use core::fmt;
use num::{Float, Zero, Num, Signed};
use core::ops::{Deref, DerefMut};
use core::ops::{Add, Sub, Div, Mul, SubAssign, AddAssign, Neg};
use crate::errors::VectorErrors;
use crate::slices_methods::{norm_inf, norm_l};
use crate::matrix2x2::*;
#[derive(Copy, Clone, Debug, PartialEq)]
pub struct V2<T>([T; 2]);
impl<T> V2<T> {
pub const fn new(input: [T; 2]) -> Self {
Self(input)
}
pub const fn new_from(a: T, b: T) -> Self {
Self::new([a, b])
}
}
impl<T: Num + Copy> V2<T> {
pub fn zeros() -> Self {
<Self as Zero>::zero()
}
pub fn ones() -> Self {
let one = T::one();
Self::new([one, one])
}
}
impl<T: Num + Copy + core::cmp::PartialOrd> V2<T> {
pub fn norm_inf(&self) -> T {
norm_inf(&**self)
}
}
impl<T: Num + Copy + Signed + core::iter::Sum> V2<T> {
pub fn norm_l(&self) -> T {
norm_l(&**self)
}
}
impl<T: Num + Copy + Signed> Neg for V2<T> {
type Output = Self;
#[inline]
fn neg(self) -> Self {
Self::new_from(-self[0], -self[1])
}
}
impl<T: Float> V2<T> {
pub fn norm2(&self) -> T {
T::sqrt(self[0] * self[0] + self[1] * self[1])
}
pub fn normalize(&self) -> Result<Self, VectorErrors> {
let n = self.norm2();
if n != T::zero() {
let mut result = Self::zeros();
for i in 0..self.len() {
result[i] = self[i] / n;
}
Ok(result)
} else {
Err(VectorErrors::Norm2IsZero)
}
}
}
impl<T: Num + Copy> Mul for V2<T> {
type Output = T;
#[inline]
fn mul(self, rhs: Self) -> T {
self[0] * rhs[0] + self[1] * rhs[1]
}
}
impl<T: Num + Copy> Mul<T> for V2<T> {
type Output = V2<T>;
#[inline]
fn mul(self, rhs: T) -> V2<T> {
Self::new_from(self[0] * rhs, self[1] * rhs)
}
}
impl<T: Num + Copy> Div<T> for V2<T> {
type Output = Self;
#[inline]
fn div(self, rhs: T) -> Self::Output {
Self::new_from(self[0] / rhs, self[1] / rhs)
}
}
impl Mul<V2<f32>> for f32 {
type Output = V2<f32>;
#[inline]
fn mul(self, rhs: V2<f32>) -> V2<f32> {
V2::new_from(self * rhs[0], self * rhs[1])
}
}
impl<T: Num + Copy> Mul<M22<T>> for V2<T> {
type Output = V2<T>;
#[inline]
fn mul(self, rhs: M22<T>) -> V2<T> {
Self::new_from(self[0] * rhs[(0, 0)] + self[1] * rhs[(1, 0)],
self[0] * rhs[(0, 1)] + self[1] * rhs[(1, 1)])
}
}
impl<T: Num + Copy> Sub for V2<T> {
type Output = Self;
#[inline]
fn sub(self, rhs: Self) -> Self {
Self::new_from(self[0] - rhs[0], self[1] - rhs[1])
}
}
impl<T: Num + Copy> SubAssign for V2<T> {
#[inline]
fn sub_assign(&mut self, other: Self) {
*self = *self - other
}
}
impl<T: Num + Copy> Add for V2<T> {
type Output = Self;
#[inline]
fn add(self, rhs: Self) -> Self {
Self::new_from(self[0] + rhs[0], self[1] + rhs[1])
}
}
impl<T: Num + Copy> AddAssign for V2<T> {
fn add_assign(&mut self, other: Self) {
*self = *self + other
}
}
impl<T: Num + Copy> Zero for V2<T> {
#[inline]
fn zero() -> V2<T> {
Self::new_from(T::zero(), T::zero())
}
fn is_zero(&self) -> bool {
*self == V2::zero()
}
}
impl<T> Deref for V2<T> {
type Target = [T; 2];
#[inline]
fn deref(&self) -> &Self::Target {
&self.0
}
}
impl<T> DerefMut for V2<T> {
#[inline]
fn deref_mut(&mut self) -> &mut Self::Target {
&mut self.0
}
}
impl<T: Num + fmt::Display> fmt::Display for V2<T> {
fn fmt(&self, dest: &mut fmt::Formatter) -> fmt::Result {
writeln!(dest, "[{0:^3.2} {1:^3.2}]", self[0], self[1])
}
}
#[cfg(test)]
mod vector2_test {
use crate::vector2::V2;
#[test]
fn create_vector2_test() {
let v = V2::new([1.0, 2.0]);
assert_eq!(v[0], 1.0);
assert_eq!(v[1], 2.0);
}
#[test]
fn zero_vector2_test() {
let result: V2<f64> = V2::zeros();
let expected = V2::new([0.0, 0.0]);
assert_eq!(
&result[..],
&expected[..],
"\nExpected\n{:?}\nfound\n{:?}",
&result[..],
&expected[..]
