document + refactor numcomplex/bigint dependencies
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@ -38,6 +38,8 @@ proptest = { version = "0.10.1", default-features = false, features = ["std"] }
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# features needed to run the PyO3 test suite
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pyo3 = { path = ".", default-features = false, features = ["macros", "auto-initialize"] }
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serde_json = "1.0.61"
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# needed for num-complex doctest
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nalgebra = "0.27.1"
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[build-dependencies]
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pyo3-build-config = { path = "pyo3-build-config", version = "=0.14.0-alpha.0" }
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@ -69,6 +69,14 @@ The `nightly` feature needs the nightly Rust compiler. This allows PyO3 to use R
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- `FromPyObject` for `Vec` and `[T;N]` can perform a `memcpy` when the object supports the Python buffer protocol.
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- `ToBorrowedObject` can skip a reference count increase when the provided object is a Python native type.
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### `num-bigint`
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This feature adds a dependency on [num-bigint](https://docs.rs/num-bigint) and enables conversions into its [`BigInt`](https://docs.rs/num-bigint/latest/num_bigint/struct.BigInt.html) and [`BigUint`](https://docs.rs/num-bigint/latest/num_bigint/struct.BigUInt.html) types.
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### `num-complex`
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This feature adds a dependency on [num-complex](https://docs.rs/num-complex) and enables conversions into its [`Complex`](https://docs.rs/num-complex/latest/num_complex/struct.Complex.html) type.
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### `serde`
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The `serde` feature enables (de)serialization of Py<T> objects via [serde](https://serde.rs/).
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@ -80,12 +80,12 @@
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//! [`#[pyclass]`](crate::proc_macro::pyclass). This adds a dependency on the
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//! [`inventory`](https://docs.rs/inventory) crate, which is not supported on all platforms.
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//
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//! - `num-bigint`: Enables conversions between Python objects and
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//! - [`num-bigint`](crate::num_bigint): Enables conversions between Python objects and
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//! [num-bigint](https://docs.rs/num-bigint)'s
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//! [`BigInt`](https://docs.rs/num-bigint/latest/num_bigint/struct.BigInt.html) and
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//! [`BigUint`](https://docs.rs/num-bigint/latest/num_bigint/struct.BigUint.html) types.
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//
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//! - `num-complex`: Enables conversions between Python objects and
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//! - [`num-complex`](crate::num_complex): Enables conversions between Python objects and
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//! [num-complex](https://docs.rs/num-complex)'s
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//! [`Complex`](https://docs.rs/num-complex/latest/num_complex/struct.Complex.html) type.
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//
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@ -300,6 +300,8 @@ pub mod types;
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pub mod num_bigint;
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pub mod num_complex;
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#[cfg_attr(docsrs, doc(cfg(feature = "serde")))]
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#[cfg(feature = "serde")]
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pub mod serde;
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@ -1,3 +1,7 @@
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// Copyright (c) 2017-present PyO3 Project and Contributors
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//
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// based on Daniel Grunwald's https://github.com/dgrunwald/rust-cpython
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#![cfg(all(feature = "num-bigint", not(any(Py_LIMITED_API, PyPy))))]
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#![cfg_attr(
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docsrs,
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@ -5,8 +9,7 @@
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)]
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//! Conversions to and from [num-bigint](https://docs.rs/num-bigint)’s [`BigInt`] and [`BigUint`] types.
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//!
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//! This is useful for converting Python integers, which have arbitrary precision,
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//! when they may not fit in Rust's built-in integer types.
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//! This is useful for converting Python integers when they may not fit in Rust's built-in integer types.
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//!
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//! # Setup
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//!
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@ -15,7 +18,7 @@
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//! ```toml
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//! [dependencies]
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//! num-bigint = "0.4"
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//! pyo3 = { version = "0.14.0", features = ["num-bigint"] }
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//! pyo3 = { version = "0.14", features = ["num-bigint"] }
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//! ```
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//!
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//! Note that you must use compatible versions of num-bigint and PyO3.
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@ -23,7 +26,9 @@
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//!
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//! ## Examples
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//!
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//! [`BigInt`] and [`BigUint`] can be used represent arbitrary precision integers:
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//! Using [`BigInt`] to correctly increment an arbitrary precision integer.
