use crate::{BVec2, UnitVec2, Vec3};
#[cfg(not(target_arch = "spirv"))]
use core::fmt;
use core::iter::{Product, Sum};
use core::ops::*;
use crate::nums::*;
use auto_ops_det::impl_op_ex;
use core::ops;
#[inline]
pub const fn vec2(x: f32, y: f32) -> Vec2 {
Vec2::new(x, y)
}
#[derive(Clone, Copy, PartialEq)]
#[cfg_attr(feature = "cuda", repr(align(8)))]
#[cfg_attr(not(target_arch = "spirv"), repr(C))]
#[cfg_attr(target_arch = "spirv", repr(simd))]
pub struct Vec2 {
pub x: f32,
pub y: f32,
}
impl Vec2 {
pub const ZERO: Self = Self::splat(0.0_f32);
pub const ONE: Self = Self::splat(1.0_f32);
pub const NEG_ONE: Self = Self::splat(-1.0_f32);
pub const NAN: Self = Self::splat(f32::NAN);
pub const X: Self = Self::new(1.0_f32, 0.0_f32);
pub const Y: Self = Self::new(0.0_f32, 1.0_f32);
pub const NEG_X: Self = Self::new(-1.0_f32, 0.0_f32);
pub const NEG_Y: Self = Self::new(0.0_f32, -1.0_f32);
pub const AXES: [Self; 2] = [Self::X, Self::Y];
#[inline]
pub const fn new(x: f32, y: f32) -> Self {
Self { x, y }
}
#[inline]
pub const fn splat(v: f32) -> Self {
Self { x: v, y: v }
}
#[inline]
pub fn select(mask: BVec2, if_true: Self, if_false: Self) -> Self {
Self {
x: if mask.x { if_true.x } else { if_false.x },
y: if mask.y { if_true.y } else { if_false.y },
}
}
#[inline]
pub const fn from_array(a: [f32; 2]) -> Self {
Self::new(a[0], a[1])
}
#[inline]
pub const fn to_array(&self) -> [f32; 2] {
[self.x, self.y]
}
#[inline]
pub const fn from_slice(slice: &[f32]) -> Self {
Self::new(slice[0], slice[1])
}
#[inline]
pub fn write_to_slice(self, slice: &mut [f32]) {
slice[0] = self.x;
slice[1] = self.y;
}
#[inline]
pub const fn extend(self, z: f32) -> Vec3 {
Vec3::new(self.x, self.y, z)
}
#[inline]
pub(crate) fn dot(self, rhs: Self) -> f32 {
(self.x * rhs.x) + (self.y * rhs.y)
}
#[inline]
pub fn min(self, rhs: Self) -> Self {
Self {
x: self.x.minf(rhs.x),
y: self.y.minf(rhs.y),
}
}
#[inline]
pub fn max(self, rhs: Self) -> Self {
Self {
x: self.x.maxf(rhs.x),
y: self.y.maxf(rhs.y),
}
}
#[inline]
pub fn clamp(self, min: Self, max: Self) -> Self {
glam_assert!(min.cmple(max).all(), "clamp: expected min <= max");
self.max(min).min(max)
}
#[inline]
pub fn min_element(self) -> f32 {
self.x.minf(self.y)
}
#[inline]
pub fn max_element(self) -> f32 {
self.x.maxf(self.y)
}
#[inline]
pub fn cmpeq(self, rhs: Self) -> BVec2 {
BVec2::new(self.x.eq(&rhs.x), self.y.eq(&rhs.y))
}
#[inline]
pub fn cmpne(self, rhs: Self) -> BVec2 {
BVec2::new(self.x.ne(&rhs.x), self.y.ne(&rhs.y))
}
#[inline]
pub fn cmpge(self, rhs: Self) -> BVec2 {
BVec2::new(self.x.ge(&rhs.x), self.y.ge(&rhs.y))
}
#[inline]
pub fn cmpgt(self, rhs: Self) -> BVec2 {
BVec2::new(self.x.gt(&rhs.x), self.y.gt(&rhs.y))
