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//! High-Low Symmetry indicator.
//!
//! Tracks the EMA of `|(high - mid) - (mid - low)| / range`, measuring how
//! asymmetric each bar is around its midpoint. A perfectly symmetric bar has
//! equal distance from high to mid and from mid to low.
use crate::error::FinError;
use crate::signals::{BarInput, SignalValue};
use rust_decimal::Decimal;
/// EMA of `|(high − mid) − (mid − low)| / range`.
///
/// For each bar:
/// ```text
/// mid = (high + low) / 2
/// upper_half = high - mid = (high - low) / 2
/// lower_half = mid - low = (high - low) / 2
/// symmetry = |upper_half - lower_half| / range = 0 (always symmetric!)
/// ```
///
/// Wait — (high - mid) == (mid - low) always. Instead we use **open** as the
/// reference rather than mid:
/// ```text
/// raw = |(high - open) - (open - low)| / range when range > 0
/// = 0 when range == 0
/// ```
///
/// This measures how asymmetrically the open splits the bar's range.
/// A value of `0` means the open sits exactly at the midpoint.
/// A value of `1` means the open is at one extreme (high or low).
///
/// Returns a value after the first bar (EMA seeds immediately).
///
/// # Errors
/// Returns [`FinError::InvalidPeriod`] if `period == 0`.
///
/// # Example
/// ```rust
/// use fin_primitives::signals::indicators::HighLowSymmetry;
/// use fin_primitives::signals::Signal;
///
/// let hls = HighLowSymmetry::new("hls", 10).unwrap();
/// assert_eq!(hls.period(), 10);
/// ```
pub struct HighLowSymmetry {
name: String,
period: usize,
ema: Option<Decimal>,
k: Decimal,
}
impl HighLowSymmetry {
/// Constructs a new `HighLowSymmetry`.
///
/// # Errors
/// Returns [`FinError::InvalidPeriod`] if `period == 0`.
pub fn new(name: impl Into<String>, period: usize) -> Result<Self, FinError> {
if period == 0 {
return Err(FinError::InvalidPeriod(period));
}
#[allow(clippy::cast_possible_truncation)]
let k = Decimal::from(2u32) / (Decimal::from(period as u32) + Decimal::ONE);
Ok(Self { name: name.into(), period, ema: None, k })
}
}
impl crate::signals::Signal for HighLowSymmetry {
fn name(&self) -> &str {
&self.name
}
fn period(&self) -> usize {
self.period
}
fn is_ready(&self) -> bool {
self.ema.is_some()
}
fn update(&mut self, bar: &BarInput) -> Result<SignalValue, FinError> {
let range = bar.range();
let raw = if range.is_zero() {
Decimal::ZERO
} else {
let upper = bar.high - bar.open;
let lower = bar.open - bar.low;
(upper - lower)
.abs()
.checked_div(range)
.ok_or(FinError::ArithmeticOverflow)?
};
let ema = match self.ema {
None => {
self.ema = Some(raw);
raw
}
Some(prev) => {
let next = raw * self.k + prev * (Decimal::ONE - self.k);
self.ema = Some(next);
next
}
};
Ok(SignalValue::Scalar(ema))
}
fn reset(&mut self) {
self.ema = None;
}
}
#[cfg(test)]
mod tests {
use super::*;
use crate::ohlcv::OhlcvBar;
use crate::signals::Signal;
use crate::types::{NanoTimestamp, Price, Quantity, Symbol};
use rust_decimal_macros::dec;
fn bar(open: &str, high: &str, low: &str, close: &str) -> OhlcvBar {
OhlcvBar {
symbol: Symbol::new("X").unwrap(),
open: Price::new(open.parse().unwrap()).unwrap(),
high: Price::new(high.parse().unwrap()).unwrap(),
low: Price::new(low.parse().unwrap()).unwrap(),
close: Price::new(close.parse().unwrap()).unwrap(),
volume: Quantity::zero(),
ts_open: NanoTimestamp::new(0),
ts_close: NanoTimestamp::new(1),
tick_count: 1,
}
}
#[test]
fn test_hls_invalid_period() {
assert!(HighLowSymmetry::new("hls", 0).is_err());
}
#[test]
fn test_hls_ready_after_first_bar() {
let mut hls = HighLowSymmetry::new("hls", 5).unwrap();
hls.update_bar(&bar("100", "110", "90", "105")).unwrap();
assert!(hls.is_ready());
}
#[test]
fn test_hls_symmetric_open_zero() {
let mut hls = HighLowSymmetry::new("hls", 5).unwrap();
// open=100, high=110, low=90: upper=10, lower=10 → |0|/20 = 0
let v = hls.update_bar(&bar("100", "110", "90", "100")).unwrap();
assert_eq!(v, SignalValue::Scalar(dec!(0)));
}
#[test]
fn test_hls_open_at_high_one() {
let mut hls = HighLowSymmetry::new("hls", 5).unwrap();
// open=110=high, low=90: upper=0, lower=20 → |0-20|/20 = 1
let v = hls.update_bar(&bar("110", "110", "90", "100")).unwrap();
assert_eq!(v, SignalValue::Scalar(dec!(1)));
}
#[test]
fn test_hls_flat_bar_zero() {
let mut hls = HighLowSymmetry::new("hls", 5).unwrap();
let v = hls.update_bar(&bar("100", "100", "100", "100")).unwrap();
assert_eq!(v, SignalValue::Scalar(dec!(0)));
}
#[test]
fn test_hls_in_range() {
let mut hls = HighLowSymmetry::new("hls", 3).unwrap();
for _ in 0..5 {
hls.update_bar(&bar("95", "110", "90", "105")).unwrap();
}
let v = hls.update_bar(&bar("95", "110", "90", "105")).unwrap();
if let SignalValue::Scalar(e) = v {
assert!(e >= dec!(0) && e <= dec!(1), "symmetry out of [0,1]: {e}");
} else {
panic!("expected Scalar");
}
}
#[test]
fn test_hls_reset() {
let mut hls = HighLowSymmetry::new("hls", 5).unwrap();
hls.update_bar(&bar("100", "110", "90", "105")).unwrap();
assert!(hls.is_ready());
hls.reset();
assert!(!hls.is_ready());
}
}