs are out of date."Skipping target 'X' because all output files are up-to-date" — target was correctly skipped.Search for "is newer than output" messages to find the specific input file that triggered the rebuild:
grep "is newer than output" second-full.log
This reveals exactly which input file's timestamp caused MSBuild to consider the target out of date.
first.binlog and second.binlog side by side in the MSBuild Structured Log Viewer to see what changed.grep 'Target Performance Summary' -A 30 second-full.log to see which targets consumed the most time in the second build — these are your optimization targets.The FileWrites item group is MSBuild's mechanism for tracking files generated during the build. It powers dotnet clean and helps maintain correct incremental behavior.
FileWrites item: Register any file your custom targets create so that dotnet clean knows to remove them. Without this, generated files accumulate across builds and may confuse incremental checks.FileWritesShareable item: Use this for files that are shared across multiple projects (e.g., shared generated code). These files are tracked but not deleted if other projects still reference them.dotnet clean won't remove them, and they may cause stale data issues or confuse up-to-date checks.Add generated files to FileWrites inside the target that creates them:
<Target Name="MyGenerator" Inputs="..." Outputs="$(IntermediateOutputPath)generated.cs">
<!-- Generate the file -->
<WriteLinesToFile File="$(IntermediateOutputPath)generated.cs" Lines="@(GeneratedLines)" />
<!-- Register for clean -->
<ItemGroup>
<FileWrites Include="$(IntermediateOutputPath)generated.cs" />
</ItemGroup>
</Target>
Visual Studio has its own up-to-date check (Fast Up-to-Date Check, or FUTDC) that is separate from MSBuild's Inputs/Outputs mechanism. Understanding the difference is critical for diagnosing "it rebuilds in VS but not on the command line" issues.
<PropertyGroup>
<DisableFastUpToDateCheck>true</DisableFastUpToDateCheck>
</PropertyGroup>
CopyToOutputDirectory items that are newer than the last buildContent or None items with CopyToOutputDirectory="PreserveNewest" that have been modifiedThe following is a complete example of a well-structured incremental custom target:
<Target Name="GenerateConfig"
Inputs="$(MSBuildProjectFile);@(ConfigInput)"
Outputs="$(IntermediateOutputPath)config.generated.cs"
BeforeTargets="CoreCompile">
<!-- Generate file only if inputs changed -->
<WriteLinesToFile File="$(IntermediateOutputPath)config.generated.cs" Lines="..." />
<ItemGroup>
<FileWrites Include="$(IntermediateOutputPath)config.generated.cs" />
<Compile Include="$(IntermediateOutputPath)config.generated.cs" />
</ItemGroup>
</Target>
Key points in this example:
Inputs includes $(MSBuildProjectFile): This ensures the target reruns if the project file itself changes (e.g., a property that affects generation is modified).Inputs includes @(ConfigInput): The actual source files that drive generation.Outputs uses $(IntermediateOutputPath): Generated files go in the obj/ directory, which is managed by MSBuild and cleaned automatically.BeforeTargets="CoreCompile": The generated file is available before the compiler runs.FileWrites registration: Ensures dotnet clean removes the generated file.Compile inclusion: Adds the generated file to the compilation without requiring it to exist at evaluation time.<!-- BAD: No Inputs/Outputs — runs every build -->
<Target Name="BadTarget" BeforeTargets="CoreCompile">
<Exec Command="generate-code.exe" />
</Target>
<!-- BAD: Volatile output path — never finds previous output -->
<Target Name="BadTarget2"
Inputs="@(Compile)"
Outputs="$(OutputPath)gen_$([System.DateTime]::Now.Ticks).cs">
<Exec Command="generate-code.exe" />
</Target>
<!-- GOOD: Stable paths, registered outputs -->
<Target Name="GoodTarget"
Inputs="@(Compile)"
Outputs="$(IntermediateOutputPath)generated.cs"
BeforeTargets="CoreCompile">
<Exec Command="generate-code.exe -o $(IntermediateOutputPath)generated.cs" />
<ItemGroup>
<FileWrites Include="$(IntermediateOutputPath)generated.cs" />
<Compile Include="$(IntermediateOutputPath)generated.cs" />
</ItemGroup>
</Target>
MSBuild provides built-in tools to understand what's running and why.
/clp:PerformanceSummary — Appends a summary at the end of the build showing time spent in each target and task. Use this to quickly identify the most expensive operations:
dotnet build /clp:PerformanceSummary
This shows a table of targets sorted by cumulative time, making it easy to spot targets that shouldn't be running in an incremental build.
/pp:preprocess.xml — Generates a single XML file with all imports inlined, showing the fully evaluated project. This is invaluable for understanding what targets, properties, and items are defined and where they come from:
dotnet msbuild /pp:preprocess.xml
Search the preprocessed output to find where Inputs and Outputs are defined for any target, or to understand the full chain of imports.
