A boolean cut whose tool misses the target is a perfectly legal
operation: OCCT reports IsDone(), the shape comes back unchanged, and the
feature lands in the recipe reporting ok:true. Driving the MCP socket,
that produced two consecutive {ok: true, bodies: 1, error: ''} responses
for a hole that was never drilled -- same viewport, same 46939.11 mm3 --
and the tree grew two Hole features that will never cut anything. A
caller, an agent especially, has no signal at all that the thing it asked
for did not happen.
Measure the volume across the op in route_feature's in-place branch and
refuse the no-op. Only for removals: Hole, Thread, and Extrude / Revolve
/ Sweep / Loft in Cut mode. Everything else may legitimately leave the
volume alone -- a Transform certainly does. The tolerance is relative,
because an absolute epsilon is wrong across the mm-to-metre range of real
parts, and a cut that shaves a numerically invisible sliver is a miss
too. The existing rollback in the MCP actions already preserves the
reason, so a missed hole now answers ok:false with the error and undoes
the feature.
The confusion underneath was not itself a bug: hole's x/y are in the
sketch plane's frame, whose origin is describe_scene's modeling_origin,
and describe_tools documented them only as "number, unit mm". Passing the
world centre put the hole 135 mm clear of the solid. All six x/y params
on hole / hole_styled / hole_standard now say which frame they are in,
since the wrong guess was silent.
Regression test drives the reported failure directly: a hole at x=135 on
a 20x20x20 box is rejected and leaves the body untouched, the same hole
at the origin still removes exactly pi*4^2*20, and a cut-mode extrude
whose profile sits at x=200 is rejected too. 152 cases / 2083 assertions
green on both forks.
snaporca-daf.
Like the BBL tower: the layer's sparse infill, wall, and brim go to the
first toolchange to a non-support/non-soluble filament, or are printed
with the incoming filament before any toolchange. The minimal-purge
clamp now also covers toolchanges that get no finish-layer saving.
Output is unchanged when no support/soluble filament is used.
All 17 single-letter sketch shortcuts were dead. The dispatch gate was
circular: the sketch key map was consulted only when
m_viewport->is_sketching() was already true, but is_sketching() is a
whole-session flag whose only riser is begin_sketch(), called from
select_tool() -- which is precisely what every sketch key closure calls.
So the first letter after entering sketch mode fell through to the
feature map, where the keys are Shift+letter, matched nothing, and did
nothing. The mouse worked only because the toolbar flyout row reaches
select_tool() directly, bypassing the gate.
Which key MAP applies is a question about the mode. Split the flag:
'sketching' (live session) still drives undo/redo, Delete and the
section-view branch, where a session genuinely has to exist; a new
'sketch_mode' (m_ui_mode == UiMode::Sketch alone) drives the map choice.
Verified headless end to end, keyboard only: Shift+S, then R draws a
143.4 x 133.7 rectangle on XY reporting 4 degrees of freedom, then F and
L arm Fillet and Line (artifacts/shots/0udb-01..03). Note the toolbar
strip does NOT change when a tool is armed by keyboard -- the family
buttons are flyouts and only show their own pressed state -- so the
pixel diff on that strip, which is how this was originally measured,
reads 0 for a tool that is live. The status line is the surface that
actually reflects the armed tool.
Also fixed, from snaporca-d9i's list: the plane-pick status line said
"press Sketch to draw on it", naming a button that exists only in
Feature mode. It is now mode-aware.
Adds a SNAPORCA_KEYTRACE=1 trace in the CHAR_HOOK printing key, ui mode,
is_sketching, in_text and the focused window's class. It is what
separated "the fix does not work" from "the surface being measured never
moves", and it costs a full GUI build to re-add, so it stays.
snaporca-0ud, partial snaporca-d9i.
Two P0s in the same gesture. Filleting a corner of a parametric rectangle
produced either nothing at all or a sharp corner with a stray arc floating
above it.
Trigger (snaporca-cq2): the only routes that ever reached confirm_op were
finishing the whole sketch and an unsignposted click on empty space.
set_tool() dropped a ready op, so typing a radius or dragging the arrow and
then touching any other tool threw the value away. Commit a ready op on tool
change (before m_mode is reassigned — op_ready() and confirm_op() both switch
on it), commit on Enter in the radius editor, and drop the pending op before
Esc's tool downgrade so Esc still cancels rather than applies.
Substitution (snaporca-pl5): libslvs writes its last Newton iterate into the
params whether or not it converged, and SketchSolver read them back
unconditionally, so every REJECTED solve deformed the sketch. The fillet
ladder tries a deliberately over-constrained rung first (a tangent on each
leg, against the legs' own H/V); it is correctly rejected, but its wreckage
then failed rungs 2 and 3, which solve cleanly on their own. The arc ended up
with no constraints at all, the rigid loop won, and the corner snapped shut.
Measured: from pristine geometry rung 1 gives result=INCONSISTENT with 3 bad
constraints, rung 2 gives dof=6 with the arc's radius intact.
Read the geometry back only on success. try_add_constraints then needs no
"restore" re-solve — the entities still hold the prior solved state.
Kernel suite 151 cases / 2072 assertions green on both forks; the GUI check
ran on the Snapmaker fork (9d72c4377a).
Ported from the Snapmaker fork. snaporca-pl5 snaporca-cq2
The card decides between a single picked edge and a whole face-group from a
viewport pick it never mentioned. With no edge picked the user saw only the
group combo and concluded per-edge rounding did not exist; with an edge picked
the combo still read "All" — the opposite of what Confirm would do.
Adds a Target row that names the actual target and greys the group combo out
while an edge is picked, wired at the same three points Shell already uses:
the selection-changed handler, the re-edit load, and open_tool.
Ported from the Snapmaker fork (33771a0e95). snaporca-40d
estimate_wipe_tower_polygon reserved the arrange footprint and clamped the
tower X position with the raw prime_tower_width, under-reserving space
whenever the rib wall squares the tower to a different width.
The rib tower is now always square (prime_tower_width is ignored, as the
GUI already implies), carries the rib origin offset like the BBL tower so
the rib tips sit inside the configured position, clamps the rib length to
the tower diagonal, and extends the ribs for short towers.
The CAD sources are meant to be byte-identical across the two forks, with exactly
two permitted divergences: DesignPanel.cpp's flyout plumbing (30 lines — mainline's
DropDown is Item-based where the other fork takes three parallel vectors) and
DesignCanvas.cpp's Bed3D::set_shape signature (16 lines). DesignPanel.cpp had drifted
to 105.
