mirror of https://github.com/rm-dr/daisy
Cleanup
parent
84f2d6e30c
commit
0ca7705122
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@ -17,15 +17,6 @@ use super::ScalarBase;
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use super::PRINT_LEN;
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use super::FLOAT_PRECISION;
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macro_rules! foward {
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( $x:ident ) => {
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fn $x(&self) -> Option<FloatBase> {
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Some(FloatBase{ val: self.val.clone().$x()})
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}
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}
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}
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#[derive(Debug)]
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#[derive(Clone)]
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pub struct FloatBase where {
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@ -99,6 +90,14 @@ impl ToString for FloatBase {
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}
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macro_rules! foward {
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( $x:ident ) => {
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fn $x(&self) -> Option<FloatBase> {
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Some(FloatBase{ val: self.val.clone().$x()})
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}
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}
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}
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impl ScalarBase for FloatBase {
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fn from_f64(f: f64) -> Option<FloatBase> {
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@ -127,6 +126,10 @@ impl ScalarBase for FloatBase {
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fn is_negative(&self) -> bool { self.val.is_sign_negative() }
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fn is_positive(&self) -> bool { self.val.is_sign_positive() }
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fn is_int(&self) -> bool {
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self.fract() == FloatBase::from_f64(0f64)
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}
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foward!(abs);
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foward!(floor);
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foward!(ceil);
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@ -1,390 +1,10 @@
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use std::ops::{
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Add, Sub, Mul, Div,
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Neg, Rem,
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AddAssign, SubAssign,
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MulAssign, DivAssign
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};
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use std::cmp::Ordering;
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pub trait ScalarBase:
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Sized + ToString +
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Add + AddAssign +
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Sub + SubAssign +
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Mul + MulAssign +
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Div + DivAssign +
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Neg + Rem +
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PartialEq + PartialOrd
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{
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// Creation
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fn from_f64(f: f64) -> Option<Self>;
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fn from_string(s: &str) -> Option<Self>;
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// Utility
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fn fract(&self) -> Option<Self>;
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fn is_zero(&self) -> bool;
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fn is_one(&self) -> bool;
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fn is_negative(&self) -> bool;
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fn is_positive(&self) -> bool;
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// Mathematical
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fn exp(&self) -> Option<Self>;
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fn abs(&self) -> Option<Self>;
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fn floor(&self) -> Option<Self>;
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fn ceil(&self) -> Option<Self>;
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fn round(&self) -> Option<Self>;
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fn sin(&self) -> Option<Self>;
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fn cos(&self) -> Option<Self>;
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fn tan(&self) -> Option<Self>;
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fn asin(&self) -> Option<Self>;
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fn acos(&self) -> Option<Self>;
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fn atan(&self) -> Option<Self>;
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fn sinh(&self) -> Option<Self>;
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fn cosh(&self) -> Option<Self>;
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fn tanh(&self) -> Option<Self>;
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fn asinh(&self) -> Option<Self>;
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fn acosh(&self) -> Option<Self>;
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fn atanh(&self) -> Option<Self>;
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fn ln(&self) -> Option<Self>;
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fn log10(&self) -> Option<Self>;
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fn log2(&self) -> Option<Self>;
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fn log(&self, base: Self) -> Option<Self>;
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fn pow(&self, exp: Self) -> Option<Self>;
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}
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const FLOAT_PRECISION: u32 = 1024;
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const PRINT_LEN: usize = 5; // How many significant digits we will show in output
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mod rationalbase;
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mod floatbase;
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pub(in self) mod rationalbase;
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pub(in self) mod floatbase;