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//! This is not possible with Rust's native integers if the Python integer is too large,
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//! in which case it will fail its conversion and raise `OverflowError`.
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//!
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//! ```rust
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//! use num_bigint::BigInt;
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@ -52,7 +57,6 @@
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//! assert n + 1 == value
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//! ```
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use crate::{
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err, ffi, types::*, AsPyPointer, FromPyObject, IntoPy, Py, PyAny, PyErr, PyNativeType,
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PyObject, PyResult, Python, ToPyObject,
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@ -0,0 +1,192 @@
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#![cfg(feature = "num-complex")]
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#![cfg_attr(docsrs, doc(cfg(feature = "num-complex")))]
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//! Conversions to and from [num-complex](https://docs.rs/num-complex)’
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//! [`Complex`]`<`[`f32`]`>` and [`Complex`]`<`[`f64`]`>`.
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//!
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//! num-complex’ [`Complex`] supports more operations than PyO3's [`PyComplex`]
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//! and can be used with the rest of the Rust ecosystem.
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//!
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//! # Setup
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//!
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//! To use this feature, add this to your **`Cargo.toml`**:
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//!
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//! ```toml
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//! [dependencies]
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//! num-complex = "0.4"
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//! pyo3 = { version = "0.14", features = ["num-complex"] }
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//! ```
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//!
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//! Note that you must use compatible versions of num-complex and PyO3.
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//! The required num-complex version may vary with older versions of PyO3.
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//!
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//! # Examples
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//!
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//! Using [num-complex](https://docs.rs/num-complex) and [nalgebra](https://docs.rs/nalgebra)
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//! to create a pyfunction that calculates the eigenvalues of a 2x2 matrix.
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//!
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//! ```rust
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//! use nalgebra::base::{dimension::Const, storage::Storage, Matrix};
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//! use num_complex::Complex;
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//! use pyo3::prelude::*;
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//! use pyo3::wrap_pyfunction;
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//!
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//! type T = Complex<f64>;
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//!
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//! #[pyfunction]
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//! fn get_eigenvalues(m11: T, m12: T, m21: T, m22: T) -> Vec<T> {
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//! let mat = Matrix::<T, Const<2>, Const<2>, _>::new(m11, m12, m21, m22);
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//!
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//! match mat.eigenvalues() {
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//! Some(e) => e.data.as_slice().to_vec(),
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//! None => vec![],
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//! }
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//! }
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//!
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//! #[pymodule]
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//! fn my_module(_py: Python, m: &PyModule) -> PyResult<()> {
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//! m.add_function(wrap_pyfunction!(get_eigenvalues, m)?)?;
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//! Ok(())
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//! }
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//! # // test
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//! # use assert_approx_eq::assert_approx_eq;
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//! # use nalgebra::ComplexField;
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//! # use pyo3::types::PyComplex;
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//! #
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//! # fn main() -> PyResult<()> {
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//! # Python::with_gil(|py| -> PyResult<()> {
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//! # let module = PyModule::new(py, "my_module")?;
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//! #
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//! # module.add_function(wrap_pyfunction!(get_eigenvalues, module)?)?;
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//! #
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//! # let m11 = PyComplex::from_doubles(py, 0_f64, -1_f64);
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//! # let m12 = PyComplex::from_doubles(py, 1_f64, 0_f64);
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//! # let m21 = PyComplex::from_doubles(py, 2_f64, -1_f64);
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//! # let m22 = PyComplex::from_doubles(py, -1_f64, 0_f64);
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//! #
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//! # let result = module
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//! # .getattr("get_eigenvalues")?
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//! # .call1((m11, m12, m21, m22))?;
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//! # println!("eigenvalues: {:?}", result);
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//! #
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//! # let result = result.extract::<Vec<T>>()?;
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//! # let e0 = result[0];
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//! # let e1 = result[1];
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//! #
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//! # assert_approx_eq!(e0, Complex::new(1_f64, -1_f64));
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//! # assert_approx_eq!(e1, Complex::new(-2_f64, 0_f64));
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//! #
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//! # Ok(())
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//! # })
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//! # }
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//! ```
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//!