Nothing failed to announce this. The kernel suite does not compile the GUI, and all
four defects are interaction-level, so both forks stayed green while only one of them
had the fixes. The parity diff is what found it.
* combo_append_index and its five call sites. Orca's ComboBox keeps client data in
its own vector, so Append()'s clientData argument never reaches wxItemContainer
and m_clientDataItemsType stays wxClientData_None. GetClientData() opens with a
wxCHECK_MSG, which is an early return — so every read came back NULL and every
caller resolved it to index 0, silently, because 0 is a legal answer. Affects the
rib sketch picker, the sheet-body picker, both mate coordinate-system pickers and
the sweep path picker.
* Wrap(240) over the card labels. wxStaticText never wraps itself, so a one-sentence
hint sets its card's minimum width to the width of the whole sentence and every
control in that card is clipped at the sidebar's right edge.
* Shell and Draft face-label initialisation in open_tool. Both read the face from the
live pick at Confirm time, but only the pick handler wrote their labels, so picking
a face and then opening the card left the card describing one operation while
Confirm performed another.
* SurfaceOffset and ThickenSurface added to build_candidate's negative list. Both read
a sheet body from their own combo and both had it overwritten by the picked solid's
index. The list is a negative one, so a tool that picks its own body breaks by
omission — noted in a comment now.
Also drops a stray <cstdio> left behind by a debug probe.
Verified by building the GUI here for the first time since these landed: 461/461,
liblibslic3r_gui.a links. DesignPanel.cpp is back to exactly 30 divergent lines and
every other CAD file is byte-identical again.
snaporca-7xx snaporca-aqu snaporca-gu9 snaporca-c03 snaporca-5pl
The inline editor special-cased Escape and Skip()ped every other key, so Tab fell
through to wx's default navigation. Its popup frame holds exactly one control, so
focus came straight back to that control with its text re-selected.
Type 60, Tab, 40, Enter — expecting to fill two dimensions — and the 60 is gone: Tab
neither committed it nor advanced, so the 40 just replaced the re-selected text. A
re-selected field is pixel-identical to a freshly opened one, so nothing on screen says
a number was dropped. Tab-to-next-dimension is what Onshape, SolidWorks and Fusion do,
which is exactly why it is the key a user reaches for.
Tab now calls do_commit(), the same path Enter takes; the caller's on_commit is already
what walks to the next dimension. Verified by driving the GUI: 37 Tab 24 Enter now
produces a 37.0 x 24.0 rectangle, where before it produced 24 and a mouse-derived value.
snaporca-xah
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01LyRwbuq6fjn3VV9U9UvhBM
A filleted solid arrived on the plate as a broken model: the slicer reported
"8 non-manifold edges" on an 80x50x12 box with r=3 on all edges, and advised
repairing it in another CAD application -- the exact round trip the Design tab
exists to remove. The same box without the fillet committed cleanly.
Measured rather than guessed. Each of the 8 bad edges is degenerate, both
endpoints the same vertex:
open tri=145 edge=1 face=5 v59(3.000000 3.000000 0.000000) v59(3.000000 3.000000 0.000000)
open tri=538 edge=1 face=6 v87(3.000000 3.000000 12.000000) v87(...)
... one per corner, 8 corners
OCCT triangulates a degenerate surface parameterization with a triangle at the
pole; a corner sphere patch has exactly one. Its two pole nodes are distinct in
the per-face triangulation and collapse to a single vertex when the faces are
welded, leaving a zero-area triangle whose v->v edge can never pair with a
neighbour. its_face_neighbors counts it as open, and the field the object panel
prints as "non-manifold edges" is in fact stats.open_edges.
So the geometry was never wrong -- the B-rep volume matches the Steiner formula
for a box dilated by a ball to 0.016%. Only the bookkeeping was.
Dropping those triangles after the weld removes 8 of 3492 and takes open_edges
to 0. Zero area, so nothing about the shape changes. tri_face is compacted in
the same pass, since it must stay index-aligned with the triangle list that the
face picking and per-body colouring both index into.
Guarded by a new [CadDocument] case that asserts open_edges == 0, no degenerate
triangle survives, and both per-triangle maps still match the triangle count.
The existing suite only ever checked B-rep volumes and areas, which is why a
mesh defect this visible went unnoticed: 150 cases / 2049 assertions green on
both forks.
snaporca-agw
OCCT_LIBS is an explicit single-pass static link order — dependents first, TKernel
deliberately last. The CAD block appended its two extra toolkits to the END of that list,
which puts them after everything they depend on:
list(APPEND OCCT_LIBS TKFillet TKOffset)
TKOffset references BRepAlgo_Loop, and nm against the built deps prefix shows TKBool is the
only toolkit that defines it (TKTopAlgo, TKBO, TKPrim, TKFillet and TKOffset all define it
zero times). TKBool sits first in the list, so a single-pass linker has passed it long before
it reaches the appended TKOffset and will not go back:
libTKOffset.a(BRepOffset_MakeLoops.cxx.o): undefined reference to
BRepAlgo_Loop::BRepAlgo_Loop()
Only one configuration ever objected — the Snapmaker fork Flatpak (aarch64). Ordinary Linux,
macOS and Windows links resolve it regardless, and the mainline fork Flatpaks pass, so six
green platform legs said nothing about whether this list was correct.
Prepended via set() rather than list(PREPEND), which needs CMake 3.15 while this project
supports 3.13.
Worth knowing for later: TKFillet and TKOffset are mutually dependent, 20 symbols needed in
each direction, so a stricter single-pass link could still trip on that pair. It does not on
any current platform, so no --start-group or duplicate entry is added here; if something ever
complains about ChFi or BRepFill symbols, that cycle is the reason.
snaporca-2kj
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01LyRwbuq6fjn3VV9U9UvhBM
* Add wxInspector dep
* Initial intergration of wxInspector
* docs: add wxInspector plugins design spec
Design spec for two wxInspector plugins (DPIAware + CustomWidgets) that expose
OrcaSlicer's custom control properties in the inspector property grid.
Covers: DPIAware scale-factor properties, Button, CheckBox, TextInput,
SwitchButton, ProgressBar, Label, and LabeledStaticBox.
