## Why
Windows Cargo and Bazel jobs spend significant time in filesystem-heavy
build and cache directories. Route those directories through one CI
build root so Windows can use its Dev Drive and Unix can use a stable
cache root.
## What
- Have `setup-ci` define `CI_BUILD_ROOT`, `CARGO_TARGET_DIR`, Bazel
cache/output paths, and temp paths.
- Require Windows to find or provision a verified Dev Drive instead of
falling back to `C:`.
- Pass the shared Bazel output base to `setup-bazel` so its explicit
`output_base` does not defeat Dev Drive routing.
- Point nextest, release, and V8 source-build paths at the shared
environment contract.
## Benchmark results
One-off cold-cache WPR/ETW traces show the explicit Bazel output-base
routing removes the dominant `C:` traffic:
| sample | `C:\_bazel` | summed `C:` traffic | traced test step |
|---|---:|---:|---:|
| shard 1 before | 62.2 GiB | 85.2 GiB | 16m22s |
| shard 1 updated | 0 | 16.5 GiB | 12m05s |
| shard 3 before | 67.2 GiB | 84.6 GiB | 16m48s |
| shard 3 updated | 0 | 13.5 GiB | 11m08s |
For a cold x64 V8 source build, the retained build-tail sample showed
`D:\cargo-target` at ~1.29 GiB while measured `C:` roots totaled ~0.45
GiB (`C:\Users` ~0.33 GiB, `C:\Program Files` ~0.06 GiB, `C:\Windows`
~0.03 GiB). The full cold build took 2h20m36s.
The Bazel timing improvement is directional because both refreshed
shards failed tests. The V8 trace is a bounded build-tail sample, not
the full build. All final samples had zero lost ETW events; VHDX traffic
was excluded from the optimization ranking.
Runs: [baseline
Bazel](https://github.com/openai/codex/actions/runs/28911908527),
[updated
Bazel](https://github.com/openai/codex/actions/runs/28917133701), [V8
build tail](https://github.com/openai/codex/actions/runs/28933626678).
## Manual validation
- Ran `just fmt`.
- Ran `just test-github-scripts` (35 tests).
- Parsed GitHub Actions YAML with `yq`.
- Ran `git diff --check`.
## Stack
- [#31332](https://github.com/openai/codex/pull/31332) — parameterize
Cargo target paths
- [#31356](https://github.com/openai/codex/pull/31356) — Windows 2025
runner bump
- [#31357](https://github.com/openai/codex/pull/31357) — Dev Drive I/O
routing
## Why
We want to exercise a linux app-server against a windows exec-server
without having to repeat every test case. This approach has slight
precedent in the remote docker test setup.
## What
Run the shared `codex-core` integration suite against Windows
exec-server behavior from Linux. This makes cross-OS path and shell
regressions visible while keeping unsupported cases owned by individual
tests.
- Add `local`, `docker`, and `wine-exec` test environment selection with
legacy Docker compatibility.
- Extend `codex_rust_crate` to generate a sharded Wine-exec variant
using a cross-built Windows server and pinned Bazel Wine/PowerShell
runtimes.
- Teach remote-aware helpers about Windows paths and track temporary
incompatibilities with source-local `skip_if_wine_exec!` calls and
follow-up reasons.
`cargo test` for the core and other crates fails on a fresh macOS
checkout without the right stack size variable. This change encourages
using the just test command that sets the environment up correctly.
As a bonus, this should encourage agents to get more benefit out of
nextest's parallel execution.
Since https://github.com/openai/codex/pull/21255, `rust-ci-full` has
been failing due to a missing `bwrap`.
```
thread 'main' panicked at linux-sandbox/src/launcher.rs:43:13:
bubblewrap is unavailable: no system bwrap was found on PATH and no bundled codex-resources/bwrap binary was found next to the Codex executable
```
Since the happy path is now to use the system binary, let's ensure
that's installed.
8d51826631
was necessary for the `bwrap` executable to be discoverable when the
working directory is `/`.
I ran `rust-ci-full` at
https://github.com/openai/codex/actions/runs/25528074506
---------
Co-authored-by: Codex <noreply@openai.com>
## Summary
- reuse a shared remote exec-server for remote-aware codex-core
integration tests within a test binary process
- keep per-test remote cwd creation and cleanup so tests retain
workspace isolation
- leave codex_self_exe, codex_linux_sandbox_exe, cwd_path(), and
workspace_path() behavior unchanged
## Validation
- rustfmt codex-rs/core/tests/common/test_codex.rs
- git diff --check
- CI is running on the updated branch
## Summary\n- add an exec-server package-local test helper binary that
can run exec-server and fs-helper flows\n- route exec-server filesystem
tests through that helper instead of cross-crate codex helper
binaries\n- stop relying on Bazel-only extra binary wiring for these
tests\n\n## Testing\n- not run (per repo guidance for codex changes)
---------
Co-authored-by: Codex <noreply@openai.com>
## Summary
- Convert unified exec integration tests that can run against the remote
executor to use the remote-aware test harness.
- Create workspace directories through the executor filesystem for
remote runs.
- Install `python3` and `zsh` in the remote test container so restored
Python/zsh-based test commands work in fresh Ubuntu containers.
## Validation
- `just fmt`
- `cargo test -p codex-core --test all unified_exec_defaults_to_pipe`
- `cargo test -p codex-core --test all unified_exec_can_enable_tty`
- `cargo test -p codex-core --test all unified_exec`
- Remote on `codex-remote`: `source scripts/test-remote-env.sh && cd
codex-rs && cargo test -p codex-core --test all unified_exec`
- `just fix -p codex-core`
`CODEX_TEST_REMOTE_ENV` will make `test_codex` start the executor
"remotely" (inside a docker container) turning any integration test into
remote test.