Bambu Studio writes 0 into wall_filament, sparse_infill_filament and
solid_infill_filament to mean "use whichever filament the object is set
to". Bambu Studio and OrcaSlicer 2.4 define these min 0 and accept it;
OrcaSlicer 2.3 and earlier used the 1-based scheme (min 1, default 1)
and reject it with "0 not in range [1.000000,...]". Sidecar images are
version-tagged, so an install can be pinned to one of those builds.
Same shape as the -1 inherit markers from #1201 with a different marker,
so the allowlist becomes a key-to-marker map rather than one global
constant. The buckets must not bleed: a -1 on a filament index is a real
value, and a 0 on a raft field is a setting the user chose.
The key is removed rather than rewritten, which is what makes it safe on
every build. The CLI then uses its own default: 0 where 0 was legal
(unchanged), 1 on the older builds, which is what "the active filament"
means under that scheme.
The preview slice never ran the sanitiser at all, so a file that sliced
fine could still fail its automatic plate preview and fall back to the
painted-face heuristic. It matters more there than in a real slice: the
preview runs on the file's own embedded settings, so there is no
--load-settings pass that could supply a replacement for a field the
range validator has already rejected. That also explains the reported
"same error on a later attempt of an unchanged file" without any second
copy of the keys -- the validator that emits it reads the merged global
config, which per-object model_settings.config overrides never reach.
The sanitiser moves to utils/threemf_tools so the service can use it
without importing a route module, and both preview callers pick it up
from one place. Drops _strip_3mf_embedded_settings and its constant,
which have had no callers since the strip-everything experiment was
reverted.
An archive that showed the green GCODE badge could re-import into the
File Manager as a source-only project with no Print button, seemingly at
random.
Nothing was ever lost from the file. The download serves the stored
bytes verbatim and the G-code was still in the zip; the two sides simply
asked different questions. Archives looked inside the file. The library
looked at the filename. So a sliced 3MF stored as Foo.3mf rather than
Foo.gcode.3mf earned the badge and lost the Print button, and which one
you got depended on how the print had reached the printer -- a slicer's
LAN send names it .gcode.3mf, a per-plate export or a cloud-dispatched
print does not.
Both sides now ask one shared predicate about the zip itself, and every
route into the library classifies on content. Only the central directory
is read, and only when the name has not already settled it, so ingest
costs nothing extra -- the external scan opens each 3MF for its
thumbnail regardless. Rows already stored are re-checked once, internal
ones only: an external row points at a mount that may be slow or absent,
and startup is the worst place to discover that.
The Slice action moves with it. Its refusal to slice an output was as
name-bound as the Print gate, and without that a file that correctly
gained a Print button would have offered to re-slice its own G-code.
The forward fix reads the array the fitted plate points at, but only for
archives made after it. Everything already in the library stays blank, and
preheat keeps falling back to the keep-warm bed temperature whenever one of
those jobs is reprinted from the queue - 0 of 455 real 3MFs had resolved.
A one-shot pass re-reads the 3MF already on disk, gated by a settings flag the
way #2614's repair is: the rows it cannot fill are exactly the ones it would
reopen every boot. It fills NULLs only. Nothing recorded is overwritten, an
archive whose file is gone stays NULL, and a corrupted 3MF is skipped rather
than failing startup.
The plate mapping moves to threemf_tools.bed_temperature_from_config so the
ingest path and the repair cannot read a 3MF differently - the same drift
move.
_extract_settings_from_content is deleted. Nothing called it anywhere in the
repo, and it carried the old bed_temperature mapping this issue fixed.
The Vortek rack holds six hotends, and a multi-colour plate is sliced to
use a different one per colour so it can skip the purge. Which of the six
each colour takes is not in the 3MF. The same plate, sliced and sent twice
from Bambu Studio with a different choice each time, produces two files
that differ only in rounding in the last digit of a few extrusion figures
-- the filament grouping, the toolchange stream, the 120 nozzle-change
markers and project_settings.config are all identical. The choice travels
only in the dispatched nozzle_mapping.
Bambuddy had no way to state it, so those plates went out with no nozzle
assignment at all and the printer chose for itself. That is what levelled
on one hotend and printed with another, millimetres above the plate.
Every rack-bound filament now carries a position picker beside its AMS
slot dropdown, listing all six with the nozzle each holds. An empty
position, or one holding the wrong diameter or flow type, is shown greyed
out with the reason rather than hidden, so someone looking for position 4
finds it. The choice is per filament *group* rather than per slot, because
a group is one hotend: two filaments the slicer grouped together share it
and cannot point at different positions.
Nothing has to be picked. Positions are assigned automatically, preferring
one already loaded with that colour, which on the plate this was built
against reproduces Bambu Studio's own pick exactly.
A nozzle currently picked up onto the carriage is offered too. The
firmware drops its rack position from the report entirely rather than
sending a placeholder (#943), and refusing it would rule out the position
most likely to be wanted -- the one the last print left mounted. Only
recoverable when exactly one position is missing; two gaps are genuinely
ambiguous and stay unavailable.