* docs: add wxInspector plugins implementation plan
6-task plan covering: source changes to existing widget headers,
DPIAwarePlugin, CustomWidgetsPlugin, registration helper,
MainFrame/CMake wiring, and build verification.
* feat: add getters/setters for wxInspector plugin access
Add minimal public accessors to DPIAware (set_scale_factor,
set_prev_scale_factor, set_em_unit, force_rescale), Button
(GetStyle, GetType, IsSelected), CheckBox (IsHalfChecked),
TextInput (GetCornerRadius), and LabeledStaticBox
(GetCornerRadius, GetBorderWidth, GetBorderColor, GetScale).
* feat: add wxInspector plugin registration helper
Add RegisterOrcaInspectorPlugins() inline function that creates
and registers the DPIAwarePlugin and CustomWidgetsPlugin as
static instances (matching wxInspector's built-in pattern).
* feat: add DPIAware wxInspector plugin
Exposes DPI scaling properties (scale_factor, prev_scale_factor,
em_unit, normal_font, force_rescale) on DPIFrame and DPIDialog
widgets. Uses dynamic_cast for detection and a template helper
to capture the correct static type for lambda accessors.
* feat: add OrcaCustomWidgets wxInspector plugin
Exposes Orca-specific properties on 7 widget types:
- Button: Style, Type, Selected
- CheckBox: Half Checked
- TextInput: Label, Text Value, Corner Radius
- SwitchButton: Value
- ProgressBar: Proportion, Show Number
- Label: Is Hyperlink, Font Point Size
- LabeledStaticBox: Corner Radius, Border Width, Border Color, Scale
Each widget type uses dynamic_cast for safe detection.
* feat: wire wxInspector plugins into MainFrame and build
Call RegisterOrcaInspectorPlugins() in MainFrame constructor after
SetupInspectorAccelerator(). Add all 5 plugin source files to
SLIC3R_GUI_SOURCES in CMakeLists.txt.
* fix: move plugin registration to GUI_App::on_init_inner
Register plugins once in app init rather than in MainFrame
constructor, which may be recreated during the application
lifetime.
* fix: include plugin headers in Registration.hpp for complete types
Static locals require complete type. Include DPIAwarePlugin.hpp and
CustomWidgetsPlugin.hpp instead of forward-declaring. Also remove
unused include from MainFrame.cpp (registration moved to GUI_App).
* fix: qualify DPIFrame/DPIDialog with Slic3r::GUI namespace
* Make DPIDialog inspectable. For other dialogs, we will add them if necessary later.
* docs: add spec for moving wxInspectable into DPIAware template
Move wxInspector::wxInspectable base class from DPIDialog and MainFrame
into the common DPIAware<P> template, making all DPIAware widgets
automatically visible in the inspector tree.
Co-Authored-By: Claude <noreply@anthropic.com>
* docs: add implementation plan for moving wxInspectable into DPIAware
Co-Authored-By: Claude <noreply@anthropic.com>
* docs: update spec/plan — move SetupInspectorAccelerator into DPIAware too
Co-Authored-By: Claude <noreply@anthropic.com>
* refactor: move wxInspectable and SetupInspectorAccelerator into DPIAware
DPIAware<P> now inherits wxInspector::wxInspectable and calls
SetupInspectorAccelerator in its constructor, making all DPIAware
widgets automatically appear in the inspector tree with the
Ctrl+Shift+I shortcut. DPIDialog now uses 'using' to inherit the
constructor. Remove redundant wxInspectable inheritance and
SetupInspectorAccelerator calls from DPIDialog and MainFrame.
Co-Authored-By: Claude <noreply@anthropic.com>
* fix: use LB_HYPERLINK constant instead of magic number 0x0020
Co-Authored-By: Claude <noreply@anthropic.com>
* Clean up
* Fix Linux build
* Don't build wxInspector sample
* Use shallow clone
* Try fix flatpak build
* Attempt to fix build again
* Fix build failure caused by https://github.com/wxWidgets/wxWidgets/commit/436c16135ec7ddf580f44624bf74c592aae43b66
* wxWidgets build only download required submodules
* This should fix build on Windows on ARM
* Enable PIC
* Disable layout inspector by default for public release
* Use wxInspector 1.0.0 release
---------
Co-authored-by: Claude <noreply@anthropic.com>
The header forward-declares a long list of wx types and omitted wxBoxSizer, wxTextCtrl and
wxListCtrl. All three are used as pointer members only (m_expr_text, m_var_list,
m_parts_hdr, m_hdr_tree_row), so a forward declaration is all they need — but there was
none. Every ordinary build compiled anyway because the wx/panel.h + wx/scrolwin.h chain
happens to pull the real headers in transitively.
The Snapmaker fork Flatpak build (aarch64) has a wx that does not, and it failed outright:
DesignPanel.hpp:511: error: 'wxTextCtrl' does not name a type; did you mean 'wxTreeCtrl'?
DesignPanel.hpp:521: error: 'wxListCtrl' does not name a type; did you mean 'wxFileCtrl'?
DesignPanel.hpp:663: error: 'wxBoxSizer' does not name a type; did you mean 'wxSizer'?
plus a cascade of "m_var_list / m_expr_text / m_parts_hdr was not declared in this scope".
Not an environment quirk: the header was simply not self-contained, which is exactly what
breaks a reviewer building in an unfamiliar configuration. The mainline fork Flatpaks passed
on both arches, so only that one manifest exposed it.
Audited the rest of the header afterwards: every other wx pointer type is either
forward-declared or genuinely included — only wxScrolledWindow and wxWindow are undeclared,
and both come from the real wx/scrolwin.h include.
snaporca-4dn
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01LyRwbuq6fjn3VV9U9UvhBM
store_bbs_3mf reaches Model::get_backup_path(), which builds
temporary_dir() + "/orcaslicer_model/" + timestamp. temporary_dir() returns a file-static
that ONLY OrcaSlicer.cpp's startup sets, so in a test binary it is the empty string and the
backup path becomes "/orcaslicer_model/..." — absolute, at the filesystem root. An
unprivileged process cannot create that, so the save returned false and the scenario died
on REQUIRE(store_bbs_3mf(sp)).
This was the SINGLE failure in this fork's Unit Tests — 1 of 566, on Linux x86_64, Linux
aarch64 and macOS arm64 — from CI run 30191490709:
Failed to create backup path "/orcaslicer_model/Sun_Jul_26/08_49_41#5398#1":
boost::filesystem::create_directories: Permission denied [system:13]
It hid because that job had never run to completion on this branch before: every earlier
run was cancelled by the concurrency group first. It also passed on Windows x64, where the
drive-root path is writable, and it passes in the local build container, which runs as root.
