2026-05-22 16:18:04 +02:00
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# Keltner Channels
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> A pure composition of [EMA](../trend/Indicator-Ema.md) on typical price plus
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> ATR-scaled envelopes. The middle line is the trend filter, the bands are
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> the volatility cone.
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## Quick reference
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| Item | Value |
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|---------------------|------------------------------------------------------------------------------------|
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| Family | Volatility |
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| Sub-category | envelope (composed: EMA + ATR) |
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| Input type | `Candle` (uses `high`, `low`, `close`) |
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| Output type | `KeltnerOutput { upper: f64, middle: f64, lower: f64 }` |
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| Output range | unbounded; `lower ≤ middle ≤ upper` |
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| Default parameters | `ema_period = 20`, `atr_period = 10`, `multiplier = 2.0` |
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| Warmup period | `max(ema_period, atr_period)` (`20` for defaults) — exact first-emission index |
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| Interpretation | trend-following envelope; tags signal momentum, not exhaustion |
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## Formula
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```
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middle_t = EMA_{ema_period}( typical_price_t ) // tp = (H+L+C)/3
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upper_t = middle_t + multiplier * ATR_{atr_period}_t
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lower_t = middle_t - multiplier * ATR_{atr_period}_t
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```
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The middle line is an EMA of **typical price**, not of close
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(`crates/wickra-core/src/indicators/keltner.rs:62`,
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`candle.typical_price()`).
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## Parameters
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| Name | Type | Default | Constraint | Source |
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|--------------|---------|---------|-------------------------|----------------------------------------------|
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| `ema_period` | `usize` | `20` | `> 0` | `Keltner::new` (`keltner.rs:33`) |
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| `atr_period` | `usize` | `10` | `> 0` | `Keltner::new` (`keltner.rs:33`) |
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| `multiplier` | `f64` | `2.0` | finite and `> 0.0` | `Keltner::new` (`keltner.rs:34-36`) |
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Python defaults from
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`#[pyo3(signature = (ema_period=20, atr_period=10, multiplier=2.0))]` in
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`bindings/python/src/lib.rs`. `Keltner::classic()` returns the same
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configuration.
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## Inputs / Outputs
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```rust
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impl Indicator for Keltner {
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type Input = Candle;
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type Output = KeltnerOutput;
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fn update(&mut self, candle: Candle) -> Option<KeltnerOutput>;
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}
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pub struct KeltnerOutput { pub upper: f64, pub middle: f64, pub lower: f64 }
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```
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- **Python streaming.** Returns `(upper, middle, lower)` tuple or `None`.
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- **Python batch.** `Keltner.batch(high, low, close)` returns a 2-D
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`np.ndarray` of shape `(n, 3)` with columns `[upper, middle, lower]`;
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warmup rows are `NaN` across all three columns.
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- **Node streaming.** Returns a `{ upper, middle, lower }` object or
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`null`.
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- **Node batch.** `keltner.batch(high, low, close)` returns a flat
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`Array<number>` of length `n * 3` interleaved per row:
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`[u0, m0, l0, u1, m1, l1, …]`.
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## Warmup
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`warmup_period()` reports `max(ema_period, atr_period)` — for the
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default `(20, 10, 2.0)` that is `20` — and that figure is **exact**: the
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first non-`None` output lands on candle `warmup_period()` (index
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`warmup_period() - 1`).
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2026-05-22 16:30:56 +02:00
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`Keltner::update` feeds the EMA and ATR sub-indicators *unconditionally*
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on every candle, then emits once both are ready. The two sub-indicators
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warm up in parallel over the same candle window, so the slower of the
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two (`max(ema_period, atr_period)`) governs the first emission. With the
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classic `(20, 10, 2.0)` configuration the first valid `KeltnerOutput` is
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the 20th candle (index `19`). This is pinned by the
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`first_emission_matches_warmup_period` test in `keltner.rs`.
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## Edge cases
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- **Flat market.** A constant-OHLC series produces `upper == middle == lower`
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because ATR collapses to `0`. The pinned test
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`flat_market_collapses_bands` covers this.