Positions are re-checked at dispatch, not just when queued, because the
rack can be re-loaded in between. The two failure modes differ on purpose:
an explicitly chosen position that no longer fits stops the print, names
what the position now holds, and deletes the uploaded file from the SD
card so it cannot be started by hand either -- an operator who named a
hotend must not silently get a different one. An automatic assignment that
cannot be made instead falls back to letting the firmware choose, which is
what happened before any of this existed.
The pick is stored as {group: position} rather than as the expanded
nozzle_mapping, though that is what goes on the wire. That column means
"Bambu Studio decided, forward verbatim", and only the group-and-position
form can be re-checked against what is actually mounted at dispatch.
The existing multi-rack refusal in extract_nozzle_mapping_from_3mf stays.
It still guards the #2800 fallback, which can only ever name one rack id.
Measured on the maintainer's H2C: rack position n is physical nozzle id
15 + n, confirmed by cross-referencing two captured dispatches against
Bambu Studio's own dialog. extruder_max_nozzle_count names which carriage
is the rack straight from the file, and is read rather than assumed -- a
fourth independent confirmation of the carriage indices fixed in 45dc139.
The print dialog is also wider, on every printer. Its filament rows carry
the most horizontal content in it and adding a picker truncated names to
"Bamb...". The column widths themselves only change on a rack machine.
Tests: 44 unit covering the plan, the resolver, the mounted-nozzle
recovery and every refusal; 9 dispatch integration asserting the two real
captures end to end; 7 API round-trip; 33 frontend. The API ones exist
because two integration bugs got through a green suite that tested the
pieces and not the seams -- the group data reached only one of the three
filament-requirements routes, and the field was declared on every schema
except the create one, where Pydantic dropped it in silence.
The two carriages were the wrong way round: extruder index 0 was treated as
the fixed hotend and index 1 as the swappable rack, and it is the other way
about. A plate using both was levelled with one nozzle and printed with the
other, several millimetres off the plate.
Three sources agree, and disagreed with the code. Telemetry reports
ams_extruder_map {'0': 1, '1': 0, '2': 0}. BambuStudio, dispatching a plate
that used all three of those AMS units, sent the filament from the unit on
extruder 1 to physical nozzle 1 and the ones on extruder 0 to rack positions
16 and 18, and that print completed. And the two constants could not both
have been right: _FIXED_NOZZLE_ID is 1 while the fixed extruder was 0, in a
scheme where physical nozzle id N sits on extruder N.
The old value came from the #2800 hardware A/B, where [17, -1, -1, 1] printed
in mid-air and [1, -1, -1, 17] printed correctly. That result stands -- it
established which wire worked. The extruder indices were not measured by it;
they were inferred by pairing the working wire with a slot_extruders list
produced by the 3MF reader that has since turned out to mis-read exactly
these files. The reasoning is recorded at the constants so a future
regression report is not re-litigated from scratch.
Also withholds nozzle_mapping entirely when more than one filament group
needs the rack. Two groups on one extruder means that extruder is a rack and
the plate wants a different hotend per group -- which physical slot each
takes is the slicer's choice against the live rack and is stated nowhere in
the file, since both groups can carry identical diameter and nozzle type.
Studio dispatched such a plate to 16 and 18; nothing here can reproduce that,
and answering anyway is what printed in mid-air, so the firmware picks.
Restores the fixed 32-entry padding that dfeac792f replaced with the plate's
slot count. That was derived from a single 3-entry capture which turned out
to be a calibration job; Studio's dispatch of a real project print on the
same machine is 32 entries.
Both constants are read in one function, on the nozzle-rack path, so no other
model is affected. Verified on hardware: the plate that printed in mid-air
now prints.
The print uploaded, the printer took the command, and stopped at once with
HMS 0500-4047 -- "the available hotend quantity or model does not match the
sliced file". nozzle_mapping told the printer one of the plate's filaments
went to no hotend while ams_mapping named the tray it comes from, and the
firmware will not start a job on that contradiction.
Each filament in a 3MF names the group it belongs to, and on every other
dual-nozzle Bambu the group number is also the extruder index, so it was
read as one. On a rack machine it is not: the rack carriage holds six
hotends to the fixed carriage's one, so the slicer writes a group per
nozzle rather than per carriage. The failing plate carried groups 0, 1 and
2 against a two-entry physical_extruder_map, and the filament in group 2
was dropped -- indistinguishable downstream from a slot the plate does not
print, which is what reached the wire as -1.
extract_nozzle_mapping_from_3mf now resolves the group through the table
the file states for itself, the <nozzle id extruder_id> elements in
slice_info.config. Files carrying no such table keep the direct index, so
H2D slices are unaffected. A filament that still cannot be placed drops
the whole mapping with a logged reason instead of half an answer: the
firmware then picks its own nozzle, which is the pre-existing behaviour
and far better than an answer that contradicts itself.