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//! Python code:
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//! ```python
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//! from my_module import get_eigenvalues
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//!
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//! m11 = complex(0,-1)
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//! m12 = complex(1,0)
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//! m21 = complex(2,-1)
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//! m22 = complex(-1,0)
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//!
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//! result = get_eigenvalues(m11,m12,m21,m22)
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//! assert result == [complex(1,-1), complex(-2,0)]
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//! ```
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use crate::{
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ffi, types::PyComplex, AsPyPointer, FromPyObject, PyAny, PyErr, PyNativeType, PyObject,
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PyResult, Python, ToPyObject,
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};
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use num_complex::Complex;
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use std::os::raw::c_double;
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impl PyComplex {
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/// Creates a new Python `PyComplex` object from `num_complex`'s [`Complex`].
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pub fn from_complex<F: Into<c_double>>(py: Python, complex: Complex<F>) -> &PyComplex {
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unsafe {
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let ptr = ffi::PyComplex_FromDoubles(complex.re.into(), complex.im.into());
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py.from_owned_ptr(ptr)
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}
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}
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}
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macro_rules! complex_conversion {
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($float: ty) => {
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impl ToPyObject for Complex<$float> {
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#[inline]
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fn to_object(&self, py: Python) -> PyObject {
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crate::IntoPy::<PyObject>::into_py(self.to_owned(), py)
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}
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}
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impl crate::IntoPy<PyObject> for Complex<$float> {
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fn into_py(self, py: Python) -> PyObject {
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unsafe {
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let raw_obj =
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ffi::PyComplex_FromDoubles(self.re as c_double, self.im as c_double);
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PyObject::from_owned_ptr(py, raw_obj)
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}
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}
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}
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#[cfg(not(any(Py_LIMITED_API, PyPy)))]
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#[allow(clippy::float_cmp)] // The comparison is for an error value
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impl<'source> FromPyObject<'source> for Complex<$float> {
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fn extract(obj: &'source PyAny) -> PyResult<Complex<$float>> {
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unsafe {
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let val = ffi::PyComplex_AsCComplex(obj.as_ptr());
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if val.real == -1.0 && PyErr::occurred(obj.py()) {
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Err(PyErr::fetch(obj.py()))
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} else {
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Ok(Complex::new(val.real as $float, val.imag as $float))
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}
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}
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}
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}
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#[cfg(any(Py_LIMITED_API, PyPy))]
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#[allow(clippy::float_cmp)] // The comparison is for an error value
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impl<'source> FromPyObject<'source> for Complex<$float> {
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fn extract(obj: &'source PyAny) -> PyResult<Complex<$float>> {
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unsafe {
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let ptr = obj.as_ptr();
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let real = ffi::PyComplex_RealAsDouble(ptr);
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if real == -1.0 && PyErr::occurred(obj.py()) {
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return Err(PyErr::fetch(obj.py()));
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}
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let imag = ffi::PyComplex_ImagAsDouble(ptr);
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Ok(Complex::new(real as $float, imag as $float))
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}
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}
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}
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};
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}
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complex_conversion!(f32);
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complex_conversion!(f64);
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#[cfg(test)]
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mod test {
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use super::*;
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#[allow(clippy::float_cmp)] // The test wants to ensure that no precision was lost on the Python round-trip
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#[test]
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fn from_complex() {
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let gil = Python::acquire_gil();
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let py = gil.python();
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let complex = Complex::new(3.0, 1.2);
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let py_c = PyComplex::from_complex(py, complex);
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assert_eq!(py_c.real(), 3.0);
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assert_eq!(py_c.imag(), 1.2);
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}
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#[test]
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fn to_from_complex() {
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let gil = Python::acquire_gil();
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let py = gil.python();
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let val = Complex::new(3.0, 1.2);
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let obj = val.to_object(py);
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assert_eq!(obj.extract::<Complex<f64>>(py).unwrap(), val);
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}
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#[test]
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fn from_complex_err() {
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let gil = Python::acquire_gil();
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let py = gil.python();
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let obj = vec![1].to_object(py);
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assert!(obj.extract::<Complex<f64>>(py).is_err());
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}
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}
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@ -1,11 +1,13 @@
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#[cfg(all(not(PyPy), not(Py_LIMITED_API)))]
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use crate::instance::PyNativeType;
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use crate::{ffi, AsPyPointer, PyAny, Python};
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#[cfg(all(not(PyPy), not(Py_LIMITED_API)))]
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use std::ops::*;
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use std::os::raw::c_double;
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/// Represents a Python `complex`.