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//mod f64base;
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use self::rationalbase::RationalBase;
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use self::floatbase::FloatBase as FloatBase;
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#[derive(Debug)]
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#[derive(Clone)]
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pub enum Scalar {
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Rational{ v: RationalBase },
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Float{ v: FloatBase }
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}
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macro_rules! wrap_rational {
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( $x:expr) => { Scalar::Rational{v: $x} }
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}
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macro_rules! wrap_float {
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( $x:expr) => { Scalar::Float{v: $x} }
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}
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fn to_float(r: Scalar) -> Scalar {
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match &r {
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Scalar::Float {..} => r,
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Scalar::Rational {v} => wrap_float!(
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FloatBase::from(v.val.numer()).unwrap() /
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FloatBase::from(v.val.denom()).unwrap()
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)
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}
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}
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impl ToString for Scalar {
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fn to_string(&self) -> String {
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match self {
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Scalar::Rational{..} => to_float(self.clone()).to_string(),
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Scalar::Float{v} => v.to_string()
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}
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}
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}
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// Creation methods
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impl Scalar {
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pub fn new_float(f: f64) -> Option<Self> {
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let v = FloatBase::from_f64(f);
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if v.is_none() { return None; }
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return Some(wrap_float!(v.unwrap()));
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}
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pub fn new_rational(f: f64) -> Option<Self> {
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let r = RationalBase::from_f64(f);
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if r.is_none() { return None; }
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return Some(wrap_rational!(r.unwrap()));
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}
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pub fn new_rational_from_string(s: &str) -> Option<Self> {
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let r = RationalBase::from_string(s);
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if r.is_none() { return None; }
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return Some(wrap_rational!(r.unwrap()));
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}
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pub fn new_float_from_string(s: &str) -> Option<Self> {
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let v = FloatBase::from_string(s);
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if v.is_none() { return None; }
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return Some(wrap_float!(v.unwrap()))
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}
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}
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impl Scalar {
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pub fn is_nan(&self) -> bool {
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match self {
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Scalar::Float {v} => {v.val.is_nan()},
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Scalar::Rational {..} => {panic!()}
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}
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}
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}
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// Forwarded functions
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macro_rules! scalar_foward {
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( $x:ident ) => {
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pub fn $x(&self) -> Scalar {
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match self {
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Scalar::Rational{v} => {
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let r = v.$x();
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if r.is_none() {
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let v = to_float(self.clone());
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return v.$x();
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} else {wrap_rational!(r.unwrap())}
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},
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Scalar::Float{v} => {wrap_float!(v.$x().unwrap())},
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}
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}
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}
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}
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impl Scalar {
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pub fn is_zero(&self) -> bool {
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match self {
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Scalar::Rational{v} => v.is_zero(),
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Scalar::Float{v} => v.is_zero(),
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}
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}
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pub fn is_one(&self) -> bool {
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match self {
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Scalar::Rational{v} => v.is_one(),
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Scalar::Float{v} => v.is_one(),
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}
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}
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pub fn is_negative(&self) -> bool {
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match self {
