* Set v11 RTM
* Update features in README.md
* Remove the two 900-iteration process-list scroll tests
* Keep Svg.Controls.Skia.Avalonia at 12.0.0.13
* 10.0.11 and Roslyn for net11p7
* Fix module-scan test failing when PowerShell's NGen images are stale
* Opt Pack NuGets out of the MSBuild server to fix SBOM generation
Tuple element names and nullability are not part of a type's identity, so an
interface resolved through one of its members carries neither. Naming an
explicit implementation from that type produced `void I<(int, int)>.M()` on a
type declared as `I<(int A, int B)>`, which the C# compiler rejects outright
with CS0540 - the decompiled source did not build. The nullable case was
already recorded as a TODO in the NullableRefTypes fixture, where the mismatch
costs a CS8643 warning rather than an error.
The implementing type's base-type list is the only place those annotations are
recorded, so the qualifier is looked up there. Three call sites derived it
independently - the AST builder for all five member kinds, the ambience used
for tooltips and tree labels, and the forwarders synthesized for MethodImpls -
so they now share one helper rather than repeating the rule twice more.
Matching while ignoring tuple names and nullability cannot be ambiguous:
implementing two interfaces that differ only in those is itself an error
(CS8140, CS8645).
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
One member the decompiler could not handle aborted the whole export, so a
single unsupported method in a large assembly left the user with nothing: no
sources, no .csproj, no way around it. Recovering silently would trade that
for a worse outcome - broken output nobody knows is broken - so every failure
is recorded, written where the content would have gone, and pointed at the
issue tracker.
The recovery has to hold for anything the export touches, not just method
bodies: a file that cannot be created, a resource that cannot be decoded, an
output visitor that throws mid-type. Each of those costs its own unit and
nothing else, and the units behind a failure are still produced - dropping
them would make the export look complete when it is not.
Consumers that relied on the exception keep their failure signal: ilspycmd
exits non-zero and lists the failures, the PowerShell cmdlets raise an error
record per failure, and the round-trip suite asserts the export reported none
- otherwise a crash on a method its own tests never call would ship green.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
A query source can be reached through an indexer as well as through a member
access or a call: `holder?[0].Where(...).Select(...)` puts an IndexerExpression
between the LINQ call and the `?.`. The receiver walk stopped there, so query
syntax was still introduced over a source the conditional access had lifted to
a nullable value type, and the output failed to compile with CS1936 - the same
way as the case that was reported, one node kind further along.
IndexerExpression.Target is nullable where MemberReferenceExpression's and
InvocationExpression's are not, so only that arm needs to match on the target.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
Query syntax cannot preserve a null-conditional receiver that lifts a value type. Detect null conditionals through the LINQ receiver chain before introducing query syntax.
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
Copilot-Session: 0dd407b6-9410-48df-add5-761ca4a8dec0
Structural generator mistakes surface at compile time via DSTG002-005
and partial-member matching, and emission regressions light up the
fixture suite - except one: dropping the reversed bucket scan in the
generated GetMinimumRequiredVersion compiles green and returns the
lowest enabled feature version instead of the highest, and the method's
only consumer is project-export LangVersion stamping, which default CI
runs barely exercise. Pin the highest-wins contract, including the
syntax-preference settings that now participate in the ladder.
Assisted-by: Claude:claude-fable-5:Claude Code
C# has no ref-returning switch expression. Skip the transform for StackType.Ref and cover the statement form in RefLocalsAndReturns.
Co-authored-by: Copilot <223556219+Copilot@users.noreply.github.com>
Copilot-Session: 0dd407b6-9410-48df-add5-761ca4a8dec0
A nested designation whose temporary is still read elsewhere is retried with
that variable demoted to a designator leaf. The check that the first tuple
element must be assigned ran before that retry, and every leaf of a wrongly
nested first element precedes the assigned ones, so the pattern looked like it
started mid-way and was rejected before the retry could restore it. The flat
deconstruction was lost for a shape that has one.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
Deferring an inner deconstruction to its enclosing one used to be decided by
matching the enclosing pattern in full, once per inner statement of the same
pattern, discarding everything but the end position.
