Closes review comments 13, 14 and 15, and adds the test for a shipped-profile
regression that nothing guarded.
- 14 and 15: compute_imex_slice_offset had eight tests on the calculation and none
on the result, which is the whole firmware-managed path. test_imex_slice_offset
now covers the derivation end (which config produces a non-zero offset, and that
it is plate-local rather than moving with the plate origin -- the bug that
shifted every plate after the first) and the consumption end (emitted
coordinates and first_layer_print_min/max both move by the derived amount).
The first_layer case also cross-checks the two consumers against each other: the
declared bounds must keep the same relationship to the emitted toolpaths in both
frames, which fails if exactly one of them is shifted. It deliberately does not
pin the size of that gap -- it is 2.225 mm here, set by the wall generator, the
same with no offset at all, and pinning it would fail on an unrelated change.
- 13: nothing exercised the imex_mode / imex_mode_index / imex_mode_gcode
placeholders or the {global} flow into machine_start_gcode that their ordering
exists to guarantee. Seven cases now do, including the ordering itself -- the
mode script declares a global and machine_start_gcode reads it back, so moving
the mode processing later leaves the variable undefined and fails the export --
plus the inert cases (Primary mode, and a printer with the table filled in but
is_imex off). All matching is whole-line, because the config block the exporter
appends repeats machine_start_gcode verbatim and would make substring checks
meaningless.
- New: GCodeWriter passes this->config.is_imex.value into the heater remap, and
nothing tested that it passes the flag rather than a constant. Hardcode true
there and the whole suite stays green while fdm_bbl_3dp_002_common, which ships
physical_extruder_map [1,0], starts sending filament 0's M104/M109 to heater 1.
The new case runs a two-nozzle non-IMEX printer with that map and asserts each
filament's temperature reaches only its own tool. It uses idle_temperature via
ooze prevention rather than nozzle_temperature: keys in
filament_options_with_variant are re-indexed per filament by variant slot at
apply time, and this harness pins nozzle_diameter to one value, so every filament
resolves to the same slot and the temperatures stop telling the heads apart.
Also fixes two weaknesses in tests added earlier in this branch: an assertion that
would have been prefix-satisfied by the very routing it was meant to exclude, and
a whole-file command comparison between two slices, which this slicer's output is
not stable enough to support.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Closes review comment 1.
imex_parallel_mode and imex_head_filament_map were streamed raw into XML attribute
values, while every other free-text attribute in the same writer goes through
xml_escape. Mode names are free text, so "PLA & ABS", a quote or a "<" made the
document malformed. The failure is not a bad value on reload: both load paths for
model_settings.config return false on an expat error, and m_is_bbl_3mf is set
before the second entry loop runs, so the whole project fails to open with
"Archive does not contain a valid model config".
Both attributes now use xml_escape_double_quotes_attribute_value(), which also
emits tab, CR and LF as numeric character references. That matters and plain
xml_escape would not do: XML normalises literal whitespace in attribute values on
read, so a tab in a mode name would come back as a space and silently rename the
mode. The read side needs no change -- it takes expat's already-decoded value with
no second unescape -- so this is a lossless round trip and a file written by the
new code still loads in an older build.
The round-trip test used "copy_mode", which exercised none of this; it now carries
&, <, a quote and a tab, and also pins that ' and > come back unmodified, since
both are legal raw inside a double-quoted value.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Closes review comment 6.
The per-tool pressure advance work changed set_pressure_advance() for users who
are not using the feature. RepRapFirmware lost its D qualifier when no tool index
was supplied: upstream emits M572 D0 S<pa> unconditionally, and a bare M572
applies to whatever tool is currently selected and errors when there is none, so
PA started depending on tool-selection state for every RRF user. The D is back,
defaulting to 0, and D<tool> is reached only from the IMEX paths.
The same rewrite had also changed the comment separator from "<value>; Override"
to "<value> ; Override" on the Klipper, RRF, Marlin 2.x and Marlin Legacy
branches, so every non-IMEX print of those flavors carried a one-byte diff.