}
#[inline]
pub fn cmple(self, rhs: Self) -> BVec2 {
BVec2::new(self.x.le(&rhs.x), self.y.le(&rhs.y))
}
#[inline]
pub fn cmplt(self, rhs: Self) -> BVec2 {
BVec2::new(self.x.lt(&rhs.x), self.y.lt(&rhs.y))
}
#[inline]
pub fn abs(self) -> Self {
Self {
x: self.x.absf(),
y: self.y.absf(),
}
}
#[inline]
pub fn signum(self) -> Self {
Self {
x: self.x.signumf(),
y: self.y.signumf(),
}
}
#[inline]
pub fn is_finite(self) -> bool {
self.x.is_finite() && self.y.is_finite()
}
#[inline]
pub fn is_nan(self) -> bool {
self.x.is_nan() || self.y.is_nan()
}
#[inline]
pub fn is_nan_mask(self) -> BVec2 {
BVec2::new(self.x.is_nan(), self.y.is_nan())
}
#[inline]
pub fn round(self) -> Self {
Self {
x: self.x.roundf(),
y: self.y.roundf(),
}
}
#[inline]
pub fn floor(self) -> Self {
Self {
x: self.x.floorf(),
y: self.y.floorf(),
}
}
#[inline]
pub fn ceil(self) -> Self {
Self {
x: self.x.ceilf(),
y: self.y.ceilf(),
}
}
#[inline]
pub fn fract(self) -> Self {
self - self.floor()
}
#[inline]
pub fn exp(self) -> Self {
Self::new(self.x.expf(), self.y.expf())
}
#[inline]
pub fn powf(self, n: f32) -> Self {
Self::new(self.x.powff(n), self.y.powff(n))
}
#[inline]
pub fn recip(self) -> Self {
Self {
x: self.x.recip(),
y: self.y.recip(),
}
}
#[doc(alias = "magnitude")]
#[inline]
pub fn length(self) -> f32 {
self.dot(self).sqrtf()
}
#[doc(alias = "magnitude2")]
#[inline]
pub fn length_squared(self) -> f32 {
self.dot(self)
}
#[inline]
pub fn length_recip(self) -> f32 {
self.length().recip()
}
#[inline]
pub fn distance(self, rhs: Self) -> f32 {
(self - rhs).length()
}
#[inline]
pub fn distance_squared(self, rhs: Self) -> f32 {
(self - rhs).length_squared()
}
#[must_use]
#[inline]
pub fn normalize(self) -> Self {
let length = self.length();
glam_assert!(length.gt(&0.0_f32), "Trying to normalize {:?}", self);
glam_assert!(self.is_finite(), "Trying to normalize {:?}", self);
glam_assert!(length.is_finite(), "Trying to normalize {:?}", self);
#[allow(clippy::let_and_return)]
let normalized = self.mul(length.recip());
glam_assert!(normalized.is_finite(), "Trying to normalize {:?}", self);
normalized
}
#[must_use]
#[inline]
pub fn normalize_and_length(self) -> (Self, f32) {
#[allow(clippy::let_and_return)]
let length = self.length();
glam_assert!(length.gt(&0.0_f32), "Trying to normalize {:?}", self);
glam_assert!(self.is_finite(), "Trying to normalize {:?}", self);
glam_assert!(length.is_finite(), "Trying to normalize {:?}", self);
let normalized = self.mul(length.recip());
glam_assert!(normalized.is_finite(), "Trying to normalize {:?}", self);
(normalized, length)
}
#[must_use]
#[inline]
pub fn normalize_to_unit(self) -> UnitVec2 {