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/// Represents a Python [`complex`](https://docs.python.org/3/library/functions.html#complex) object.
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///
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/// Note that `PyComplex` supports only basic operations. For advanced operations
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/// consider using [num-bigint](https://docs.rs/num-bigint)'s [`Complex`] type instead.
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/// This requires the [`num-complex`](crate::num_complex) feature flag.
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///
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/// [`Complex`]: https://docs.rs/num-complex/latest/num_complex/struct.Complex.html
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#[repr(transparent)]
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pub struct PyComplex(PyAny);
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);
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impl PyComplex {
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/// Creates a new Python `complex` object, from its real and imaginary values.
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/// Creates a new `PyComplex` from the given real and imaginary values.
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pub fn from_doubles(py: Python, real: c_double, imag: c_double) -> &PyComplex {
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unsafe {
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let ptr = ffi::PyComplex_FromDoubles(real, imag);
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}
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}
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/// Returns the real part of the complex number.
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#[must_use = "method returns a new number and does not mutate the original value"]
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pub fn real(&self) -> c_double {
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unsafe { ffi::PyComplex_RealAsDouble(self.as_ptr()) }
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}
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/// Returns the imaginary part the complex number.
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/// Returns the imaginary part of the complex number.
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#[must_use = "method returns a new number and does not mutate the original value"]
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pub fn imag(&self) -> c_double {
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unsafe { ffi::PyComplex_ImagAsDouble(self.as_ptr()) }
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}
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/// Returns `|self|`.
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#[cfg(not(any(Py_LIMITED_API, PyPy)))]
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#[cfg_attr(docsrs, doc(cfg(not(any(Py_LIMITED_API, PyPy)))))]
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pub fn abs(&self) -> c_double {
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unsafe {
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let val = (*(self.as_ptr() as *mut ffi::PyComplexObject)).cval;
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ffi::_Py_c_abs(val)
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}
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}
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/// Returns `self ** other`
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#[cfg(not(any(Py_LIMITED_API, PyPy)))]
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#[cfg_attr(docsrs, doc(cfg(not(any(Py_LIMITED_API, PyPy)))))]
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pub fn pow(&self, other: &PyComplex) -> &PyComplex {
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unsafe {
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self.py()
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.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_pow))
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}
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}
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}
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#[cfg(not(any(Py_LIMITED_API, PyPy)))]
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#[inline(always)]
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unsafe fn complex_operation(
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l: &PyComplex,
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r: &PyComplex,
