* Add Missing Includes Across src/libslic3r
Every libslic3r source and header now directly includes the headers declaring what it uses, rather than relying on the precompiled header or transitive includes. Generated with clang-tidy misc-include-cleaner, with libslic3r headers spelled libslic3r/... so they resolve outside the library's private include paths. MultiMaterialSegmentation.hpp, Support/SupportParameters.hpp and Format/STEP.hpp are made self-contained by hand.
* Make the libslic3r Headers Compile on Their Own
Each now includes, or forward-declares, what it uses instead of relying on what its includers happened to include first. Left out: I18N.hpp, which errors on purpose when included from GUI code, and VoxelizeCSGMesh.hpp and SLA/bicubic.h, which nothing includes and which no longer compile at all.
* Add the Includes Missing From the Hand-Fixed libslic3r Headers
clang-tidy would not edit these headers while they failed to compile on their own, so the first pass skipped them. With the headers now self-contained, a second pass adds the rest.
* Keep Windows Setup Ahead of the Added libslic3r Includes
Print.cpp and Thread.cpp open with a _WIN32 block that has to come first; without the precompiled header, Print.cpp otherwise reaches windows.h through OCCT with NONLS defined and boost/regex fails. OpenVDBUtils.cpp and SLA/SupportTreeBuilder.cpp had includes inside #ifndef NOMINMAX, which libslic3r defines on Windows, so those were skipped there. .clang-tidy also ignores the MSVC STL and UCRT internals, Boost.Multiprecision's fwd.hpp and CPython's Windows include directory.
* Re-Add libslic3r Includes After the Clipper2 2.0.1 Migration
Rebasing onto main took main's version of the files the Clipper2 migration rewrote, so their added includes are restored here, along with includes for main's new code. Clipper2's individual headers are now ignored by clang-tidy: they only build the Z variant through clipper2_z.hpp, which defines USINGZ first, so including clipper.core.h and the like directly broke ClipperZUtils.cpp.
A tool change added from the layer slider switches heads mid-print like a
painted color, but the parallel-mode checks only looked at the filaments of the
plate's objects, support and prime tower. A one-filament plate with a slider
change to a copying head's filament passed them. They now include those tool
changes, as the plate's warning badge already did.
Co-Authored-By: Claude Opus 5.5 <noreply@anthropic.com>
Three commits: G-code export caches its filament config slot and repeated
option lookups, per-plate bed type overrides follow the printer's multi-bed
support, and the gizmo checkboxes and texture displacement panel get styling
and refresh fixes. No conflicts.
Co-Authored-By: Claude Opus 5.5 <noreply@anthropic.com>
138 commits. The count is large because texture displacement merged with its
whole branch history behind it, going back to July, alongside config and preset
file locking across instances, a foundation for configurable printer agent
connections, and a day of smaller fixes and CI work.
Two conflicts, both the same shape: each side had appended to a sorted list and
git could not choose an order. libslic3r's CMakeLists gained InstanceLock
alongside our IMEXHelpers and IMEXZones, and the preset bundle loading test
gained an include for ParallelResolve alongside ours for IMEXHelpers. Both sides
kept, alphabetical. No logic conflicted.
Verified: 740 targets build clean under -Werror, and the Release suite passes
1740 of 1740, up from 1665 -- the 75 new cases arrived with the merge and all
pass. That mattered more than usual here, since preset loading and config
locking are both areas the IMEX preset code touches.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Fan speeds, multi-tool ramming, the tower interface and flush temperature
fallbacks and the custom G-code placeholders now use the extruder variant a
filament prints with on each layer, instead of reading by filament id.
Upstream moved pressure advance onto the extruder variant: enable_pressure_advance,
pressure_advance and the four adaptive keys joined filament_options_with_variant,
the repeated inline blocks in set_extruder() became a helper, and the lookups
moved from the filament id to get_filament_config_index().