self.normalize().as_unit_vec2_unchecked()
}
#[must_use]
#[inline]
pub fn normalize_to_unit_and_length(self) -> (UnitVec2, f32) {
let res = self.normalize_and_length();
(res.0.as_unit_vec2_unchecked(), res.1)
}
#[must_use]
#[inline]
pub fn try_normalize(self, min_len: f32) -> Option<Self> {
let length = self.length();
if length.is_finite() && length > min_len {
Some(self * length.recip())
} else {
None
}
}
#[must_use]
#[inline]
pub fn try_normalize_to_unit(self, min_len: f32) -> Option<UnitVec2> {
let length = self.length();
if length.is_finite() && length > min_len {
Some((self * length.recip()).as_unit_vec2_unchecked())
} else {
None
}
}
#[must_use]
#[inline]
pub fn try_normalize_to_unit_and_length(self, min_len: f32) -> Option<(UnitVec2, f32)> {
let length = self.length();
if length.is_finite() && length > min_len {
Some(((self * length.recip()).as_unit_vec2_unchecked(), length))
} else {
None
}
}
#[must_use]
#[inline]
pub fn normalize_or_zero(self) -> Self {
let rcp = self.length_recip();
if rcp.is_finite() && rcp > 0.0 {
self * rcp
} else {
Self::ZERO
}
}
#[inline]
pub fn is_normalized(self) -> bool {
(self.length_squared() - 1.0_f32).absf() <= 1e-4
}
#[must_use]
#[inline]
pub fn project_onto(self, rhs: Self) -> Self {
let other_len_sq_rcp = rhs.dot(rhs).recip();
glam_assert!(
other_len_sq_rcp.is_finite(),
"Trying to project onto infinite rhs = {:?}",
rhs
);
rhs * self.dot(rhs) * other_len_sq_rcp
}
#[must_use]
#[inline]
pub fn reject_from(self, rhs: Self) -> Self {
self - self.project_onto(rhs)
}
#[must_use]
#[inline]
pub fn project_onto_normalized(self, rhs: UnitVec2) -> Self {
rhs.as_vec2() * self.dot(rhs.as_vec2())
}
#[must_use]
#[inline]
pub fn reject_from_normalized(self, rhs: UnitVec2) -> Self {
self - self.project_onto_normalized(rhs)
}
#[doc(alias = "mix")]
#[inline]
pub fn lerp(self, rhs: Self, s: f32) -> Self {
self + ((rhs - self) * s)
}
#[inline]
pub fn abs_diff_eq(self, rhs: Self, max_abs_diff: f32) -> bool {
self.sub(rhs).abs().cmple(Self::splat(max_abs_diff)).all()
}
#[inline]
pub fn clamp_length(self, min: f32, max: f32) -> Self {
glam_assert!(min <= max);
let length_sq = self.length_squared();
if length_sq < min * min {
self * (length_sq.sqrtf().recip() * min)
} else if length_sq > max * max {
self * (length_sq.sqrtf().recip() * max)
} else {
self
}
}
#[inline]
pub fn clamp_length_max(self, max: f32) -> Self {
let length_sq = self.length_squared();
if length_sq > max * max {
self * (length_sq.sqrtf().recip() * max)
} else {
self
}
}
#[inline]
pub fn clamp_length_min(self, min: f32) -> Self {
let length_sq = self.length_squared();
if length_sq < min * min {
self * (length_sq.sqrtf().recip() * min)