Two related faults fixed in the same pass. The mapping was read across
every plate in the file, so on a multi-plate project a slot took its
extruder from whichever plate came last; it is now scoped to the plate
being dispatched, in extract_filament_requirements as well. And the array
is now one entry per filament slot, matching BambuStudio's own dispatch of
[1, 16, 16] for a three-filament plate, rather than padded to a fixed 32.
Verified against the file that failed: slot extruders [-1, 1, 0] became
[0, 1, 0], and the wire [-1, 16, 1, -1 x29] became [1, 16, 1].
--load-settings is authoritative, so since #1881 four support fields
travel the other way -- enable_support, the two filament slots, and
support_type -- lifted out of the source 3MF and written over the picked
process preset. Bambu's shipped presets all set enable_support: 0
because supports are a per-print decision, and without the carry a
project exported with PVA in the interface slot sliced single-material.
But the carry ran in both directions, and the off direction is the one
nobody asked for. Nearly every published model ships with supports off,
so slicing one against a custom preset that deliberately enabled them
stripped them back out. The reporter's preset sets enable_support 1,
support_type normal(auto), support_style snug; the slice came back
disabled and tree(auto). Only the style survived -- it is not one of the
four carried, and they had re-entered it in the slice dialog.
The source can now switch supports on, never off. Nothing is lost:
every shipped preset has them off, so a preset that has them on is a
deliberate choice by whoever wrote it, and a file that wants supports
still gets them with its slot assignments. A file that never declares
enable_support is treated as off -- no intent to act on.
The truthiness rule ("1", true, 1, and the forks that write neither) now
lives in one place as supports_enabled_in_config(), shared with
extract_support_filament_slots_from_3mf, which had it inline.
Also log the carry with the fields it took. The slice dialog shows the
picked preset's values, so a carried field silently disagrees with what
was on screen and this step logged nothing at all -- the report chased an
unrelated sanitiser line about the source file's own settings, which was
the only thing in the log that mentioned any of these keys.
Everything the completion path needs to split a print's filament across
the trays it fed from lived only in memory: the dispatched plate and
slot-to-tray mapping, the spool-assignment snapshot, and the tray-change
log. A print that outlived a restart lost all of it and fell back to
what the printer reports at completion -- which, with AMS Filament
Backup on, is the substitute tray. The whole print was charged to the
spool that only finished it while the spool that ran dry was charged
nothing.
Persist that context in a new active_print_sessions row, append tray
changes as they happen, and restore both the session and the printer's
tray-change log at restart recovery. Seed the log from the current tray
when there is nothing to restore, since last_loaded_tray advances even
when no change is logged.
Rank the queue item's stored ams_mapping above the printer's live
mapping field, which is what backup rewrites. Recover plate_id from the
archive or queue item, and give extract_layer_filament_usage_from_3mf a
plate_id instead of taking the first .gcode member -- a Bambu Studio
export stores plate 2 first, so per-layer figures were measured against
the wrong plate for both inventory backends.
Stop auto-unlinking a spool assignment when its slot reports empty
during a running print. At a runout the spool is still in the AMS, and
dropping the link leaves the completion path nothing to charge.
Capture the print-start context for both inventory backends. Spoolman's
own durable row (#1820) carries its plate-scoped figures and dispatched
mapping but not the tray-change log, and its slot assignments -- the
way. Registration in _active_sessions stays gated, since on_ams_change
reads it to decide whether to skip the remain%-based weight sync (#880).
Previewing a sliced multi-plate 3MF from the File Manager showed a plate
nobody picked. The library route took no plate parameter at all, so the
one the viewer has always put in the URL was dropped -- FastAPI discards
unknown query parameters silently. Both routes then fell back to the
first .gcode member of the zip, and member order is whatever the slicer
wrote: the reported file stores plate_2.gcode ahead of plate_1.gcode.
Nothing that opens the viewer from the File Manager passes a plate, so
there was no way to ask for another one either.
Plate resolution now lives in threemf_tools and both routes share it.
select_plate_gcode_name() returns the named plate or None, so a caller
serving an explicit choice can 404 instead of rendering something else;
default_plate_gcode_name() returns the lowest-numbered plate. The viewer
gained a plate switcher, and keeps the choice in its URL so a link to one
plate survives a reload. Filament colours follow it too -- they were
taken from the first plate regardless of which one was on screen.
G-code injection and the finish-photo max_z_height read shared the old
first-member fallback and now resolve the lowest plate as well.
An H2C ran its startup clean and bed levelling on one hotend, switched,
and then printed several millimetres above the plate. The same job from
Bambu Studio was fine.
