use crate::{
pb::*,
traits::{FromMessage, ToMessage},
AUTDProtoBufError,
};
impl ToMessage for autd3::gain::Bessel {
type Message = Datagram;
fn to_msg(&self, _: Option<&autd3_driver::geometry::Geometry>) -> Self::Message {
Self::Message {
datagram: Some(datagram::Datagram::Gain(Gain {
gain: Some(gain::Gain::Bessel(Bessel {
intensity: Some(self.intensity().to_msg(None)),
pos: Some(self.pos().to_msg(None)),
dir: Some(self.dir().to_msg(None)),
theta: Some(self.theta().to_msg(None)),
phase_offset: Some(self.phase_offset().to_msg(None)),
})),
})),
timeout: None,
parallel_threshold: None,
}
}
}
impl FromMessage<Bessel> for autd3::gain::Bessel {
fn from_msg(msg: &Bessel) -> Result<Self, AUTDProtoBufError> {
let mut g = Self::new(
autd3_driver::geometry::Vector3::from_msg(&msg.pos)?,
autd3_driver::geometry::Vector3::from_msg(&msg.dir)?,
autd3_driver::defined::Angle::from_msg(&msg.theta)?,
);
if let Some(intensity) = msg.intensity.as_ref() {
g = g.with_intensity(autd3_driver::firmware::fpga::EmitIntensity::from_msg(
intensity,
)?);
}
if let Some(phase_offset) = msg.phase_offset.as_ref() {
g = g.with_phase_offset(autd3_driver::firmware::fpga::Phase::from_msg(phase_offset)?);
}
Ok(g)
}
}
#[cfg(test)]
mod tests {
use super::*;
use autd3::derive::rad;
use autd3_driver::{firmware::fpga::EmitIntensity, geometry::Vector3};
use rand::Rng;
#[test]
fn bessel() {
let mut rng = rand::thread_rng();
let g = autd3::gain::Bessel::new(
Vector3::new(rng.gen(), rng.gen(), rng.gen()),
Vector3::new(rng.gen(), rng.gen(), rng.gen()),
rng.gen::<f32>() * rad,
)
.with_intensity(EmitIntensity::new(rng.gen()));
let msg = g.to_msg(None);
match msg.datagram {
Some(datagram::Datagram::Gain(Gain {
gain: Some(gain::Gain::Bessel(gain)),
..
})) => {
let g2 = autd3::gain::Bessel::from_msg(&gain).unwrap();
assert_approx_eq::assert_approx_eq!(g.pos().x, g2.pos().x);
assert_approx_eq::assert_approx_eq!(g.pos().y, g2.pos().y);
assert_approx_eq::assert_approx_eq!(g.pos().z, g2.pos().z);
assert_approx_eq::assert_approx_eq!(g.dir().x, g2.dir().x);
assert_approx_eq::assert_approx_eq!(g.dir().y, g2.dir().y);
assert_approx_eq::assert_approx_eq!(g.dir().z, g2.dir().z);
assert_approx_eq::assert_approx_eq!(g.theta().radian(), g2.theta().radian());
assert_eq!(g.intensity(), g2.intensity());
}
_ => panic!("unexpected datagram type"),
}
}
}