All three conflicts were the same collision, because this branch had modified two
of those same inline blocks to pass a tool qualifier so each carriage is addressed
explicitly in parallel modes. Taking either side whole would have lost something:
upstream's drops the qualifier and leaves parallel carriages with no pressure
advance, ours drops the per-variant indexing and reads the wrong column on a
multi-variant printer. The helper now takes an optional tool, defaulting to -1,
which omits the qualifier. imex_pem_tool_for() already returns -1 off IMEX and in
primary mode, so non-IMEX output is unchanged, and the three call sites that never
passed a tool keep upstream's behavior exactly.
The third conflict was two test cases appended at the same place. Both are kept.
Separately, one defect that merged cleanly and so was not flagged: the loop that
emits pressure advance for secondary carriages at the start of a print still
bounded and indexed those vectors with a raw filament id. They are variant
expanded now, so their length is columns rather than filament slots -- the value
read was the wrong column, and the bound no longer sat in slot space, letting an
out-of-slot filament through. It now bounds on filament_diameter and translates
with get_filament_config_index(), which is what the sibling second-layer
temperature loop already does.
Verified: both changed translation units compile clean under -Werror. The merge
was resolved independently twice and the two resolutions agree on every line of
code. Not yet run: the Release test suite and a parallel-mode slice sweep.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Pressure advance, adaptive pressure advance and its model can now take a
different value for each extruder variant of a filament, such as Standard and
High Flow nozzles, like the other per-variant filament settings. Projects
saved with one value per filament apply it to every variant of that filament,
and the addnorth BBL filaments in the Orca Filament Library are updated to the
per-variant layout.
The two conflicts are both places where upstream landed on top of IDEX/IQEX
code. In GCode.cpp the relocated file header block meets the IMEX placeholder
block, and the placeholders are set first: file_start_gcode is processed through
the placeholder parser now, which throws on a name it does not know, so a script
naming {imex_mode} would abort the export if the header ran first. In
test_multifilament.cpp both sides appended a case at the end of the file.
# Description
Extruder variants (Standard, High Flow, extra high flow) now work on any
printer. Any vendor profile can declare them, and a multi-variant
filament picks up the right variant on every printer. In the sidebar,
users can switch the printer variant and set the nozzle volume type of
each extruder on multi-extruder printers. This also fixes a later
filament printing at the first filament's temperature on a P1S or X1C
with a High Flow nozzle. The profile checks now reject variant arrays of
the wrong size and outdated variant strings. Every shipped vendor
profile passes them, and the orca-profiles skill documents the rules.
Slicing output changes only where the wrong variant was used before.
# Screenshots/Recordings/Graphs
<img width="393" height="218" alt="Screenshot 2026-09-28 at 11 28 07 PM"
src="https://github.com/user-attachments/assets/8bee4b0e-c38c-4039-8c11-096ace6fbad0"
/>
<img width="448" height="267" alt="Screenshot 2026-09-28 at 11 28 37 PM"
src="https://github.com/user-attachments/assets/e767cd97-a5d0-4728-b010-c8ea2bc94ca7"
/>
<img width="746" height="603" alt="Screenshot 2026-09-28 at 11 28 54 PM"
src="https://github.com/user-attachments/assets/23c8af3b-c679-46e5-9fd0-2e43df0449b3"
/>
https://github.com/user-attachments/assets/10d75d72-86a3-42e8-8a95-b1627bd58e91
## Tests
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> Please describe the tests that you have conducted to verify the
changes made in this PR.
-->
<!--
> A guide for users on how to download the artifacts from this PR.
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[How to Download Pull Requests Artifacts for
Testing](https://www.orcaslicer.com/wiki/how_to_download_pr_artifacts)
G-code generation collects errors raised per object, such as an empty
first layer, into one SlicingErrors exception whose own message is just
"Errors". The CLI's generic handler printed that word and recorded the
generic slicing error text, so a headless caller had nothing to act on.
Let Print render the per-object messages with each object's name, and have
the CLI catch SlicingErrors ahead of the generic handler, print that text
and record it as the result's error string. The exit code is unchanged. A
unit test lifts a cube off the bed and checks the message names the object.