The same decisions are available without it. A nested Deconstruct call can only
be consumed by an enclosing one that is the immediately preceding statement,
looking through the defensive copy of a struct element; anything else in between
is a barrier that stops the enclosing from reaching this position, so it matches
here instead. That leaves the case where the enclosing call is adjacent but
cannot match anyway, which is decided by the constraint MatchDeconstructionCall
already places on its out-parameters.
The tuple-designation branch no longer needs the position the enclosing run
starts at, so the backward walk that searched for it is gone with it. The added
fixtures pin reconstruction across adjacent deconstructions, whose element
stores that walk used to step through.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
Only defer to an enclosing designation that can reach this position
The temporaries and element reads of a nested tuple designation are stored back
to back, so a statement of any other kind between the temporary and a read of it
stops the enclosing pattern from consuming that read. Deferring anyway lost the
deconstruction entirely: the enclosing attempt fails and the back-to-front walk
does not return to the position that stepped aside for it, so the reads were left
as the plain element accesses they came from, which master reconstructs.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
A nested designation over tuples, var (x, (a, b)) = t;, is lowered to one
temporary per nested designation - parents before children - followed by the
element reads in depth-first leaf order, and decompiled as a flat
deconstruction plus separate element statements.
The temporaries are now consumed into a tree of tuple nodes before the
conversions and assignments are matched, and the leaves get the same flat
depth-first indices the Deconstruct-call chain hands out, so conversion and
assignment matching runs unchanged. Two properties of the lowered IL shape
the matcher to it: earlier transforms rewrite non-escaping element reads
from ldloca to ldloc, and the temporaries are stack slots whose type is
imprecise, so the container's element type is authoritative and the match
variable is retyped to keep the tuple pattern's invariant.
An element that escapes the deconstruction - used after the statement, so
the pattern cannot consume all its reads - demotes back to a designator leaf
and the match is retried, which restores the flat deconstruction the
escaping read needs. The guard against consuming a pattern piecemeal extends
to the new shape: an element read whose container is stored by an earlier
element read defers to the match starting at that store.
Assisted-by: Claude:claude-opus-5:Claude Code
Element index resolution serves both pattern roots: a registered result of a
Deconstruct call, or an element read of a tuple, which it discovers on first
sight and then owns. In an attempt rooted in a Deconstruct call the tuple
branch must not engage - it overwrites the call's result bookkeeping and
rewires the element read to a fresh variable that the pattern never defines.
The shape that reaches it is a tuple whose element is custom-deconstructed
with discarded leaves, followed by an unrelated assignment: the tuple-rooted
attempt fails, the call-rooted one runs at the element's position, and, now
that an unrelated assignment ends a call pattern instead of rejecting it, the
mixed match is no longer rejected on the way out.
Assisted-by: Claude:claude-opus-5:Claude Code
A nested designation rebinds Deconstruct on the element's static type when
the output is recompiled, while the explicit call it replaces is bound at
the call site. Where a derived element type declares a Deconstruct of the
same arity as the called method, and the source deconstructs through a
base-typed view, the two bindings differ, so the sugared output calls the
wrong method - a divergence the runtime fixture demonstrates on optimized
builds, where copy propagation elides the view.
Nesting is therefore only applied when the method the call binds to is the
one a designation would rebind to; otherwise the call stays explicit, where
its receiver cast preserves the binding.
Assisted-by: Claude:claude-opus-5:Claude Code
A nested designation, var (x, (a, b)) = o;, is lowered to a chain of
Deconstruct calls - the inner call taking the outer call's out-argument as
its target, through a defensive copy where the element is a struct - and
decompiled as a flat deconstruction followed by an explicit Deconstruct
call. The IL pattern node, its invariants and the C# builders already
support nested patterns; only the transform never built them.
MatchDeconstruction now consumes the chain into a tree of match patterns.
The leaves get flat indices in depth-first order, which is the order in
which StatementBuilder and ExpressionBuilder pair pattern variables with
assignments, so the conversion and assignment matching runs unchanged on
top of a nested pattern.