The H2C is the only model that mounts its nozzle from a rack of six, and
a print command names that nozzle by physical rack position -- the
firmware reports those as 16 to 21 -- not by the extruder index, 0 or 1,
every other dual-nozzle printer uses. Bambuddy only ever had a rack
position when a job arrived through the Virtual Printer, which captures
Bambu Studio's pick and replays it (#1780). Anything queued from the
library, an archive, the webhook or a slicer pipeline carried none, so
the field was omitted and the firmware chose -- and its choice need not
match what the file was sliced for.
The scheduler now derives the per-slot extruder assignment from the file
it is about to send, and the MQTT layer resolves it against the rack
position the printer reports live. Both are needed: the file knows which
side a slot prints from, only the printer knows which hotend is in the
carriage, and it can be swapped from the touchscreen between queueing a
job and printing it.
Derived at dispatch rather than at creation because that is the first
point knowing both the real printer and the real file -- an item can be
created unassigned, reassigned later, or have its file swapped for a
G-code-injected copy. One call therefore covers the print dialog, bulk
library adds, the webhook and pipeline runs, and no column is needed.
extract_nozzle_mapping_from_3mf is deliberately untouched. Its output
feeds the AMS matcher, where nozzle_id is compared against a tray's
extruder_id as a hard filter, and physical_extruder_map is what makes
that comparison correct -- on an H2D it is [1, 0] and flips the two.
Dropping the translation to suit the rack would send every dual-nozzle
AMS match to the wrong extruder. The dense per-slot form is a separate
function reusing the same output.
Nothing here can fail a dispatch. The command is built and published with
no exception handler above it, and the queue item is already committed as
printing by then, so a bad input has to degrade to "firmware picks"
rather than wedge the item. resolve_rack_nozzle_mapping validates every
input and raises nothing; an unresolvable mapping, an unparseable value
or an unknown rack position all omit the field, which is the behaviour
that existed before. Slot IDs are bounded before the dense list is built:
they come from the file, and one declaring filament id="50000000" would
otherwise allocate a fifty-million-entry list on the dispatch path.
Two things are not guessed. A job printing only from the fixed hotend is
still left to the firmware, because that nozzle's physical ID is not
confirmed by a known-good capture. And the rack is taken to feed extruder
0 from a single hardware observation -- if that is flipped, a one-sided
job matches nothing and falls back to the old behaviour, so only a job
using both nozzles at once could be harmed, which is what a second
capture needs to confirm.
Confined to the H2C throughout. Building the print command for 21 model
spellings with and without the new argument changes exactly three of them
-- H2C, O1C and O1C2. The other 18, including H2D and X2D, are identical.
Reported by @tru3l3gend, who diagnosed it on real hardware against a
working Bambu Studio dispatch, established the rack ID range and supplied
a patch.
The photo fired the moment layer_num reached total_layer_num. That edge is
where the printer *starts* its final layer, not where it finishes it: the
reporter's H2C capture shows it arriving at 92% with mc_remaining_time=2,
three minutes and seventeen seconds and one filament change before the print
actually ended, so the frame caught the toolhead mid-print over the model.
The trigger also latched _finish_photo_captured, which locked out both the
stage-22 and FINISH triggers for the rest of the print — so on firmware that
never reports an end-of-print filament unload (H2C and A1 Mini confirmed)
nothing could replace the bad frame.
Remove the last-layer trigger. The photo is now taken at the FINISH-state
trigger, which every model sends and which lands after the toolhead parks.
Since Bambu's end G-code drops the plate ~100mm just before that, restore the
framing before capturing: absolute G90/G1 Z to max_z_height + 10mm clearance,
settle, capture, then drop it back so the print is as reachable as the printer
left it. Absolute is the safety argument — that Z is a height the toolhead
occupied seconds earlier, so it is inside the travel limits by construction and
leaves the nozzle above the part, and it is unambiguous across model families
because Z is the nozzle-to-bed gap whether the bed moves or the toolhead does.
M211 is never touched (#2579). This is what #1145, #1397 and #1565 asked for.
The height is only trusted when two independent sources agree: the archive is
matched by the finished print's subtask_name by equality (not LIKE, so "Cube"
cannot resolve to "Cube v2"), and its layer count from the 3MF must match the
layer count the printer reported over MQTT. Matching on "most recent archive
for this printer" was not safe — on_print_complete pops the _active_prints
binding concurrently, and a print Bambuddy failed to archive would have
resolved to its predecessor. A wrong height is the one failure that could drive
the nozzle into the model.
The move is additionally skipped when the print height is unknown, when a queue
item is pending for the printer, when the printer has left FINISH, and when the
new finish_photo_restore_plate setting is off.
for every FINISH-state capture — which is what shipped the mid-print photo —
the bank is used only when the dispatcher recorded that it injected End G-code
into this print, since a SwapMod snippet may have ejected the plate. The flag is
handed over in two steps (mark_pending at dispatch, adopt at print start) so it
can never outlive its print: a job started from the slicer or SD card adopts
False rather than inheriting its predecessor's answer. Those prints also skip
the plate move outright, bank or no bank.
