The easyeda2kicad.py-generated file had an unquoted URL as the (generator ...) value: '(generator https://github.com/uPesy/...)'. Bare/unquoted s-expression tokens can't contain ':' or '/', which broke KiCad's parser and made the whole library silently fail to load (the symbol was present on disk and correctly registered in fp/sym-lib-table, but invisible in KiCad). Wrapped the value in quotes. Also added a check_library.py rule to catch this class of error (an unquoted generator value containing ':' or '/') automatically going forward.
MIKILAB KiCad Library
Personal, self-contained KiCad library for MIKILAB hardware projects.
This directory is fully autonomous: it does not depend on
kicad-personal-library or any other external directory. Every path used
inside sym-lib-table, fp-lib-table and the footprint 3D model
references is relative to this library (via ${KIPRJMOD}), so the whole
folder can be moved, renamed, zipped, or synced to another machine without
breaking anything.
Architecture
Every .kicad_sym file under symbols/ is an independent KiCad
symbol library (there is deliberately no single monolithic
MIKILAB.kicad_sym). Every .pretty directory under footprints/ is
likewise an independent KiCad footprint library. This mirrors how the
official KiCad libraries are structured and keeps components easy to find,
diff, and maintain individually.
mikylab_kikad_library/
├── sym-lib-table # registers every symbols/**/*.kicad_sym
├── fp-lib-table # registers every footprints/**/*.pretty
├── symbols/<category>/<Name>.kicad_sym
├── footprints/<category>/<Name>.pretty/<Name>.kicad_mod
├── 3dmodels/<category>/<Name>.step
├── docs/ # reference documentation (incl. upstream KiCad docs)
├── legacy/ # legacy .lib/.dcm sources kept for reference
├── scripts/ # import & check tooling (this README's §5, §6)
├── MANIFEST.csv # full provenance/status log, one row per file
└── README.md
Categories in use: analog, audio, display, fpga_cpld, interface,
logic, mechanical, memory, microcontrollers, other, power,
rf.
Every symbol/footprint library is registered under a MIKILAB_<name>
nickname, e.g. MIKILAB_TPS7A2012PDBVR, MIKILAB_TPS7A2018PDBVR,
MIKILAB_Amplifier_Operational, MIKILAB_altera. Nicknames are derived
automatically from the file/directory name and are guaranteed unique.
1. Installing the library
There are two ways to make this library available in KiCad. Which one you want depends on whether you use it in one project or in every project.
Option A -- one project only (no KiCad config changes)
sym-lib-table / fp-lib-table at the root of this repo use
${KIPRJMOD}, which KiCad automatically resolves to the currently open
project's directory. So if a .kicad_pro project lives directly inside
mikylab_kikad_library/ (or you copy these two table files into your
project's directory), KiCad picks them up automatically -- no extra
configuration needed. This is the setup check_library.py and the
scripts/ tooling assume.
Option B -- available in every project (recommended for a personal library)
This is the practical setup for a library you want in every schematic you
open, not just one project. Tested against the KiCad 10.0 install on this
machine (/Applications/KiCad/KiCad.app, config at
~/Library/Preferences/kicad/10.0/).
-
Define an environment variable pointing at this library. KiCad → Preferences → Configure Paths... → add a new entry:
- Name:
MIKILAB - Path:
/Users/michelebigi/Development/mikylab_kikad_library
- Name:
-
Generate the "global" table variant (uses
${MIKILAB}instead of${KIPRJMOD}; regenerate any time after adding components):python3 scripts/generate_global_tables.pyThis writes
sym-lib-table.globalandfp-lib-table.globalat the library root. -
Merge those into KiCad's global tables. The simplest way is to append their
(lib ...)lines into your existing global tables (back them up first):cp ~/Library/Preferences/kicad/10.0/sym-lib-table ~/Library/Preferences/kicad/10.0/sym-lib-table.bak cp ~/Library/Preferences/kicad/10.0/fp-lib-table ~/Library/Preferences/kicad/10.0/fp-lib-table.bak python3 - <<'EOF' import re from pathlib import Path kicad_dir = Path.home() / "Library/Preferences/kicad/10.0" lib_root = Path("/Users/michelebigi/Development/mikylab_kikad_library") for kind, global_file, generated in ( ("sym_lib_table", "sym-lib-table", "sym-lib-table.global"), ("fp_lib_table", "fp-lib-table", "fp-lib-table.global"), ): target = kicad_dir / global_file new_libs = (lib_root / generated).read_text().splitlines() new_libs = [l for l in new_libs if l.strip().startswith("(lib")] text = target.read_text() # insert the new (lib ...) lines just before the final closing paren idx = text.rstrip().rfind(")") text = text.rstrip()[:idx] + "\n" + "\n".join(new_libs) + "\n" + text.rstrip()[idx:] + "\n" target.write_text(text) print(f"Merged {len(new_libs)} libraries into {target}") EOF(Or do it by hand: open both
.globalfiles and copy each(lib ...)line into the corresponding file under~/Library/Preferences/kicad/10.0/, just before the final closing).) -
Restart KiCad. Every
MIKILAB_*symbol and footprint library is now available in any project, resolved via${MIKILAB}.
Known issue on this machine, to clean up before deleting
kicad-personal-library: the current global sym-lib-table already
has a handful of entries pointing directly at
/Users/michelebigi/Development/kicad-personal-library/... with absolute
paths (added before this library existed, e.g. libraries named ti,
TPS63020DSJT). Once the MIKILAB_* libraries above are installed and
working, remove those old absolute-path entries from
~/Library/Preferences/kicad/10.0/sym-lib-table -- otherwise you'll have
duplicate/stale libraries, and deleting kicad-personal-library will
leave KiCad with broken references. This library's own tables never
contain absolute paths (verified by check_library.py and by grep -R "/Users/michelebigi"), so this cleanup is only about your existing
global KiCad config, not about anything in this repo.
