1use crate::{
2 error::{AnalysisError, Result},
3 sounding::{DataRow, Sounding},
4};
5use itertools::{izip, Itertools};
6use metfor::{HectoPascal, Knots, Quantity, WindSpdDir, WindUV};
7use optional::Optioned;
8use std::ops::Sub;
9
10pub fn linear_interpolate_sounding(snd: &Sounding, tgt_p: HectoPascal) -> Result<DataRow> {
14 let pressure: &[Optioned<HectoPascal>] = snd.pressure_profile();
15
16 enum BracketType {
18 Bracket(usize, usize),
19 EndEquals(usize),
20 }
21
22 let make_bracket = |pnt_0, pnt_1| -> Option<BracketType> {
24 let (i0, p0): (_, HectoPascal) = pnt_0;
25 let (i1, p1): (_, HectoPascal) = pnt_1;
26
27 debug_assert!(p0 >= p1);
29 if p0 > tgt_p && p1 < tgt_p {
30 Some(BracketType::Bracket(i0, i1))
31 } else if (p0 - tgt_p).unpack().abs() < std::f64::EPSILON {
32 Some(BracketType::EndEquals(i0))
33 } else if (p1 - tgt_p).unpack().abs() < std::f64::EPSILON {
34 Some(BracketType::EndEquals(i1))
35 } else {
36 None
37 }
38 };
39
40 pressure
42 .iter()
43 .enumerate()
44 .filter_map(|(i, p_val_opt)| p_val_opt.map(|p_val| (i, p_val)))
47 .tuple_windows::<(_, _)>()
49 .filter_map(|(pnt_0, pnt_1)| make_bracket(pnt_0, pnt_1))
52 .next() .and_then(|bracket| match bracket {
56 BracketType::Bracket(i0, i1) => {
57 let row0 = snd.data_row(i0)?;
58 let row1 = snd.data_row(i1)?;
59 linear_interp_data_rows(row0, row1, tgt_p)
60 }
61 BracketType::EndEquals(i) => snd.data_row(i),
62 })
63 .ok_or(AnalysisError::InterpolationError)
65}
66
67#[inline]
71pub fn linear_interpolate<X, Y>(xs: &[Optioned<X>], ys: &[Optioned<Y>], target_x: X) -> Optioned<Y>
72where
73 X: Quantity + optional::Noned + PartialOrd + Sub<X>,
74 <X as Sub<X>>::Output: Quantity + optional::Noned,
75 Y: Quantity + optional::Noned + Sub<Y>,
76 <Y as Sub<Y>>::Output: Quantity,
77{
78 debug_assert_eq!(xs.len(), ys.len());
79
80 enum BracketType<X, Y> {
81 Bracket((X, Y), (X, Y)),
82 EndEqual((X, Y)),
83 }
84
85 let make_bracket = |pnt_0, pnt_1| -> Option<BracketType<X, Y>> {
86 let (x0, _) = pnt_0;
87 let (x1, _) = pnt_1;
88
89 if (x0 < target_x && x1 > target_x) || (x0 > target_x && x1 < target_x) {
90 Some(BracketType::Bracket(pnt_0, pnt_1))
91 } else if (x0 - target_x).unpack().abs() < std::f64::EPSILON {
92 Some(BracketType::EndEqual(pnt_0))
93 } else if (x1 - target_x).unpack().abs() < std::f64::EPSILON {
94 Some(BracketType::EndEqual(pnt_1))
95 } else {
96 None
97 }
98 };
99
100 let value_opt = izip!(xs, ys)
101 .filter(|(x, y)| x.is_some() && y.is_some())
105 .map(|(x, y)| (x.unpack(), y.unpack()))
107 .tuple_windows::<(_, _)>()
109 .filter_map(|(pnt_0, pnt_1)| make_bracket(pnt_0, pnt_1))
111 .next() .map(|val| match val {
115 BracketType::Bracket(pnt_0, pnt_1) => {
116 let (x0, y0) = pnt_0;
117 let (x1, y1) = pnt_1;
118 linear_interp(target_x, x0, x1, y0, y1)
119 }
120 BracketType::EndEqual(pnt) => pnt.1,
121 });
122