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Scalar::Rational{v} => v.is_negative(),
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Scalar::Float{v} => v.is_negative(),
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}
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}
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pub fn is_positive(&self) -> bool {
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match self {
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Scalar::Rational{v} => v.is_positive(),
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Scalar::Float{v} => v.is_positive(),
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}
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}
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scalar_foward!(fract);
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scalar_foward!(abs);
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scalar_foward!(floor);
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scalar_foward!(ceil);
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scalar_foward!(round);
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scalar_foward!(sin);
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scalar_foward!(cos);
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scalar_foward!(tan);
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scalar_foward!(asin);
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scalar_foward!(acos);
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scalar_foward!(atan);
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scalar_foward!(sinh);
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scalar_foward!(cosh);
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scalar_foward!(tanh);
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scalar_foward!(asinh);
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scalar_foward!(acosh);
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scalar_foward!(atanh);
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scalar_foward!(exp);
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scalar_foward!(ln);
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scalar_foward!(log10);
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scalar_foward!(log2);
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pub fn log(&self, base: Scalar) -> Scalar {
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match self {
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Scalar::Rational{..} => { to_float(self.clone()).log(to_float(base)) },
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Scalar::Float{..} => { to_float(self.clone()).log(to_float(base)) },
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}
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}
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pub fn pow(&self, base: Scalar) -> Scalar {
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match self {
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Scalar::Rational{..} => {
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let a = match to_float(self.clone()) {
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Scalar::Rational{..} => panic!(),
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Scalar::Float{v} => v,
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};
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let b = match to_float(base) {
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Scalar::Rational{..} => panic!(),
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Scalar::Float{v} => v,
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};
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wrap_float!(a.pow(b).unwrap())
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},
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Scalar::Float{..} => {
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let a = match to_float(self.clone()) {
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Scalar::Rational{..} => panic!(),
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Scalar::Float{v} => v,
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};
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let b = match to_float(base) {
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Scalar::Rational{..} => panic!(),
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Scalar::Float{v} => v,
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};
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wrap_float!(a.pow(b).unwrap())
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},
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}
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}
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}
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impl Neg for Scalar where {
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type Output = Self;
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fn neg(self) -> Self::Output {
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match self {
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Scalar::Float { v } => {wrap_float!(-v)},
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Scalar::Rational { v } => {wrap_rational!(-v)},
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}
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}
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}
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impl Add for Scalar {
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type Output = Self;
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fn add(self, other: Self) -> Self::Output {
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match (&self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()+vb.clone())},
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(Scalar::Float{..}, Scalar::Rational{..}) => {self + to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) + other},
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()+vb.clone())},
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}
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}
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}
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impl AddAssign for Scalar where {
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fn add_assign(&mut self, other: Self) {
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match (&mut *self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {*va += vb.clone()},
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(Scalar::Float{..}, Scalar::Rational{..}) => {*self += to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {*self = to_float(self.clone()) + other },
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {*va += vb.clone()},
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}
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}
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}
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impl Sub for Scalar {