Two matching rules follow from the chain being consumed: a call pattern no
longer needs a matched assignment, because single-use leaves are covered by
the forwarding fixup in MatchAssignments; and a pattern is not rooted on an
element of an enclosing deconstruction, because blocks are processed back to
front, so the inner call is visited first and would otherwise consume the
pattern piecemeal, starving the outer call. That guard runs the enclosing
match as a dry run, which is precise: a barrier statement between the calls
or an element with further uses makes it fail, and the inner deconstruction
is then still transformed on its own.
Assisted-by: Claude:claude-opus-5:Claude Code
An assignment whose value is not one of the deconstruction's elements used
to reject the whole match, so a custom deconstruction followed by any
unrelated assignment stayed an explicit Deconstruct call. For a pattern
rooted in a Deconstruct call the element list is fixed by the call's
out-arguments, so such an assignment simply ends the pattern and stays after
the deconstruct instruction.
Tuple-rooted patterns keep rejecting: their element list is discovered from
the assignments, so ending early would misread a suffix of the assignments
as the whole pattern and fabricate discards for the elements before it.
Assisted-by: Claude:claude-opus-5:Claude Code
Deconstruction into a pointer target ((*p, value) = tuple;) stayed an
explicit Deconstruct call: a store through a pointer (or through a target
whose pointer type got erased in a stack slot) does not infer a
ByReferenceType, so IsAssignment reported an unknown expected type and the
transform's conversion check rejected the assignment. The type of the store
itself is just as precise, so use it as the expected type.
Of the three IsAssignment call sites only the transform's MatchAssignment
consumes the expected type; CheckInvariant and GetAssignmentIndex discard
it, so this widens what the transform accepts without weakening the
invariant check.
Assisted-by: Claude:claude-opus-5:Claude Code
The legacy .NET Framework vbc lowers anonymous types differently from
Roslyn: ToString builds its result with a StringBuilder instead of one
String.Format call, no DebuggerBrowsable/DebuggerHidden attributes are
emitted even in debug builds, and in optimized builds the DebuggerDisplay
attribute precedes CompilerGenerated in metadata order. The None/Optimize
test configurations only run on machines where that compiler is
installed, which is why the fixture did not cover them yet.
Assisted-by: Claude:claude-fable-5:Claude Code
A C# anonymous type is immutable and compares every member. VB's are neither
unless every property is declared 'Key': otherwise the properties are settable
and only the 'Key' ones take part in Equals and GetHashCode. Writing such a
type as 'new { ... }' silently gave it value equality and made any assignment
to one of its properties fail to compile, so only an anonymous type with no
settable property is treated as one; the rest keep their own declaration.
Those declarations carry the shape VB gave them, so the round-trip preserves
both mutability and 'Key' equality. Their names are the remaining obstacle,
since the VB compiler separates the parts with '$': the type, its backing
fields and any local named after it are renamed to use '_' instead, and a
comment on the declaration says why the type is spelled out.
Generated variable names are now rejected when they would not be legal C#
identifiers, which also stops a display class from lending its unspeakable
name to a local in the NoLocalFunctions output.
Assisted-by: Claude:claude-fable-5:Claude Code
VBPretty had no coverage of VB's anonymous types, so nothing caught that their
use sites decompiled to the raw metadata names while their definitions were
hidden from the output. The expected C# is written as it should read once the
generated-name predicates agree with each other; it fails until then.
Roslyn 2.10 targeting .NET Core 2.2 is branched off with #if: there the query
operator calls are not restored to extension-method syntax, so no query
expression is formed and the lowered form survives.
Assisted-by: Claude:claude-fable-5:Claude Code
FractionApprox rejects inputs above 0x7FFFFFFF because they cannot be stored
as a fraction, but the check was one-sided while the sign is stripped right
after it. A large negative value therefore reached the continued-fraction loop
and overflowed the terms it accumulates. ICSharpCode.Decompiler is built with
CheckForOverflowUnderflow, so that aborted decompilation of the whole member
instead of wrapping.