Verified against the same defect in the Snapmaker fork by running the built binary as
uid 1000: permission denied before, 4 assertions passing after.
snaporca-vg8
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01LyRwbuq6fjn3VV9U9UvhBM
snaporca-tkz, the last quarantined test. Root cause read out of the vendored
source rather than guessed: slvs/constrainteq.cpp, Type::ARC_LINE_TANGENT does
ExprVector ap = SK.GetEntity(arc->point[other ? 2 : 1])->PointGetExprs();
so it dereferences the ARC'S ENDPOINTS. A full circle entity carries only
point[0], its centre. point[1] and point[2] are zero handles, FindById throws
"Cannot find handle", and the process ABORTS rather than failing the solve —
taking every later test in the binary with it. That is also the wrong equation
for a circle regardless: it only makes the line perpendicular to the radius at
an endpoint that does not exist.
CT::Tangent no longer hands a full circle to that constraint. For a circle it
emits PT_LINE_DISTANCE(centre, line) = radius, which is precisely what tangency
to a circle means. Arcs keep the ARC_LINE_TANGENT path they are built for.
One limitation, stated rather than buried: the slvs C API takes a constant
distance and offers no way to reference the circle's radius parameter, so the
radius is captured when the constraint is emitted. That is exact whenever the
radius is fixed or is simply not driven by another constraint in the same
solve, and re-solving restores tangency if something else moves it. Tying them
would need an auxiliary point constrained onto both the circle and the line.
With this and eeca6794e7, both quarantined tests are gone and the exclusion in
kernel-test.sh goes with them. A green run now means the whole CAD suite
passed, not "everything except the two we gave up on":
149 cases / 2043 assertions, no filters.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Follow-through from eeca6794e7. The header claimed two pre-existing failures
are excluded and named both; the internal-thread case now runs like any other,
so only the solver SIGABRT is left. A comment that lists a test which is no
longer excluded sends the next reader looking for something that is not there.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
snaporca-kzy was filed as "internal thread cuts too little material". It does
not. Measured on the test's own fixture, a 40x40x20 box:
plain Ø12 bore removes 2261 mm3
internal thread removes 2157 = 1571 (minor bore) + 586 (groove)
apply_thread bores at the MINOR radius (radius - depth = 5) and then carves the
groove out to radius + depth = 7. A tapped hole therefore keeps the crests
between turns and holds MORE material than a plain clearance hole at the
nominal radius — which is what every real tapped hole does. The test asserted
the opposite, so it was asking for something physically wrong and had been
quarantined for it since it was written.
One hypothesis discarded on the way: that the shortfall was a tessellation
artefact, since chords on a helical surface undercut a concave bore. Exact
BRepGProp::VolumeProperties agreed with the tessellated volume to within
2.5 mm3, so that was not it and is not offered as a hedge.
The reference is now the tap-drill bore the thread actually starts from (Ø10),
against which the groove's 586 mm3 is the meaningful quantity — that is what
"the thread cuts" means. Test re-tagged [CadDocument][thread], so CI covers the
thread path again instead of skipping it.
Also documented the (void)internal in make_thread_profile. It reads like a bug
and is not: the V is the same shape either way and the caller decides, fusing
it onto a shaft or cutting it out of a wall. Someone "fixing" it to point
inward for the internal case would make the groove sweep already-empty bore
space and cut nothing — the exact failure the old comment described.
Suite 148 cases / 2035 assertions, with this test now among them.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Found by sweeping the index-space defect class deliberately rather than by
hitting it: that class produced 4 of the 8 defects found by hand yesterday, so
it was worth auditing every combo in the panel that maps a row selection onto
a document index.
Most of it came back clean — the loft sidecar vectors are consistent at all
four read sites, the sheet-body pickers go through the helper everywhere, mate
connectors carry client data. Six did not. A stored target_body indexes the
body list AS IT WAS just before that feature ran during replay, but Transform,
Mirror, Thicken, Rib, Project and DeleteFace all populated their combo from
the live m_doc.bodies. Boolean and Cut already replayed to the right slot.
The failure is concrete: model a body, Thicken it, then Cut something later in
the tree. A Cut replaces one body with two, so every index at or after it
shifts. Reopen the Thicken and the combo lists the post-cut bodies while
selecting the pre-cut index — showing, and on confirm re-targeting, a
different body than the feature actually used. A Boolean that consumes its
tool body shifts them the other way for the same result.
fill_body_choice() does the truncated replay populate_body_choices() already
did, for the single-combo tools. Six call sites, and 60 lines of duplicated
population loops go with them.
Visible change when testing: re-editing an early feature now lists FEWER
bodies, because it lists only those that existed then. That is correct — you
cannot target a body that did not exist yet — and it is what Boolean and Cut
have always done.
The new kernel test pins the invariant the GUI now leans on: a Cut turns one
body into two, and replaying to just before it yields the earlier, shorter
list. If body ordering after a split ever changes, that assumption fails
loudly here instead of silently in a dialog.
NOT click-tested — GUI wiring, compile-verified only. Filed as snaporca-oz7
and added to snaporca-cfi.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
on_edit_feature had two types falling into default: with "This feature type
can't be edited yet". Boolean was already handled, so the follow-up note was
stale on that point; the real gap was Cut and Import.
Cut now re-edits like any other feature: plane, offset and target body are
restored and the generic replace_feature path commits the change. The body
list is rebuilt with populate_body_choices(m_edit_index) for the same reason
Boolean does it — a Cut splits one body into two, so the live body list no
longer matches the one this feature's target index was recorded against.
Replaying to just before the feature makes the stored index land on the right
entry.
Import deliberately gets no dialog. An imported solid has no parameters to
re-edit: its geometry is rigid data read from a file, not something rebuilt
from numbers, and moving it is what the Transform feature already does.
Building an "edit" for it would duplicate Transform behind a second name. So
it now says that instead — the previous message implied a dialog was coming
that should not.
Imported 2D Text/SVG art is a different thing and stays re-editable; it
arrives as a Sketch feature carrying imported_regions and is handled above.
The default: arm is kept as a guard so a feature type added later announces
itself rather than silently swallowing the click.
