use crate::common::{validate_inputs, validate_options};
pub use crate::indicator_types::TIndicatorState;
use crate::indicators::sma::calc as sma_calc;
pub use crate::indicators::sma::{init_state, multiplier};
use crate::types::{DisplayGroup, DisplayType, IndicatorError, IndicatorType, Info};
use serde::{Deserialize, Serialize};
pub const INPUTS_WIDTH: usize = 1;
pub const OPTIONS_WIDTH: usize = 1;
#[cfg(feature = "simd_assets")]
pub use crate::indicators::simd_indicators::md_simd::indicator_by_assets;
#[cfg(feature = "simd_options")]
pub use crate::indicators::simd_indicators::md_simd::indicator_by_options;
#[cfg(feature = "simd_assets")]
pub mod by_assets {
pub use crate::indicators::simd_indicators::md_simd::indicator_by_assets as indicator;
}
#[cfg(feature = "simd_options")]
pub mod by_options {
pub use crate::indicators::simd_indicators::md_simd::indicator_by_options as indicator;
}
use std::simd::{num::SimdFloat, Simd};
pub const INFO: Info = Info {
name: "md",
indicator_type: IndicatorType::Volatility,
full_name: "Mean Deviation",
inputs: &["real"],
options: &["period"],
outputs: &["md"],
optional_outputs: &["sma"],
display_groups: &[DisplayGroup {
offset: None,
id: "md",
label: "MD",
display_type: DisplayType::Indicator,
outputs: &["md"],
}],
};
#[derive(Serialize, Deserialize)]
pub struct IndicatorState {
real: Vec<f64>,
multiplier: f64,
sum: f64,
period: usize,
}
impl IndicatorState {
pub fn new(real: &[f64], sum: f64, multiplier: f64, period: usize) -> Self {
Self {
real: real[real.len() - period..].to_vec(),
multiplier,
sum,
period,
}
}
}
impl TIndicatorState<1> for IndicatorState {
fn batch_indicator(
&mut self,
inputs: &[&[f64]; INPUTS_WIDTH],
optional_outputs: Option<&[bool]>,
) -> Result<Vec<Vec<f64>>, IndicatorError> {
validate_inputs(inputs, 1)?;
self.real.extend_from_slice(inputs[0]);
let (mut md_line, mut sma_line) = {
let capacity = inputs[0].len();
(
crate::uninit_vec!(f64, capacity),
crate::init_optional_outputs_eff!(
optional_outputs, &[false],
sma_line: capacity
),
)
};
match self.period {
1..=4 => {
self.sum = cycle_md::<1>(
&self.real,
self.sum,
self.period,
self.multiplier,
&mut md_line,
&mut sma_line,
)
}
5..=200 => {
self.sum = cycle_md::<4>(
&self.real,
self.sum,
self.period,
self.multiplier,
&mut md_line,
&mut sma_line,
)
}
_ => {
self.sum = cycle_md::<8>(
&self.real,
self.sum,
self.period,
self.multiplier,
&mut md_line,
&mut sma_line,
)
}
}
self.real.drain(..self.real.len() - self.period);
Ok(vec![md_line, sma_line])
}
}
pub fn min_data(options: &[f64]) -> usize {
options[0] as usize + 1
}
pub fn output_length(data_len: usize, options: &[f64]) -> usize {
data_len - min_data(options) + 1
}
pub fn indicator(
inputs: &[&[f64]; INPUTS_WIDTH],
options: &[f64; OPTIONS_WIDTH],
optional_outputs: Option<&[bool]>,
) -> Result<(Vec<Vec<f64>>, IndicatorState), IndicatorError> {
if options[0] < 1.0 {
return Err(IndicatorError::InvalidOptions);
}
validate_options(options)?;
let period = options[0] as usize;
let multiplier = multiplier(period);
validate_inputs(inputs, min_data(options))?;
let real = inputs[0];
let mut sum = init_state(real, period);
let (mut md_line, mut sma_line) = {
let capacity = output_length(real.len(), options);
(
crate::uninit_vec!(f64, capacity),
crate::init_optional_outputs_eff!(
optional_outputs, &[false],
sma_line: capacity
),
)
};
match period {
1..=4 => sum = cycle_md::<1>(real, sum, period, multiplier, &mut md_line, &mut sma_line),
5..=200 => sum = cycle_md::<4>(real, sum, period, multiplier, &mut md_line, &mut sma_line),
_ => sum = cycle_md::<8>(real, sum, period, multiplier, &mut md_line, &mut sma_line),
}
Ok((
vec![md_line, sma_line],
IndicatorState::new(real, sum, multiplier, period),
))
}
fn cycle_md<const N: usize>(
real: &[f64],
mut sum: f64,
period: usize,
multiplier: f64,
md_line: &mut [f64],
sma_line: &mut [f64],
) -> f64 {
let (want_sma, _) = crate::calc_want_flags!(sma_line);
for (j, i) in (period..real.len()).enumerate() {
let (value, prev_value, prev_slice) = unsafe {
(
real.get_unchecked(i),
real.get_unchecked(i - period),
real.get_unchecked(i + 1 - period..=i),
)
};
let (md, sma) = if N == 1 {
calc(value, prev_value, prev_slice, &mut sum, multiplier)
} else {
calc_simd::<N>(value, prev_value, prev_slice, &mut sum, multiplier)
};
unsafe { *md_line.get_unchecked_mut(j) = md };
if want_sma {
crate::store_optional_outputs!(j,
want_sma, sma_line => sma
);
}
}
sum
}
#[inline(always)]
pub fn calc(
value: &f64,
prev_value: &f64,
slice: &[f64],
sum: &mut f64,
multiplier: f64,
) -> (f64, f64) {
let sma = sma_calc(sum, value, prev_value, &multiplier);
let mean_deviation = calc_md(slice, sma, multiplier);
(mean_deviation, sma)
}
#[inline(always)]
pub fn calc_simd<const N: usize>(
value: &f64,
prev_value: &f64,
slice: &[f64],
sum: &mut f64,
multiplier: f64,
) -> (f64, f64) {
let sma = sma_calc(sum, value, prev_value, &multiplier);
let mean_deviation = calc_md_simd::<N>(slice, sma, multiplier);
(mean_deviation, sma)
}
#[inline(always)]
pub(crate) fn calc_md_simd<const N: usize>(slice: &[f64], sma: f64, multiplier: f64) -> f64 {
let sma_vec = Simd::<f64, N>::splat(sma);
let mut sum_vec = Simd::splat(0.0);
for chunk in slice.chunks_exact(N) {
let vals = Simd::from_slice(chunk);
sum_vec += (vals - sma_vec).abs();
}
let mut abs_dev_sum = sum_vec.reduce_sum();
let processed_len = (slice.len() / N) * N;
let remainder = &slice[processed_len..];
for &x in remainder {
abs_dev_sum += (x - sma).abs();
}
abs_dev_sum * multiplier
}
#[inline(always)]
pub(crate) fn calc_md(real: &[f64], sma: f64, multiplier: f64) -> f64 {
real.iter().map(|&x| (x - sma).abs()).sum::<f64>() * multiplier
}