use crate::error::FinError;
use crate::signals::{BarInput, Signal, SignalValue};
use rust_decimal::Decimal;
use std::collections::VecDeque;
pub struct PriceCompressionBreakout {
name: String,
period: usize,
highs: VecDeque<Decimal>,
lows: VecDeque<Decimal>,
bars_seen: usize,
}
impl PriceCompressionBreakout {
pub fn new(name: impl Into<String>, period: usize) -> Result<Self, FinError> {
if period == 0 {
return Err(FinError::InvalidPeriod(period));
}
Ok(Self {
name: name.into(),
period,
highs: VecDeque::with_capacity(period + 1),
lows: VecDeque::with_capacity(period + 1),
bars_seen: 0,
})
}
}
impl Signal for PriceCompressionBreakout {
fn name(&self) -> &str {
&self.name
}
fn period(&self) -> usize {
self.period
}
fn is_ready(&self) -> bool {
self.bars_seen > self.period
}
fn update(&mut self, bar: &BarInput) -> Result<SignalValue, FinError> {
self.bars_seen += 1;
self.highs.push_back(bar.high);
self.lows.push_back(bar.low);
if self.highs.len() > self.period + 1 {
self.highs.pop_front();
self.lows.pop_front();
}
if self.bars_seen <= self.period {
return Ok(SignalValue::Unavailable);
}
let n = self.highs.len();
let prior_high = self.highs.iter().take(n - 1).copied().fold(Decimal::MIN, Decimal::max);
let prior_low = self.lows.iter().take(n - 1).copied().fold(Decimal::MAX, Decimal::min);
let signal = if bar.close > prior_high {
Decimal::ONE
} else if bar.close < prior_low {
Decimal::NEGATIVE_ONE
} else {
Decimal::ZERO
};
Ok(SignalValue::Scalar(signal))
}
fn reset(&mut self) {
self.highs.clear();
self.lows.clear();
self.bars_seen = 0;
}
}
#[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(h: &str, l: &str, c: &str) -> OhlcvBar {
let hp = Price::new(h.parse().unwrap()).unwrap();
let lp = Price::new(l.parse().unwrap()).unwrap();
let cp = Price::new(c.parse().unwrap()).unwrap();
OhlcvBar {
symbol: Symbol::new("X").unwrap(),
open: lp, high: hp, low: lp, close: cp,
volume: Quantity::zero(),
ts_open: NanoTimestamp::new(0),
ts_close: NanoTimestamp::new(1),
tick_count: 1,
}
}
#[test]
fn test_pcb_invalid_period() {
assert!(PriceCompressionBreakout::new("pcb", 0).is_err());
}
#[test]
fn test_pcb_unavailable_before_period_plus_1() {
let mut pcb = PriceCompressionBreakout::new("pcb", 3).unwrap();
for _ in 0..3 {
assert_eq!(pcb.update_bar(&bar("110", "90", "100")).unwrap(), SignalValue::Unavailable);
}
assert!(!pcb.is_ready());
}
#[test]
fn test_pcb_no_breakout_gives_zero() {
let mut pcb = PriceCompressionBreakout::new("pcb", 3).unwrap();
for _ in 0..4 {
pcb.update_bar(&bar("110", "90", "100")).unwrap();
}
let v = pcb.update_bar(&bar("110", "90", "100")).unwrap();
assert_eq!(v, SignalValue::Scalar(dec!(0)));
}
#[test]
fn test_pcb_bullish_breakout() {
let mut pcb = PriceCompressionBreakout::new("pcb", 3).unwrap();
for _ in 0..3 {
pcb.update_bar(&bar("110", "90", "100")).unwrap();
}
let v = pcb.update_bar(&bar("120", "112", "115")).unwrap();
assert_eq!(v, SignalValue::Scalar(dec!(1)));
}
#[test]
fn test_pcb_bearish_breakout() {
let mut pcb = PriceCompressionBreakout::new("pcb", 3).unwrap();
for _ in 0..3 {
pcb.update_bar(&bar("110", "90", "100")).unwrap();
}
let v = pcb.update_bar(&bar("88", "80", "85")).unwrap();
assert_eq!(v, SignalValue::Scalar(dec!(-1)));
}
#[test]
fn test_pcb_reset() {
let mut pcb = PriceCompressionBreakout::new("pcb", 3).unwrap();
for _ in 0..5 {
pcb.update_bar(&bar("110", "90", "100")).unwrap();
}
assert!(pcb.is_ready());
pcb.reset();
assert!(!pcb.is_ready());
}
#[test]
fn test_pcb_period_and_name() {
let pcb = PriceCompressionBreakout::new("my_pcb", 20).unwrap();
assert_eq!(pcb.period(), 20);
assert_eq!(pcb.name(), "my_pcb");
}
}