A coEnum config value has two representations: the typed ConfigOptionEnum<T> a
config cloned from the static classes carries, and the ConfigOptionEnumGeneric
that a config assembled from the option definitions creates - which is what a
preset, a project's own settings and the CLI all hold. imex_cfg_enum() accepted
only the first, so every IDEX/IQEX reader took the option default instead: a
printer saved as rear-left came back front-left in the settings, the bed zones
and the carriage markers, while the preset on disk still held rear-left.
Read the generic form too, keyed on the value map it carries, since only T's own
map yields a T. The last reader that matched on the coEnum tag alone and cast
across the two hierarchies now goes through the helper with everything else.
Declaring the three keys the static classes were missing is what lets a change
to imex_tool_layout invalidate the slice it moves, which it never did before.
The two that are only ever drawn stay out of that: a colour scheme and the
advisory margin bands do not reach a slice, so changing one must not discard it.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Four files overlapped, and each resolution favours upstream where the two sides
had done the same work:
WipeTower's M104/M109 tool qualifier. Both sides bounds-checked the physical
extruder map lookup; upstream omits the T qualifier when the map cannot answer,
where this branch fell back to the logical index and so named a carriage that may
not be the one printing. Upstream's behaviour is what this branch documents
elsewhere, so its version is taken and the local helper is dropped.
get_extruders' mixed-slot switch. Upstream added the same concept to the CLI
overload as expand_mixed_slots, so the GUI overloads' parameter is renamed to
match rather than carrying two names for one idea.
GLCanvas3D's sequential-clearance branch gains upstream's
update_compacted_wipe_tower_clearance for the by-layer case.
The printer_agent re-sync in TabPrinter::reload_config was upstream's and their
preset-undo fix removed it, so it goes; the IMEX modes grid re-sync beside it
stays, since it spans three options and is not a Field.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
* Toolchange Cyclic Order
* Apply cyclic order to first layer
* Unit test
* Copilot fixes
---------
Co-authored-by: Rodrigo Faselli <162915171+RF47@users.noreply.github.com>
The preview brim, the placement margin and the pre-generation validation
warning each decided on their own whether the tower has a Type2 cone
base, reading the wall type and cone angle three different ways. The
preview's read cast the preset's enum to ConfigOptionEnum<T>, which a
preset-shaped config never holds, so the cone base was never previewed.
estimate_wipe_tower_first_layer_outline now answers that question once,
beside the footprint estimate, from the config and the resolved planner;
all three sites take the outline from it. The libslic3r case reads the
outline off a preset-shaped config, where the old cast came back empty.
The clamps and validation work from estimates. Once the tower is
generated, _make_wipe_tower re-tests the exact first-layer footprint,
brim and cone base included, against the printable area and the
exclusion zone, so an off-plate tower fails with a clear error instead
of exporting unprintable G-code. The rectangle-wall mesh footprint
learns the Type2 cone base so that check and the post-generation
validation see the real outline.
Pre-generation, validation hard-checks the body plus an explicit brim
and warns on the estimated auto brim and cone base with the existing
"may collide" strings, so the user hears about a marginal position on
the first slice rather than only at generation time.
Two fff_print fixtures that print a tower at the default position move
it onto the 200 mm test bed, as the multifilament fixtures already do:
the shipped default y of 220 is off that bed, and the backstop now says
so instead of exporting the tower.
The shared estimate reserved every tower with one volume-per-purge rule
and the stability floor. Both planners do more: WipeTower (Type1) wipes
each filament's own prime volume in whole lines, one block per
adhesiveness category sized by its worst layer, rams the leaving
filament at every nozzle change, and squares a rib tower from the
planned depth; WipeTower2 (Type2) spaces its lines by
wipe_tower_extra_spacing, not the Type1-only infill gap, and its extra
flow cancels out of the depth. Both extend the ribs rather than the body
below the stability minimum, size every layer including a thinner first
one, and lay the brim in whole loops, WipeTower reporting half a spacing
of line width on top.