Found by fuzzing nuget.org; reproduces on MathNet.Numerics, whose constants
reach the approximation through their ratio to PI.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
HandleSimpleArrayInitializer multiplies the array dimensions to size the list
it collects elements into. The dimensions come from the input assembly and
need not multiply within int range, and ICSharpCode.Decompiler is built with
CheckForOverflowUnderflow, so an implausible pair of dimensions aborted
decompilation of the whole member. The product is only a capacity hint, so it
can saturate.
Found by fuzzing nuget.org; reproduces on obfuscated assemblies.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
IsCopyConstructor required the copy constructor to be private on a sealed
record and protected otherwise, but IsGeneratedCopyConstructor in the same
class accepts protected regardless of sealedness. Since the former gates the
latter, a sealed record whose copy constructor stayed protected -- what you get
when a record is sealed after it was compiled -- was not recognized as one at
all: it fell through to the general constructor handling, where its base call
made it count as unchained, and the primary-constructor invariant then failed.
Found by fuzzing nuget.org. Beyond silencing the assertion this improves the
output, as the affected types now decompile to positional records.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
The accessor forwarding-stub matcher bounded the IL body from above but not
from below. Reference assemblies keep the method RVA while stripping the body
to zero bytes, so an explicit interface accessor there sailed past the size
check and the first opcode read ran off the end of the blob, aborting the
whole type with a BadImageFormatException. The sibling matcher in
TransformDisplayClassUsage already guards its lower bound; this one did not.
Found by fuzzing nuget.org: every package resolving to the
Microsoft.NETFramework.ReferenceAssemblies packs was affected.
Assisted-by: Claude:claude-opus-5[1m]:Claude Code
Roslyn compiles top-level statements into a synthesized Program class
whose entry point is called '<Main>$', a name that cannot be declared
in C#. Decompiled output kept it verbatim (escaped to
_003CMain_003E_0024 when exporting a project), and since C# accepts
only a method called 'Main' as an entry point, the exported executable
did not compile (CS5001).
Give that method the name 'Main'. Per the decision recorded in #829 we
do not reconstruct top-level statements, so this is the level of
support the output needs to compile.
An async top-level program needs the name in a different place: it
compiles to '<Main>$' holding the statements plus a '<Main>' entry
point that only awaits it. That wrapper carries the .entrypoint marker
but is hidden from the output, so the name goes to the method it
awaits instead - unless AsyncAwait is off, when the wrapper is
emitted and keeps the name itself.
Assisted-by: Claude:claude-fable-5:Claude Code
decimal has no IL literal: legacy csc compiles 0m to a Decimal.Zero
field load, which already decompiled to the literal, but Roslyn
compiles it to a zero-initialization, which decompiled to
default(decimal). The two forms are bit-identical for decimal, so the
literal is no less faithful to the IL and matches what a human writes;
it also removes the per-compiler split in the CompoundAssignmentTest
fixture.
Assisted-by: Claude:claude-fable-5:Claude Code
Reviving the 2020 test-cases-fp-types fixtures (compound assignment on
float, double and decimal) exposed an asymmetry: post-increment and
post-decrement on float/double round-tripped as x++/x--, but the pre
forms came back as x += 1f because the increment detection in
PrettifyAssignments only accepted integer constants. C# defines ++/--
on floating-point types as adding or subtracting exactly 1, so the
conversion is exact for a constant 1 operand. Decimal already works
through the op_Increment/op_Decrement path.
Assisted-by: Claude:claude-fable-5:Claude Code
Optimized code stores no temporary for a deconstruction element that is
used only once after the deconstruction. MatchAssignments handled that
for trailing elements, but a nested deconstruction copies the inner
element to a temporary, so the elements preceding it are also left
without an assignment; their external load then violated the
DeconstructInstruction invariant that all pattern variable loads are
descendants of the instruction. The forwarding fixup now covers all
unassigned elements and inserts in pattern order, because the statement
and expression builders pair pattern variables with assignments
positionally. This also fixes the nested tuple deconstruction crash
reported in #3388.
