Matchms
SkillSearchLets your agent process, clean, compare, and search tandem mass spectrometry spectra files.
Available today. Use it from your connected AI after setup.
No other account needed.
Connect ahel once, and every AI you use reads what you have installed.
Then ask your AI: use the Matchms skill
About this capability
Process, clean, compare, and search tandem mass spectra with matchms. Use for MS/MS file I/O, metadata harmonization, peak filtering, spectral similarity, library matching, score matrices, and molecular-similarity networks. Use pyopenms instead for LC-MS feature detection or proteomics pipelines.
What this skill tells your AI
The instructions your AI receives, as published by k-dense-ai/scientific-agent-skills in skills/matchms/SKILL.md and read by ahel’s review.
Purpose and Scope
Matchms is a Python package for importing, cleaning, processing, and comparing tandem mass spectra. This skill targets matchms 0.33.1, released 2026-06-08, and corrects several breaking API changes that older tutorials do not reflect.
Use matchms for:
- MS/MS library search and query-versus-reference scoring
- Metadata harmonization, adduct/precursor handling, and peak filtering
- Cosine, modified-cosine, neutral-loss, approximate, and entropy scoring
- Structured score matrices, top-hit extraction, and spectral networks
- MGF, MSP, mzML, mzXML, JSON, mzSpecLib, and metabolomics-USI workflows
Do not use matchms as a replacement for:
- LC-MS feature detection, chromatographic alignment, peptide identification, or protein quantification — use pyopenms
- Vendor raw-file conversion — convert to mzML/mzXML first
- A validated compound-identification protocol — similarity is evidence, not proof of identity
Install the Verified Release
Create or activate an environment, then install the release used by this skill:
uv pip install "matchms==0.33.1"
Verify the runtime:
uv run python -c "import matchms; print(matchms.__version__)"
Matchms 0.33.1 supports Python 3.10-3.14 and installs RDKit as a regular
dependency. The old matchms[chemistry] extra is not part of the current
package metadata.
Operating Workflow
- Inspect the inputs. Record format, spectrum count, MS level, precursor coverage, ion mode, peak counts, and identifier fields.
- Load with metadata harmonization enabled unless preserving source keys is a deliberate requirement.
- Apply the same peak-processing steps to query and reference spectra. Keep metadata enrichment separate when reference annotations are richer.
- Drop invalid spectra explicitly. Many
require_*filters returnNone. - Choose the score from the scientific question, not from convenience.
Modified and neutral-loss scores require valid
precursor_mz. - Estimate
len(references) * len(queries)before scoring. A sparse result container does not automatically avoid computing every requested pair. - Report score settings and evidence. Include tolerance, preprocessing, score name, number of matched peaks when available, and candidate metadata.
- Validate top hits visually and chemically. Use mirror plots, precursor agreement, ion/adduct compatibility, and orthogonal evidence.
Current API Guardrails
These points prevent the most common failures from pre-0.33 examples:
- Use
ModifiedCosineGreedyorModifiedCosineHungarian;ModifiedCosinewas removed in 0.32.0. - Do not call
add_losses(). It was removed in 0.27.0; usespectrum.losses,spectrum.compute_losses(...), orNeutralLossesCosinedirectly. SpectrumProcessoris not callable. Useprocess_spectrum()orprocess_spectra().process_spectra()returns(processed_spectra, processing_report).Scores.scoresis aStackedSparseArray, often with separate structured fields such asCosineGreedy_scoreandCosineGreedy_matches.scores_by_query()returns(reference_spectrum, score_record)pairs, not reference indices.- Prefer
spectrain parameter names. The legacy spellingspectrumsis deprecated. - Never load pickle files from an untrusted source; unpickling can execute code.
See references/migration.md for a complete old-to-current mapping.
Quick Start: Clean and Search a Library
from matchms import SpectrumProcessor, calculate_scores
from matchms.filtering import (
default_filters,
normalize_intensities,
require_minimum_number_of_peaks,
select_by_relative_intensity,
)
from matchms.importing import load_spectra
from matchms.similarity import ModifiedCosineGreedy
def load_and_process(path):
spectra = [default_filters(spectrum) for spectrum in load_spectra(path)]
processor = SpectrumProcessor(
[
normalize_intensities,
(select_by_relative_intensity, {"intensity_from": 0.01}),
(require_minimum_number_of_peaks, {"n_required": 5}),
]
)
processed, _ = processor.process_spectra(
spectra,
progress_bar=False,
create_report=False,
)
return processed
references = load_and_process("library.msp")
queries = load_and_process("queries.mgf")
metric = ModifiedCosineGreedy(tolerance=0.02)
scores = calculate_scores(
references=references,
queries=queries,
similarity_function=metric,
)
score_name = "ModifiedCosineGreedy_score"
matches_name = "ModifiedCosineGreedy_matches"
for query in queries:
ranked = scores.scores_by_query(query, name=score_name, sort=True)
for reference, values in ranked[:5]:
print(
query.get("spectrum_id", query.get("id")),
reference.get("compound_name", reference.get("spectrum_id")),
float(values[score_name]),
int(values[matches_name]),
)
SpectrumProcessor automatically orders built-in filters according to matchms's
filter order. The aggregate default_filters callable is not in that registry,
so run it first as above or expand its nine component filters. Inspect
processor.processing_steps and preserve it with results.