The bank now refreshes on mc_percent advances as well as layer changes, via a
new on_print_progress callback. Layer changes stop the instant the final layer
begins, which left the #1867 fallback frame stale by the whole length of that
layer; progress keeps ticking there and freezes before the End G-code runs, so
a swapped plate still cannot reach the bank. The last-layer throttle exemption
is dropped, since it would now fire a grab on every percent tick.
On the timelapse path the moment producer returns early, so the consumer does
the restore itself before its live-grab fallback — the documented usual outcome
on P1-series, where the video has not transferred by the time the notification
goes out and the shipped photo was of an already-dropped plate. The two waits
are now derived from the settle window and the video poll timeout rather than
hardcoded; at the old flat 75s that fallback was guaranteed to be cut off
mid-settle.
extract_max_z_height_from_3mf reads only a bounded prefix of the plate G-code,
since a sliced plate is routinely tens of megabytes and the header is ~40 lines.
It returns None for missing, unparseable, zero and negative values so callers
must treat "don't know" as such rather than defaulting.
The filament list is positional from the modal down to the CLI's
filament_N.json parts, but for a source that already carries slice_info the
requirements endpoint returns only the slots the plate consumes. A
MakerWorld model declaring four filaments and painting with slot 4 alone
therefore showed one dropdown, whose PETG pick the CLI bound to slot 1 —
slot 4 sliced with the profile baked into the source, and the print came out
PLA.
The endpoint now takes full_slots, which widens that answer to every
project slot with used_in_plate flags, and only the slice modal passes it.
Print-time AMS matching shares the endpoint and keeps the used-only list, so
it still asks for exactly the spools the job needs.
The Queue listing serialized each item by opening its 3MF and re-parsing
slice_info.config three times (print time, filament usage, bed type) on
every poll, per connected client, even for unchanged files. Add a single
combined extract_plate_metadata_from_3mf() cached by (path, plate_id,
mtime_ns, size); the three legacy helpers delegate to it. An unchanged
queue now does no repeat 3MF parsing.
Three bugs on the same PLA-model + PVA-support flow, discovered in
sequence:
(A) substitute_unused_plate_filaments inspected only object geometry
(per-object extruder metadata + paint_color triangles) so a support-
only slot was silently treated as "unused" and the user's PVA profile
got overwritten with slot 1's PLA.
(B) _extract_filament_info stripped filament_is_support==1 entries,
hiding PVA from unsliced source archive cards even when the project
explicitly configured it.
(C) --load-settings is authoritative over the source's project_settings.
config, and Bambu's shipped process presets ship enable_support=0
(supports are a per-print decision, not per-quality). So even with
(A) fixed, the sliced output had supports disabled and the PVA slot
loaded but never consumed. Inverts BambuStudio GUI's semantics where
the project overrides the preset.
Fixes:
- New extract_support_filament_slots_from_3mf reads enable_support +
support_filament + support_interface_filament from project_settings.
config; substitute_unused_plate_filaments unions it into the geometry-
derived set.
- _extract_filament_info returns all configured filament types + colours.
- New _patch_process_support_settings overlays four fields (enable_
support, support_filament, support_interface_filament, support_type)
from the source 3MF onto the picked process preset JSON before
--load-settings sees it. Deliberately targeted to what fixes#1881
without widening to a full project-over-preset merge.
extract_nozzle_mapping_from_3mf has a single-active-extruder shortcut
(added in #851 for #827) at threemf_tools.py:354 that runs before the
per-filament group_id mapping. It fires whenever
extruder_nozzle_stats reports exactly one extruder as active. On
multi-nozzle Bambu printers (H2D / H2D Pro / X2D / H2C) the slicer
under-reports the second extruder when its nozzle volume-type isn't
enumerated in the slice's profile (common with HT-AMS / High-Flow
asymmetric setups, e.g. HT-AMS feeding the right nozzle on an H2D):
['Standard#1', 'Standard#0'] even when both extruders are genuinely
used. sum(active_extruders) == 1 → every filament was force-assigned
to physical_extruder_map[active_idx], the authoritative group_id was
discarded, and the Filament Mapping panel showed both filaments
badged L with the auto-match hard filter blocking the wrong-nozzle
tray as "Type not found".
Bug is parser-side and model-agnostic, not gated on AMS hardware —
typical dual-AMS H2D slices contain ['Standard#1', 'Standard#1']
(sum==2), never enter the shortcut, and work fine. Physical extrude
routing was not affected (gcode + project_file nozzle_mapping path
from #1780 is authoritative). User-visible harm: wrong L/R badge and
no auto-match for the second nozzle.
Gate the shortcut on len(distinct_group_ids) <= 1 from
slice_info.config. The slice_info parse is hoisted above the shortcut
and reused by Priority 1, so the gate adds zero extra I/O. The gate
only narrows the shortcut — it can't widen the bug onto any
previously-working slice. Generalizes to H2C and any N-nozzle printer
for free (no per-printer branching).