Restored. Upstream is internally inconsistent here -- BBL and Repetier do use the
spaced form -- and the point is to match it exactly rather than to tidy it.
Emitted output for all six flavors with no tool index is now byte-identical to
upstream. Verified on a real slice: a Klipper profile emits
"SET_PRESSURE_ADVANCE ADVANCE=0.02; Override pressure advance value", an exact
string match, with no EXTRUDER= qualifier. The tests were pinning the regressed
form and are inverted.
Also records at the imex key registrations why they are kept out of the g-code
config block, matching the house convention at the other banned keys.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Closes review comment 16, and fixes three defects the move exposed.
PartPlate::calc_imex_zones() was 392 lines deciding where every zone, collision
strip and safety margin sits, in the GUI layer, with no test coverage. The three
wxGetApp() calls that kept it there were all in its first 25 lines, fetching two
configs. The geometry now lives in compute_imex_zone_layout(); the wrapper fetches
the configs, calls it, and clips the returned rects to the bed outline for the
GLModels, which is the only part needing GUI types. libslic3r gained no wx
dependency: it takes DynamicPrintConfig directly, so the option lookups moved
verbatim rather than through a hand-written value struct that could drift.
The move is otherwise exact -- verified by a line-for-line diff of every
arithmetic expression against the original, and by running 15 scenarios through
the extracted code against hand-derived values. The only deletion is a lambda that
was never called.
Three fixes on top, each of which needed the code to be testable:
- An off-grid or absent Primary left pri_col/pri_row at their (0,0) initialisers
and built a layout from them, reporting the whole bed as the clear primary zone
and the whole bed as a blocked mirror zone at once; under
imex_firmware_managed_zones it shifted the slice by the bed centre. Guarding on
the resolved primary head covers both routes. Reachable only from a hand-edited
preset or a 3MF authored against another printer -- the editor pins Primary to
tool 0 -- but that is the same class the unresolved-mode fallback handles.
- imex_nozzle_clearance_x/y fell back to 0.0 where PrintConfig registers 30.0.
Both strip loops are gated on the value being positive, so the fallback emitted
no collision strips at all while the preview still drew 30 mm toolhead boxes.
- The collision-strip loop asked each mirror head for its own grid cell, but an
aggregated gantry's cell is pinned to the primary's column and expanded into a
full-width row strip. Where the representative's column differed from the
primary's, no boundary matched and the plate came back with no strips and no
margin bands -- an object flush against the shared boundary sliced without a
warning while the far carriage occupied it. Present since Span aggregation was
added in 4966d0fae8 and carried out of PartPlate verbatim. The flags now come
from the painted cells; an exhaustive sweep of the reachable grid, role and
layout space (1,630,720 configurations) shows the only behaviour change is the
missing strips appearing.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Closes review comments 3, 5, 7, 8, 18 and 19, plus the library half of 20.
These share a file, so they share a commit; each is independent of the others.
- 3: ::isspace(char) is undefined for bytes above 0x7F because char is signed on
our targets. Three call sites now go through one strip_whitespace() using an
unsigned char cast. Line 308 parses imex_head_filament_map straight out of 3MF
metadata, so a non-ASCII byte reached it without passing through the UI.
- 5: an imex_head_filament_map override past the end of physical_extruder_map now
falls through to the printer's own routing instead of resolving to a wrong
filament. Bounded in resolve_filament_for_head, where the slot count is known,
rather than at the parse site, which has no count to check against; the parse
site also gains the absolute MAXIMUM_EXTRUDER_NUMBER cap its sibling already had.
- 7: imex_physical_heater_for's !is_imex early return is what keeps a stock BBL
profile (physical_extruder_map [1,0]) out of the heater remap, and had no test.
Six cases now cover it, pinning pass-through rather than get_at()'s clamp.
- 8: ImexRole::Span was missing from the imex_head_transform switch, so it warned
under -Wswitch. Identity is correct, not merely convenient: a Span tool prints
the primary's own zone through mid-print toolchanges and has no zone to be
translated into.