);
}
#[test]
fn product_test() {
let v1 = V2::new([1.0, 2.0]);
let v2 = V2::new([3.0, 4.0]);
let result = v1 * v2;
let expected = 11.0;
assert_eq!(result, expected);
}
#[test]
fn add_test() {
let v1 = V2::new([1.0, 2.0]);
let v2 = V2::new([3.0, 4.0]);
let result = v1 + v2;
let expected = V2::new([4.0, 6.0]);
assert_eq!(
&result[..],
&expected[..],
"\nExpected\n{:?}\nfound\n{:?}",
&result[..],
&expected[..]
);
}
#[test]
fn sub_test() {
let v1 = V2::new([1.0, 2.0]);
let v2 = V2::new([2.0, 3.0]);
let expected = V2::new([-1.0, -1.0]);
let result = v1 - v2;
assert_eq!(
&result[..],
&expected[..],
"\nExpected\n{:?}\nfound\n{:?}",
&result[..],
&expected[..]
);
}
#[test]
fn mul_const_rhs() {
let v1 = V2::new_from(1.0, 2.0);
let result = 2.0 * v1;
let expected = V2::new_from(2.0, 4.0);
assert_eq!(
&result[..],
&expected[..],
"\nExpected\n{:?}\nfound\n{:?}",
&result[..],
&expected[..]
);
}
#[test]
fn mul_const() {
let v1 = V2::new_from(1.0, 2.0);
let result = v1 * 10.0;
let expected = V2::new_from(10.0, 20.0);
assert_eq!(
&result[..],
&expected[..],
"\nExpected\n{:?}\nfound\n{:?}",
&result[..],
&expected[..]
);
}
#[test]
fn norm2_test() {
let v1 = V2::new_from(1.0, 2.0);
let expected = 2.23606797749979;
let result = v1.norm2();
assert_eq!(result, expected);
}
#[test]
fn normalize_test() {
let result = V2::new([1.0, 1.0]).normalize().unwrap();
let expected = V2::new([0.7071067811865475, 0.7071067811865475]);
assert_eq!(
&result[..],
&expected[..],
"\nExpected\n{:?}\nfound\n{:?}",
&result[..],
&expected[..]
);
}
#[test]
fn sub_assigment_test() {
let mut result = V2::new_from(1.0, 3.0);
let v2 = V2::new_from(3.0, 3.0);
let expected = V2::new_from(-2.0, 0.0);
result -= v2;
assert_eq!(
&result[..],
&expected[..],
"\nExpected\n{:?}\nfound\n{:?}",
&result[..],
&expected[..]
);
}
#[test]
fn add_assigment_test() {
let mut result = V2::new_from(1.0, 3.0);
let v2 = V2::new_from(3.0, 3.0);
let expected = V2::new_from(4.0, 6.0);
result += v2;
assert_eq!(
&result[..],
&expected[..],
"\nExpected\n{:?}\nfound\n{:?}",
&result[..],
&expected[..]
);
}
#[test]
fn norm_inf_test() {
let v = V2::new_from(1, 10);
let result = v.norm_inf();
let expected = 10;
assert_eq!(result, expected);
}
#[test]
fn norm_l_test() {
let v = V2::new_from(-1, 1);
let result = v.norm_l();
let expected = 2;
assert_eq!(result, expected);
}
}