123 Optioned::from(value_opt)
124}
125
126#[inline]
127pub(crate) fn linear_interp<X, Y>(x_val: X, x1: X, x2: X, y1: Y, y2: Y) -> Y
128where
129 X: Sub<X> + Copy + std::fmt::Debug + std::cmp::PartialEq,
130 <X as Sub<X>>::Output: Quantity,
131 Y: Quantity + Sub<Y>,
132 <Y as Sub<Y>>::Output: Quantity,
133{
134 debug_assert_ne!(x1, x2);
135
136 let run = (x2 - x1).unpack();
137 let rise = (y2 - y1).unpack();
138 let dx = (x_val - x1).unpack();
139
140 Y::pack(y1.unpack() + dx * (rise / run))
141}
142
143#[inline]
144fn linear_interp_data_rows(row0: DataRow, row1: DataRow, tgt_p: HectoPascal) -> Option<DataRow> {
145 let p0 = row0.pressure.into_option()?;
146 let p1 = row1.pressure.into_option()?;
147
148 let run = p1 - p0;
149 let dp = tgt_p - p0;
150
151 let pressure = Optioned::from(tgt_p);
152 let temperature = eval_linear_interp(row0.temperature, row1.temperature, run, dp);
153 let wet_bulb = eval_linear_interp(row0.wet_bulb, row1.wet_bulb, run, dp);
154 let dew_point = eval_linear_interp(row0.dew_point, row1.dew_point, run, dp);
155 let theta_e = eval_linear_interp(row0.theta_e, row1.theta_e, run, dp);
156
157 let wind = if let (Some(w_below), Some(w_above)) =
159 (row0.wind.into_option(), row1.wind.into_option())
160 {
161 let WindUV::<Knots> {
162 u: x_below,
163 v: y_below,
164 } = WindUV::from(w_below);
165 let WindUV::<Knots> {
166 u: x_above,
167 v: y_above,
168 } = WindUV::from(w_above);
169 let dp = dp.unpack();
170 let run = run.unpack();
171
172 let rise_x = x_above - x_below;
173 let rise_y = y_above - y_below;
174
175 let x = x_below + rise_x * (dp / run);
176 let y = y_below + rise_y * (dp / run);
177
178 let interped_wind = WindSpdDir::from(WindUV { u: x, v: y });
179
180 Into::<Optioned<WindSpdDir<Knots>>>::into(interped_wind)
181 } else {
182 optional::Optioned::none()
183 };
184
185 let pvv = eval_linear_interp(row0.pvv, row1.pvv, run, dp);
186 let height = eval_linear_interp(row0.height, row1.height, run, dp);
187 let cloud_fraction = eval_linear_interp(row0.cloud_fraction, row1.cloud_fraction, run, dp);
188
189 let result = DataRow {
190 pressure,
191 temperature,
192 wet_bulb,
193 dew_point,
194 theta_e,
195 wind,
196 pvv,
197 height,
198 cloud_fraction,
199 };
200
201 Some(result)
202}
203
204#[inline]
205fn eval_linear_interp<QX, Y>(
206 low_val: Optioned<Y>,
207 high_val: Optioned<Y>,
208 run: QX,
209 dp: QX,
210) -> Optioned<Y>
211where
212 QX: Quantity + optional::Noned,
213 Y: Quantity + optional::Noned,
214{
215 if low_val.is_some() && high_val.is_some() {
216 let (val_below, val_above) = (low_val.unpack().unpack(), high_val.unpack().unpack());
217 let rise: f64 = (val_above - val_below).unpack();
218 let run: f64 = run.unpack();
219 let dp: f64 = dp.unpack();
220 Optioned::from(Y::pack(val_below + dp * rise / run))
221 } else {
222 Optioned::default()
223 }
224}