NOT click-tested — GUI wiring, compile-verified only. Added to snaporca-cfi.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
The Shellcheck workflow has failed on every push and every scheduled run since
2026-07-24, on exactly one finding: SC2029 in scripts/kernel-test.sh, the file
the CAD branch added. So the CAD work is what turned that job red, and a PR
arriving with a red job is a bad way to open a conversation with a maintainer.
Client-side expansion of $REMOTE is the intended behaviour — it is derived from
$VOL locally and the remote has no such variable, exactly as the rsync
destination two lines down relies on. So this is a disable with a reason, not a
silencing: the note says why the warning does not apply.
Verified by running the workflow's own command over all 24 matched scripts:
exit 0, no findings.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
docs/design_tab_upstream_portability.md explains the subsystem to a
maintainer; nothing explained it to a user. This is that: what the tab is,
how to get a first solid out of it, every tool grouped the way the toolbar
groups them, and the keyboard shortcuts read out of the source rather than
remembered.
The limitations section is deliberate. Rib needing a sketch with an explicit
open line, Surface Loft and Surface Fill having no hands-on verification, mates
composing transforms instead of solving simultaneously, move-face and
replace-face being absent, and the two quarantined kernel tests are all things
a user would otherwise discover by hitting them.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Maintainers will ask what the Design tab costs before they will look at the
diff, so measure it rather than assert it.
The headline correction: the OCCT delta is THREE toolkits, not two. The
comment in deps/OCCT/OCCT.cmake claimed "TKFillet + TKOffset (3.77 MiB,
Windows only)". Walking OCCT's own adm/MODULES and each toolkit's EXTERNLIB
shows ModelingAlgorithms holds twelve toolkits, that eight of them are built
either way because DataExchange (the STEP path upstream already ships) depends
on them, and that the true delta is TKFeat, TKFillet, TKOffset and TKXMesh —
of which TKXMesh is never produced. So three archives are built: 7.40, 5.38
and 4.42 MiB.
TKFeat is the interesting one. Nothing in the Design tab references it and it
is absent from the TKFillet/TKOffset dependency closure, so it is built for
nothing — OCCT's module flag is all-or-nothing per module. On static-link
platforms that is build time and zero shipped bytes.
Two numbers are deliberately absent, marked as absent, and not approximated:
the Windows DLL delta needs a Windows build (snaporca-gix), and a clean-build
time delta needs the deps prefix built twice on one machine. The old 3.77 MiB
figure is withdrawn rather than reused — it covered two of the three toolkits.
Also recorded: the vendored solver is 9,339 lines under GPLv3 with its LICENSE
preserved, which combines into this AGPLv3 fork without difficulty (AGPLv3
§13), and it is live code driving every sketch constraint — not a carried
corpse.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
DesignPanel.cpp was never listed in localization/i18n/list.txt, and xgettext
extracts only what that file names. All 934 of the Design tab's _L() calls
were therefore invisible to every translator in every language — not merely
untranslated, unextractable. Adding the one line is the actual fix; the rest
follows from it.
Regenerating the .pot brings the catalogue from 6007 to 6536 msgids. 549 of
the new ones are now translated into Italian: 5230 to 5779 translated
messages. Verified no existing work was destroyed — every msgid that survived
into the new .pot kept its translation, and the 36 that lost one are genuinely
gone from the sources. msgfmt --check-format passes, which matters here
because a large share of these carry %d / %s / %zu.
CAD terms follow Italian CAD convention rather than literal glosses: Fillet ->
Raccordo, Chamfer -> Smusso, Draft -> Sformo, Rib -> Nervatura, Mate ->
Accoppiamento, Shell -> Svuotamento, Pattern -> Serie, Sheet body -> Corpo
superficie. Strings identical in both languages are deliberately left
untranslated so gettext falls back to the msgid.
The long mixed-filament / Local-Z dithering tooltips are left untranslated on
purpose: slicer internals, outside a Design i18n task, and untranslated before
this commit too.
One string changed rather than translated. The Coord Sys hint read "Without an
edge the frame's rotation about its normal follows world X, not the body" —
that described the defect fixed in 1726e93760, so it was a lie as of that
commit. It now says X comes from the face's first edge.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
datum_frame took a FaceAndDirection frame's Z from the face normal, which
follows the body, but its X from coordsys_x_hint, a world constant, whenever
no explicit edge reference was set. Spinning a body about its own face normal
therefore left the frame bit-identical: the connector could not encode that
rotation at all, so Fastened and Slider mates claimed to fix an orientation
the frame could not see.
X now comes from the face's own first usable edge, which rotates with the
body. The hint survives only as a last resort, for faces that offer no
in-plane direction — a full circular edge has coincident endpoints, and a
seam projects to nothing in-plane.
The new test spins a box 90 degrees about its top-face normal and asserts the
frame's X turned with it. Reverting just the X_tent derivation and rerunning
makes it fail with "1.0 is within 0.000001 of 0.0" — cos(angle) between the
before and after X is exactly 1, i.e. the frame did not move — and that is the
only failure in 2019 assertions, so the test discriminates this defect and
nothing else.
Note for anyone replaying an older document: a face-only connector's frame
can now differ from what that recipe produced before, so a mate built on one
may place its body differently. Nothing in the suite or the golden v3 fixture
changed, but the semantics did.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
This fork's Unit Tests job failed on every single commit, because CI runs the
whole ctest suite including the two cases tagged [known-broken] that
scripts/kernel-test.sh has always excluded locally. A job that is red
unconditionally is worse than no job: it trains everyone to ignore it, so the
next genuine regression arrives invisible.
No workflow change was needed. scripts/run_unit_tests.sh already passes
-LE NotWorking, and tests/CMakeLists.txt registers Catch2 tags as ctest labels
via catch_discover_tests(ADD_TAGS_AS_LABELS) — so the exclusion upstream
already ships works as soon as the cases carry the tag. Verified against the
built test tree: 337 tests unfiltered, 335 with -LE NotWorking, i.e. exactly
these two dropped and nothing else.
The second cause recorded in the issue, the test-reporter step failing with
"Resource not accessible by integration: 403" on a fork, is already fixed
upstream: the Publish Test Results step now carries continue-on-error: true.