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type Output = Self;
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fn sub(self, other: Self) -> Self::Output {
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match (&self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()-vb.clone())},
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(Scalar::Float{..}, Scalar::Rational{..}) => {self - to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) - other},
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()-vb.clone())},
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}
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}
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}
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impl SubAssign for Scalar where {
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fn sub_assign(&mut self, other: Self) {
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match (&mut *self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {*va -= vb.clone()},
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(Scalar::Float{..}, Scalar::Rational{..}) => {*self -= to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {*self = to_float(self.clone()) - other },
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {*va -= vb.clone()},
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}
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}
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}
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impl Mul for Scalar {
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type Output = Self;
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fn mul(self, other: Self) -> Self::Output {
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match (&self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()*vb.clone())},
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(Scalar::Float{..}, Scalar::Rational{..}) => {self * to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) * other},
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()*vb.clone())},
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}
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}
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}
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impl MulAssign for Scalar where {
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fn mul_assign(&mut self, other: Self) {
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match (&mut *self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {*va *= vb.clone()},
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(Scalar::Float{..}, Scalar::Rational{..}) => {*self *= to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {*self = to_float(self.clone()) * other },
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {*va *= vb.clone()},
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}
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}
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}
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impl Div for Scalar {
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type Output = Self;
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fn div(self, other: Self) -> Self::Output {
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match (&self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()/vb.clone())},
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(Scalar::Float{..}, Scalar::Rational{..}) => {self / to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) / other},
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()/vb.clone())},
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}
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}
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}
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impl DivAssign for Scalar where {
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fn div_assign(&mut self, other: Self) {
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match (&mut *self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {*va /= vb.clone()},
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(Scalar::Float{..}, Scalar::Rational{..}) => {*self /= to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {*self = to_float(self.clone()) / other },
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {*va /= vb.clone()},
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}
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}
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}
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impl Rem<Scalar> for Scalar {
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type Output = Self;
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fn rem(self, other: Scalar) -> Self::Output {
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match (&self, &other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()%vb.clone())},
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(Scalar::Float{..}, Scalar::Rational{..}) => {self % to_float(other)},
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(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) % other},
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()%vb.clone())},
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}
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}
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}
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impl PartialEq for Scalar {
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fn eq(&self, other: &Self) -> bool {
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match (self, other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => { va == vb },
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(Scalar::Float{..}, Scalar::Rational{..}) => {*self == to_float(other.clone())},
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(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self.clone()) == *other},
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => { va == vb },
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}
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}
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}
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impl PartialOrd for Scalar {
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fn partial_cmp(&self, other: &Self) -> Option<Ordering> {
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match (self, other) {
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(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {va.partial_cmp(vb)},
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(Scalar::Float{..}, Scalar::Rational{..}) => {(*self).partial_cmp(&to_float(other.clone()))},
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(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self.clone()).partial_cmp(other)},
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(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {va.partial_cmp(vb)},
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}