The 3MF parser sums prediction + weight across every plate (#1593) so the
archive card can headline the whole project — correct for the card, wrong
for the completion notification of a single plate. The queue UI already
re-reads the 3MF per-plate at print_queue.py:272-285; mirror that for the
notification path so Discord / Pushover / email show the plate's actual
duration and grams instead of the project sum. Helper fails open on every
error path so a missing or corrupt 3MF can't block the notification.
Reporter on a multi-printer farm with 40+-plate runs needed to walk to
the printer with the right physical plate, but the queue and the
scheduling modal didn't surface curr_bed_type the way the archive card
already did.
New utils/threemf_tools.extract_bed_type_from_3mf helper (per-plate) so
both the queue API and the /plates endpoint can return per-plate values.
PrintQueueItemResponse.bed_type populated from archive.bed_type /
library_file.file_metadata['bed_type'] as the default, then overridden
per-plate via the helper when item.plate_id is set. /archives/{id}/plates
(and library equivalent) include bed_type in each plate object.
Per-plate accuracy matters because archive.bed_type is captured at
ingest as only the first plate's value (services/archive.py:235) -
a 40-plate 3MF mixing PEI + Engineering returns PEI at the archive
level for every plate. The helper re-reads the 3MF and returns the
truth.
Frontend: queue card meta row + PlateSelector per-plate row + PrintModal
header all render bed icon + canonical label via the existing
getBedTypeInfo() helper, same as the archive card.
The Slice dialog listed every process / filament preset regardless of
the chosen printer, and always defaulted to the first listed preset
rather than what the 3MF was prepared with (#1325).
Matching uses the slicer's own compatible_printers list for imported
(local) presets and falls back to the "@BBL <model>" name suffix for
cloud / standard presets. Compatibility-unknown presets are never
hidden.
Defaults: the printer and process dropdowns default to the preset
names embedded in the source 3MF's project_settings.config when those
presets are available; the per-slot filament and process pre-picks
prefer a printer-compatible preset, and switching the printer re-picks
any selection left incompatible.
- UnifiedPreset gains compatible_printers, exposed for the local tier
- plates endpoints return embedded_printer / embedded_process
- new frontend util slicerPrinterMatch.ts; extract_embedded_presets_from_3mf
- slice.otherPrinters added across all 9 locales
Step 0 empirical test on 2026-05-20 disproved the "CLI cannot re-slice a
3MF for a different printer" assumption: feeding an 18-color H2D-bound
Trent900.3mf to the X1C bundle via /slice produces valid X1C G-code in
1.8s, with bed (256x256), kinematics, nozzle count, machine_start_gcode,
and bed_exclude_area all coming from the target bundle.
- SliceModal: drop !printerMismatch from isReady; remove the banner and
the sourcePrinterModel / printerProfileName / printerMismatch state
entirely. Cross-printer slicing is now indistinguishable from a normal
slice; the picker already shows the target printer.
- Remove slice.printerMismatch from all 8 locales.
- API cleanup: drop source_printer_model from /library/files/{id}/plates
and /archives/{id}/plates responses, drop the field from
frontend/src/types/plates.ts (PlateMetadata + LibraryFilePlatesResponse),
delete extract_source_printer_model_from_3mf from threemf_tools.py and
its 6 unit tests. Zero remaining consumers.
- i18n discipline cleanup in SliceModal.tsx (same drop): strip every
inline English defaultValue / positional fallback from t() calls (22
sites). Add slice.bundle / slice.bundleNone / slice.bundleAllRequired
to all 8 locales — they had no entry in any locale file and were being
served from the inline English fallback for every non-English user.
- Tests: rewrite the mismatch-warning test to assert "no banner, Slice
enabled" when models differ (regression guard); delete 2 obsolete
tests covering gate states that no longer exist.
Five stacked slice-pipeline bugs that each made the modal's profile picker
theatrical for 3MF inputs:
(1) `_strip_3mf_embedded_settings` removed `model_settings.config` /
`slice_info.config` / `cut_information.xml` along with
`project_settings.config`. The CLI silently exited after
"Initializing StaticPrintConfigs" — exit 0, no result.json — and
Bambuddy masked the failure by re-running with embedded settings
and the source's bound printer. Strip removed from the dispatch
path entirely.
(2) Standard-tier preset stubs lacked the `type` field, so the CLI
rejected `--load-settings` with rc=-5 ("input preset file is
invalid") and the same masking fallback fired. Added
`_SLOT_TO_PROFILE_TYPE` so each stub carries the right
machine/process/filament discriminator.
(3) Sliced-archive cards listed every project-wide AMS slot (16+
swatches for a 2-color print). `slice_and_persist_as_archive` now
reads `filament_type` / `filament_color` from the sliced output's
`slice_info.config` (which `ThreeMFParser` already gates on
`used_g > 0`) instead of inheriting from the source archive.