Also unwrap the address of the tested operand in
VisitDeconstructInstruction: deconstructing a struct passes the
receiver by reference, which was emitted as an invalid cast,
'var (x, y) = (S)(ref s);', even without nesting.
Fixes#3388.
Assisted-by: Claude:claude-fable-5:Claude Code
Widening the compiler matrix answers the open review question on the
Issue3230 fixture guard empirically: a class naming its own nested
interface in its base list is a Roslyn-era relaxation. The legacy csc
rejects every such shape with CS0146 (circular base class dependency,
it never reaches the accessibility check), mcs 2.6.4 rejects them with
CS0122/CS0146, and mcs 5.23 accepts them all, rejects naming a base
class's protected nested interface with the same CS0122 as Roslyn, and
emits the same transitive InterfaceImpl metadata. The fixtures are
therefore gated to ROSLYN || MCS5, which exercises the base-list filter
on mcs-generated metadata as well. The pre-existing class C needs
MCS2-specific expected output because mcs 2.6.4 reorders interface-impl
rows and explicit implementations in metadata.
Assisted-by: Claude:claude-fable-5:Claude Code
A class may name its own protected nested interface in its base list
(class F : F.IFoo), but referencing a protected interface nested in a
base class there (class SubF : F, F.IFoo) does not compile, even though
that interface is accessible inside the class body. The interface-impl
metadata still lists such interfaces (they are inherited through other
entries), so emitting every entry produced uncompilable sources. Skip
base types that are neither nested within the current type's nesting
chain nor accessible from the enclosing scope without the
protected-through-inheritance privilege. The check covers every type
the base-list reference names: type arguments, array and tuple
elements, and the declaring chain of the named type.
Assisted-by: Claude:claude-fable-5:Claude Code
The dotnet-hosted Roslyn 2.10 build cannot start its VBCSCompiler server
under a current dotnet host, so with /shared every test compilation first
waited out the client's full 20-second new-server connection timeout
before falling back to a sub-second in-process compile. Since the 2.10
configurations were enabled on non-Windows (#3914), that added ~29
minutes to the Linux CI job and ~43 minutes on macOS: ~340 affected
tests at ~21s each, versus ~0.2s for the toolsets whose server works.
Assisted-by: Claude:claude-fable-5:Claude Code
Review follow-up. A display-class field initialized from a non-this
parameter is now the only shape where propagation and a later mutation
coexist; it stays sound only because ResolveVariableToPropagate accepts
a parameter with LoadCount == 1, so the mutation can be redirected to
it. Nothing covered that, so Test12 pins it, and Test13 records the
neighbouring shape where the mutation happens inside a lambda - there
capturing the display class keeps it materialized and propagation never
arises. The guard predicate is renamed to say what it matches, since
'ReadOnly' reads like the C# keyword rather than 'a plain read'.
Assisted-by: Claude:claude-fable-5:Claude Code
A field that is propagated to the variable it was initialized from is
replaced by that variable, so re-emitting its initializer assigns the
variable to itself. Where the field was initialized from 'this' the
result does not even compile ('this = this'). The store is dropped
instead, which is what VisitStObj already does for initializer stores
that are not part of an object-initializer block; the insertion position
has to be tracked separately from the loop index, because skipping a
store would otherwise push the following ones past the end of the block.
Assisted-by: Claude:claude-fable-5:Claude Code
Aggressive scalar replacement propagated a display-class field to its
source variable even when the field is mutated after initialization,
aliasing two distinct source-level variables (Test9: thisField and
this). Propagation is now cancelled when the field sees a second store
or its address escapes, but only for propagation targets that cannot
absorb the store: 'this' and variables that are themselves
scalar-replaced display classes. Parameters continue to propagate,
because their remaining uses are already restricted by
ResolveVariableToPropagate and a captured parameter mutated inside a
lambda (DelegateConstruction's Bug951) must keep mapping to the
parameter. Checking CanPropagate first also keeps the guard away from
Mono state-machine fields, whose VariableToDeclare is pre-bound to a
state-machine variable that Propagate(null) would discard.