- 18: three positionally coupled string vectors were resolved by nine open-coded
lookups using three incompatible bounds idioms. None read out of bounds, but six
folded the guard into the match condition, so a ragged row did not stop the scan
and a later duplicate name could win. struct ImexMode + find_imex_mode() is now
the only resolution rule: the names array is the roster, first match wins, a
short sibling pads to empty and sets ragged, not-found is an explicit -1.
- 19: the letters P/C/M/S existed in three independent copies, one of which was the
writer of the on-disk format. kImexRoleTable is now the single source, read by
both parsers and the serializer. Adding a role was 14 edit sites with one
compiler-enforced; it is now the enum, the table entry, and four -Wswitch
switches. Verified by adding a fifth enumerator and recompiling: exactly four
warnings, nothing else.
- 20: imex_resolve_routing() extracts the mode/primary/routing chain that
Print::validate and the plater's warning collector each derived separately.
The three config keys keep their names, types and on-disk representation. This is
a read-side view only; presets and 3MF files are unaffected.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
update_values_from_multi_to_multi_2 iterates the destination PRINTER's variant
list while writing into a row taken from the destination PRINT preset. Those two
lengths are maintained independently -- print_extruder_variant against
printer_extruder_variant -- and Tab::load_current_preset() runs the migration
before the print preset is re-selected for the new printer. Opening a project
saved on a single-variant printer and switching to a seven-variant one therefore
wrote six elements past the end of a one-element vector. The corruption stays
silent until the next allocation, so the abort surfaces somewhere unrelated and
the backtrace points at innocent code.
Size the row to the variant count before indexing it. Every write is then in
range, and the result carries one value per destination variant, which is what
the callers consume. Pad with nil rather than a copied value: set_to_index()
skips nil entries, so a variant the object has no opinion about keeps tracking
the print preset instead of being pinned to another variant's number.
The same shape -- a count from one array indexing another -- appears twice more
in this file. update_values_from_multi_to_multi has three of these writes
protected only by assert(idx < old_count), and NDEBUG is defined for every
non-Debug configuration, so those guards are absent from shipping builds.
update_values_from_single_to_multi has the read half. Both are bounded here;
leaving them would fix one third of one defect.
Source reads are bounded too. is_nil(size_t) indexes values[idx] without
checking, so an index past the end was undefined behaviour on that side as well.
Where the row already matches the variant list -- every case that was not
corrupting the heap -- the resize is a no-op and the output is unchanged.
Fixes#15455
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>
M104/M109 address a heater, but every caller of the instance
GCodeWriter::set_temperature overload addresses filaments by logical id, so on a
printer whose physical_extruder_map is not the identity the emitted T named the
wrong head -- or, where the logical id exceeds the head count, no head at all.
With a map of 0,0,0,0,1,2,3 a toolchange to filament 5 emitted "M109 S265 T4"
and "M104 S190 T4 ;cooldown" while the head it meant was T1.
Upstream already treats these commands as physical: the preheat it injects in
GCodeProcessor maps through the same map before emitting, and BBS's own wipe
tower does likewise. Emitting logical is the half that never got the memo.
That mismatch also disabled the cooldown suppression beside the preheat, which
compares the line's T against pem[tool_number] and so never matched a logical
one -- 171 cooldowns survived in a two-head print where none should have. Worse,
it could match the wrong line: a cooldown for filament 1 emitted T1, and a
toolchange to filament 5 gives pem[4] == 1, so a legitimate cooldown for head 0
was deleted because the incoming head happened to be numbered 1.
Translate once, in the instance overload every logical-space caller passes
through. The static overload is already physical-in and is left alone.
Gated on is_imex. physical_extruder_map carries two readings in this tree: the
BBS paths index it by extruder id, the IMEX paths by filament id, and the two
coincide only when the filament and nozzle counts match. Mapping unconditionally
would impose the IMEX reading on profiles that mean the other one --
fdm_bbl_3dp_002_common ships a non-identity [1,0], spared today only because
single_extruder_multi_material suppresses the T qualifier entirely.