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}
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}
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mod scalar;
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pub use self::scalar::Scalar;
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pub use self::scalar::ScalarBase;
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@ -1,5 +1,6 @@
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use rug::Rational;
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use rug::Integer;
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use rug::ops::Pow;
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use std::ops::{
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Add, Sub, Mul, Div,
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@ -109,6 +110,10 @@ impl ScalarBase for RationalBase {
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Some(RationalBase{val: self.val.clone().fract_floor(Integer::new()).0})
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}
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fn is_int(&self) -> bool {
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self.fract() == RationalBase::from_f64(0f64)
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}
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fn is_zero(&self) -> bool {self.val == Rational::from((0,1))}
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fn is_one(&self) -> bool {self.val == Rational::from((1,1))}
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fn is_negative(&self) -> bool { self.val.clone().signum() == -1 }
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@ -0,0 +1,397 @@
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use std::ops::{
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Add, Sub, Mul, Div,
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Neg, Rem,
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AddAssign, SubAssign,
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MulAssign, DivAssign
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};
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use std::cmp::Ordering;
|
||||
|
||||
use super::floatbase::FloatBase as FloatBase;
|
||||
use super::rationalbase::RationalBase;
|
||||
|
||||
|
||||
pub trait ScalarBase:
|
||||
Sized + ToString +
|
||||
Add + AddAssign +
|
||||
Sub + SubAssign +
|
||||
Mul + MulAssign +
|
||||
Div + DivAssign +
|
||||
Neg + Rem +
|
||||
PartialEq + PartialOrd
|
||||
{
|
||||
// Creation
|
||||
fn from_f64(f: f64) -> Option<Self>;
|
||||
fn from_string(s: &str) -> Option<Self>;
|
||||
|
||||
// Utility
|
||||
fn fract(&self) -> Option<Self>;
|
||||
fn is_zero(&self) -> bool;
|
||||
fn is_one(&self) -> bool;
|
||||
fn is_int(&self) -> bool;
|
||||
fn is_negative(&self) -> bool;
|
||||
fn is_positive(&self) -> bool;
|
||||
|
||||
// Mathematical
|
||||
fn exp(&self) -> Option<Self>;
|
||||
fn abs(&self) -> Option<Self>;
|
||||
fn floor(&self) -> Option<Self>;
|
||||
fn ceil(&self) -> Option<Self>;
|
||||
fn round(&self) -> Option<Self>;
|
||||
fn sin(&self) -> Option<Self>;
|
||||
fn cos(&self) -> Option<Self>;
|
||||
fn tan(&self) -> Option<Self>;
|
||||
fn asin(&self) -> Option<Self>;
|
||||
fn acos(&self) -> Option<Self>;
|
||||
fn atan(&self) -> Option<Self>;
|
||||
fn sinh(&self) -> Option<Self>;
|
||||
fn cosh(&self) -> Option<Self>;
|
||||
fn tanh(&self) -> Option<Self>;
|
||||
fn asinh(&self) -> Option<Self>;
|
||||
fn acosh(&self) -> Option<Self>;
|
||||
fn atanh(&self) -> Option<Self>;
|
||||
fn ln(&self) -> Option<Self>;
|
||||
fn log10(&self) -> Option<Self>;
|
||||
fn log2(&self) -> Option<Self>;
|
||||
fn log(&self, base: Self) -> Option<Self>;
|
||||
fn pow(&self, exp: Self) -> Option<Self>;
|
||||
}
|
||||
|
||||
|
||||
|
||||
|
||||
#[derive(Debug)]
|
||||
#[derive(Clone)]
|
||||
pub enum Scalar {
|
||||
Rational{ v: RationalBase },
|
||||
Float{ v: FloatBase }
|
||||
}
|
||||
|
||||
|
||||
macro_rules! wrap_rational {
|
||||
( $x:expr) => { Scalar::Rational{v: $x} }
|
||||
}
|
||||
|
||||
macro_rules! wrap_float {
|
||||
( $x:expr) => { Scalar::Float{v: $x} }
|
||||
}
|
||||
|
||||
|
||||
fn to_float(r: Scalar) -> Scalar {
|
||||
match &r {
|
||||
Scalar::Float {..} => r,
|
||||
Scalar::Rational {v} => wrap_float!(
|
||||
FloatBase::from(v.val.numer()).unwrap() /
|
||||
FloatBase::from(v.val.denom()).unwrap()
|
||||
)
|
||||
}
|
||||
}
|
||||
|
||||
impl ToString for Scalar {
|
||||
fn to_string(&self) -> String {
|
||||
match self {
|
||||
Scalar::Rational{..} => to_float(self.clone()).to_string(),
|
||||
Scalar::Float{v} => v.to_string()
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// Creation methods
|
||||
impl Scalar {
|
||||
pub fn new_float(f: f64) -> Option<Self> {
|
||||
let v = FloatBase::from_f64(f);
|
||||
if v.is_none() { return None; }
|
||||
return Some(wrap_float!(v.unwrap()));
|
||||
}
|
||||
|
||||
pub fn new_rational(f: f64) -> Option<Self> {
|
||||
let r = RationalBase::from_f64(f);
|
||||
if r.is_none() { return None; }
|
||||
return Some(wrap_rational!(r.unwrap()));
|
||||
}
|
||||
|
||||
pub fn new_rational_from_string(s: &str) -> Option<Self> {
|
||||
let r = RationalBase::from_string(s);
|
||||
if r.is_none() { return None; }
|
||||
return Some(wrap_rational!(r.unwrap()));
|
||||
}
|
||||
|
||||
pub fn new_float_from_string(s: &str) -> Option<Self> {
|
||||
let v = FloatBase::from_string(s);
|
||||
if v.is_none() { return None; }
|
||||
return Some(wrap_float!(v.unwrap()))
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
// Forwarded functions
|
||||
macro_rules! scalar_foward {
|
||||
( $x:ident ) => {
|
||||
pub fn $x(&self) -> Scalar {
|
||||
match self {
|
||||
Scalar::Rational{v} => {
|
||||
let r = v.$x();
|
||||
if r.is_none() {
|
||||
let v = to_float(self.clone());
|
||||
return v.$x();
|
||||
} else {wrap_rational!(r.unwrap())}
|
||||
},
|
||||
Scalar::Float{v} => {wrap_float!(v.$x().unwrap())},
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Scalar {
|
||||
pub fn is_zero(&self) -> bool {
|
||||
match self {
|
||||
Scalar::Rational{v} => v.is_zero(),
|
||||
Scalar::Float{v} => v.is_zero(),
|
||||
}
|
||||
}
|
||||
|
||||
pub fn is_one(&self) -> bool {
|
||||
match self {
|
||||
Scalar::Rational{v} => v.is_one(),
|
||||
Scalar::Float{v} => v.is_one(),
|
||||
}
|
||||
}
|
||||
|
||||
pub fn is_negative(&self) -> bool {
|
||||
match self {
|
||||
Scalar::Rational{v} => v.is_negative(),
|
||||
Scalar::Float{v} => v.is_negative(),
|
||||
}
|
||||
}
|
||||
|
||||
pub fn is_positive(&self) -> bool {
|
||||
match self {
|
||||
Scalar::Rational{v} => v.is_positive(),
|
||||
Scalar::Float{v} => v.is_positive(),
|
||||
}
|
||||
}
|
||||
|
||||
pub fn is_nan(&self) -> bool {
|
||||
match self {
|
||||
Scalar::Float {v} => {v.val.is_nan()},
|
||||
Scalar::Rational {..} => {panic!()}
|
||||
}
|
||||
}
|
||||
|
||||
pub fn is_rational(&self) -> bool {
|
||||
match self {
|
||||
Scalar::Float { .. } => false,
|
||||
Scalar::Rational {..} => true
|
||||
}
|
||||
}
|
||||
|
||||
pub fn is_int(&self) -> bool {
|
||||
match self {
|
||||
Scalar::Rational{v} => v.is_int(),
