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russell@unturf.com 16b33c6a37
ci: modern twine, classic auth via group vars, v0.1.6
After protecting the * tag pattern on the python/ group, the group-
scoped Protected TWINE_USERNAME/TWINE_PASSWORD vars inject into tag
pipelines. Twine 6+ sees them set and uses classic auth directly,
skipping Trusted Publishing (which can't work for self-hosted
git.unturf.com — see docs/PYPI-TRUSTED-PUBLISHING.md).

What this commit changes:
  - .gitlab-ci.yml drops the --trusted-publishing flag (unrecognized
    by the runner's twine anyway) — twine sees env vars and is happy
  - pyproject.toml stays on the latest setuptools (no <77 cap needed
    since we're not pinning twine<6 anymore)
  - Diagnostic for TWINE_USERNAME/TWINE_PASSWORD presence stays so
    future failures surface fast
2026-06-16 15:18:54 -04:00
docs ci: classic auth via group-scoped TWINE_USERNAME/TWINE_PASSWORD, v0.1.4 2026-06-16 15:01:23 -04:00
erldistpy ci: modern twine, classic auth via group vars, v0.1.6 2026-06-16 15:18:54 -04:00
tests etf: add MAP_EXT (tag 116) for Erlang/Elixir maps 2026-06-16 12:16:35 -04:00
.gitignore phase 6: TLS dist via inet_tls_dist 2026-06-16 12:06:07 -04:00
.gitlab-ci.yml ci: modern twine, classic auth via group vars, v0.1.6 2026-06-16 15:18:54 -04:00
LICENSE phase 0 + 1: repo bones and ETF codec 2026-06-16 10:39:01 -04:00
Makefile packaging: ship to PyPI via tag + GitLab CI (mirrors ago's pattern) 2026-06-16 13:45:08 -04:00
pyproject.toml ci: modern twine, classic auth via group vars, v0.1.6 2026-06-16 15:18:54 -04:00
README.md packaging: ship to PyPI via tag + GitLab CI (mirrors ago's pattern) 2026-06-16 13:45:08 -04:00

erldistpy

Native Python client for our Erlang distribution protocol. Talk Erlang/Elixir nodes from CPython without HTTP shim layers.

Built to swap into Python web apps as a drop-in for HTTP wallet-bridge clients (see unfeed's WalletTransport and make_post_sell's crypto watcher) so they can call Elixir gen_server processes over native Erlang dist instead of JSON-RPC or HTTPS. Same call semantics, lower latency, fewer moving parts.

Install

pip install erldistpy

Quick start

from erldistpy import Node, Atom

with Node(
    our_name="myapp@host",
    peer_name="wallet",                # short EPMD name
    peer_host="wallet.example.com",
    cookie="SHARED_COOKIE",            # read from a file path, never inline
) as node:
    reply = node.call(
        "Elixir.Wallet.Service",
        (Atom("monero"), Atom("get_height"), []),
        timeout=5.0,
    )
    # reply is whatever the gen_server returned — atoms / binaries /
    # tuples / maps / lists / pids / refs decode to Python natives.

For TLS dist (Erlang inet_tls_dist):

from erldistpy import Node, make_dist_tls_context

ctx = make_dist_tls_context(
    cert="/etc/myapp/client.pem",
    key="/etc/myapp/client.key",
    ca="/etc/myapp/ca.pem",
)
node = Node(our_name=..., peer_name=..., cookie=..., tls_context=ctx)

Scope

  • ETF (External Term Format) codec — encode/decode Erlang terms
  • EPMD client — node name → port lookup
  • v6 distribution handshake — MD5 cookie auth, version negotiation
  • gen_call to registered processes on a remote node
  • TLS dist support (Erlang inet_tls_dist)

Out of scope: full Erlang node impersonation, link/monitor lifecycles, distributed Mnesia. We are a client, not a peer node.

Why not Pyrlang?

Pyrlang implements a full asyncio Erlang node. Heavy, asyncio-first, complex. erldistpy is a small synchronous client that fits behind the same Protocol surface as httpx. Different shape, different audience.

Development

make bootstrap   # create venv, install editable + dev deps
make test        # run pytest (122 tests)
make lint        # ruff check
make build       # build sdist + wheel into dist/
make dist-check  # twine check dist/*

See docs/ROADMAP.md for the phase-by-phase build log.

License

Unlicense (public domain).