The wipe tower's interface-temperature pass has to move with it. It strips the
M109 that post_toolchange emits by searching for that filament's tool index, so
it now searches for the mapped one; left alone it would have stopped matching,
and the surviving blocking M109 would have silently defeated the interface
temperature. Its sibling pass reads WipeTower2 output, which emits no T at all,
and is deliberately unchanged.
The bare T<n> toolchange stays logical -- it selects an AFC lane, not a heater.
Test slices two objects across a head boundary, the only case that reaches this
emission: the same-physical short-circuit in set_extruder suppresses the
cooldown entirely for lane swaps within one head. It scans every M104/M109
rather than matching fixed strings, so it catches any unmapped emission and not
just the two sites changed here. With the mapping neutered it reports 101
offending lines; with it in place, none.
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>
* Keep mixed-color filaments intact when the extruder count changes
The extruder-count spinner resized the filament arrays in bulk at the tail,
which is where mixed-color slots live, so a new filament landed behind the
mix and the sidebar skipped a slot number. It now adds and removes one slot
at a time through the same calls the sidebar's +/- buttons use, so a new
slot opens ahead of the mixed tail and a removal renumbers object filament
ids, painted facets, custom g-code and mixed components rather than
clamping them away.
Drops the vector overload of set_num_filaments(), which this leaves without
callers.
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>
* Skip straight-run splits in corner smoothing
Teach `CornerSmoother` to treat vertices that only continue a straight segment as part of the same leg instead of rounding them as corners. The smoother now keeps a three-point window so it can emit a corner only once both adjoining legs are known, which avoids unnecessary corner processing while preserving real turns such as hairpins.
* Add regression test for split-leg smoothing
Adds a FillCornerSmoothing regression test covering polylines with an extra collinear vertex in a straight run. The test ensures corner smoothing treats split and unsplit geometry identically, preventing inconsistent rounding radii in triangular/grid infill paths.
The sidebar Mixed Filament list, the extruder icons, the color painting
gizmo and the canvas filament bar now show the same bottom-to-top fade the
Edit Mixed Filament preview shows, custom gradient curves included, instead
of a horizontal fade between the two component colours. Ordinary and vendor
multi-colour filaments are drawn exactly as before.
Upstream replaced MainFrame's fixed-index TabPosition enum with string-based
page ids ("feat: refactor notebook/tabs to be string based instead of fixed
index based"). The IMEX toolhead-visibility menu item was the only consumer of
that enum left on this branch, so its enable check now compares
m_tabpanel->GetSelectedPageName() against TAB_ID_PREVIEW -- the same form the
neighbouring upstream menu items use.
That mismatch is what broke CI: the branch built on its own, but the merge
commit CI builds no longer had TabPosition declared. No other conflicts.
666/666 tests pass in Release.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
get_imex_active_tools returned every physical head named by the active mode's
tool string, including the one carrying the Primary role. The pressure-advance
and nozzle-temperature sites are already gated on the mode not being primary, so
only the is_extruder_used supplement was exposed.
In primary mode that supplement treated the mode's single declared tool as a
secondary carriage and marked its filament slot used, so machine_start_gcode
emitted a heat command for an extruder that never prints. The phantom slot
appears when the mode's declared tool differs from the head the initial tool
routes to through physical_extruder_map -- on an AFC/MMU layout, printing with a
filament that lives on any head other than the declared one.
Return an empty roster for primary mode, where there are no parallel carriages by
definition. This lives in the enumerator rather than at the call site because the
mode is already resolved and normalized there, and the two guarded callers cannot
reach it in that mode, so their behaviour is unchanged.
Scope: this closes the primary-mode instance. The same phantom slot still occurs
in a parallel mode when the initial tool's head is not the mode's declared
Primary, which turns on which of the two notions of "primary" the three emission
sites should skip. That question is unresolved and deliberately left alone here.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
The IMEX branch of the 1st->2nd layer temperature transition is mutually
exclusive with the standard per-extruder path in its `else`, but it skipped the
head carrying the print's own toolpaths on the premise that "the standard
per-extruder temp path already addresses it". That path is the `else` branch and
never runs for a parallel mode, so the printing head received no transition at
all and held nozzle_temperature_initial_layer for the entire job.