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operation: unsafe extern "C" fn(ffi::Py_complex, ffi::Py_complex) -> ffi::Py_complex,
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) -> *mut ffi::PyObject {
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let l_val = (*(l.as_ptr() as *mut ffi::PyComplexObject)).cval;
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let r_val = (*(r.as_ptr() as *mut ffi::PyComplexObject)).cval;
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ffi::PyComplex_FromCComplex(operation(l_val, r_val))
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}
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#[cfg(not(any(Py_LIMITED_API, PyPy)))]
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#[cfg_attr(docsrs, doc(cfg(not(any(Py_LIMITED_API, PyPy)))))]
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impl<'py> Add for &'py PyComplex {
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type Output = &'py PyComplex;
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fn add(self, other: &'py PyComplex) -> &'py PyComplex {
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unsafe {
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self.py()
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.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_sum))
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}
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}
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}
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#[cfg(not(any(Py_LIMITED_API, PyPy)))]
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#[cfg_attr(docsrs, doc(cfg(not(any(Py_LIMITED_API, PyPy)))))]
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impl<'py> Sub for &'py PyComplex {
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type Output = &'py PyComplex;
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fn sub(self, other: &'py PyComplex) -> &'py PyComplex {
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unsafe {
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self.py()
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.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_diff))
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}
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}
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}
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#[cfg(not(any(Py_LIMITED_API, PyPy)))]
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#[cfg_attr(docsrs, doc(cfg(not(any(Py_LIMITED_API, PyPy)))))]
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impl<'py> Mul for &'py PyComplex {
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type Output = &'py PyComplex;
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fn mul(self, other: &'py PyComplex) -> &'py PyComplex {
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unsafe {
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self.py()
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.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_prod))
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}
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}
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}
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#[cfg(not(any(Py_LIMITED_API, PyPy)))]
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#[cfg_attr(docsrs, doc(cfg(not(any(Py_LIMITED_API, PyPy)))))]
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impl<'py> Div for &'py PyComplex {
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type Output = &'py PyComplex;
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fn div(self, other: &'py PyComplex) -> &'py PyComplex {
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unsafe {
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self.py()
|
||||
.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_quot))
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[cfg_attr(docsrs, doc(cfg(not(any(Py_LIMITED_API, PyPy)))))]
|
||||
impl<'py> Neg for &'py PyComplex {
|
||||
type Output = &'py PyComplex;
|
||||
fn neg(self) -> &'py PyComplex {
|
||||
unsafe {
|
||||
let val = (*(self.as_ptr() as *mut ffi::PyComplexObject)).cval;
|
||||
self.py()
|
||||
.from_owned_ptr(ffi::PyComplex_FromCComplex(ffi::_Py_c_neg(val)))
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(feature = "num-complex")]
|
||||
#[cfg_attr(docsrs, doc(cfg(feature = "num-complex")))]
|
||||
mod complex_conversion {
|
||||
mod not_limited_impls {
|
||||
use super::*;
|
||||
use crate::{FromPyObject, PyErr, PyNativeType, PyObject, PyResult, ToPyObject};
|
||||
use num_complex::Complex;
|
||||
use crate::instance::PyNativeType;
|
||||
use std::ops::{Add, Div, Mul, Neg, Sub};
|
||||
|
||||
impl PyComplex {
|
||||
