Provium
Provium helps you build processing workflows whose results explain where they came from. Store a result as an artifact, use that artifact as input to another step, and save the new outputs as artifacts of their own. Provium records those relationships automatically as your workflow runs.
Each processing step is represented by a versioned procedure. When a procedure reads existing artifacts and creates new ones, Provium links the outputs to the procedure and its inputs. That lineage travels with every result, including its full upstream history, so a final artifact can be traced back through every intermediate result and the procedures that produced them.
This keeps provenance out of your application logic: you work with inputs, perform the computation, and write outputs inside a procedure execution. Provium handles the dependency graph, integrity metadata, and lifecycle of those artifacts for you.
Features
- Typed readers and writers for application-specific binary formats
- Automatic input, output, and procedure lineage
- SHA-256 payload integrity checks
- Streaming, body-relative binary I/O
- Runtime artifact discovery through Python entry points
- Optional configuration snapshots, including Pydantic v2 models
- No required runtime dependencies
Installation
Provium requires Python 3.12 or newer.
python -m pip install provium
Quick start
Provium includes JsonArtifact for storing JSON-compatible values. This example
records a collection of measurements and produces a summary:
from provium import JsonArtifact, Procedure
COLLECT = Procedure(name="collect", version="1")
SUMMARIZE = Procedure(name="summarize", version="1")
with COLLECT.execute():
measurements = JsonArtifact.create("measurements.pa")
measurements.write({"measurements": [12.5, 14.0, 13.5]})
with SUMMARIZE.execute():
measurements = JsonArtifact.open("measurements.pa")
payload = measurements.read()
assert isinstance(payload, dict)
values = payload["measurements"]
assert isinstance(values, list)
readings = [float(value) for value in values]
summary = JsonArtifact.create("summary.pa")
summary.write(
{
"count": len(readings),
"minimum": min(readings),
"maximum": max(readings),
"average": round(sum(readings) / len(readings), 2),
}
)
summary.pa contains count, minimum, maximum, and average, together with
the lineage of the measurements and the procedures that collected and
summarized them. A rendered graph looks like this, with identities shortened for
readability:
flowchart LR
collect(["collect 1<br/>collect-execution"])
measurements["provium.artifact.prefab.json.JsonArtifact<br/>measurements-id"]
summarize(["summarize 1<br/>summarize-execution"])
summary["provium.artifact.prefab.json.JsonArtifact<br/>summary-id"]
collect --> measurements
measurements --> summarize
summarize --> summary
When each context exits successfully, Provium closes its handles and finalizes its output files. If a context exits with an exception, its pending outputs are not committed. Readers and writers are bound to their execution and cannot be used after its context exits.
JsonArtifact uses deterministic UTF-8 JSON encoding and supports null,
booleans, finite numbers, strings, arrays, and objects with string keys.
Custom artifact types
For an application-specific binary format, define reader, writer, and artifact classes. Here is the same number workflow using signed 64-bit integers:
import struct
from provium import Artifact, ArtifactReader, ArtifactWriter
INTEGER = struct.Struct(">q")
class IntegerReader(ArtifactReader):
def read(self) -> int:
return INTEGER.unpack(self.body.read(INTEGER.size))[0]
class IntegerWriter(ArtifactWriter):
def write(self, value: int) -> None:
self.body.write(INTEGER.pack(value))
class IntegerArtifact(Artifact[IntegerReader, IntegerWriter]):
reader = IntegerReader
writer = IntegerWriter
Use the custom type just like the prefab JSON artifact:
from provium import session
from your_package.artifacts import IntegerArtifact
SOURCE = Procedure(name="source", version="1")
ADD = Procedure(name="add", version="1")
with SOURCE.execute():
left = IntegerArtifact.create("left.pa")
left.write(2)
right = IntegerArtifact.create("right.pa")
right.write(3)
with ADD.execute():
left = IntegerArtifact.open("left.pa")
right = IntegerArtifact.open("right.pa")
total = IntegerArtifact.create("sum.pa")
total.write(left.read() + right.read())
The workflow has the same lineage, now with application-specific integer artifacts. Identities are again shortened in the diagram:
flowchart LR
source(["source 1<br/>source-execution"])
left["your_package.artifacts.IntegerArtifact<br/>left-id"]
right["your_package.artifacts.IntegerArtifact<br/>right-id"]
add(["add 1<br/>add-execution"])
total["your_package.artifacts.IntegerArtifact<br/>sum-id"]
source --> left
source --> right
left --> add
right --> add
add --> total
Registration is optional. Without it, Provium stores the artifact class's full
path, such as your_package.artifacts.IntegerArtifact, as its identifier. Typed
calls such as IntegerArtifact.open() can read these artifacts directly.
Register the artifact when you want a stable custom identifier, aliases, or
dynamic loading through provium.open_artifact():
from provium import ArtifactCatalog
from .artifacts import IntegerArtifact
catalog = ArtifactCatalog()
catalog.register("example.IntegerV1", IntegerArtifact)
Expose that catalog from pyproject.toml so Provium can discover it:
[project.entry-points."provium.catalogs"]
example = "your_package.catalog:catalog"
Inspecting provenance
Every reader exposes the artifact header and lineage:
from provium import Procedure
from your_package.artifacts import IntegerArtifact
with session():
artifact = IntegerArtifact.open("sum.pa")
print(artifact.read())
print(artifact.identity)
print(artifact.artifact_identifier)
print(artifact.lineage.to_json())
Use provium.open_artifact() when the concrete type should be resolved from the
identifier stored in the file rather than selected in advance.
Reusing artifacts across procedures
A session records every artifact opened within it, even after its reader is closed. Procedure executions inherit those recorded inputs and create a nested session for artifacts used only by that execution:
from provium import Procedure, session
PREDICT = Procedure(name="predict", version="1")
with session():
model_reader = ModelArtifact.open("model.pa")
model = load_model(model_reader)
model_reader.close()
for input_path, output_path in jobs:
with PREDICT:
data = DataArtifact.open(input_path)
result = model.predict(data.read())
ResultArtifact.create(output_path).write(result)
Each result depends on the shared model and its own data artifact. Nested generic sessions similarly inherit artifacts recorded by their ancestors.
Calling a procedure is shorthand for execute(), including configured
executions: with PREDICT(config=settings): ....
Command-line tools
Inspect an artifact's generic metadata without loading its concrete artifact type:
provium inspect result.pa
Generate Mermaid or Graphviz source for an artifact's complete lineage:
provium graph --renderer mermaid result.pa lineage.mmd
provium graph --renderer graphviz result.pa lineage.dot
Image output supports SVG, PNG, and PDF and defaults to the Mermaid renderer:
provium graph result.pa lineage.svg
provium graph --renderer graphviz result.pa lineage.png
Mermaid image rendering requires the official mmdc executable. Graphviz
rendering requires the optional Python package and Graphviz system package:
npm install --global @mermaid-js/mermaid-cli
python -m pip install 'provium[visualization]'
The output type is inferred from its extension. Library callers can use the
functions in provium.tool to produce Mermaid or DOT source and to receive
rendered images as bytes.
Development
Create a virtual environment and install the project with its test dependencies:
python3 -m venv .venv
source .venv/bin/activate
python -m pip install --upgrade pip
python -m pip install -e '.[test]'
Run the test suite:
pytest
This also runs Ruff linting and ruff format --check over src and test.
The project requires 100% statement and branch coverage for the provium
package.
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