Emit for every carriage the mode drives, the printing one included. The printing
head takes this layer's own filament; the parallel carriages, which carry no
toolpaths of their own, keep resolving through the per-plate head map with pem
inversion as the fallback. The lookup now goes through get_filament_config_index()
like the standard path, since a variant-expanded printer gives a filament its own
column and a raw index would read the wrong one.
Reproduced on a 4-carriage IQEX in copy mode: the only temperature command in the
whole file set the idle secondary carriage to the value it already had, while the
head doing the printing never left its first-layer temperature. The defect is
invisible whenever initial and regular temperatures match, which is why earlier
per-tool validation passed.
Tests cover both gantry counts, since the active set comes from the mode's tool
roster: an IDEX copy mode drives two carriages, an IQEX mode drives four, and the
IQEX case asserts a first-layer filament and a second-layer transition for each of
the four.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
* Add caching system for presets
* Removing user\bundle serialization and keeping it only for system presets
* Integrate caching into WebGuideDialog which speeds up time of SetupWizzard and PrinterSelection dialog
* Add CI\CD step to prepare cache file in ahead of time so user does not need to wait
* Add partial cache generation when only one of the vendros is changed to speed up recalculation time
* Handle corrupted files
* Add cache to GuideDialog as previos version didn't work as expected
* Add inspecting tool and fix CI cache generation
* Generate cache per vendor
* Simplify code by mergin it in PresetBundle
* Simplify code a bit more
* Add cereal serialize() to VendorProfile, PrinterModel, Preset, and Semver
* Remove CachedPrinterModel/VendorProfile/Preset mirror structs from VendorCache
* Fix use-after-free in CallAfter lambda; replace raw thread pointer with unique_ptr
* Use get_vendor_cache_key() to match cache keys written by the app
* Remove BOM added by VSC
* Skip invalid vendors
* Remove leftover cache file
* Fix build for windows arm64
* Revert json cache back
* Update check for stale cache
* Serealize all value fields for Preset class to minimize regression later
* Minimize field duplication by moving Cache thing into PresetBundle
* Add tests for Cache system
* Add a bit more tests
* Merge branch 'main' into feature/cache_profiles_and_optimize_loading_speed
* Rvert from per-verndor to single cache file
Replace N per-vendor .cache files with a single system_presets.cache
that holds all vendors and presets in one serialized blob.
Cache load is now all-or-nothing: on hit all vendors are applied from
the bundle (sub-second); on miss all vendors are parsed from JSON and
a fresh bundle is written to the user cache dir.
Invalidation is driven by bundle_key - a sorted concatenation of all
vendor JSON version strings. Any vendor update invalidates the whole
cache and triggers re-parse on next launch.
Guide wizard (WebGuideDialog) loads the bundled cache into a plain
PresetBundle instead of a separate VendorGuideData struct, removing
the duplicate data model.
generate_system_cache simplified from a per-vendor loop to a single
save_system_presets_cache() call producing one output file.
* Transfer all Preset fields from cache via move assignmet
apply_vendor_preset_group was copying fields manually and missed
bundle_id, user_id, base_id, sync_info, updated_time, key_values,
ini_str. Replace field-by-field copy with move assignment of the
fully-deserialized Preset, then restore the vendor pointer which
is excluded from serialization.
* Ignore cache for future
* Remove not used files
* Ship one preset cache per vendor in place of the profile JSONs
Each vendor's system presets serialize into a single <vendor>.opc built at
package time, and a shipped build carries that file alone — the profile JSON
and its sub-file tree are pruned. The vendor loader, the setup wizard's profile
list and the resource installer all read a vendor through its cache, falling
back to parsing whenever one is absent, stale or unreadable, so the cache stays
an optimization and never a source of truth. Caches hold presets in source form
and resolve inheritance at load, through the same code the JSON path uses.