} else {
self
}
}
#[inline]
pub fn mul_add(self, a: Self, b: Self) -> Self {
Self::new(self.x.mul_addf(a.x, b.x), self.y.mul_addf(a.y, b.y))
}
#[inline]
pub fn from_angle(angle: f32) -> Self {
let (sin, cos) = angle.sin_cosf();
Self { x: cos, y: sin }
}
#[inline]
pub fn angle_between(self, rhs: Self) -> f32 {
use crate::FloatEx;
let angle =
(self.dot(rhs) / (self.length_squared() * rhs.length_squared()).sqrtf()).acos_approx();
angle * self.perp_dot(rhs).signumf()
}
#[inline]
pub fn perp(self) -> Self {
Self {
x: -self.y,
y: self.x,
}
}
#[doc(alias = "wedge")]
#[doc(alias = "cross")]
#[doc(alias = "determinant")]
#[inline]
pub fn perp_dot(self, rhs: Self) -> f32 {
(self.x * rhs.y) - (self.y * rhs.x)
}
#[must_use]
#[inline]
pub fn rotate(self, rhs: Self) -> Self {
Self {
x: self.x * rhs.x - self.y * rhs.y,
y: self.y * rhs.x + self.x * rhs.y,
}
}
#[inline]
pub fn as_dvec2(&self) -> crate::DVec2 {
crate::DVec2::new(self.x as f64, self.y as f64)
}
#[inline]
pub fn as_ivec2(&self) -> crate::IVec2 {
crate::IVec2::new(self.x as i32, self.y as i32)
}
#[inline]
pub fn as_uvec2(&self) -> crate::UVec2 {
crate::UVec2::new(self.x as u32, self.y as u32)
}
}
impl Default for Vec2 {
#[inline]
fn default() -> Self {
Self::ZERO
}
}
impl_op_ex!(/ |a: &Vec2, b: &Vec2| -> Vec2 {
Vec2 {
x: a.x.div(b.x),
y: a.y.div(b.y),
}
});
impl_op_ex!(/= |a: &mut Vec2, b: &Vec2| {
a.x.div_assign(b.x);
a.y.div_assign(b.y);
});
impl_op_ex!(/ |a: &Vec2, b: &f32| -> Vec2 {
Vec2 {
x: a.x.div(b),
y: a.y.div(b),
}
});
impl_op_ex!(/= |a: &mut Vec2, b: &f32| {
a.x.div_assign(b);
a.y.div_assign(b);
});
impl_op_ex!(/ |a: &f32, b: &Vec2| -> Vec2 {
Vec2 {
x: a.div(b.x),
y: a.div(b.y),
}
});
impl_op_ex!(*|a: &Vec2, b: &Vec2| -> Vec2 {
Vec2 {
x: a.x.mul(b.x),
y: a.y.mul(b.y),
}
});
impl_op_ex!(*= |a: &mut Vec2, b: &Vec2| {
a.x.mul_assign(b.x);
a.y.mul_assign(b.y);
});
impl_op_ex!(*|a: &Vec2, b: &f32| -> Vec2 {
Vec2 {
x: a.x.mul(b),
y: a.y.mul(b),
}
});
impl_op_ex!(*= |a: &mut Vec2, b: &f32| {
a.x.mul_assign(b);
a.y.mul_assign(b);
});
impl_op_ex!(*|a: &f32, b: &Vec2| -> Vec2 {
Vec2 {
x: a.mul(b.x),
y: a.mul(b.y),
}
});
impl_op_ex!(+ |a: &Vec2, b: &Vec2| -> Vec2 {
Vec2 {
x: a.x.add(b.x),
y: a.y.add(b.y),
}
});
impl_op_ex!(+= |a: &mut Vec2, b: &Vec2| {
a.x.add_assign(b.x);
a.y.add_assign(b.y);
});
impl_op_ex!(+ |a: &Vec2, b: &f32| -> Vec2 {
Vec2 {
x: a.x.add(b),
y: a.y.add(b),
}
});
impl_op_ex!(+= |a: &mut Vec2, b: &f32| {
a.x.add_assign(b);
a.y.add_assign(b);
});
impl_op_ex!(+ |a: &f32, b: &Vec2| -> Vec2 {
Vec2 {
x: a.add(b.x),
y: a.add(b.y),
}
});
impl_op_ex!(-|a: &Vec2, b: &Vec2| -> Vec2 {
Vec2 {
x: a.x.sub(b.x),
y: a.y.sub(b.y),
}
});
impl_op_ex!(-= |a: &mut Vec2, b: &Vec2| {