Re-enables Test9 and adds Test10 covering the escaping-address variant
(Interlocked.Exchange(ref displayClass.thisField, ...)).
Assisted-by: OpenCode:openai/gpt-5.5:OpenCode
Assisted-by: Claude:claude-fable-5:Claude Code
The .NET 10 BCL ships static [Extension] classes that contain ordinary
nested types (e.g. XDocumentExtensions.XDocumentNavigable). Decompiling
such a nested type's member in isolation resolved the enclosing
container's ExtensionInfo, and DecompileBody then dereferenced the
missing extension-member mapping. A container without any extension
blocks now reports no ExtensionInfo at all, and ResolveExtensionInfo
applies a container's info only to members that actually belong to one
of its extension blocks.
Assisted-by: Claude:claude-fable-5:Claude Code
Each fixture test assembled Documentation/IdStringProbe.il separately,
and ilasm writes its output next to the input: on Windows the second
test failed with a sharing violation (0x80070020) because the first
test's PEFile still had the previous output open. The probe is now
assembled once per test run from a temp copy of the .il, so the tests
share one PEFile and nothing is written into the source tree, which
also makes the per-directory .gitignore unnecessary.
Assisted-by: Claude:claude-fable-5:Claude Code
A bound generic argument list without its closing brace fell off the
end of the string and silently produced an arity, making malformed ID
strings appear to parse and resolve to nothing instead of failing with
the documented ReflectionNameParseException. Also replaces the non-ASCII
punctuation in comments added by this branch with ASCII equivalents,
per the repository convention. Both raised by review on #3926.
Assisted-by: Claude:claude-fable-5:Claude Code
The C#/Roslyn-form ID of a member whose C++/CLI form differs can equal
the only key of a same-named sibling overload (char* vs signed char*).
Assemblies containing such overloads cannot come from the C# compiler,
so their xml files use the C++/CLI dialect, where that key documents
the sibling: falling back to the Roslyn form would show the sibling's
documentation for an undocumented member. GetIdStringCandidates now
omits the Roslyn form when a same-named sibling's C++/CLI form owns it,
so a lookup miss stays a miss.
Assisted-by: Claude:claude-fable-5:Claude Code
The recursive-descent parser for the full ID string grammar existed only
to feed the type-system-based FindEntity, while signatures were already
matched by regenerating candidate IDs; with two dialects a parser would
have to implement both grammars and stay in sync with the generator.
FindEntity now only decodes the structural skeleton - the declaring type
name and the member name - resolves the type, and narrows the members by
metadata name before the generate-and-compare step, falling back to an
unfiltered scan for keys whose name does not equal the metadata name
(a C++/CLI 'default' indexer). ParseTypeName, ParseMemberIdString and
their reference types (IdStringMemberReference,
GetPotentiallyNestedClassTypeReference) are removed.
Assisted-by: Claude:claude-fable-5:Claude Code
Member lookup compares regenerated ID strings, and with two dialects a
single mixed pass can resolve to the wrong member: the stripped
C#/Roslyn form of one member can equal the C++/CLI-dialect key of a
different member, e.g. C++ overloads differing only in a custom
modifier such as char* vs signed char*. FindMemberInType therefore
runs two passes over the whole member list, the more specific C++/CLI
form first, so an MSVC-written cref resolves to the member it names
instead of the first member whose stripped form happens to collide.
Assisted-by: Claude:claude-fable-5:Claude Code
The member keys in an xml doc file depend on the compiler that wrote it
(C# vs the MSVC C++/CLI dialect), so XmlDocumentationProvider's
entity-based lookup now tries each candidate form in order. The tooltip
path goes through the entity overload instead of building the key
itself, so the fallback lives in one place. The C++/CLI form is tried
first: wherever it differs it contains character sequences Roslyn never
writes, so it can only match MSVC-generated keys, while the stripped
Roslyn form of one member could match the key of a different member in
an MSVC-generated file.