* Make the preset cache self-describing and load each vendor from the system folder alone
The cached DynamicPrintConfig is keyed by name, through a per-file dictionary of the
distinct opt_keys, the type each was written as, and the distinct enum value names,
instead of by serialization_key_ordinal — a position assigned by declaration order at
static init, where inserting one option shifts every later ordinal and the lookup then
succeeds on the wrong option. Because a name-keyed payload drops the options this build
cannot place rather than being rejected wholesale, the schema fingerprint goes, and with
it the two fallbacks that existed only because an installed cache died on every app
upgrade: the second lookup tier into resources/profiles and the parse fallback to the
same place. A vendor is loaded from <data_dir>/system/ and nowhere else, as on main —
which is what makes the app write its .opc files there again.
* Simplify the preset cache internals after review
* Use the shared temp-dir helper in the preset bundle loading test
* Bound stamp string reads in the preset cache
* Speed up the setup wizard with a profile-data cache
The wizard's per-vendor fast path threw on vendors present only in
resources, falling back to a ~29 s raw JSON scan on every open. Each
vendor now loads from the directory it was found in, and the derived
model/machine/filament/process catalog is cached whole in
<data_dir>/cache/wizard_profile_data.json, stamped by each vendor's
name and version - a fresh cache makes an open one file read, with no
bundle built and no presets installed (~0.2 s vs ~2 s).
* Remove debug SVG dump from a geometry test
* Move the per-vendor cache file format into PresetCacheFormat
* Move the vendor install helpers from PresetBundle into Utils
* rename
* fix flatpak
* change cache version to 1
---------
Co-authored-by: SoftFever <softfeverever@gmail.com>
* Normalize the junction direction vector over XYZE
calc_vmax_junction_deviation() treats the dot product of two jd_unit_vec as a
cosine, but the vectors were scaled by 1 / block.distance, which is the XYZ
length. On an extruding move the E component then pushes the 4D norm above 1 and
the dot product below -1, so the corner reads as straighter than it is and is
planned too fast -- the more so the higher the flow. Measured on a 6 degree
corner at scv 5: 86.9mm/s with no extrusion, 94.4mm/s at 0.029mm/mm, 150.0mm/s
at 0.1mm/mm.
Neither firmware does that. Marlin normalizes over XYZE for any extruding move
(planner.cpp: `if (... || esteps > 0) normalize_junction_vector(unit_vec)`) and
Klipper leaves E out of the cosine entirely, dotting only axes_r[0..2]
(toolhead.py::Move.calc_junction). Normalizing satisfies both: with E normalized
in, the cosine differs from the XYZ-only one by ~1e-5 at printing flow rates.
This is a deliberate divergence from PrusaSlicer, which still scales by
1 / distance -- it carries an older Marlin's behaviour.
Travel moves are unaffected, their vector was already unit length.
Reported by Copilot in review of #15304.
* Test that extrusion rate does not change corner planning
The junction deviation tests were all travel-only, which is exactly why the E
component of the junction vector went unchecked. Cover it: the same corner has
to be planned the same whether nothing, an ordinary 0.42 x 0.2 line, or a fat
large-nozzle line is extruded through it, on both Klipper and Marlin 2.
Reported by Copilot in review of #15304.
* Plan corners with junction deviation where the firmware uses it
The time estimator only ever had the classic per-axis jerk model, which limits a
corner by the largest single-axis component of the velocity change. That is
anisotropic: the same corner is allowed sqrt(2) more speed on a diagonal than on
an axis, which paints a four-lobed ripple around every circular wall in the
actual speed and actual flow views, worst on small parts whose walls are made of
short segments.
Klipper has no classic jerk at all and Marlin 2 has none while M205 J is in use;
both plan corners with junction deviation, which sees only the corner angle. Add
that model and use it for those machines:
- Klipper: derived from the square corner velocity, as the firmware does
(jd = scv^2 * (sqrt(2) - 1) / max_accel), reading the scv from
machine_max_jerk_x, where process_SET_VELOCITY_LIMIT() already stores
SQUARE_CORNER_VELOCITY.
- Marlin 2: machine_max_junction_deviation, which was already loaded into the
machine limits but never reached the planner.
- Every other flavor keeps the classic jerk path unchanged.