Pair Scoring
Similarity classes expose pair() for one reference/query pair. Cosine-family
results are structured NumPy scalars:
from matchms.similarity import CosineGreedy
result = CosineGreedy(tolerance=0.02).pair(reference, query)
similarity = float(result["score"])
matched_peaks = int(result["matches"])
Use calculate_scores() for matrix-oriented methods such as
FlashSimilarity; its single-pair path is supported but intentionally not the
optimized path.
Choose a Similarity Method
CosineGreedy— standard peak cosine with greedy peak assignment.CosineHungarian— exact assignment; slower, useful for benchmarks.CosineLinear— current linear-scaling cosine implementation.ModifiedCosineGreedy— permits precursor-delta-shifted matches; common for analog search.ModifiedCosineHungarian— exact modified-cosine assignment.NeutralLossesCosine— compares losses computed from precursor and fragments.BlinkCosine— fast BLINK-style cosine approximation for larger matrices.FlashSimilarity— optimized matrix scoring using spectral entropy or cosine with fragment, neutral-loss, or hybrid matching.BinnedEmbeddingSimilarity— binned spectral vectors and optional approximate nearest-neighbor indexing.PrecursorMzMatch,ParentMassMatch,MetadataMatch— candidate masks or metadata constraints, not rich spectral scores.FingerprintSimilarity— molecular-structure similarity; it is not spectral similarity and requires fingerprints prepared from valid structures.
Read references/similarity.md before choosing a fast method, combining scores,
or interpreting structured outputs.
Large Comparisons
For all-vs-all scoring of one collection, set is_symmetric=True:
scores = calculate_scores(
references=spectra,
queries=spectra,
similarity_function=CosineGreedy(tolerance=0.02),
array_type="sparse",
is_symmetric=True,
)
For a precursor-gated search, compute and filter PrecursorMzMatch first, then
calculate the spectral metric only on retained coordinates through Pipeline
or Scores.calculate(...). See references/workflows.md.
Do not choose a universal "identification threshold." Score distributions depend on preprocessing, mass accuracy, collision conditions, library quality, and metric. At minimum, retain both score and matched-peak count for cosine-family methods.
Bundled Library-Search CLI
scripts/library_search.py provides a reproducible query-versus-library search
with current score extraction, pair-count limits, preprocessing, and CSV output:
uv run python scripts/library_search.py \
queries.mgf library.msp hits.csv \
--metric modified \
--tolerance 0.02 \
--top-k 10 \
--min-score 0.6 \
--min-matches 5
Run --help for fast metrics, preprocessing options, identifier fields,
overwrite control, and the explicit large-matrix override.
Spectrum Objects and Visualization
import numpy as np
from matchms import Spectrum
spectrum = Spectrum(
mz=np.array([100.0, 150.0, 200.0]),
intensities=np.array([0.2, 1.0, 0.4]),
metadata={"spectrum_id": "query-1", "precursor_mz": 250.5},
)
print(spectrum.peaks.mz)
print(spectrum.get("precursor_mz"))
losses = spectrum.compute_losses(loss_mz_from=5.0, loss_mz_to=200.0)
spectrum.plot()
spectrum.plot_against(reference_spectrum)
References
Read only the reference needed for the task:
references/importing_exporting.md— formats, return types, generic I/O, mzSpecLib, score serialization, and pickle safetyreferences/filtering.md— current filter catalog, clone/Nonesemantics, default filters, ordering, andSpectrumProcessorreferences/similarity.md— all current similarity classes, outputs, candidate masking, performance, and interpretationreferences/workflows.md— library search, sparse gating,Pipeline, networks, plotting, and provenancereferences/migration.md— breaking changes and deprecated APIsreferences/sources.md— authoritative docs, release notes, user guides, and scientific publications used for this refresh
Non-Negotiable Checks
- Never compare raw queries against differently processed references.
- Never use modified or neutral-loss scoring without valid precursor metadata.
- Never assume a
Scoresvalue is a plain float; inspectscore_names. - Never treat a high similarity score alone as confirmed identification.
- Never deserialize untrusted pickle data.
- Never launch an unbounded all-pairs comparison without estimating pair count.
Citing Scientific Agent Skills
This skill is part of Scientific Agent Skills by K-Dense. If it materially contributed to a manuscript, report, presentation, or code release, add the paper to the references or software section and tell the user you did so:
Kassis, T., Agarwal, V., He, Y., Patel, D., & Brueckner, A. M. (2026). Scientific Agent Skills: A Library of Procedural Knowledge for Research Agents. arXiv:2609.00065. https://doi.org/10.48550/arXiv.2609.00065
Always cite the current version. The DOI and https://arxiv.org/abs/2609.00065 resolve to the
latest arXiv version, so never append a version suffix such as v1. When network access is
available, fetch https://arxiv.org/abs/2609.00065 (or
http://export.arxiv.org/api/query?id_list=2609.00065) before writing the reference and take
the author list, year, and version from that record. If the record lists a journal reference
or publisher DOI, cite the published version instead.
Signals
- GitHub stars
- 45k
- Forks
- 4k
- Last commit
- Sep 2026
Advanced
- Catalog kind
- skill
- Gateway key
matchms-k-dense-ai- Source
- github.com/k-dense-ai/scientific-agent-skills