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I wrote the Rust code:

myapp/src/main.rs

extern crate cpython;

use cpython::Python;

fn main() {
    let gil = Python::acquire_gil();
    println!("Hello from Rust!");
    let py = gil.python();
    let module = cpython::PyModule::import(py, "fibo").unwrap();

    module.call(py, "fib", (1,), None).unwrap();
}

And saved the Python module as myapp/pyth/fibo.py

filesystem layout

But I get the error:

thread 'main' panicked at 'called `Result::unwrap()` on an `Err` value: PyErr { ptype: <class 'ModuleNotFoundError'>, pvalue: Some(ModuleNotFoundError("No module named 'fibo'",)), ptraceback: None }', libcore/result.rs:945:5

The part of the code I'm expecting to know about the directory pyth is: let module = cpython::PyModule::import(py, "fibo").unwrap();

4
  • 1
    Which part of the code are you expecting to know about the directory pyth?
    – Shepmaster
    Commented Jul 18, 2018 at 19:36
  • @Shepmaster, this part: let module = cpython::PyModule::import(py, "fibo").unwrap(); Commented Jul 18, 2018 at 19:44
  • Sorry, I don't think I stated my question clearly. Why would cpython::PyModule::import know about the directory named pyth? What if you had called it pyt or pytho or i_put_my_code_in_here? Is pyth some special, hard-coded directory? If so, can you point to some documentation that describes that?
    – Shepmaster
    Commented Jul 18, 2018 at 19:46
  • @Shepmaster, mm, I just need it to se the module fibo.py so thought it may be better to put it in a separate folder, thats all :) Commented Jul 18, 2018 at 19:52

2 Answers 2

2

I see two solutions if you want to keep fibo.py as a separate file from your executable:

You can add the pyth folder to the Python path:

let sys = py.import("sys")?;
PyList::downcast_from(py, sys.get("path")?)?.insert_item(py, 0, "pyth");
let module = py.import("fibo")?;

This assumes that the Rust executable is run from the parent folder or the project, meaning that pyth is a subfolder of the current path.

Or you can import pyth.fibo, just like you would in Python:

let module = py.import("pyth.fibo")?;

This assumes that pyth is somewhere in the Python path (see first solution if you need to add the parent folder to the path).

2
0

I found a solution.

main.rs

extern crate cpython;

use cpython::{PyModule, PyResult, Python};

const FIBO_PY: &'static str = include_str!("../pyth/fibo.py");

fn main() {
    let gil = Python::acquire_gil();
    let py = gil.python();

    example(py).unwrap();
}

fn example(py: Python<'_>) -> PyResult<()> {
    let m = module_from_str(py, "fibo", FIBO_PY)?;

    let out: Vec<i32> = m.call(py, "fib", (2,), None)?.extract(py)?;
    println!(
        "successfully found fibo.py at compiletime.  Output: {:?}",
        out
    );

    Ok(())
}

/// Import a module from the given file contents.
///
/// This is a wrapper around `PyModule::new` and `Python::run` which simulates
/// the behavior of the builtin function `exec`. `name` will be used as the
/// module's `__name__`, but is not otherwise important (it does not need
/// to match the file's name).

fn module_from_str(py: Python<'_>, name: &str, source: &str) -> PyResult<PyModule> {
    let m = PyModule::new(py, name)?;

    let builtins = cpython::PyModule::import(py, "builtins").unwrap();
    m.dict(py).set_item(py, "__builtins__", &builtins).unwrap();

   // OR
    m.add(py, "__builtins__", py.import("builtins")?)?;
    let m_locals = m.get(py, "__dict__")?.extract(py)?;

    // To avoid multiple import, and to add entry to the cache in `sys.modules`.
    let sys = cpython::PyModule::import(py, "sys").unwrap();
    sys.get(py, "modules").unwrap().set_item(py, name, &m).unwrap();

    // Finally, run the moduke
    py.run(source, Some(&m_locals), None)?;
    Ok(m)
}

fibo.py

def fib(n):   # return Fibonacci series up to n
    print('Hello from python!')
    result = []
    a, b = 0, 1
    while a < n:
        result.append(a)
        a, b = b, a+b
    return result
1
  • Note that this solution will embed the Python code in your Rust executable, so that you will need to recompile the Rust executable each time the Python code changes. See my answer for solutions that keep the Python file separate.
    – Jmb
    Commented Jul 19, 2018 at 6:40

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