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unidecompiler-simulator

unidecompiler-simulator is a library for bounded execution of unidecompiler generic IR. It depends on the decompiler core but the core does not depend on, import, or know about this package.

The simulator owns frames, control flow, calls, limits, exceptions, and the execution trace. A frontend may expose an optional simulation_adapter attribute for frontend-specific function lookup and runtime facts. The adapter may answer individual operations, but it must not execute functions, interpret instructions, recover control flow, or return executable callbacks.

Generic IR execution is available without a frontend:

from unidecompiler_simulator import SimulationEngine

result = SimulationEngine().simulate_function(module, function, args=(1, 2))

Artifact execution gives an adapter the decoded frontend-owned payload only for function lookup and runtime hooks:

result = SimulationEngine().simulate_artifact(
    data,
    "sample.bytecode",
    query={"class": "Example", "method": "run"},
)

The unidecompiler-cli package hosts the command-line interface and accepts a frontend-owned function query and JSON arguments:

unidecompiler simulate sample.bytecode --function 'Example.run' --args '[1, 2]'

For the Lua bubble-sort fixture, compile the source before invoking the simulator. The Lua frontend adapter supplies only Lua function lookup and runtime value facts; the simulator still executes the lifted generic IR.

luac -o bubble_sort.luac simulator_projects/source/arithmetic.lua
unidecompiler simulate bubble_sort.luac --frontend lua --function bubble_sort --args '[[5, 1, 4, 2, 8]]'

The completed result contains "values": [[1, 2, 4, 5, 8]].

Built-in frontend adapters accept the following frontend-owned function queries:

Frontend Query
Python .pyc Unique function name, for example arithmetic
JVM .class Unique method name or Class.method, for example Sample.add
.NET assembly Unique method name or Type.Method, for example Probe.Add
WebAssembly Function name or $funcN, for example add or $func0
Lua chunk Unique function name, for example bubble_sort

Ambiguous queries are rejected by the relevant frontend adapter. The simulator does not choose among overloads or perform frontend-specific name recovery.

Execution is bounded and in-memory. Unknown operations, unsupported IR, and unsafe runtime behavior stop with a structured result instead of guessing.

Generic numeric execution supports canonical operators and common neutral shift, rotate, and bitwise aliases, including shl, shr, rol, and ror. Signedness, bit width, float width, and integer wrap/trap overflow policy come from generic IR and are never inferred from a frontend ID. Phi assignments at block entry use parallel-copy semantics; explicit generic stores, deletes, tuple/list kinds, and exception matching are also preserved.

Applications may inject an ExternalEnvironment for unresolved named calls. The environment receives only ExternalCallRequest data and returns an ExternalCallResult; it never receives IR, frames, adapters, or execution control. Python-file loading is intentionally owned by unidecompiler-cli, not this library.

The simulator does not resolve Global expressions as function names. Any frontend-specific function lookup or dynamic call target must be provided by the optional adapter and must resolve back to a FunctionIR owned by the current lifted module.

The simulator intentionally does not execute frontend bytecode, frontend opcode tables, or core Effect objects directly. Core is responsible for lifting VM-neutral effects into generic IR; this package executes that generic IR. Keeping that boundary strict prevents a language-specific opcode switch from leaking into the simulator and keeps every frontend replaceable.

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