The comment these cases carried claimed CI kept the bugs visible by reporting
them forever. That is now false and was never a good mechanism anyway, so
visibility moves to the tracker: snaporca-tkz for the solver SIGABRT, and
snaporca-kzy, filed now, for the thread groove volume. Neither is fixed;
neither is forgotten.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Rib guarded with `sk.type != CadFeatureType::Sketch`, while every other
sketch consumer — Extrude, SurfaceExtrude, SurfaceRevolve, the loft paths —
tests `!= Sketch && != Project`. A Project feature carries a plane and Line
entities, which is all a rib reads, so the guard blocked "project a body
edge, then rib along it" for no stated reason.
The picker in the Design tab offered Sketch features only, so it is widened
to match: a kernel that accepts Project refs and a GUI that never lists them
would have left the path unreachable anyway.
Worth recording for whoever hits this next: Rib also needs a sketch carrying
EXPLICIT entities. A parametric Rectangle sketch (add_sketch with
width/height) has an empty entities vector — build_sketch_wire synthesises
its profile on demand — so rib_entity 0 is out of range there and it fails
with "rib: bad entity". That is why Rib could not be driven headlessly at
all before this change; a Project feature is now the one programmatic way to
produce a ribbable line.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Two defects found while driving the tools that Phase B wired but nobody had
exercised yet.
apply_project had no all-edges branch: with no face picked and no explicit
edge list it threw "no edges or face selected". That is precisely the state
the Project card opens in, and its label reads "(all edges)" — so the card's
default could never be confirmed. It now projects every edge of the source
body. Edges perpendicular to the target plane collapse to a point when
projected, so segments whose endpoints coincide are dropped instead of being
emitted as zero-length lines that would poison the sketch downstream.
The second defect is why the first one was invisible. 29 of the 31 rollback
sites in McpControl ran `if (!ok) doc.undo();`, and undo() recomputes the
restored feature list — which succeeds and clears doc.error. Every failing
command therefore reported `error: ""`. Yesterday's fix covered 2 sites and I
treated the file as done; it was not. All 31 now capture the reason before
the rollback and restore it after. Failures that read as `""` now read as
"rib: bad entity" / "surface-revolve: revolve failed".
Verified on the running GUI through the control socket: the Project call that
previously returned ok:false now returns ok:true, and failures carry a reason.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Six of the surface entries, both Thicken variants, Rib, Axis, Coord Sys,
Mate and Delete Face all reused a sibling's glyph, so a drawer opened as a
column of identical faces and the card that opened rarely matched the entry
clicked. Fixed both halves: entry icons are now unique within their drawer,
and each card header uses the icon of the entry that opens it.
Two new glyphs, design_thicken and design_rib, are the only ones added —
everywhere else an existing icon already carried the right meaning
(design_revolve, design_offset, design_line, design_point,
design_c_coincident, design_delete).
The Surface drawer BUTTON deliberately keeps design_surface; only its
entries may reuse the solid glyphs, because a menu row carries its own
text label while two adjacent toolbar buttons do not.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
refresh_preview() exempted only Sketch and Plane from the ghost-preview path.
Axis, CoordSys, Helix and Project produce no solid either, so they fell through
to it, found nothing, and reported "invalid: preview produced no geometry" —
which also DISABLED Confirm, so all four tools were unusable rather than merely
noisy. Guaranteed on an empty document; with a body present the ghost path
finds something and masks it, which is why it survived until the tools were
tried on a fresh project.
All six non-solid tools are now exempt, each with its own ready message. The
list is not a guess: recompute() skips Sketch, Helix, Plane, Axis and CoordSys
outright and routes Project through apply_project(), which emits sketch entities
and no solid — so the panel and the kernel now agree on exactly what is not a
solid. Mate already had its own branch, since it needs Confirm gated on having
two distinct CoordSys features.
Introduced when Axis/CoordSys (batch 1) and Helix/Project (batch 3) were wired
without extending this exemption. Confirmed fixed on hardware: Axis ->
Plane Intersection with XY and XZ now resolves on an empty document, which also
exercises 60b04feea1.
Compiles clean; kernel untouched, suite unaffected at 143 cases / 1980
assertions.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
axis_plane_a/b are filled by the GUI from populate_plane_choices(), whose rows
are XY / XZ / YZ followed by the datum planes, and the row is stored verbatim.
The kernel's base_plane() indexed datum_planes[ref] directly, so the two spaces
were off by three: picking XY resolved to datum plane 0, and picking the first
datum ran past the end and failed with "plane ref not found". The
PlaneIntersection axis type could not work from the GUI at all.
base_plane() now uses the encoding CadFeature::plane_base already uses — 0/1/2
are the base planes through the modeling origin, >=3 indexes datum_planes[ref-3]
— so there is one convention for plane references instead of two. That also
makes two base planes usable, which the previous code rejected as out of scope
even though XY x XZ is an ordinary way to define the X axis.
Removed the dead find_plane lambda directly above it. It was never called and
half-anticipated this exact offset ("if (ref >= 3) // base plane offset"),
which is presumably where the confusion started.
Tests: the existing parallel-planes case encoded the OLD convention, passing
axis_plane_a = 0 to mean "datum 0" — values the GUI cannot produce — so it is
re-based onto rows 3 and 4. Two new cases cover what the GUI actually emits:
base x base (XY x XZ -> X) and base x datum, the latter pinning the +3 offset.
Both verified to FAIL against the previous indexing, at test_caddocument.cpp
:2325 and :2346.
Found by auditing the remaining tools for the index-space defect class that had
already produced three bugs in the GUI; this is the first instance of it
crossing the GUI/kernel boundary.
Suite 143 cases / 1980 assertions (was 141/1972). GUI compiles clean.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
The Surface drawer used design_extrude, the same face as the Add-material
drawer, so the two buttons were indistinguishable in the feature bar.
design_surface.svg is a draped patch — deliberately unlike design_plane (a flat
parallelogram) and design_extrude (a box with an up-arrow) — with a faint
interior rule so it reads as a skin rather than a solid face. Same visual
language as the other 71: 24x24, no fill, #b6b6b6, stroke-width 0.85, round
caps and joins.
The five surface ENTRIES that also used design_extrude now use it too. That is
not cosmetic tidying: a flyout button's face follows the last-picked entry
(SetBitmap_(icon_names[i])), so changing only the drawer's default icon would
have been undone the moment the user picked anything. Surface Loft keeps
design_loft, which already suits it.
The six rows still share one glyph between them, so they are told apart by
label alone inside the flyout. Per-entry icons belong with snaporca-vrg
(Draft/Shell reusing design_dressup), not here.