(4) SliceModal had no warning when the picked printer profile didn't
match the source 3MF — the CLI rejects cross-printer slices
(rc=-16) and fell back to embedded settings, producing wrong-printer
g-code that errored at print dispatch. Plates response now exposes
`source_printer_model`; the modal compares against the picked
profile name and disables Slice + shows an inline warning on
mismatch.
(5) MakerWorld URL-paste resolver listed plate instances without
showing which printer each was sliced for (`/instances/hits`
omits compatibility info that lives on `design.instances[]
.extention.modelInfo`). The resolve route now joins both payloads
by instance ID and forwards `compatibility` + `otherCompatibility`
onto each hit; the MakerWorld page renders "Sliced for {primary}"
+ "Also marked compatible: ..." per row.
Tests: 6 unit tests for `extract_source_printer_model_from_3mf`, 1 for
filtered filament metadata via ThreeMFParser, 2 for makerworld resolve
compat-merge (happy path + missing modelInfo), 3 frontend SliceModal
tests for the printer-mismatch warning + Slice-disabled gate. New i18n
keys `slice.printerMismatch`, `makerworld.slicedFor`,
`makerworld.alsoCompatible` across all 8 locales.
The slice modal previously rendered exactly one filament dropdown and
silently truncated multi-color 3MFs to a single profile, producing wrong
colours on every multi-filament print. End-to-end fix across sidecar,
backend, and frontend.
Sidecar (orca-slicer-api / bambuddy/profile-resolver, separate commit):
- /slice accepts up to 16 repeated filamentProfile parts; slicing
service materializes each and joins paths with `;` for
--load-filaments.
- /profiles/bundled emits filament_type and filament_colour per leaf
so the bundled tier carries metadata into the modal.
Bambuddy backend:
- SliceRequest gains filament_presets: list[PresetRef]. Validator
accepts three shapes (multi-color array, source-aware singular,
legacy bare-int id) and lands them all on a populated array before
the route handler runs — fully backwards-compatible.
- SlicerApiService.slice_with_profiles takes filament_profile_jsons:
list[str] and sends one filamentProfile multipart part per profile
(in submission order) so the sidecar receives N profiles cleanly.
- New service slice_preview runs the sidecar's slice_without_profiles
against an unsliced project file's embedded settings, parses the
result's slice_info.config, and returns the canonical per-plate
filament list. Cached by (kind, source_id, plate_id, content_hash)
with LRU eviction at 256 entries, per-key asyncio.Lock prevents
thundering-herd; transient sidecar failures are NOT cached so they
retry naturally; parse failures ARE cached (deterministic property
of the input, no point re-running).
- /filament-requirements endpoint chain: slice_info.config (existing,
sliced files) → preview-slice (new, unsliced project files) →
project_settings.config + painted-face heuristic with 5% noise
threshold (sidecar-down fallback).
- threemf_tools gains extract_project_filaments_from_3mf and
extract_plate_extruder_set_from_3mf — the latter unions object
top-level extruder, per-part overrides, and painted-face quadtree
leaves (1-E nibbles in paint_color attrs of <triangle> elements
inside per-object .model files).
- Cloud preset listing no longer fetches per-preset detail (Bambu's
rate limit at ~10/sec returns 429 on every request for users with
50+ presets). Unified-listing dedup pass instead backfills metadata
cross-tier so a cloud entry that wins dedup over a same-named local
entry inherits the local's filament_type / filament_colour.
Frontend:
- SliceModal multi-step: plate-picker first when the source is a
multi-plate 3MF, then preset dropdowns. One filament dropdown per
AMS slot the plate actually uses, each pre-picked by metadata
match against user's local + standard presets via existing
colorsAreSimilar / normalizeColorForCompare utils.
- SliceModal-only tier priority is now local → cloud → standard
(was cloud → local → standard). Other consumers of /slicer/presets
keep the existing cloud-first order.
- Submits filament_presets array; backfills the legacy singular
filament_preset from the array's first entry for stale-tab
compatibility.
- i18n keys added across all 8 locales: slice.filamentSlot,
slice.tier.{local,cloud,standard}, slice.cloud.{notAuthenticated,
expired,unreachable}, slice.noPresetsForSlot,
slice.allPresetsRequired (en + de fully translated; six others
seeded with English copies pending native translation, matching
the project's existing flow).
Permissions: no new endpoint paths added. Preview-slice runs inside
/filament-requirements (LIBRARY_READ / ARCHIVES_READ) and multi-filament
dispatch runs inside POST /slice (LIBRARY_UPLOAD). No auth surface
widened.
Tests: 6 SliceRequest schema tests for multi-filament + legacy-new
precedence; 9 unit tests for slice_preview cache behaviour (LRU
eviction with lock cleanup, content-hash invalidation, concurrent
thundering-herd guard, no-cache-poison on transient sidecar failure);
15 unit tests for the two new threemf_tools helpers (5 + 10 cases
including the 60/40 painted-threshold regression pin); a multi-filament
wire-format test pinning the multipart part count + order; 22 frontend
SliceModal tests covering plate picker, multi-color render,
metadata-aware pre-pick, manual override, and the new tier order.
