use autd3_gain_holo::{LinAlgBackend, NalgebraBackend};
use crate::{
pb::*,
to_holo,
traits::{FromMessage, ToMessage},
};
impl ToMessage
for autd3_gain_holo::GS<
autd3_driver::acoustics::directivity::Sphere,
NalgebraBackend<autd3_driver::acoustics::directivity::Sphere>,
>
{
type Message = DatagramLightweight;
#[allow(clippy::unnecessary_cast)]
fn to_msg(&self, _: Option<&autd3_driver::geometry::Geometry>) -> Self::Message {
Self::Message {
datagram: Some(datagram_lightweight::Datagram::Gain(Gain {
gain: Some(gain::Gain::Gs(Gs {
holo: to_holo!(self),
repeat: self.repeat() as _,
constraint: Some(self.constraint().to_msg(None)),
})),
segment: Segment::S0 as _,
transition: true,
})),
}
}
}
impl ToMessage
for autd3_driver::datagram::DatagramWithSegment<
autd3_gain_holo::GS<
autd3_driver::acoustics::directivity::Sphere,
NalgebraBackend<autd3_driver::acoustics::directivity::Sphere>,
>,
>
{
type Message = DatagramLightweight;
#[allow(clippy::unnecessary_cast)]
fn to_msg(&self, _: Option<&autd3_driver::geometry::Geometry>) -> Self::Message {
Self::Message {
datagram: Some(datagram_lightweight::Datagram::Gain(Gain {
gain: Some(gain::Gain::Gs(Gs {
holo: to_holo!(self),
repeat: self.repeat() as _,
constraint: Some(self.constraint().to_msg(None)),
})),
segment: self.segment() as _,
transition: self.transition(),
})),
}
}
}
impl FromMessage<Gs>
for autd3_gain_holo::GS<
autd3_driver::acoustics::directivity::Sphere,
NalgebraBackend<autd3_driver::acoustics::directivity::Sphere>,
>
{
#[allow(clippy::unnecessary_cast)]
fn from_msg(msg: &Gs) -> Option<Self> {
Some(
Self::new(
NalgebraBackend::new().ok()?,
msg.holo
.iter()
.map(|h| {
Some((
autd3_driver::geometry::Vector3::from_msg(h.pos.as_ref()?)?,
h.amp.as_ref()?.value as f32 * autd3_gain_holo::Pa,
))
})
.collect::<Option<Vec<_>>>()?,
)
.with_repeat(msg.repeat as _)
.with_constraint(autd3_gain_holo::EmissionConstraint::from_msg(
msg.constraint.as_ref()?,
)?),
)
}
}
#[cfg(test)]
mod tests {
use super::*;
use autd3_driver::geometry::Vector3;
use rand::Rng;
#[test]
fn test_holo_gs() {
let mut rng = rand::thread_rng();
let holo = autd3_gain_holo::GS::new(
NalgebraBackend::new().unwrap(),
[
(
Vector3::new(rng.gen(), rng.gen(), rng.gen()),
rng.gen::<f32>() * autd3_gain_holo::Pa,
),
(
Vector3::new(rng.gen(), rng.gen(), rng.gen()),
rng.gen::<f32>() * autd3_gain_holo::Pa,
),
],
)
.with_repeat(rng.gen());
let msg = holo.to_msg(None);
match msg.datagram {
Some(datagram_lightweight::Datagram::Gain(Gain {
gain: Some(gain::Gain::Gs(g)),
..
})) => {
let holo2 = autd3_gain_holo::GS::from_msg(&g).unwrap();
assert_eq!(holo.repeat(), holo2.repeat());
assert_eq!(holo.constraint(), holo2.constraint());
holo.foci()
.iter()
.zip(holo2.foci().iter())
.for_each(|(f1, f2)| {
assert_approx_eq::assert_approx_eq!(f1.x, f2.x);
assert_approx_eq::assert_approx_eq!(f1.y, f2.y);
assert_approx_eq::assert_approx_eq!(f1.z, f2.z);
});
holo.amps()
.iter()
.zip(holo2.amps().iter())
.for_each(|(f1, f2)| {
assert_approx_eq::assert_approx_eq!(f1.pascal(), f2.pascal());
});
}
_ => panic!("unexpected datagram type"),
}
}
}