a.x.sub_assign(b.x);
a.y.sub_assign(b.y);
});
impl_op_ex!(-|a: &Vec2, b: &f32| -> Vec2 {
Vec2 {
x: a.x.sub(b),
y: a.y.sub(b),
}
});
impl_op_ex!(-= |a: &mut Vec2, b: &f32| {
a.x.sub_assign(b);
a.y.sub_assign(b);
});
impl_op_ex!(-|a: &f32, b: &Vec2| -> Vec2 {
Vec2 {
x: a.sub(b.x),
y: a.sub(b.y),
}
});
impl_op_ex!(% |a: &Vec2, b: &Vec2| -> Vec2 {
Vec2 {
x: a.x.rem(b.x),
y: a.y.rem(b.y),
}
});
impl_op_ex!(%= |a: &mut Vec2, b: &Vec2| {
a.x.rem_assign(b.x);
a.y.rem_assign(b.y);
});
impl_op_ex!(% |a: &Vec2, b: &f32| -> Vec2 {
Vec2 {
x: a.x.rem(b),
y: a.y.rem(b),
}
});
impl_op_ex!(%= |a: &mut Vec2, b: &f32| {
a.x.rem_assign(b);
a.y.rem_assign(b);
});
impl_op_ex!(% |a: &f32, b: &Vec2| -> Vec2 {
Vec2 {
x: a.rem(b.x),
y: a.rem(b.y),
}
});
impl<'a> Sum<&'a Self> for Vec2 {
#[inline]
fn sum<I>(iter: I) -> Self
where
I: Iterator<Item = &'a Self>,
{
iter.fold(Self::ZERO, |a, &b| Self::add(a, b))
}
}
impl<'a> Product<&'a Self> for Vec2 {
#[inline]
fn product<I>(iter: I) -> Self
where
I: Iterator<Item = &'a Self>,
{
iter.fold(Self::ONE, |a, &b| Self::mul(a, b))
}
}
impl Neg for Vec2 {
type Output = Self;
#[inline]
fn neg(self) -> Self {
Self {
x: self.x.neg(),
y: self.y.neg(),
}
}
}
impl Index<usize> for Vec2 {
type Output = f32;
#[inline]
fn index(&self, index: usize) -> &Self::Output {
match index {
0 => &self.x,
1 => &self.y,
_ => panic!("index out of bounds"),
}
}
}
impl IndexMut<usize> for Vec2 {
#[inline]
fn index_mut(&mut self, index: usize) -> &mut Self::Output {
match index {
0 => &mut self.x,
1 => &mut self.y,
_ => panic!("index out of bounds"),
}
}
}
#[cfg(not(target_arch = "spirv"))]
impl fmt::Display for Vec2 {
fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
write!(f, "[{}, {}]", self.x, self.y)
}
}
#[cfg(not(target_arch = "spirv"))]
impl fmt::Debug for Vec2 {
fn fmt(&self, fmt: &mut fmt::Formatter<'_>) -> fmt::Result {
fmt.debug_tuple(stringify!(Vec2))
.field(&self.x)
.field(&self.y)
.finish()
}
}
impl From<[f32; 2]> for Vec2 {
#[inline]
fn from(a: [f32; 2]) -> Self {
Self::new(a[0], a[1])
}
}
impl From<Vec2> for [f32; 2] {
#[inline]
fn from(v: Vec2) -> Self {
[v.x, v.y]
}
}
impl From<(f32, f32)> for Vec2 {
#[inline]
fn from(t: (f32, f32)) -> Self {
Self::new(t.0, t.1)
}
}
impl From<Vec2> for (f32, f32) {
#[inline]
fn from(v: Vec2) -> Self {
(v.x, v.y)
}
}
#[cfg(not(target_arch = "spirv"))]
impl AsRef<[f32; 2]> for Vec2 {
#[inline]
fn as_ref(&self) -> &[f32; 2] {
unsafe { &*(self as *const Vec2 as *const [f32; 2]) }
}
}
#[cfg(not(target_arch = "spirv"))]
impl AsMut<[f32; 2]> for Vec2 {
#[inline]
fn as_mut(&mut self) -> &mut [f32; 2] {
unsafe { &mut *(self as *mut Vec2 as *mut [f32; 2]) }
}
}