The model has no per-axis jerk floor, so this also drops the hard slow spot the
estimator drew at the start of every loop from machine_max_jerk_e.
Toolpaths are unaffected: on a full export the only lines that change are M73.
The junction deviation maths, including Marlin's JD_HANDLE_SMALL_SEGMENTS arc
approximation, is ported from PrusaSlicer's src/libslic3r/GCode/GCodeProcessor.cpp.
The Klipper mapping is not in PrusaSlicer, which ignores SET_VELOCITY_LIMIT.
* Add tests for junction deviation corner planning
Cover the three properties the change rests on:
- a right angle on Klipper is planned at exactly the square corner velocity,
the identity that makes the scv to junction deviation mapping correct, and a
shallow corner is planned far faster than per-axis jerk allows;
- junction deviation gives the same speed whatever the corner's orientation,
while classic jerk keeps its sqrt(2) spread, which is the four-lobed ripple;
- machines that do not plan with junction deviation are provably untouched,
including a Marlin 2 printer that has it disabled.
The test executables that link libslic3r_gui (which links PkgConfig::LIBAV)
have a load-time dependency on the deps-built FFmpeg shared libraries. The CI
unit-test runner only receives the tests artifact, so those libraries were
unresolvable there (Ubuntu 24.04 ships libavcodec.so.60, not .61). Copy the
libraries next to each affected test executable and give it an $ORIGIN rpath,
mirroring the Windows branch that copies DLLs next to every test executable.
orcaslicer_copy_sos now places the copies in the per-config output directory
for multi-config generators, like orcaslicer_copy_dlls does.
Co-Authored-By: Claude <noreply@anthropic.com>
Follow-up to #14785. Routes the tests that still hand-rolled temp paths through
the shared helpers and unifies the temp guards.
- Add ScopedTemporaryDir and a shared ScopedTemporaryPath base under it and
ScopedTemporaryFile.
- Move test_3mf's round-trip .3mf output out of the TEST_DATA_DIR source tree
(a fixed-name leak) and test_toolordering's fixed-name temp .gcode (a sharding
collision) onto ScopedTemporaryFile.
- Move test_config, test_slicing_pipeline_bindings, the test_3mf backup dirs, and
test_preset_bundle_loading onto the guards.
- Make slic3rutils ScopedDataDir compose ScopedTemporaryDir; dedupe
test_network_versions' fixture and delete test_plugin_lifecycle's duplicate.
physical_extruder_map has one entry per logical extruder -- the index space of
nozzle_diameter -- and its consumers size their own arrays from that count. It was
being derived from printer_extruder_id, which is indexed by variant slot: one entry
per extruder+variant pair. An X1 Carbon has one nozzle and printer_extruder_id
{1,1}; an H2D 0.4 has two nozzles and {1,1,2,2,2}. The two spaces coincide only
when every extruder declares a single variant.
The visible effect was on the standby cool-down. set_extruder skips it when the
outgoing and incoming filaments share a physical extruder, and that check is not
gated on IMEX. With the map built from the wrong array, two filaments on a
dual-nozzle machine read as sharing one hotend and the cool-down was dropped --
caught by "Toolchange temperature commands are unchanged when the wipe tower wait
is off", which failed on all five CI platforms with the ;cooldown line missing.
Derive the identity over the nozzle count instead, the same fallback Plater.cpp
already applies where a profile authors no map. A profile counts as authoring one
only when its length matches the nozzle count, so the single-element PrintConfig
default is replaced rather than read as a one-extruder machine. Authored maps pass
through untouched, including the {1,0} numbering permutation the BBL dual-nozzle
profiles ship.
Tests pin the four branches and the length invariant the consumers depend on.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
## Problem
`Toolchange temperature commands are unchanged when the wipe tower wait
is off`
(added in #15144) fails on both Linux runners and passes on Windows and
macOS.