All of that now lives in estimate_wipe_tower_footprint, fed the planner
(resolve_wipe_tower_type mirrors Print::wipe_tower_type and the CLI's
Bambu Lab detection) and the filament ids rather than a count. Print
passes its own tool set; the PartPlate adapter derives the plate's ids
from the passed config and treats an explicit count as a floor, so the
CLI's count-only callers size per filament too. The placement clamp also
reserves a Type2 cone's base bulge, which the body box does not cover.
The planner-mirroring helpers sit beside the planners in WipeTower and
WipeTower2 so the two stay in sync; the libslic3r cases pin them to
footprints measured from generated G-code.
Validation grows the estimated body by the brim before the tower is
generated, so a tower whose brim leaves the bed is rejected up front
instead of at export. The scene reload re-clamps the stored position,
since set_default_wipe_tower_pos_for_plate does not rerun when painting
changes the filament count. The rectangle-wall footprint polygon gets its
two missing brim corners (it was a skewed quad), so the post-generation
check covers the whole brim.
A raft is not a reason to reserve a tower. Print::apply runs
normalize_fdm_2, which clears enable_prime_tower for a plate that purges
one filament unless smooth timelapse or wrapping detection is on, so a
single-filament plate with a raft prints no tower at all and the estimate
was reserving bed area for one. Drop the input; need_wipe_tower is now
exactly the two exceptions normalize_fdm_2 honours, named there so the
next reason added has to be checked against it.
The GUI preview and the validation containment check each re-derived
"is a tower printed here" from the filament count instead of reading the
estimate, so both missed the towers printed with no tool change to purge
for. They now take the answer from the footprint, which is the drift this
shared estimate exists to remove. A tower that is not printed estimates to
zero, so its hull is degenerate and every check on it passes trivially -
the containment check needs no gate of its own.
WipeTowerData::width was written only by the pre-generation estimate and
left at zero for the whole post-generation life of the Print, while its
neighbour depth held the real value. Set it from the generator in both
branches.
The plate's height scan transformed every model part's full mesh per
instance on each scene reload, discarding all but the z extent. The
cached convex hull has the same z extent.
A plate loaded from a sliced .gcode.3mf holds no objects and its filaments
live in slice_filaments_info; the config-taking get_extruders overload
returned an empty list for it, which sized the tower for a placeholder two
filaments. It now answers the way the wx overload does, without reaching
the plater.
Also drop estimate_wipe_tower_size, which has no callers.
No IMEX code upstream, so nothing in this merge touches the feature. All 21 overlapping
files auto-resolved; verified every upstream addition is present in the merged tree.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Closes review comment 10.
`461c69c83e` settled this in April — IMEX internally, IDEX/IQEX as the user-facing label — but the
UI strings were never converted. Every translated string naming the feature now reads IDEX/IQEX:
41 occurrences across the printer and process option labels and tooltips, the modes editor, the
plate mode indicator, the pre-slice warnings, the placement refusals and the slicing errors. The
reviewer listed eight; the rest were in the same class.
Nothing else moves. The config keys keep the `imex_` spelling — `is_imex`, `imex_mode_names`,
`imex_parallel_mode` and the rest are on-disk format in existing printer presets and 3MF projects,
so renaming them would break every profile and project already saved. C++ identifiers, filenames,
comments and test names keep IMEX as well: it stays the internal name of the subsystem, which is
what covers the topology space (one gantry with 2-4 tools, 2x1 and 2x2 grids) that neither acronym
names on its own. Where a tooltip quotes a key, the key spelling is preserved and only the feature
word around it changed.
The `is_imex` tooltip is reworded rather than substituted: it already named the hardware families
parenthetically, so a literal replacement would have said IDEX/IQEX twice in one sentence.
No translation impact — no IMEX string had reached OrcaSlicer.pot or any catalogue, so there is
nothing to migrate. One test asserted on the old error text and now matches the new one.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Closes review comment 11, and fixes a worse bug found while doing so.