Compiles clean; kernel untouched. Icon confirmed legible on hardware.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
checkpoint() snapshotted `features` and undo() restored `features`, but
`variables` is a separate member of CadDocument. Every caller of the documented
checkpoint -> mutate -> recompute -> undo-on-failure pattern therefore failed to
roll a variable back: the bad value stayed in the document and every later
recompute failed, which is exactly the corruption the pattern exists to prevent.
Feature `expr` bindings were unaffected only because expr lives inside
CadFeature and rode along in the features snapshot — which is why the feature
side appeared to work.
This was a kernel gap, not a GUI one: McpControl::action_set_variable has the
same sequence and was equally broken.
The undo/redo stacks now hold a {features, variables} Snapshot. Nothing here is
serialized, so no recipe version change and no golden-fixture regeneration.
Two tests, both verified to FAIL against a faithful reproduction of the bug
(undo() leaving `variables` untouched) at test_caddocument.cpp:4420 and :4441:
one covers restoring a variable's previous value, the other covers removing a
variable that did not exist before the checkpoint. Worth recording that the
first mutation attempt was NOT faithful — it dropped the restore but kept
std::move(variables) into the redo stack, which empties the map as a side effect
and made the second test pass for the wrong reason. A mutation has to reproduce
the original defect, not merely break the code.
Second defect, same area: undo() calls recompute(), which succeeds and clears
doc.error, so the reason an edit was rejected was destroyed before anything
could display it. Six sites — four in DesignPanel, two in McpControl — now carry
the message across the rollback. on_remove_variable additionally asserted
"referenced by a feature expression" as fact; it now offers that as the likely
cause and appends the real error, since that diagnosis is wrong for any other
failure.
Suite 141 cases / 1972 assertions (was 139/1960). GUI compiles clean.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
The sheet-only pickers filtered correctly and then threw the filtering away. Their
rows are the SHEET bodies, but GetSelection() was passed straight through as an
index into m_doc.bodies. With a solid at 0 and a sheet at 1 — the normal order,
since you extrude a solid before making a surface — the single row is row 0 but
body 1, so Surface Offset and Thicken Surface targeted the SOLID. The kernel then
refused with "target is not a sheet", which reads as a kernel bug rather than a
picker bug, and the row's own label ("Body 2") disagreed with what was targeted.
Four sites per tool were wrong, including the re-edit path, which compared a body
index against the sheet-only row count and so restored the wrong row.
populate_sheet_body_choices() now carries the real body index in client data, and
two helpers make the row/body distinction hard to get wrong again:
sheet_choice_body() reads it back, select_sheet_choice() finds the row holding a
given body. No caller touches GetSelection()/SetSelection() on these pickers.
This is the third instance of the same index-space confusion in this file, after
the 0-based body labels in the interference report and the Rib sketch picker. The
kernel suite cannot catch any of them: the kernel receives whatever index the GUI
computed, and its own tests pass correct ones.
Delete Face was structurally right — its picker uses the all-bodies populate, so
its indices genuinely match, and accumulation appends with a running list. Two
gaps closed: clicking "Add picked face" with nothing picked was a silent no-op,
indistinguishable from a broken button, and the same face could be added twice,
putting a duplicate id into delete_faces that the defeaturing has no reason to
cope with. Re-adding is now a no-op with a message, not an error.
Both confirmed working on hardware. Kernel untouched: 139 cases / 1960 assertions.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Port of snaporca ca25352d74. Hand-applied rather than cherry-picked: unlike the
Phase B commits, which only touched DesignPanel.{cpp,hpp} and transfer verbatim,
this one reaches into GLCanvas3D and DesignCanvas, where the forks genuinely
differ — mainline passes m_show_world_axes to _render_bed where Snapmaker passes
a local show_axes, and the surrounding code sits ~90 lines further down. git am
refused, correctly; the six edits were applied against mainline's own context and
the DesignPanel half came across as a patch.
Bed toggle: a "Bed" checkbox in the document/view row, on by default, in that row
rather than in a card because a view option must stay reachable with no tool open.
It drives GLCanvas3D::m_show_bed (default true, so Prepare and Preview are
untouched) and gates _render_platelist as well as _render_bed — hiding the bed
while leaving its grid and outline floating would read as a rendering fault.
Bound to wxEVT_TOGGLEBUTTON, not wxEVT_CHECKBOX: Orca's CheckBox derives from
wxBitmapToggleButton, so a wxEVT_CHECKBOX handler never fires.
Also gives the Placement drawer its own "placement" toolbar slot. put("place")
already holds the Place-on-Face button, and put() formats slot item 0 as the
control and later items as its chevron, so sharing the slot bottom-aligned the
drawer's button like a chevron.
196/196 targets, 0 compile errors, orca-slicer links (165 MB). The build script
still exits non-zero at the AppImage bundling step on libpython3.12.so.1.0 —
that is snaporca-96t, packaging only, and does not affect the binary.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
The sidebar opened with eight tool cards stacked in it — Transform, Mirror,
Thicken, Rib, Project, Delete Face, Helix and Mate. A card added to the cards
sizer is visible until something hides it, and close_tool()'s hide-all only
runs on a tool SWITCH, so anything missing from the construction-time hide
block is on screen from the moment the tab opens. Those eight were wired into
close_tool() but never added here. All 37 cards are now hidden at startup.
Worth stating because it invalidates a check I ran while diagnosing this: every
card IS hidden somewhere in the file, so grepping for "hidden anywhere" says
nothing. The block that matters is the one in the constructor.
Second, the drawers mixed unrelated operations, and two group tooltips no
longer described their contents — Dress-up listed eight tools spanning three
different kinds of operation, and Add material still claimed to hold only
extrude/revolve/sweep/loft after Thicken and Rib were added to it.
One concept per drawer now:
Add material extrude, revolve, sweep, loft, thicken, rib
-> grows new solid material, whether from a profile, a face or
a line
Surface unchanged; already coherent
Datum / Curve plane, axis, coord sys, helix, PROJECT
-> reference geometry and derived curves. Project consumes a
body but PRODUCES sketch entities, so it is curve creation,
not a finishing operation
Placement TRANSFORM, MIRROR, MATE (new)
-> moves a body without changing its shape; a mate places one
body relative to another
Dress-up fillet/chamfer, draft, shell, delete face
-> finishing on the faces and edges of an existing solid
Hole / thread unchanged
The new drawer costs no toolbar width: the layout order already contained an
empty put("place") slot between "material" and "plane" with nothing registered
to it. Shift+Y and Shift+Z follow Transform and Mirror; every tool still
appears exactly once.
