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bDS2/lib/bds/mac_bundle/dylibs.ex

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Elixir

defmodule BDS.MacBundle.Dylibs do
@moduledoc """
Makes the bundled Elixir release **fully self-contained** on macOS: after
`bundle/3` runs, no Mach-O binary in the `.app` references a Homebrew/local
(`/opt/homebrew`, `/usr/local`) path, so the app launches on a clean Mac with
no Homebrew installed.
Erlang NIFs (`wxe_driver.so`, `crypto.so`, …) are built against whatever
produced the host OTP install — typically Homebrew. We walk every Mach-O in
the release, copy the transitive closure of external dylibs into
`Contents/Frameworks/`, and rewrite every external install name to a
`@loader_path`-relative one.
Two robustness points the previous (per-NIF, exact-path) version missed:
* **Spelling-independent rewriting.** The same physical dylib is referenced
under different absolute spellings — a NIF links the symlink name
(`.../opt/wxwidgets@3.2/lib/libwx_..._core-3.2.dylib`) while inter-library
deps link the versioned name (`.../Cellar/.../libwx_..._core-3.2.0.4.3.dylib`).
We rewrite by *basename* (`relink_changes/2`), so every spelling of an
external dep is caught regardless of how it was written.
* **Inode dedup via symlinks.** Those two names are one file. We copy the
real bytes once and make the other name a symlink to it, so dyld loads a
single image — otherwise both copies load and you get duplicate
Objective-C class / wx event-table registrations.
The `otool`/`install_name_tool` parsing and argument building are pure so they
can be unit-tested; `bundle/3` performs the actual filesystem + tool work.
"""
# Homebrew prefixes whose libraries must be copied into the bundle. Anything
# under /usr/lib or /System is part of macOS and stays referenced in place;
# @rpath/@executable_path/@loader_path are already relocatable.
@external_prefixes ["/opt/homebrew", "/usr/local"]
@doc "Parse `otool -L` output into the ordered list of dependency paths."
@spec parse_otool(String.t()) :: [String.t()]
def parse_otool(output) when is_binary(output) do
output
|> String.split("\n", trim: true)
# The first line is the inspected file ("path:"), not a dependency.
|> Enum.filter(&String.starts_with?(&1, "\t"))
|> Enum.map(fn line ->
line
|> String.trim()
|> String.replace(~r/\s+\(compatibility version.*\)$/, "")
|> String.trim()
end)
end
@doc "True when a dylib path must be copied into the bundle (Homebrew/local)."
@spec external?(String.t()) :: boolean()
def external?(path) when is_binary(path) do
Enum.any?(@external_prefixes, &String.starts_with?(path, &1))
end
@doc "install_name_tool args to set a dylib's own id."
@spec id_args(String.t(), String.t()) :: [String.t()]
def id_args(dylib_path, new_id), do: ["-id", new_id, dylib_path]
@doc """
install_name_tool args to rewrite zero or more dependency install names on a
binary. Returns `[]` when there are no changes so callers can skip the tool.
"""
@spec change_args(String.t(), [{String.t(), String.t()}]) :: [String.t()]
def change_args(_binary, []), do: []
def change_args(binary, changes) when is_list(changes) do
Enum.flat_map(changes, fn {old, new} -> ["-change", old, new] end) ++ [binary]
end
@doc """
Extract the `LC_RPATH` search paths from `otool -l` output. Used to find and
strip Homebrew/local rpaths — an `@rpath` dep would otherwise resolve outside
the bundle, breaking standalone even though `otool -L` looks clean.
"""
@spec parse_rpaths(String.t()) :: [String.t()]
def parse_rpaths(output) when is_binary(output) do
output
|> String.split("\n")
|> Enum.reduce({false, []}, fn line, {in_rpath?, acc} ->
line = String.trim(line)
cond do
line == "cmd LC_RPATH" ->
{true, acc}
in_rpath? and String.starts_with?(line, "path ") ->
path =
line
|> String.replace_prefix("path ", "")
|> String.replace(~r/\s+\(offset \d+\)$/, "")
{false, [path | acc]}
true ->
{in_rpath?, acc}
end
end)
|> elem(1)
|> Enum.reverse()
end
@doc """
Build `{old, new}` rewrites for a binary's `otool -L` dependency list: every
external dep becomes `<prefix>/<basename>`. System (`/usr/lib`, `/System`) and
already-relocatable (`@rpath`/`@loader_path`/`@executable_path`) deps are
dropped. Rewriting by basename — not by the exact source path — is what makes
this catch every absolute spelling of the same library.
"""
@spec relink_changes([String.t()], String.t()) :: [{String.t(), String.t()}]
def relink_changes(deps, prefix) when is_list(deps) do
deps
|> Enum.filter(&external?/1)
|> Enum.map(fn dep -> {dep, prefix <> "/" <> Path.basename(dep)} end)
end
@doc """
Relocate every external dylib reachable from `nifs` into `frameworks_dir` and
rewrite all install names so the bundle is self-contained.