Auto-Print G-code Injection had two reviewer-reported bugs from the initial
ship:
1. Start snippets were prepended to the entire plate_X.gcode, landing
before the printer's own bed-heat / homing / nozzle-prime sequence —
so a Swapmod start snippet that assumed nozzle-at-temp ran on a cold
printer (pleite). Anchor injection at "; MACHINE_START_GCODE_END" so
snippets land where a slicer-side custom-start-gcode would. Files
without the marker keep prepend behaviour as a fallback with a
warning log.
2. Placeholders like "G1 Z{max_layer_z} F600" were written verbatim;
firmware parsed them as Z1 and crashed the head into the print on
tall models — real safety bug (DevScarabyte). Added a header parser
for the 3MF "; HEADER_BLOCK_START..END" block (lowercased keys,
[units] suffix stripped, spaces -> underscores) and a Prusa-style
{name} substitution pass over both start and end snippets before
injection. Supported placeholders: {max_layer_z} / {max_print_height},
{total_layer_number} / {total_layers}, {total_filament_weight},
{total_filament_length}, plus any other normalised header key.
Unknown placeholders are left verbatim with a warning — a typo never
silently expands to an empty string.
16 new regression tests across 4 new classes in test_gcode_injection.py
(anchored injection + missing-marker fallback, placeholder substitution
including alias resolution + unknown-pass-through, direct unit tests
for each new helper). All 2195 backend unit tests pass.
Wiki print-queue page updated with the supported placeholder list and a
{max_layer_z} safety callout for park moves.
Per-model start/end G-code snippets configurable in Settings (Workflow
tab). Queue items get "Inject G-code" toggle — scheduler injects
snippets into a temp 3MF copy before FTP upload. Supports Farmloop,
SwapMod, AutoClear, Printflow 3D and similar bed-clearing systems.
Original files are never modified.
Dual-nozzle H2D/H2D Pro: filament matching now respects nozzle assignments
from the 3MF file. Each AMS unit feeds a specific nozzle (L/R), and the
scheduler/frontend constrain matching to only trays on the correct nozzle.
Falls back to unfiltered matching when no trays exist on the target nozzle.
L/R badges shown in the filament mapping UI. Translated in en/de/ja/it.
Fix AMS slot config overwritten on startup: on_ams_change unconditionally
unlinked BL spool assignments on every MQTT pushall, then re-assigned them
sending ams_filament_setting without setting_id — clearing the printer's
filament preset. Now compares spool RFID identifiers before unlinking.
Fix BL spool detection false positives: removed tray_info_idx from detection
logic in both backend is_bambu_lab_spool() and frontend isBambuLabSpool().
Third-party spools using Bambu generic presets had GF-prefixed tray_info_idx
values, causing misidentification. Now uses only tray_uuid and tag_uid.
SQLite WAL mode with 5s busy timeout reduces "database is locked" errors.
The CodeQL cleanup in "Housekeeping" (2b11efd) bulk-narrowed except
clauses across 50+ files, breaking FTP uploads on ALL printer models.
ftplib.error_perm (550 errors) is not a subclass of ftplib.error_reply,
so diagnose_storage() CWD failures escaped the handler and prevented
STOR from ever executing — causing 100% upload failure and HTTP 500s
on /api/v1/archives/{id}/reprint and /api/v1/library/files/{id}/print.
FTP fixes:
- Remove diagnose_storage() from upload hot path
- Change all except (OSError, ftplib.error_reply) to
except (OSError, ftplib.Error) across bambu_ftp.py
Exception handling reverts (9 files):
- Revert narrowed except clauses back to except Exception in route
handlers and service code where broad catches are intentional
defensive programming (archive parsing, HTTP clients, 3MF/ZIP
processing, Home Assistant, firmware checks)
- Keep narrow exceptions only where safe (single-op blocks like
int(), file.unlink(), socket.close())
- Remove unused XMLParseError imports from archive.py, threemf_tools.py
Closes#287
Implement accurate per-filament usage tracking for Spoolman integration,
similar to OpenSpoolman v0.3.0. This replaces the previous single-spool
reporting with multi-material aware tracking.
Features:
- Parse G-code from 3MF files at print start to build per-layer,
per-filament cumulative extrusion maps
- Store tracking data in new `active_print_spoolman` database table
(survives server restarts for long prints)
- Report accurate partial usage when prints fail/cancel based on
actual layer progress and G-code data
- Add "Disable AMS Weight Sync" setting to prevent AMS percentage-based
weight estimates from overwriting Spoolman's granular tracking
- Add "Report Partial Usage for Failed Prints" toggle (only shown when
weight sync is disabled)
- Use Spoolman's filament density instead of defaults for mm-to-grams
conversion
- Prefer tray_uuid over tag_uid for spool identification