/// Creates a new Python `PyComplex` object from `num_complex`'s [`Complex`].
|
||||
pub fn from_complex<F: Into<c_double>>(py: Python, complex: Complex<F>) -> &PyComplex {
|
||||
/// Returns `|self|`.
|
||||
#[must_use = "method returns a new number and does not mutate the original value"]
|
||||
pub fn abs(&self) -> c_double {
|
||||
unsafe {
|
||||
let ptr = ffi::PyComplex_FromDoubles(complex.re.into(), complex.im.into());
|
||||
py.from_owned_ptr(ptr)
|
||||
let val = (*(self.as_ptr() as *mut ffi::PyComplexObject)).cval;
|
||||
ffi::_Py_c_abs(val)
|
||||
}
|
||||
}
|
||||
/// Returns `self` raised to the power of `other`.
|
||||
#[must_use = "method returns a new PyComplex and does not mutate the original value"]
|
||||
pub fn pow(&self, other: &PyComplex) -> &PyComplex {
|
||||
unsafe {
|
||||
self.py()
|
||||
.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_pow))
|
||||
}
|
||||
}
|
||||
}
|
||||
macro_rules! complex_conversion {
|
||||
($float: ty) => {
|
||||
impl ToPyObject for Complex<$float> {
|
||||
#[inline]
|
||||
fn to_object(&self, py: Python) -> PyObject {
|
||||
crate::IntoPy::<PyObject>::into_py(self.to_owned(), py)
|
||||
}
|
||||
}
|
||||
impl crate::IntoPy<PyObject> for Complex<$float> {
|
||||
fn into_py(self, py: Python) -> PyObject {
|
||||
unsafe {
|
||||
let raw_obj =
|
||||
ffi::PyComplex_FromDoubles(self.re as c_double, self.im as c_double);
|
||||
PyObject::from_owned_ptr(py, raw_obj)
|
||||
}
|
||||
}
|
||||
}
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[allow(clippy::float_cmp)] // The comparison is for an error value
|
||||
impl<'source> FromPyObject<'source> for Complex<$float> {
|
||||
fn extract(obj: &'source PyAny) -> PyResult<Complex<$float>> {
|
||||
unsafe {
|
||||
let val = ffi::PyComplex_AsCComplex(obj.as_ptr());
|
||||
if val.real == -1.0 && PyErr::occurred(obj.py()) {
|
||||
Err(PyErr::fetch(obj.py()))
|
||||
} else {
|
||||
Ok(Complex::new(val.real as $float, val.imag as $float))
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
#[cfg(any(Py_LIMITED_API, PyPy))]
|
||||
#[allow(clippy::float_cmp)] // The comparison is for an error value
|
||||
impl<'source> FromPyObject<'source> for Complex<$float> {
|
||||
fn extract(obj: &'source PyAny) -> PyResult<Complex<$float>> {
|
||||
unsafe {
|
||||
let ptr = obj.as_ptr();
|
||||
let real = ffi::PyComplex_RealAsDouble(ptr);
|
||||
if real == -1.0 && PyErr::occurred(obj.py()) {
|
||||
return Err(PyErr::fetch(obj.py()));
|
||||
}
|
||||
let imag = ffi::PyComplex_ImagAsDouble(ptr);
|
||||
Ok(Complex::new(real as $float, imag as $float))
|
||||
}
|
||||
}
|
||||
}
|
||||
};
|
||||
}
|
||||
complex_conversion!(f32);
|
||||
complex_conversion!(f64);
|
||||
|
||||
#[allow(clippy::float_cmp)] // The test wants to ensure that no precision was lost on the Python round-trip
|
||||
#[test]
|
||||
fn from_complex() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let complex = Complex::new(3.0, 1.2);
|
||||
let py_c = PyComplex::from_complex(py, complex);
|
||||
assert_eq!(py_c.real(), 3.0);
|
||||
assert_eq!(py_c.imag(), 1.2);
|
||||
#[inline(always)]
|
||||
unsafe fn complex_operation(
|
||||
l: &PyComplex,
|
||||
r: &PyComplex,
|
||||
operation: unsafe extern "C" fn(ffi::Py_complex, ffi::Py_complex) -> ffi::Py_complex,
|
||||
) -> *mut ffi::PyObject {
|
||||
let l_val = (*(l.as_ptr() as *mut ffi::PyComplexObject)).cval;
|
||||
let r_val = (*(r.as_ptr() as *mut ffi::PyComplexObject)).cval;
|
||||
ffi::PyComplex_FromCComplex(operation(l_val, r_val))
|
||||
}
|
||||
#[test]
|
||||
fn to_from_complex() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let val = Complex::new(3.0, 1.2);
|
||||
let obj = val.to_object(py);
|
||||
assert_eq!(obj.extract::<Complex<f64>>(py).unwrap(), val);
|
||||
|
||||
impl<'py> Add for &'py PyComplex {
|
||||
type Output = &'py PyComplex;
|
||||
fn add(self, other: &'py PyComplex) -> &'py PyComplex {
|
||||
unsafe {
|
||||
self.py()
|
||||
.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_sum))
|
||||
}
|
||||
}
|
||||
}
|
||||
#[test]
|
||||
fn from_complex_err() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let obj = vec![1].to_object(py);
|
||||
assert!(obj.extract::<Complex<f64>>(py).is_err());
|
||||
|
||||
impl<'py> Sub for &'py PyComplex {
|
||||
type Output = &'py PyComplex;
|
||||
fn sub(self, other: &'py PyComplex) -> &'py PyComplex {
|
||||
unsafe {
|
||||
self.py()
|
||||
.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_diff))
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl<'py> Mul for &'py PyComplex {
|
||||
type Output = &'py PyComplex;
|
||||
fn mul(self, other: &'py PyComplex) -> &'py PyComplex {
|
||||
unsafe {
|
||||
self.py()
|
||||
.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_prod))
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl<'py> Div for &'py PyComplex {
|