The offset was only ever pushed from PartPlate::refresh_imex_slice_offset(),
reachable from update_slice_context() and the plater -- both GUI-only, and it
dereferences wxGetApp(). A headless slice therefore kept Vec2d::Zero(), so
orca-slicer --slice on a plate with imex_firmware_managed_zones emitted
slicer-managed coordinates while the firmware applied its own offsets on top.
Print::update_imex_slice_offset() now derives it from the applied config and runs
from process() and export_gcode(), so a CLI slice gets the value a GUI slice does.
It reads m_full_print_config rather than m_config because imex_tool_layout and
imex_carriage_margin are printer-preset options with no member in the static
PrintConfig, and it takes the mode from the same place GCode.cpp resolves it, so
the shift cannot disagree with the mode that is emitted.
The GUI push and Print::set_imex_slice_offset() are deleted rather than kept as an
override, because the two did not agree. calc_imex_zones() divides
get_extents(m_shape), and set_shape translates m_shape by the plate position, so
the pushed offset carried the plate origin -- which translate_to_print_space() and
the writer offset already subtract. Plate 1 sits at the origin and agreed by
accident; every later plate had the origin subtracted twice and was shifted by a
full plate stride. Not silent, either: the displaced geometry fell outside the
printable area, so slicing plate 2 failed validation with "part is off the plate".
Confirmed fixed on hardware profiles -- the same model on plates 1 and 2 now emits
identical extents.
Deleting the push also removes the post-apply ordering constraint that forced the
duplicate call in Plater::priv::update_background_process: the value is computed
at the point of use, and process()/export_gcode() are structurally after apply().
Also routes validate()'s primary-routing check through imex_resolve_routing() so
the hard block and the plater's warning cannot describe a plate differently
(review comment 20), and through find_imex_mode() for the mode lookup (18).
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
* build: enable /Zc:lambda for MSVC
MSVC keeps its legacy lambda processor under /std:c++17, which rejects
reading a constexpr constant inside a lambda that does not capture it
(C3493). No other compiler requires that capture, and clang reports it as
an unused one, so the two cannot both be satisfied without the flag.
/Zc:lambda selects the conforming lambda parser that clang and GCC
already use. It is implied by /std:c++20 and /permissive-, so it is only
needed while we are on C++17. clang-cl is conforming already and does not
take the flag.
It requires VS2019 16.8, so build_release_vs.bat now says 16.8+.
* build: clear 237 unused lambda capture warnings
236 captures across 81 files, 142 of them `this`. Removing an unused
capture changes no behavior; clang does not report a capture whose type
has a non-trivial destructor, so nothing held only to extend an object's
lifetime is in this set.
Nine of them are the second half of the warning, "is not required to be
captured for this use", where the capture is a const or constexpr value
the body does read. Those depend on the /Zc:lambda change in the previous
commit. One of them, in FillRectilinear.cpp, had been worked around with
an #ifndef __APPLE__ guard around the capture list, which is now gone.
GUI_ObjectTableSettings.cpp captured its reset button only to read it
inside #ifdef __WXOSX_MAC__. That branch now takes the button from the
event it is already handling.
* build: fail configure on MSVC older than 19.28 instead of dropping /Zc:lambda
cl.exe answers an unrecognized /Zc: sub-option with warning D9002 and keeps
going, so on VS2019 before 16.8 the flag is silently ignored and the build
instead dies with C3493 in FillRectilinear.cpp, nowhere near the cause.
* fix: delete three locals that are now unused
Their only remaining use was the lambda capture this branch removed. The
Clang builds set -Wno-unused-variable, so the build never flagged them.
---------
Co-authored-by: Rodrigo Faselli <162915171+RF47@users.noreply.github.com>
* build: remove std::move that blocks copy elision
std::move wrapped around a temporary, or around a local being returned,
stops the compiler constructing it in place. Each edit is the fix clang
suggests, which is to delete the std::move call and keep its argument.
Three of the 39 sites save a move, the two return std::move(local) in
Print.cpp and TreeSupport.cpp:2749. The rest are equivalent either way
and match how the codebase already writes this elsewhere.
Clears 39 -Wpessimizing-move warnings.
