PyneCore - Pine Script to Python Transpiler
Backlog & known bugs: Projects board #10 — open work is in Backlog (prioritised P0/P1/P2), shipped work in Done. Confirmed unfixed transpiler bugs live there too; several are pinned by strict
xfailtests (see Running Tests).
Installation (New Computer)
Fastest: the sandbox-setup skill
From the repo root, run the bundled setup script (idempotent — safe to re-run):
bash .claude/skills/sandbox-setup/setup.sh
It builds .venv, installs everything below, detects PINE_CPU_COUNT /
PINE_MAX_WORKERS, seeds a demo dataset, and runs a smoke test that ends in
smoke test : PASS / READY. In Claude Code you can also invoke it as
/sandbox-setup.
Manual (equivalent steps)
# From the repo root:
python3 -m venv .venv # 1. virtualenv
.venv/bin/pip install -e . # 2. this transpiler (editable)
.venv/bin/pip install 'opencode-pyneruntime[cli]' # 3. PyneCore runtime + `pyne` CLI
.venv/bin/pip install optuna numpy # 4. optimizer deps (not pulled in by the runtime)
source .venv/bin/activate # 5. activate (Linux/macOS)
# .venv\Scripts\activate # (Windows)
Verify the install:
.venv/bin/python -c "import pynecore, pine2pyne, optuna, numpy; print('all ok')"
Note: All commands below assume you are at the repo root with the venv activated.
How to Convert Pine Script to Python
Single File Conversion
python -m pine2pyne path/to/script.pine -o path/to/output.py
Batch Conversion
python -m pine2pyne "sample/pinescript/*.pine" -o workdir/scripts/
Running Tests
There are three independent test systems. They answer different questions, so a green run of one says nothing about the others.
| System | Question it answers | Runtime |
|---|---|---|
1. Unit tests (tests/, pytest) |
Are the transpiler's internals correct? | ~5 s |
2. Sample suites (tools/test_all_*.py) |
Does every corpus sample transpile and run? | ~35 s |
3. Ground truth (tools/*_ground_truth*) |
Does it produce the same numbers as before? | minutes |
1. Unit tests — pytest
2,000+ tests over pine2pyne/ (93% line / 86% branch coverage).
.venv/bin/python -m pytest tests/ --ignore=tests/test_screener_regression.py -q
# with coverage
.venv/bin/python -m pytest tests/ --ignore=tests/test_screener_regression.py \
--cov=pine2pyne --cov-report=term-missing
--ignoreis required:tests/test_screener_regression.pyimports ascreenermodule from a sibling repo that is absent here, and fails at collection — which aborts the whole run. Tracked as a P0 card on board #10.
Some tests are @pytest.mark.xfail(strict=True) and pin confirmed unfixed
bugs, each with a card on board #10.
Strict means fixing a bug turns its marker into a failure until the marker is
removed, so nothing regresses silently in either direction.
The highest-priority one is P0: codegen emits arithmetically wrong Python —
10 - (5 - 3) transpiles to 10 - 5 - 3, which evaluates to 2 rather than 8.
See docs/test_plan.md for the full bug inventory and the
measured coverage/mutation results.
2. Sample suites — end-to-end transpile + run
Transpiles every .pine in the corpus and runs it through pyne.
python tools/test_all_samples.py # sample/pinescript (~411 files)
python tools/test_all_sample_pds.py # sample_pds (~328 files)
python tools/test_all_samples.py "ex_001*" # filter by pattern
python tools/test_all_samples.py --timeout 30 # default 15s
python tools/test_all_samples.py --verbose # stderr on failure
python tools/test_all_samples.py -j 0 # all CPU cores
- Source:
sample/pinescript/,sample_pds/· Output:workdir/scripts/ - Data:
workdir/data/demo.ohlcv· Results:test_results{,_pds}.{json,txt}
Per-sample expectations live in tools/sample_expectations.toml:
[expds_156_Out_of_bounds_index]
expect_error = "index_error" # MUST raise; running clean = FAIL
[ex_300_ticker_modify]
requires_feeds = { D = "demo", "2D" = "demo_2D" } # -> --security D=demo …
expect_error marks Pine documentation samples that exist to demonstrate an
error — they are reported as XFAIL and count as passes. requires_feeds
supplies extra OHLCV feeds for samples calling request.security() at a
timeframe other than the chart's; pynecore deliberately will not resample the
chart feed, so the feed must be explicit. Generate one with:
cd workdir && pyne data aggregate data/demo.ohlcv -tf 2D
Shared logic for both suites lives in tools/_suite_common.py — edit it there,
not in each harness.
3. Ground truth — numeric regression
Diffs freshly generated output CSVs against ~1,985 stored baselines in
ground_truth/ (779 MB). This is the only system that catches silently wrong
numbers — output that runs fine but computes something different.
python tools/generate_ground_truth.py # (re)build baselines
python tools/compare_ground_truth.py # diff current output vs baselines
python tools/compare_ground_truth.py --suite sample_pds -j 12
./tools/verify_ground_truth.sh # end-to-end wrapper
Regenerate baselines only when you have confirmed the new output is correct — otherwise a bug gets frozen in as the expected result.
Test data
workdir/data/ is gitignored, so a fresh clone has none and the sample suites
abort with Data file not found. Restore the exact dataset the recorded results
were measured against:
git show 227f3d2^:workdir/data/demo.ohlcv > workdir/data/demo.ohlcv
git show 227f3d2^:workdir/data/demo.toml > workdir/data/demo.toml
(CCXT BTCUSDT 1D. /sandbox-setup instead seeds a small synthetic fixture —
fine for a smoke test, but results will not match the recorded rates.)
For Claude Code / LLM Development
See CLAUDE.md in this directory for transpiler architecture, output format specs, optimizer documentation, and CSV rounding rules. See pine2pyne/README.md for transpiler internals and transformation rules.
Optimizing Strategies
Quick start: pyne optimize script.py data.ohlcv params.json -n 20
See Optimizer.md for full documentation (parameter JSON format, parallel execution, output files).
Distributed Optimization (multi-machine)
Two tools distribute pyne optimize across SSH clusters:
| Tool | Model | Best for |
|---|---|---|
pyne-dynamic.sh |
Flat-queue (on-demand dispatch) | Multi-variant runs, heterogeneous clusters, long jobs |
pyne-parallel.sh |
Static pre-assignment | Quick jobs on similar-speed machines |
# Dynamic (recommended): flat-queue, pre-syncs once, auto-adapts to machine speed
# Run from workdir/ directory:
../tools/pyne-dynamic.sh scripts/strategy.py data/data.ohlcv optimize_variants/ \
-H ../tools/machines.txt -C 24 --name my_run --output-dir runs/output/
# Static: pre-assigns chunks by core count
./tools/pyne-parallel.sh scripts/strategy.py data/data.ohlcv optimize.json \
-H tools/machines.txt --sync
# Check progress / collect results
../tools/pyne-dynamic.sh --status
../tools/pyne-dynamic.sh --collect
Both use the same machines.txt format. See CLAUDE.md for cluster setup, machine file format, and troubleshooting.
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