|
||||
Scalar::Float{v} => v.is_int(),
|
||||
}
|
||||
}
|
||||
|
||||
scalar_foward!(fract);
|
||||
scalar_foward!(abs);
|
||||
scalar_foward!(floor);
|
||||
scalar_foward!(ceil);
|
||||
scalar_foward!(round);
|
||||
scalar_foward!(sin);
|
||||
scalar_foward!(cos);
|
||||
scalar_foward!(tan);
|
||||
scalar_foward!(asin);
|
||||
scalar_foward!(acos);
|
||||
scalar_foward!(atan);
|
||||
scalar_foward!(sinh);
|
||||
scalar_foward!(cosh);
|
||||
scalar_foward!(tanh);
|
||||
scalar_foward!(asinh);
|
||||
scalar_foward!(acosh);
|
||||
scalar_foward!(atanh);
|
||||
scalar_foward!(exp);
|
||||
scalar_foward!(ln);
|
||||
scalar_foward!(log10);
|
||||
scalar_foward!(log2);
|
||||
|
||||
pub fn log(&self, base: Scalar) -> Scalar {
|
||||
match self {
|
||||
Scalar::Rational{..} => { to_float(self.clone()).log(to_float(base)) },
|
||||
Scalar::Float{..} => { to_float(self.clone()).log(to_float(base)) },
|
||||
}
|
||||
}
|
||||
|
||||
pub fn pow(&self, base: Scalar) -> Scalar {
|
||||
match self {
|
||||
Scalar::Rational{..} => {
|
||||
let a = match to_float(self.clone()) {
|
||||
Scalar::Rational{..} => panic!(),
|
||||
Scalar::Float{v} => v,
|
||||
};
|
||||
|
||||
let b = match to_float(base) {
|
||||
Scalar::Rational{..} => panic!(),
|
||||
Scalar::Float{v} => v,
|
||||
};
|
||||
|
||||
wrap_float!(a.pow(b).unwrap())
|
||||
},
|
||||
Scalar::Float{..} => {
|
||||
let a = match to_float(self.clone()) {
|
||||
Scalar::Rational{..} => panic!(),
|
||||
Scalar::Float{v} => v,
|
||||
};
|
||||
|
||||
let b = match to_float(base) {
|
||||
Scalar::Rational{..} => panic!(),
|
||||
Scalar::Float{v} => v,
|
||||
};
|
||||
|
||||
wrap_float!(a.pow(b).unwrap())
|
||||
|
||||
},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Neg for Scalar where {
|
||||
type Output = Self;
|
||||
|
||||
fn neg(self) -> Self::Output {
|
||||
match self {
|
||||
Scalar::Float { v } => {wrap_float!(-v)},
|
||||
Scalar::Rational { v } => {wrap_rational!(-v)},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Add for Scalar {
|
||||
type Output = Self;
|
||||
|
||||
fn add(self, other: Self) -> Self::Output {
|
||||
match (&self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()+vb.clone())},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {self + to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) + other},
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()+vb.clone())},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl AddAssign for Scalar where {
|
||||
fn add_assign(&mut self, other: Self) {
|
||||
match (&mut *self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {*va += vb.clone()},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {*self += to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {*self = to_float(self.clone()) + other },
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {*va += vb.clone()},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Sub for Scalar {
|
||||
type Output = Self;
|
||||
|
||||
fn sub(self, other: Self) -> Self::Output {
|
||||
match (&self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()-vb.clone())},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {self - to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) - other},
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()-vb.clone())},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl SubAssign for Scalar where {
|
||||
fn sub_assign(&mut self, other: Self) {
|
||||
match (&mut *self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {*va -= vb.clone()},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {*self -= to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {*self = to_float(self.clone()) - other },
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {*va -= vb.clone()},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Mul for Scalar {
|
||||
type Output = Self;
|
||||
|
||||
fn mul(self, other: Self) -> Self::Output {
|
||||
match (&self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()*vb.clone())},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {self * to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) * other},
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()*vb.clone())},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl MulAssign for Scalar where {
|
||||
fn mul_assign(&mut self, other: Self) {
|
||||
match (&mut *self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {*va *= vb.clone()},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {*self *= to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {*self = to_float(self.clone()) * other },
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {*va *= vb.clone()},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Div for Scalar {
|
||||
type Output = Self;
|
||||
|
||||
fn div(self, other: Self) -> Self::Output {
|
||||
match (&self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()/vb.clone())},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {self / to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) / other},
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()/vb.clone())},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl DivAssign for Scalar where {
|
||||
fn div_assign(&mut self, other: Self) {
|
||||
match (&mut *self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {*va /= vb.clone()},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {*self /= to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {*self = to_float(self.clone()) / other },
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {*va /= vb.clone()},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Rem<Scalar> for Scalar {
|
||||
type Output = Self;
|
||||
|
||||
fn rem(self, other: Scalar) -> Self::Output {
|
||||
match (&self, &other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {wrap_float!(va.clone()%vb.clone())},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {self % to_float(other)},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self) % other},
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {wrap_rational!(va.clone()%vb.clone())},
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl PartialEq for Scalar {
|
||||
fn eq(&self, other: &Self) -> bool {
|
||||
match (self, other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => { va == vb },
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {*self == to_float(other.clone())},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self.clone()) == *other},
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => { va == vb },
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl PartialOrd for Scalar {
|
||||
fn partial_cmp(&self, other: &Self) -> Option<Ordering> {
|
||||
match (self, other) {
|
||||
(Scalar::Float{v:va}, Scalar::Float{v:vb}) => {va.partial_cmp(vb)},
|
||||
(Scalar::Float{..}, Scalar::Rational{..}) => {(*self).partial_cmp(&to_float(other.clone()))},
|
||||
(Scalar::Rational{..}, Scalar::Float{..}) => {to_float(self.clone()).partial_cmp(other)},
|
||||
(Scalar::Rational{v:va}, Scalar::Rational{v:vb}) => {va.partial_cmp(vb)},
|
||||
}
|
||||
}
|
||||
}
|
Loading…
Reference in New Issue