Use both together to understand what's running (PerformanceSummary) and what's imported (/pp), then cross-reference with binlog analysis for a complete picture.
Inputs and Outputs to custom targets — This is the single most impactful change for incremental build performance. Without both attributes, the target runs every time.$(IntermediateOutputPath) for generated files — Files in obj/ are tracked by MSBuild's clean infrastructure and won't leak between configurations.FileWrites — Ensures dotnet clean removes them and prevents stale file accumulation.Overwrite="true" WriteOnlyWhenDifferent="true" with WriteLinesToFile). Keep real dependencies in Inputs; if required volatile content changes, accept the dependent rebuild. Exclude a file only after proving it cannot affect the output.Returns instead of Outputs when you need to pass items without creating incremental build dependency — Outputs serves double duty: it defines the incremental check AND the items returned from the target. If you only need to pass items to calling targets without affecting incrementality, use Returns instead:
<!-- Outputs: affects incremental check AND return value -->
<Target Name="GetFiles" Outputs="@(DiscoveredFiles)">...</Target>
<!-- Returns: only affects return value, no incremental check -->
<Target Name="GetFiles" Returns="@(DiscoveredFiles)">...</Target>
まだレビューはありません。使ってみた感想をお寄せください。
概要と使いどころ
Route gh-aw workflow design/create/debug/upgrade requests to the right prompts.
日本語の概要は準備中です。原文の説明を表示しています。
Use a repo-root `.editorconfig` to configure free .NET analyzer and style rules. Use when a .NET repo needs rule severity, code-style options, section layout, or analyzer ownership made explicit. USE FOR: the repo needs a root .editorconfig; analyzer severity and style ownership are unclear; the team wants one source of truth for rule configuration. DO NOT USE FOR: choosing analyzers with no config change; formatting-only execution with no config ownership question. INVOKES: inspect the repository context, edit targeted files, and run relevant build, test, lint, or validation commands when changes are made.
日本語の概要は準備中です。原文の説明を表示しています。
Scans .NET code for ~50 performance anti-patterns across async, memory, strings, collections, LINQ, regex, serialization, and I/O with tiered severity classification. Use when analyzing .NET code for optimization opportunities, reviewing hot paths, or auditing allocation-heavy patterns.
日本語の概要は準備中です。原文の説明を表示しています。
Symbolicate the .NET runtime frames in an Android tombstone file. Extracts BuildIds and PC offsets from the native backtrace, downloads debug symbols from the Microsoft symbol server, and runs llvm-symbolizer to produce function names with source file and line numbers. USE FOR triaging a .NET MAUI or Mono Android app crash from a tombstone, resolving native backtrace frames in libmonosgen-2.0.so or libcoreclr.so to .NET runtime source code, or investigating SIGABRT, SIGSEGV, or other native signals originating from the .NET runtime on Android. DO NOT USE FOR pure Java/Kotlin crashes, managed .NET exceptions that are already captured in logcat, or iOS crash logs. INVOKES Symbolicate-Tombstone.ps1 script, llvm-symbolizer, Microsoft symbol server.
日本語の概要は準備中です。原文の説明を表示しています。
Symbolicate .NET runtime frames in Apple platform .ips crash logs (iOS, tvOS, Mac Catalyst, macOS). Extracts UUIDs and addresses from the native backtrace, locates dSYM debug symbols, and runs atos to produce function names with source file and line numbers. Automatically downloads .dwarf symbols from the Microsoft symbol server using Mach-O UUIDs. USE FOR triaging a .NET MAUI or Mono app crash from an .ips file on any Apple platform, resolving native backtrace frames in libcoreclr or libmonosgen-2.0 to .NET runtime source code, retrieving .ips crash logs from a connected iOS device or iPhone, or investigating EXC_CRASH, EXC_BAD_ACCESS, SIGABRT, or SIGSEGV originating from the .NET runtime. DO NOT USE FOR pure Swift/Objective-C crashes with no .NET components, or Android tombstone files. INVOKES Symbolicate-Crash.ps1 script, atos, dwarfdump, idevicecrashreport.
日本語の概要は準備中です。原文の説明を表示しています。
Design or review .NET solution architecture across modular monoliths, clean architecture, vertical slices, microservices, DDD, CQRS, and cloud-native boundaries without over-engineering. USE FOR: .NET architecture choices; layer and domain boundary review; service decomposition; clean architecture, vertical slice, DDD, CQRS, and modular monolith decisions. DO NOT USE FOR: unrelated stacks; generic tasks that do not need this specific guidance. INVOKES: inspect the repository context, edit targeted files, and run relevant build, test, lint, or validation commands when changes are made.
日本語の概要は準備中です。原文の説明を表示しています。