It is the only failing test in the suite, and it has been failing on
main since
that PR merged.
| Job | Result |
| --- | --- |
| Windows x64 / Unit Tests | pass |
| Windows arm64 / Unit Tests | pass |
| macOS arm64 / Unit Tests | pass |
| Linux x86_64 / Unit Tests | **fail** |
| Linux aarch64 / Unit Tests | **fail** |
From the merge commit
([Linux
x86_64](https://github.com/OrcaSlicer/OrcaSlicer/actions/runs/31072382258/job/92531704095),
[Linux
aarch64](https://github.com/OrcaSlicer/OrcaSlicer/actions/runs/31072382258/job/92531704075)),
still reproducing on current main:
```
first difference at trace entry 29
main: M104 S240 T0 ; preheat T0 time: 31s lead 30.9s
branch: M104 S240 T0 ; preheat T0 time: 30s lead 30.3s
```
## Cause
Each preheat entry records the same quantity twice: `lead` at one
decimal, and
`time:` inside the command text as that value rounded to a whole second.
`split_lead` already compares `lead` with a 0.5s tolerance and explains
why the
estimate moves. `time:` sits in the exactly-compared command text, so it
never
got that tolerance — and being rounded, it flips on a drift far below
0.5s
(30.4 and 30.6 render as `30s` and `31s`). Entry 29 is the only entry in
the
163-entry golden whose lead rounds up; every other preheat sits at
30.0–30.4 and
rounds down, which is why it is the only one that fails.
The variation is per-toolchain, not run to run. Both Linux arches
produce
exactly `lead 30.3s`; Windows x64/arm64 and macOS arm64 all produce
exactly
`30.9s`. Repeated local runs are byte-identical. macOS arm64 passing
while Linux
aarch64 fails rules out the ISA — it is floating-point accumulation over
a few
thousand move durations under GCC vs Clang vs MSVC.
The mechanism makes it discrete rather than gradual: the backtrace parks
the
preheat at the first exported line at least `preheat_time` before the
tool
change, so `lead` is `preheat_time` plus the leftover of whichever move
that
landed on. A sub-tenth difference selects the neighbouring move and
`lead` steps
by that move's whole duration.
Entries 1–28 match exactly, including five earlier preheats whose leads
fall
inside the existing tolerance, so the toolpaths themselves are
identical. I also
reverted the two prime-tower commits that landed between the golden's
capture
point and now, rebuilt, and got a byte-identical trace — this is not
behavioural
drift.
That also rules out regenerating the golden: no single capture satisfies
all
three toolchains, and recapturing on Linux would turn the three
currently-green
runners red.
## Fix
Test-only.
- `lead` keeps a tolerance, widened to 1.5s (measured drift 0.6s; a
preheat
actually leaving its backtrace position would move by tens of seconds).
- `time:` is **not** compared across runs at all. Being a rounding of
`lead`, it
carries nothing the tolerance does not already cover, and comparing it
across
runs can only reproduce the flake. It is instead checked against its own
entry's `lead` — a correct rounding keeps `|time - lead| <= 0.5`.
That second point matters: simply tolerating `time:` numerically would
have made
the test blind to a real change, because drift and a wrong rounding both
move it
by 1. The self-consistency check keeps that coverage. I verified it by
changing
`(int) std::round(time_diffs[0])` to `(int) time_diffs[0]` in
`GCodeProcessor::export_lines` — the test fails with
`"time:" is not its entry's "lead" rounded to a whole second`, where a
plain
tolerance would have passed silently.
Everything else is still compared exactly: all M104/M109 values, tool
ids,
block markers, ordering, entry count, and the annotation text including
its
trailing `s`. The other 138 entries remain byte-exact.
No production code, no golden regeneration. The golden file and these
helpers
are used by this one test and nothing else, and the tolerance only
widens, so
Windows and macOS keep passing unchanged. A note is added to the
golden's header
so the next mismatch in those fields is not "fixed" by recapturing.
## How to verify
Before, on Linux:
```bash
git checkout main && ./build_linux.sh -t
ctest --test-dir build/tests -R "Toolchange temperature commands are unchanged" --output-on-failure
# fails at trace entry 29
```
After:
```bash
cmake --build build --config Release --target fff_print_tests
ctest --test-dir build/tests --output-on-failure # 463/463
```