Compiles clean; kernel untouched, so the suite is unaffected at 139 cases /
1960 assertions.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Owned ("Mine") cloud plugins now offer the same local-only Delete as local
plugins: it removes the installed package and leaves the plugin in the cloud,
still reinstallable. Deleting a plugin from the cloud belongs on the plugin hub
and is no longer reachable from OrcaSlicer, so the whole cloud-delete chain is
removed down to the REST binding.
The deleted row is restored locally instead of via a blocking cloud refetch, so
it survives being offline, and it comes back without the deleted package's error
state.
M6 landed the kernel side as two plain public maps — CadDocument::variables and
CadFeature::expr — reachable only through MCP's set_variable / set_feature_expr.
Nothing in the GUI could create a variable, so the parametric layer was
unreachable from the Design tab.
Variables get a wxListCtrl (name, expression) with add/edit/remove below the
feature tree, since they are document-scope and must not live in a card that
only exists while a tool is open. Expression bindings get one generic row in the
feature-edit path — a field-name combo plus an expression box — rather than an
extra control on each of 32 cards.
Every mutation copies McpControl's sequence exactly, and the rollback is the
part that matters: checkpoint, mutate, recompute, undo() on failure. Without it
one typo leaves the recipe permanently unrecomputable, since load() replays the
whole list. Removing a variable a feature still references fails that recompute,
so it reports the reference rather than a bare evaluation error.
The field-name combo is deliberately editable: only 11 feature types get a
curated field list, and free text is what makes the other 21 reachable. That is
safe because assign_field() throws "unknown parameter: <name>" for anything it
does not know, inside recompute()'s try block — so a wrong name gives a clear
message and a rollback, never a silently dead binding.
Two fixes on top of the generated wiring:
- make_combo() passes wxCB_READONLY, under which Orca's ComboBox HIDES its text
ctrl (ComboBox.cpp:51). There is no SetEditable() to undo that, so the field
combo is constructed directly with style 0; that shows the ctrl with
wxTE_PROCESS_ENTER and makes GetValue() return typed text.
- the field-list helper had been made a file-static function taking
DesignPanel::Tool, which required moving Tool out of private and into the
public API. It is now a private static member instead: 32 values of internal
card state should not be published to satisfy a signature.
Compiles clean (0 errors); kernel suite unchanged at 139 cases / 1960
assertions. Phase B is complete on this fork — all 16 previously GUI-less tools
plus the variables panel. Not yet exercised on a display.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Mate completes the set: every CadDocument feature type now has a card. It is the
one that needed CoordSys wired first, since a mate connector IS a CoordSys
feature and cs_a/cs_b are feature indices into the recipe.
The card states what each kind constrains rather than just naming it, because
the five kinds are not distinguishable from their labels — the useful fact is
which DOF each PRESERVES: Fastened fixes all six, Planar leaves in-plane
sliding, Revolute leaves spin, Slider leaves axial travel, Cylindrical leaves
both. The offset/angle spins retitle per kind, since offset is a plane distance
for Planar and a position along the axis for the three joint kinds.
Confirm is blocked, with the reason in the status line, when fewer than two
CoordSys features exist or when A and B are the same one: a mate with cs_a ==
cs_b is meaningless and a dangling index recomputes to nothing useful.
check_interference() gets a button in the feature-tree header behind a rule, not
a tool card — it adds no feature, so it must not checkpoint(), recompute(), or
touch the undo stack, and a card would imply it does. Results go to the status
line as count + worst volume, with the per-pair list in a message box, named as
the parts tree names them.
Fixes on top of the generated wiring:
- the button's sizer adds sat after the closing brace of the block declaring
trow, so trow was out of scope ("'trow' was not declared in this scope");
- the CoordSys client data was typed const void*, which Append rejects;
- the report labelled bodies 0-based while all 28 other body labels in this
panel (and the parts tree) are 1-based, so it would have called the tree's
"Body 2" an interference on "Body 1" — and it was the only unlocalised label.
Compiles clean (0 errors); kernel suite unchanged at 139 cases / 1960
assertions. Still to come: the M6 variables panel. The GUI has not yet been
exercised on a display.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Every CAD feature added across M1-M8 got a kernel API and an MCP method, and
almost none got a card. The MCP path was the only way to reach them, so from
the Design tab these features did not exist: add_axis and add_coordsys have
been callable since M1 with no UI at all.
Wired here, in three batches:
datum Axis (5 construction types), CoordSys
surface Surface Extrude / Revolve / Loft / Fill / Offset / Thicken Surface
body Transform, Mirror, Thicken, Rib, Project, Delete Face, Helix
Grouped into existing dropdowns rather than widening the 16-slot toolbar:
surfaces get one new "Surface" dropdown, body ops join Dress-up, Thicken/Rib
join Add-material, Helix joins Datum (renamed "Datum / Curve"). Shift+Y and
Shift+Z went to Transform and Mirror; the remaining five are shortcut-less
rather than getting invented chords.
Three places where the UI has to encode a kernel distinction, not just expose
a field:
- Surface Offset and Thicken Surface consume a SHEET body and fail with "target
is not a sheet" on a solid, so their pickers filter on
CadDocument::is_sheet_shape() and say so when no sheet exists. Thicken (solid
face -> plate) is a different tool and is kept visibly separate.
- delete_faces is a vector, so Delete Face accumulates picks via "Add picked
face" and shows the running list. Supporting one face would have been a
silent downgrade of the kernel field.
- CoordSys labels its edge pick with the consequence of omitting it: without an
edge, datum_frame() takes x from coordsys_x_hint (world constant) and the
frame cannot express rotation about its own normal — which is snaporca-en4,
and is why a Fastened mate built on a face-only connector cannot fix spin.
The Rib sketch picker needed the 3-arg Append(text, wxNullBitmap, clientdata):
ComboBox's own Append(text, bitmap) hides wxItemContainer's (text, void*), so
the 2-arg call resolves to the bitmap overload and fails with "conversion from
void* to const wxBitmap is ambiguous". The Sweep picker already documents this;
Rib now matches it.
Compiles clean (0 errors) against snaporca-deps; kernel suite unchanged at
139 cases / 1960 assertions. Mate, the interference report and the M6 variables
panel are still to come; the GUI itself has not been exercised on a display yet.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>