`nifs` is the list of Mach-O binaries in the release that may link external
libs (NIFs, `beam.smp`, …). `prefix_for` maps a NIF to its `@loader_path`-based
prefix to `frameworks_dir` (the NIF runs from `beam.smp`, so references are
`@loader_path`-relative to the NIF's own location, independent of `DYLD_*`).
Copied dylibs share `frameworks_dir`, so they reference each other (and their
own id) as `@loader_path/<basename>`. Returns `{:ok, real_copies}`.
"""
@spec bundle([String.t()], String.t(), (String.t() -> String.t())) ::
{:ok, [String.t()]} | {:error, term()}
def bundle(nifs, frameworks_dir, prefix_for) when is_function(prefix_for, 1) do
File.mkdir_p!(frameworks_dir)
with {:ok, externals} <- collect(nifs, %{}) do
reals = materialize(externals, frameworks_dir)
with :ok <- relink_each(reals, fn _real -> "@loader_path" end, set_id: true),
:ok <- relink_each(nifs, prefix_for, set_id: false) do
{:ok, reals}
end
end
end
# Transitive closure of external deps, keyed by basename (one source path per
# basename — different absolute spellings of the same leaf collapse here).
defp collect(binaries, acc) do
Enum.reduce_while(binaries, {:ok, acc}, fn bin, {:ok, acc} ->
case otool(bin) do
{:ok, deps} ->
deps
|> Enum.filter(&external?/1)
|> Enum.reduce_while({:ok, acc}, fn dep, {:ok, acc} ->
base = Path.basename(dep)
if Map.has_key?(acc, base) do
{:cont, {:ok, acc}}
else
case collect([dep], Map.put(acc, base, dep)) do
{:ok, _} = ok -> {:cont, ok}
error -> {:halt, error}
end
end
end)
|> case do
{:ok, _} = ok -> {:cont, ok}
error -> {:halt, error}
end
error ->
{:halt, error}
end
end)
end
# Copy each external once (deduped by device+inode, which follows symlinks to
# the real file); additional basenames for the same file become symlinks so
# dyld loads a single image. Returns the real (non-symlink) copies.
# ponytail: basename collisions between *different* libraries would clobber;
# never happens for our deps — add content hashing if it ever does.
defp materialize(externals, frameworks_dir) do
{_seen, reals} =
Enum.reduce(externals, {%{}, []}, fn {base, src}, {seen, reals} ->
dest = Path.join(frameworks_dir, base)
inode = file_inode(src)
case Map.get(seen, inode) do
nil ->
File.cp!(src, dest)
File.chmod!(dest, 0o644)
{Map.put(seen, inode, base), [dest | reals]}
canonical ->
_ = File.rm(dest)
File.ln_s!(canonical, dest)
{seen, reals}
end
end)
Enum.reverse(reals)
end
defp file_inode(path) do
stat = File.stat!(path)
{stat.major_device, stat.inode}
end
defp relink_each(binaries, prefix_for, opts) do
set_id? = Keyword.fetch!(opts, :set_id)
Enum.reduce_while(binaries, :ok, fn binary, :ok ->
with :ok <- maybe_set_id(binary, set_id?),
:ok <- relink(binary, prefix_for.(binary)) do
{:cont, :ok}
else
error -> {:halt, error}
end
end)
end
defp maybe_set_id(_binary, false), do: :ok
defp maybe_set_id(binary, true) do
run("install_name_tool", id_args(binary, "@loader_path/" <> Path.basename(binary)))
end
defp relink(binary, prefix) do
with {:ok, deps} <- otool(binary),
:ok <- apply_changes(binary, change_args(binary, relink_changes(deps, prefix))) do
strip_external_rpaths(binary)
end
end
defp apply_changes(_binary, []), do: :ok
defp apply_changes(_binary, args), do: run("install_name_tool", args)
# Drop any LC_RPATH pointing at Homebrew/local. Such an rpath lets an
# @rpath/ dep resolve outside the bundle, so leaving it would break standalone.
defp strip_external_rpaths(binary) do
case rpaths(binary) do
{:ok, paths} ->
paths
|> Enum.filter(&external?/1)
|> Enum.reduce_while(:ok, fn rpath, :ok ->
case run("install_name_tool", ["-delete_rpath", rpath, binary]) do
:ok -> {:cont, :ok}
error -> {:halt, error}
end
end)
error ->
error
end
end
defp rpaths(path) do
case System.cmd("otool", ["-l", path], stderr_to_stdout: true) do
{out, 0} -> {:ok, parse_rpaths(out)}
{out, status} -> {:error, {:otool_failed, status, out}}
end
end
defp otool(path) do
case System.cmd("otool", ["-L", path], stderr_to_stdout: true) do
{out, 0} -> {:ok, parse_otool(out)}
{out, status} -> {:error, {:otool_failed, status, out}}
end
end
defp run(cmd, args) do
case System.cmd(cmd, args, stderr_to_stdout: true) do
{_out, 0} -> :ok
{out, status} -> {:error, {:command_failed, cmd, status, out}}
end
end
end