Added in the Pid and Motor Code
Pid was added to rnavp, since it can be used in alot of different things.
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Generated
+5
@@ -158,6 +158,11 @@ version = "0.1.0"
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[[package]]
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name = "rnavp_logic"
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version = "0.1.0"
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dependencies = [
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"rnavp",
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"serde",
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"uom",
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]
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[[package]]
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name = "rustc_version"
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+1
-1
@@ -1,4 +1,4 @@
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[workspace]
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members = ["rnavp"
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, "rnavp_communication", "rnavp_logic"]
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, "rnavp_communication", "rnavp_controller"]
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resolver = "3"
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@@ -1,4 +1,5 @@
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mod direction;
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pub mod error;
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pub mod motor;
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pub mod pid;
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pub mod positional;
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@@ -0,0 +1,129 @@
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use serde::{Deserialize, Serialize};
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///The Config for the PID system used by the controller
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#[derive(Serialize, Deserialize, Debug, Default, Clone, Copy, PartialEq)]
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pub struct Config {
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///The Proportional value for the controller
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pub kp: f32,
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///The Integral value for the controller
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pub ki: f32,
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///The Derivative value for the controller
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pub kd: f32,
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///The Feedforward value for the controller
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pub ff: f32,
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///The delta time Value used for the controller
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pub dt: f32,
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///The max accel change from the controller, 0 means no limit
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pub accel: f32,
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}
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///A PID, the config field is used to handle all the needed configuration.
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/// This PID using pid_step() then attempts to output a value between -1.0 and 1.0 to attempt to make the "current_value" passed in, match the "set_point"
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#[derive(Debug, PartialEq, Clone, Copy)]
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pub struct PID {
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pub config: Config,
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integral: f32,
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prev_error: f32,
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set_point: f32,
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output: f32,
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}
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impl PID {
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pub fn new(config: Config) -> Self {
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PID {
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config: config,
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integral: 0.0,
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prev_error: 0.0,
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set_point: 0.0,
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output: 0.0,
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}
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}
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}
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impl Default for PID {
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fn default() -> Self {
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PID::new(Config {
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kp: 0.0,
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ki: 0.0,
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kd: 0.0,
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ff: 0.0,
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dt: 0.0,
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accel: 0.0,
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})
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}
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}
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impl PID {
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///Calculuates a single step of the PID+FF based on the config given to it.
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///Will output a float between -1.0 and 1.0
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///Current value is the current "position" of the system NOT the goal
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/// Use set_point() method to change the "goal position" for the system
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pub async fn pid_step(&mut self, current_value: f32) -> f32 {
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//If the values
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let error = self.set_point - current_value;
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//If the error is equal to 0.0, just return the output from before. All of this math will just end up not affecting anything
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if error == 0.0 {
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return self.output;
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}
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//Calculate the integral
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self.integral += error * self.config.dt;
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let i = self.integral * self.config.ki;
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//Calculate the derivative in a manner that is safe for 0.0 dt
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let d;
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if self.config.dt != 0.0 {
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let derivative = (error - self.prev_error) / self.config.dt;
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d = derivative * self.config.kd;
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} else {
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d = 0.0;
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}
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//store the original error
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self.prev_error = error;
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//Calculate the feedforward
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let f = self.set_point * self.config.ff;
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//Calculate the proportional factor
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let p = error * self.config.kp;
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//Calculate and store the output
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let output = match self.config.accel {
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0.0 => (f + p + i + d) * 0.0001,
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_ => {
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let pre_output = (f + p + i + d) * 0.0001;
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let change = pre_output - self.output;
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let change = change.clamp(-self.config.accel, self.config.accel);
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let accel_output = self.output + change;
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//Validate that there is a ki value
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if self.config.ki != 0.0 {
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let excess = pre_output - accel_output;
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self.integral += excess / self.config.ki;
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}
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accel_output
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}
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};
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self.output = output.clamp(-1.0, 1.0);
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//Return the output information
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return self.output;
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}
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pub async fn set_point(&mut self, set_point: f32) {
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if set_point != self.set_point {
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//Update all internal fields
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self.integral = 0.0;
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self.prev_error = 0.0;
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self.set_point = set_point;
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}
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}
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}
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@@ -0,0 +1,9 @@
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[package]
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name = "rnavp_logic"
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version = "0.1.0"
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edition = "2024"
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[dependencies]
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rnavp = {path = "../rnavp"}
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serde = { version = "1.0.229", default-features = false, features = ["derive"] }
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uom = { version = "0.38.0", default-features = false, features = ["si", "f32"] }
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@@ -0,0 +1 @@
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pub mod motor;
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@@ -0,0 +1,59 @@
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use rnavp::motor::{self, Direction};
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use rnavp::pid;
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use uom::si::f32::AngularVelocity;
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#[derive(Debug, Clone, Copy, PartialEq)]
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/// # Motor Controller
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/// This is a motor controller that takes in a generic type T that has implemented the needed traits.
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/// Most specifically Driver and Sensor.
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///
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/// ## Usage
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///
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/// Creating this allows for the controller a motor via a simple PID f32 signed Speed command, rather than u16 speed commands
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/// Notice that this also TAKES the motor from your manual controller, you loose access to the manual hand control you had before.
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pub struct Controller<T>
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where
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T: motor::Driver + motor::Sensor,
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{
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motor: T,
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max_speed: AngularVelocity,
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pid: pid::PID,
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current_direction: Direction,
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}
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///Controller Impl for the adding the PID logic for handling the motor compiston
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impl<T: motor::Driver + motor::Sensor> Controller<T> {
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///Uses the given set_speed and then will handle the rest of the control logic to accurately* hit the requested speed
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pub async fn control(&mut self, set_speed: AngularVelocity) {
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let max_speed_rads = self.max_speed.value;
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let set_speed_rads = set_speed.value.clamp(-max_speed_rads, max_speed_rads);
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self.pid.set_point(set_speed_rads).await;
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let pid_output = self.pid.pid_step(self.motor.get_speed().await.value).await;
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self.current_direction.dir_from_f32(pid_output);
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let motor_command = (pid_output * 65535.0) as u16;
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self.motor
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.set_speed_and_direction(motor_command, self.current_direction)
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.await;
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}
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///Retrieve the speed from the motor inside the controller.
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/// This allows you to get a speed value from behind the move.
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pub async fn retrieve(&self) -> AngularVelocity {
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self.motor.get_speed().await
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}
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///Creates a new Controller with a motor (of type T), a max speed and a pid::Config
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/// This then allows for you to use the controller with the provided types
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pub fn new(motor: T, max_speed: AngularVelocity, config: pid::Config) -> Self {
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Controller {
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motor: motor,
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max_speed: max_speed,
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pid: pid::PID::new(config),
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current_direction: Direction::CCW,
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}
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}
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}
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@@ -1,6 +0,0 @@
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[package]
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name = "rnavp_logic"
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version = "0.1.0"
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edition = "2024"
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[dependencies]
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@@ -1,14 +0,0 @@
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pub fn add(left: u64, right: u64) -> u64 {
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left + right
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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#[test]
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fn it_works() {
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let result = add(2, 2);
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assert_eq!(result, 4);
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}
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}
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