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use super::Node;
use crate::types::*;
use crate::versions::r2025a::enums::{ConnectorType, EmitterType, ReceiverType};
use derive_new::new;
use derive_setters::Setters;
use serde::{Deserialize, Serialize};
pub type MFNode = Vec<Node>;
define_solid!(
/// The `Emitter` node is used to model radio, serial or infra-red emitters.
///
/// An `Emitter` node must be added to the children of a robot or a supervisor.
/// Please note that an emitter can send data but it cannot receive data.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/emitter?version=R2025a).
Emitter {
/// {"radio", "serial", "infra-red"}
#[serde(rename = "type")]
#[setters(rename = "with_type")]
r#type: EmitterType,
/// {-1} or [0, inf)
range: SFFloat,
/// {-1} or [0, inf)
max_range: SFFloat,
/// {-1} or [0, 2*pi]
aperture: SFFloat,
/// [0, inf)
channel: SFInt32,
/// {-1} or [0, inf)
baud_rate: SFInt32,
/// [1, inf)
byte_size: SFInt32,
/// {-1} or [0, inf)
buffer_size: SFInt32,
/// []
allowed_channels: MFInt32,
});
define_solid!(
/// The `Receiver` node is used to model radio, serial or infra-red receivers.
///
/// Please note that a `Receiver` can receive data but it cannot send it.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/receiver?version=R2025a).
Receiver {
/// {"radio", "serial", "infra-red"}
#[serde(rename = "type")]
#[setters(rename = "with_type")]
r#type: ReceiverType,
/// {-1} or [0, 2*pi]
aperture: SFFloat,
/// [0, inf)
channel: SFInt32,
/// {-1} or [0, inf)
baud_rate: SFInt32,
/// [1, inf)
byte_size: SFInt32,
/// {-1} or [0, inf)
buffer_size: SFInt32,
/// [0, inf)
signal_strength_noise: SFFloat,
/// [0, inf)
direction_noise: SFFloat,
/// []
allowed_channels: MFInt32,
});
define_solid!(
/// `Connector` nodes are used to simulate mechanical docking systems.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/connector?version=R2025a).
Connector {
/// {"symmetric", "active", "passive"}
#[serde(rename = "type")]
#[setters(rename = "with_type")]
r#type: ConnectorType,
/// {TRUE, FALSE}
is_locked: SFBool,
/// {TRUE, FALSE}
auto_lock: SFBool,
/// {TRUE, FALSE}
unilateral_lock: SFBool,
/// {TRUE, FALSE}
unilateral_unlock: SFBool,
/// [0, inf)
distance_tolerance: SFFloat,
/// [0, pi]
axis_tolerance: SFFloat,
/// [0, pi]
rotation_tolerance: SFFloat,
/// [0, inf)
number_of_rotations: SFInt32,
/// {TRUE, FALSE}
snap: SFBool,
/// {-1} or [0, inf)
tensile_strength: SFFloat,
/// {-1} or [0, inf)
shear_strength: SFFloat,
});
define_solid!(
/// The `LED` node is used to model a light emitting diode.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/led?version=R2025a).
LED {
/// []
color: MFColor,
/// {TRUE, FALSE}
gradual: SFBool,
});
define_solid!(
/// The `Display` node allows handling a 2D pixel array.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/display?version=R2025a).
Display {
/// [1, inf)
width: SFInt32,
/// [1, inf)
height: SFInt32,
});
define_solid!(
/// The `Pen` node models a pen attached to a mobile robot.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/pen?version=R2025a).
Pen {
/// any color
ink_color: SFColor,
/// [0, 1]
ink_density: SFFloat,
/// [0, inf)
lead_size: SFFloat,
/// [0, inf)
max_distance: SFFloat,
/// {TRUE, FALSE}
write: SFBool,
});
define_solid!(
/// The `Speaker` node represents a loudspeaker device.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/speaker?version=R2025a).
Speaker {});
define_solid!(
/// The `Charger` node is used to model a battery charger.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/charger?version=R2025a).
Charger {
/// []
battery: MFFloat,
/// [0, inf)
radius: SFFloat,
/// any color
emissive_color: SFColor,
/// {TRUE, FALSE}
gradual: SFBool,
});
define_solid!(
/// The `VacuumGripper` node is used to simulate vacuum suction links.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/vacuumgripper?version=R2025a).
VacuumGripper {
/// {TRUE, FALSE}
is_on: SFBool,
/// {-1} or [0, inf)
tensile_strength: SFFloat,
/// {-1} or [0, inf)
shear_strength: SFFloat,
/// [1, inf)
contact_points: SFInt32,
});
define_device!(
/// The `Skin` node can be used to simulate soft mesh animation.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/skin?version=R2025a).
Skin {
// Skin fields (Transform + others)
/// any vector
translation: SFVec3f,
/// unit axis, (-inf, inf) angle
rotation: SFRotation,
/// any vector
scale: SFVec3f,
/// any string
model_url: SFString,
/// []
appearance: MFNode,
/// []
bones: MFNode,
/// {TRUE, FALSE}
cast_shadows: SFBool,
/// [0, inf)
translation_step: SFFloat,
/// [0, inf)
rotation_step: SFFloat,
});
define_solid!(
/// The `Track` node defines a track object for conveyor belts or tank robots.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/track?version=R2025a).
Track {
/// []
device: MFNode,
/// any vector
texture_animation: SFVec2f,
/// {Shape, Group, Transform, PROTO}
animated_geometry: Box<Node>,
/// [0, inf)
geometries_count: SFInt32,
}
);
crate::define_node!(
/// The `TrackWheel` node helps setup a wheel of a track system.
///
/// See [Webots Reference](https://cyberbotics.com/doc/reference/trackwheel?version=R2025a).
TrackWheel {
/// any vector
position: SFVec2f,
/// (0, inf)
radius: SFFloat,
/// {TRUE, FALSE}
inner: SFBool,
/// []
children: MFNode,
});
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn test_emitter_new() {
let emitter = Emitter::new("myemitter");
assert_eq!(emitter.name, "myemitter");
assert!(emitter.r#type.is_none());
}
#[test]
fn test_led_new() {
let led = LED::new("myled");
assert_eq!(led.name, "myled");
assert!(led.color.is_none());
}
}