2. Using the symbols
In the schematic editor, symbols are available as
MIKILAB_<LibraryName>:<SymbolName>, e.g.
MIKILAB_TPS7A2012PDBVR:TPS7A2012PDBVR or
MIKILAB_Amplifier_Operational:LM358.
3. Using the footprints
In the footprint assignment tool / PCB editor, footprints are available as
MIKILAB_<LibraryName>:<FootprintName>, e.g.
MIKILAB_SOT95P280X145_5N:SOT95P280X145-5N.
4. How 3D models are resolved
Footprints reference 3D models with ${KIPRJMOD}/3dmodels/<category>/<Name>.step,
resolved relative to this library — portable by construction, no
absolute paths anywhere.
Known gap (pre-existing, not introduced by this cleanup): a set of
vendor-imported footprints (footprints/other/*.pretty and a few others —
see check_library.py warnings) reference 3D models via
${KISBLIB}/..., an environment variable that is not defined by this
library or by a stock KiCad install, and the corresponding 3D files were
never present locally to begin with. These footprints are fully usable
for schematic/PCB work (pads, courtyard, silkscreen are all correct and
complete) — they simply won't show a 3D body until you either supply the
matching STEP/WRL file and update the reference, or define KISBLIB in
KiCad pointing at wherever you keep those vendor 3D models. run scripts/check_library.py lists every affected file.
Some IPC-generated footprints reference the standard KiCad 3D model
library via ${KISYS3DMOD}, which is defined automatically by every
KiCad installation — those resolve normally and need no action.
Special case — shared footprint, distinct 3D bodies: SOT95P280X145-5N
is used by both MIKILAB_TPS7A2012PDBVR and MIKILAB_TPS7A2018PDBVR.
The footprint itself was verified byte-identical between the two parts
(SHA256 comparison showed the only difference was KiCad's internal
tedit timestamp), so a single shared footprint library is used. Their
3D bodies are genuinely different STEP files, though
(3dmodels/power/TPS7A2012PDBVR.step vs. .../TPS7A2018PDBVR.step), and
a .kicad_mod can only carry one embedded (model ...) reference — so
neither is embedded by default. If you want a 3D render for one of these
parts, assign the STEP file manually per footprint instance (PCB editor →
right-click footprint → Properties → 3D Models).
5. Adding a component
Simplest path — one command:
python3 scripts/add_component.py \
--name TPS7A2018PDBVR \
--symbol /path/to/TPS7A2018PDBVR.kicad_sym \
--footprint /path/to/SOT95P280X145-5N.kicad_mod \
--model /path/to/TPS7A2018PDBVR.step \
--category power
--footprint and --model are optional — you can import a symbol-only
component, or symbol+footprint without a 3D model. --category is
optional too; it's auto-detected from --name using the same rules used
throughout this library (falls back to other).
The importer:
- refuses to overwrite a component that already exists (by name), with a clear error and no changes made;
- deduplicates footprints by content (SHA256), not filename — if the footprint you're importing is byte-identical to one already in the library, the existing one is reused instead of creating a duplicate;
- if a different footprint happens to share a filename with an existing
one, it is imported under a distinct, semantically-derived name and the
collision is recorded in
MANIFEST.csv; - rewrites the symbol's
Footprintproperty to point at the correct newMIKILAB_<lib>:<name>reference; - links the 3D model into the footprint (unless the footprint was reused from an existing shared library — see §4's shared-footprint case);
- regenerates
sym-lib-tableandfp-lib-tablefrom scratch by scanning the directory tree, so there is never more than one(version 7)entry and every library on disk is registered exactly once; - appends a row per file to
MANIFEST.csv(columns:type,source,destination,status,hash,notes; status is one ofNEW,DUPLICATE,RENAMED_COLLISION,ERROR,UNCHANGED).
import_component.py is the same tool with a more explicit/verbose CLI —
add_component.py just calls into it. For importing many components at
once, lay them out one subdirectory per component and run:
python3 scripts/import_batch.py --source /path/to/batch_dir [--category power]
(subdirectory name = component --name; exactly one .kicad_sym per
subdirectory required, footprint/model optional — same collision and
lib-table rules as a single import, applied per component).
6. Running the check
python3 scripts/check_library.py
Verifies: directory structure; symbol/footprint syntax and duplicates;
real filename collisions (by content hash, not just name); 3D model
reference validity and portability; sym-lib-table/fp-lib-table
syntax, single (version 7), no missing/duplicate/unregistered entries;
and symbol → footprint cross-references for every MIKILAB-owned library.
Exits 0 (RESULT: OK) iff there are no errors. Warnings are pre-existing,
documented, non-fatal gaps (see §4).
Note: many symbols mirrored from the official KiCad symbol libraries
reference standard KiCad footprint libraries (e.g. Package_SO,
RF_Module) by their upstream nickname — those are outside MIKILAB's
scope (they ship with every KiCad install) and are not checked or
reported as errors.
Provenance
MANIFEST.csv has one row per file in the library (type, source,
destination, status, hash, notes). Rows from the initial bulk
import are marked UNCHANGED/baseline; rows added by
import_component.py / add_component.py / import_batch.py record
exactly what happened during that import (new file, deduplicated,
renamed due to a real collision, or error).
Source safety
This library was built by copying (never moving) from external source
repositories; none of those repositories are modified by anything in
scripts/, and nothing in this library references them. In particular,
this directory does not depend on kicad-personal-library in any way —
verify at any time with:
grep -R "kicad-personal-library" .
which is expected to return no matches outside of historical mentions in this README/docs.