Assisted-by: Claude:claude-fable-5:Claude Code
MSVC documents C++/CLI members with ECMA-372-style ID strings that
differ from Roslyn's in signatures: custom modifiers are rendered after
the modified type (a 'const int' parameter becomes
System.Int32!System.Runtime.CompilerServices.IsConst), arity markers
stay on generic instantiations (List`1{System.Int32}.Enumerator), and
the default indexed property is called 'default'. Roslyn ignores
modifiers entirely, so one generated string cannot match both
compilers' xml files: GetIdString keeps producing the C#/Roslyn form,
and the new GetIdStringCandidates additionally yields the C++/CLI form,
most specific first, for lookup code to try in order.
The dialect is pinned by IdStringProbe.il/.xml, the trimmed disassembly
of an MSVC-compiled probe assembly together with the unmodified xml MSVC
generated for it. Notable observed deviations from MSVC's documented
format: modreq is generated, but only modreq(IsVolatile) uses the
documented '|'; modreq(IsByValue) on conversion operator operands is
rendered with '!'.
Assisted-by: Claude:claude-fable-5:Claude Code
Resolve an ID string to a (module, handle) pair by scanning metadata
directly: namespace/type-name splits are tried at every dot (the format
does not mark the boundary), nested types and type forwarders are
walked, and members are matched by regenerating each candidate's ID
string instead of parsing the signature portion, which keeps resolution
in sync with generation by construction. This gives navigation a
resolution path that needs no type system and works on assemblies
exactly as their metadata spells them. Inherent format limitations
(metadata names containing ID string special characters; function
pointer types rendering empty, so such overloads share an ID) are
documented on the method.
Assisted-by: Claude:claude-fable-5:Claude Code
Generate ID strings directly from metadata instead of the type system,
so callers holding only a MetadataFile and an EntityHandle do not need
to materialize a compilation first, and raw metadata names survive
verbatim. GetIdString(IEntity) stays as a thin wrapper over the new
implementation, keeping the published entity-based entry point intact.
The implementation is validated by a differential suite comparing every
symbol of a test corpus against Roslyn's GetDocumentationCommentId.
Corners pinned by those tests: generic arguments distribute to their
nesting level (Outer{A}.Inner{B}), op_CheckedExplicit carries the
~ReturnType suffix like the other conversion operators, and custom
modifiers are ignored like Roslyn ignores them (a virtual method's 'in'
parameter is modreq(InAttribute) but documented as T@). Array shapes
use the spec's lowerbound:size notation, covered by a hand-built
module, since C# cannot express non-default array bounds in signatures.
Assisted-by: Claude:claude-fable-5:Claude Code
Covers ref structs implementing interfaces (implicit, explicit, and
default-interface-method reimplementation, which CS9245 forces on every
ref struct implementer), the allows ref struct anti-constraint on
methods, classes, interfaces, delegates, local functions, iterators,
async methods, and capturing local functions, constraint combinations
(interface, IDisposable with using, unmanaged, struct, new()),
interface members invoked through a constrained T (instance, static
abstract factory, and default interface methods, which are callable
through T because implementers must always override them), scoped/ref/
in/out parameters of T, and call sites instantiating with Span/
ReadOnlySpan type arguments.
The test is green in all four Roslyn 4.14/latest debug/opt configs: the
decompiler already round-trips the gpAcceptByRefLike flag into
"allows ref struct" clauses and re-emits ref struct interface
implementations correctly. One cosmetic quirk is pinned as-is: calls
whose type arguments are ref structs are printed with explicit type
arguments and a declaring-type qualifier even within the declaring
class, because type-argument inference validation does not accept ref
struct type arguments; the output remains compilable and semantically
identical.
Assisted-by: Claude:claude-fable-5:Claude Code
Toggle folding picked the innermost fold containing the offset, but a
member's logical region is fragmented: the body fold starts at the
opening brace, the XML documentation has an independent fold, and the
header line belongs to neither, so toggling there collapsed the whole
enclosing type. Visual Studio's source editor keeps documentation
regions independent, but its metadata-as-source view treats the
member's leading trivia as one hideable unit; for a read-only
decompiler view the grouped behavior is the intuitive one.