||||
type Output = &'py PyComplex;
|
||||
fn div(self, other: &'py PyComplex) -> &'py PyComplex {
|
||||
unsafe {
|
||||
self.py()
|
||||
.from_owned_ptr(complex_operation(self, other, ffi::_Py_c_quot))
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl<'py> Neg for &'py PyComplex {
|
||||
type Output = &'py PyComplex;
|
||||
fn neg(self) -> &'py PyComplex {
|
||||
unsafe {
|
||||
let val = (*(self.as_ptr() as *mut ffi::PyComplexObject)).cval;
|
||||
self.py()
|
||||
.from_owned_ptr(ffi::PyComplex_FromCComplex(ffi::_Py_c_neg(val)))
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod test {
|
||||
use super::PyComplex;
|
||||
use crate::Python;
|
||||
use assert_approx_eq::assert_approx_eq;
|
||||
|
||||
#[test]
|
||||
fn test_add() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.0, 2.6);
|
||||
let res = l + r;
|
||||
assert_approx_eq!(res.real(), 4.0);
|
||||
assert_approx_eq!(res.imag(), 3.8);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_sub() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.0, 2.6);
|
||||
let res = l - r;
|
||||
assert_approx_eq!(res.real(), 2.0);
|
||||
assert_approx_eq!(res.imag(), -1.4);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_mul() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.0, 2.6);
|
||||
let res = l * r;
|
||||
assert_approx_eq!(res.real(), -0.12);
|
||||
assert_approx_eq!(res.imag(), 9.0);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_div() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.0, 2.6);
|
||||
let res = l / r;
|
||||
assert_approx_eq!(res.real(), 0.788_659_793_814_432_9);
|
||||
assert_approx_eq!(res.imag(), -0.850_515_463_917_525_7);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_neg() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let val = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let res = -val;
|
||||
assert_approx_eq!(res.real(), -3.0);
|
||||
assert_approx_eq!(res.imag(), -1.2);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_abs() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let val = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
assert_approx_eq!(val.abs(), 3.231_098_884_280_702_2);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_pow() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.2, 2.6);
|
||||
let val = l.pow(r);
|
||||
assert_approx_eq!(val.real(), -1.419_309_997_016_603_7);
|
||||
assert_approx_eq!(val.imag(), -0.541_297_466_033_544_6);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
@ -235,84 +223,4 @@ mod test {
|
|||
assert_approx_eq!(complex.real(), 3.0);
|
||||
assert_approx_eq!(complex.imag(), 1.2);
|
||||
}
|
||||
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[test]
|
||||
fn test_add() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.0, 2.6);
|
||||
let res = l + r;
|
||||
assert_approx_eq!(res.real(), 4.0);
|
||||
assert_approx_eq!(res.imag(), 3.8);
|
||||
}
|
||||
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[test]
|
||||
fn test_sub() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.0, 2.6);
|
||||
let res = l - r;
|
||||
assert_approx_eq!(res.real(), 2.0);
|
||||
assert_approx_eq!(res.imag(), -1.4);
|
||||
}
|
||||
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[test]
|
||||
fn test_mul() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.0, 2.6);
|
||||
let res = l * r;
|
||||
assert_approx_eq!(res.real(), -0.12);
|
||||
assert_approx_eq!(res.imag(), 9.0);
|
||||
}
|
||||
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[test]
|
||||
fn test_div() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.0, 2.6);
|
||||
let res = l / r;
|
||||
assert_approx_eq!(res.real(), 0.788_659_793_814_432_9);
|
||||
assert_approx_eq!(res.imag(), -0.850_515_463_917_525_7);
|
||||
}
|
||||
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[test]
|
||||
fn test_neg() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let val = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let res = -val;
|
||||
assert_approx_eq!(res.real(), -3.0);
|
||||
assert_approx_eq!(res.imag(), -1.2);
|
||||
}
|
||||
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[test]
|
||||
fn test_abs() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let val = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
assert_approx_eq!(val.abs(), 3.231_098_884_280_702_2);
|
||||
}
|
||||
|
||||
#[cfg(not(any(Py_LIMITED_API, PyPy)))]
|
||||
#[test]
|
||||
fn test_pow() {
|
||||
let gil = Python::acquire_gil();
|
||||
let py = gil.python();
|
||||
let l = PyComplex::from_doubles(py, 3.0, 1.2);
|
||||
let r = PyComplex::from_doubles(py, 1.2, 2.6);
|
||||
let val = l.pow(r);
|
||||
assert_approx_eq!(val.real(), -1.419_309_997_016_603_7);
|
||||
assert_approx_eq!(val.imag(), -0.541_297_466_033_544_6);
|
||||
}
|
||||
}
|
||||
|
|
Loading…
Reference in New Issue