* build: drop null checks on references and this
A reference cannot be bound to null and this cannot be null, so the
compiler folds these conditions to true and drops the guard. Seven are
if (&bitmap && bitmap.IsOk()), where IsOk() already does the work; two
test this directly. The guarded code runs either way, so removing the
dead operand changes nothing.
Clears 11 -Wundefined-bool-conversion warnings.
The rule's comment claimed the plate "is not printable as configured: the
primary tool executes the toolpaths while the flow and temperatures were
computed for a filament it cannot load". That is not what the emitter does. It
never uses the declared primary -- it re-derives an effective one from the
filament actually in use -- so a plate whose only filament sits on a Span tool
sharing the primary's gantry produces coherent G-code and would print.
The refusal is still correct, but it rests on intent rather than physics: a
parallel mode exists to run carriages in parallel, and a single-colour plate
riding one span lane is not that. Left as a physical-impossibility claim, the
rule reads as a false positive to anyone who checks it against the emitter --
a review already flagged it as one -- and the obvious "fix" is to relax it.
Say which it is, and keep the genuinely-broken case distinct: a filament routed
to a head outside the mode's active tools still yields a stuck-hot nozzle, and
that one is not a matter of taste.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
A mixed filament is unsupported in a parallel mode outright, but the rule saying
so ran third. A plate carrying a blend plus any second filament tripped the
multi-color rule's used > 1 gate first and was told its active tools all sit on
one gantry -- a diagnosis of a multi-color print the user never configured,
whose remedy is to go rework the mode's tool roster. The blend was never
mentioned. Move the check ahead of both rules below it; being unsupported
regardless of routing or topology, it dominates them.
Nothing is masked that leads anywhere else: every branch of
imex_multicolor_block_reason is itself confined to non-primary modes, so the
mixed message's remedy -- switch this plate to Primary -- silences those too.
Say "Mixed filaments", not "Blended". Every other string in the app calls these
mixed, including the button that creates one and the sibling refusal for the
wipe tower filament, so the user had no way to connect the message to the
feature it names.
Three comments in the block were wrong, and two of them were newly wrong. The
routing rule's bounds-check note still said "Blended slots are out of range by
construction, but they never reach here -- the rule above returns first": the
rule above is now the multi-color one, which does not return first for a single
mixed filament, and out-of-range is not guaranteed at all. Mixed slots are kept
at the tail of the filament arrays by convention, not by enforcement --
PresetBundle::set_num_filaments grows filament_is_mixed with resize(), so
raising a printer's extruder count with a blend present lands physical slots
after the mixed one. The scan is position-agnostic and stays correct; only the
stated reason was wrong.
The same discovery makes the empty-routed_list guard live rather than the dead
code it was described as. Print::apply() normalises physical_extruder_map before
validate() runs, so an unauthored map is never the cause -- but a printer with
more filaments than logical extruders leaves the tail slots outside the map, and
raising the extruder count does exactly that.
The new test validates the plate twice. The first pass, with no blend, asserts
the multi-color rule is armed at all; without it the second proves nothing,
because the rule only fires here thanks to a degenerate fixture mode whose two
tools share a gantry. Give that mode a Span tool and the whole test would pass
under either ordering while appearing to guard it. It also pins err.object,
which the mixed path sets and the multi-color path leaves null -- a discriminator
that survives the next wording change. Verified by reverting the order: the test
fails on both the message and the object.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
The routing error ran to roughly 450 characters and explained the mechanism
before it got to the remedy. It also offered to "edit the mode in Printer
Settings so its Primary tool is one of %3%", which on a plate whose filaments
resolve to no head at all rendered as "one of no configured extruder". Cut it
to the mode, the tool it prints with, where the plate's filaments actually are,
and the two things the user can do about it.
The second msgid that named candidate modes went with it. It could only suggest
a mode whose primary is among the routed heads, and every mode on the printers
this fires for declares 0:P, so it had nothing to offer.
Blended filaments now return before that check rather than falling through it.