The writer now records where an entity declaration begins, and the
definition's fold carries that logical start. Toggling targets the fold
whose logical region innermost-contains the offset, so the header line
targets the member rather than the type, and leading documentation
folds follow the member fold's new state. Inside the documentation the
doc fold itself is the innermost region and still toggles alone.
Toggle all folding now follows Visual Studio's Toggle All Outlining
parity: a mixed state expands everything, a uniform state flips.
Assisted-by: Claude:claude-fable-5:Claude Code
The netcore-2.2 reference set consists of the shared framework's facade
assemblies split across many files, and vbc only binds special types
like System.Void from an assembly that defines them rather than
following type forwards, so without an implicit SDK it needs the same
reference list as the C# side. The VB runtime must come from the legacy
reference set: before .NET Core 3.0 there is no
Microsoft.VisualBasic.Core.dll and the core build of the VB runtime is
a trimmed-down subset (no UBound etc.). Referencing the target
framework's own Microsoft.VisualBasic facade alongside that -vbruntime
choice is a BC32210 identity conflict, so it is dropped from both the
default reference list and the ReferenceVisualBasic flag handling.
All of this applies only where vbc runs without its implicit desktop
SDK path, i.e. off Windows; on Windows vbc.exe keeps the plain
reference list that already worked.
Assisted-by: Claude:claude-fable-5:Claude Code
The Roslyn 1.3.2 and 2.10.0 configurations were excluded from the
compiler matrix on non-Windows platforms because Microsoft.Net.Compilers
only ships .NET Framework executables. Both can be enabled:
- Roslyn 2.10.0 has a dotnet-hosted sibling package,
Microsoft.NETCore.Compilers, whose tools/bincore/csc.dll runs on the
installed runtime with --roll-forward LatestMajor (its runtimeconfig
pins the out-of-support .NET Core 2.0). Fetched on non-Windows into
the version's tools/bincore directory; GetCSharpCompiler probes for a
direct csc.dll next to the installed path in addition to the
bincore/ subfolder layout of the newer toolset packages.
- Roslyn 1.3.2 has no .NET build; when a mono executable is found on
the PATH, it is kept in the matrix and WrapCompiler hosts the .exe
compilers through mono. Because the native DiaSymReader needed for
Windows PDBs is unavailable there, GeneratePdb requests portable
PDBs on non-Windows (Roslyn 2.x+ falls back on its own, 1.x needs
the explicit -debug:portable).
The mcs configurations stay excluded: the bundled mcs 2.6.4 needs the
Reflection.Emit COMPILER_ACCESS mode that current Mono runtimes no
longer implement. Old-compiler configurations also stay excluded from
correctness-style fixtures: their output targets .NET Framework or
.NET Core 2.2, which the runners cannot execute here.
Microsoft.NETCore.Compilers-2.10.0.nupkg should be added to
ILSpy-tests/nuget to keep the fetch offline-capable.
Assisted-by: Claude:claude-fable-5:Claude Code
The chain cases in the fixture route T : TOuter through a class-level
type parameter; the variant where the dependency target is a sibling
method type parameter (M<T, U> with T : U) was uncovered. It pins the
same alignment from a different angle: csc rejects 'class' with CS8665
when U is merely class-constrained and requires 'default', but accepts
'class' when U carries a class-type constraint, matching what the
tri-state IsReferenceType derives. Both directions were verified
against csc before adding the expected output.
Assisted-by: Claude:claude-fable-5:Claude Code
Corrupt or hand-written metadata can contain a property with no
MethodSemantics rows at all. MetadataTypeDefinition.Properties already
skips properties with neither a visible getter nor setter, so neither
the parameterized-property path nor the ordinary one ever sees them;
the accessor-method emission also tolerates a missing accessor by
construction. Pin that with an ILPretty case containing both a
parameterized and an ordinary accessor-less property.
Assisted-by: Claude:claude-fable-5:Claude Code