A blend is mixed at the nozzle by its component toolheads, and a parallel mode
is already using those toolheads to print copies or mirrors, so the two cannot
run at once regardless of where the components route -- including when a
component sits on the declared primary. Reaching the routing rule would also
have described them wrongly: mixed slots sit past the end of
physical_extruder_map, so they resolve to no head and read as merely unrouted.
Keeps the empty-list guard the shortening first dropped. validate() reads the
raw physical_extruder_map, whose registered default is a single entry, so a
profile that declares IMEX modes without authoring a map leaves every slot past
the first outside it -- and the sentence ended in a dangling "on .".
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Brings the upstream color-mixing feature and its follow-ups onto the branch so the
IMEX placement and primary-routing checks are built and tested against them for the
first time.
Merged clean, no conflicts. Not yet exercised together: a mixed filament is a virtual
slot no nozzle carries, while physical_extruder_map routes logical slots to physical
heads, so the IMEX pem lookups have no defined answer for one. Print::extruders()
lists mixed slots under their own id while tool_ordering.all_extruders() lists them
post-expansion, and the IMEX code reads both.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Brings in 54 upstream commits, the bulk of them the BambuStudio-ported color
mixing / mixed filament subsystem (#15347) plus its follow-ups, along with the
Assimp-backed colored OBJ import, warning-policy build changes, and assorted
profile and localization updates.
Two conflicts, both "each side added at the same point", resolved by keeping
both:
- Print::validate() -- our IMEX multi-color block and upstream's new gradient
mixed filament warning were inserted at the same spot after the empty
extruders check. They test unrelated conditions, so both are kept, each with
its own closing brace.
- tests/libslic3r/test_3mf.cpp -- our three IMEX per-plate round-trip scenarios
and upstream's mixed-filament round-trip scenario both append to the end of
the file, and each side added one include. All four scenarios and both
includes are kept.
Everything else merged cleanly, including GCode.cpp, ToolOrdering.cpp,
PartPlate.cpp and PrintConfig.cpp. Upstream left the is_extruder_used block
untouched, so the IMEX supplement still applies, and estimate_wipe_tower_polygon
is unchanged, so the prime tower hull work is unaffected.
Not addressed here, and worth its own change: a mixed filament is a virtual slot
that no nozzle carries, while physical_extruder_map routes logical slots to
physical heads. Print::extruders() lists mixed slots under their own id whereas
tool_ordering.all_extruders() lists them post-expansion, so the IMEX pem lookups
have no defined answer for a mixed slot. Upstream's own guards reject a mixed
filament where a physical slot is required; IMEX likely wants the same.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
The IMEX primary tool prints the sliced paths directly, so it can only load a
filament that physical_extruder_map routes to it. The ghost filament picker
enforces that for the secondary tools -- it offers only lanes whose pem entry
equals that head -- but the primary's filament comes from the ordinary object
filament selector, which has no IMEX awareness. Nothing detected the mismatch:
collect_imex_warnings() computes the same condition and discards it into a
display fallback, and the multi-color rule never examines it.
Block it in Print::validate() via the existing imex_primary_tool_for_mode and
imex_primary_logical_from_objects helpers. The message names the declared
primary, the heads the plate's filaments actually live on, and any configured
modes whose primary would work, and carries the object so the notification can
offer a jump to it.
Blocks rather than warns, matching the multi-color rule: the plate is not
printable as configured, and where the routed head is also absent from the
mode's active tools the 1st->2nd layer temperature branch skips it too, leaving
that head at its initial-layer temperature for the whole job.
The multi-color check now runs first. Its constraints -- an MMU manifold sharing
one head, a single-gantry mode -- cannot be fixed by switching mode, so the more
specific error should win rather than be masked by routing advice that leads
straight back to it. The extruders().size() > 1 gate moved onto that call, since
the routing check must also see single-filament plates, which is its common case.
The copy-mode guard-rail test printed on a filament routed off the primary, so
it asserted a plate this rule now refuses; retargeted to a well-formed plate.
Its replacement pins the object's own extruder, because ModelVolume reports its
extruder_id and would otherwise put a primary-routed slot on the plate.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>