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- **Trending market.** When ATR rises, both bands widen symmetrically
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around the EMA centerline.
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- **Reset.** `reset()` resets both the underlying EMA and ATR; the
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configured periods/multiplier are preserved.
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- **NaN / infinity.** `Candle::new` rejects non-finite OHLC values up
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front; the indicator never receives them.
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- **Invalid params.** `ema_period == 0`, `atr_period == 0`, or non-positive
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`multiplier` returns an error from `Keltner::new`.
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## Examples
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### Rust
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```rust
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use wickra::{BatchExt, Candle, Indicator, Keltner};
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fn main() -> Result<(), Box<dyn std::error::Error>> {
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let candles = vec![
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Candle::new(10.0, 11.0, 9.0, 10.5, 1.0, 0)?,
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Candle::new(10.5, 12.0, 10.0, 11.5, 1.0, 0)?,
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Candle::new(11.5, 13.0, 11.0, 12.5, 1.0, 0)?,
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Candle::new(12.5, 14.0, 12.0, 13.5, 1.0, 0)?,
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Candle::new(13.5, 15.0, 13.0, 14.5, 1.0, 0)?,
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];
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let mut k = Keltner::new(3, 3, 2.0)?;
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for (i, v) in k.batch(&candles).into_iter().enumerate() {
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println!("i={i} -> {:?}", v);
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}
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Ok(())
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}
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```
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Output:
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```
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i=0 -> None
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i=1 -> None
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i=2 -> Some(KeltnerOutput { upper: 15.166666666666666, middle: 11.166666666666666, lower: 7.166666666666666 })
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i=3 -> Some(KeltnerOutput { upper: 16.166666666666664, middle: 12.166666666666666, lower: 8.166666666666666 })
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i=4 -> Some(KeltnerOutput { upper: 17.166666666666664, middle: 13.166666666666666, lower: 9.166666666666666 })
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```
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2026-05-22 16:30:56 +02:00
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The first emission is at `i = 2` (the 3rd candle), exactly
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`max(ema=3, atr=3) = 3` — the value `warmup_period()` reports. The EMA
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and ATR sub-indicators are fed in parallel, so neither delays the
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other.
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### Python
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```python
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import numpy as np
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import wickra as ta
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k = ta.Keltner(3, 3, 2.0)
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h = np.array([11.0, 12.0, 13.0, 14.0, 15.0])
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l = np.array([ 9.0, 10.0, 11.0, 12.0, 13.0])
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c = np.array([10.5, 11.5, 12.5, 13.5, 14.5])
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print(k.batch(h, l, c))
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```
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Output:
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```
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[[ nan nan nan]
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[ nan nan nan]
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[ nan nan nan]
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[ nan nan nan]
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[17.16666667 13.16666667 9.16666667]]
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```
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### Node
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```js
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const w = require('wickra');
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const k = new w.Keltner(3, 3, 2.0);
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const flat = k.batch(
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[11, 12, 13, 14, 15],
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[ 9, 10, 11, 12, 13],
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[10.5, 11.5, 12.5, 13.5, 14.5],
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);
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console.log('length:', flat.length);
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console.log('row 4 [upper, middle, lower]:', flat.slice(12, 15));
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```
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Output:
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```
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length: 15
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row 4 [upper, middle, lower]: [ 17.166666666666664, 13.166666666666666, 9.166666666666666 ]
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```
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## Interpretation
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- **Trend filter.** Persistent closes above the upper band signal
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trend continuation, much like Bollinger's "walking the band" pattern;
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Keltner is generally tighter than Bollinger on noisy series because
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ATR responds more smoothly than a rolling stddev.
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- **Squeeze cross-over.** A common "squeeze" setup compares Bollinger
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bandwidth to Keltner channel width: when Bollinger fits *inside*
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Keltner, a volatility expansion is statistically more likely.
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- **Pullback entries.** In a defined uptrend, pullbacks to the middle
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EMA line are a classic continuation entry; the lower band acts as
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the disaster stop.
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## Common pitfalls
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- **Typical price ≠ close.** The middle EMA runs on
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`(H + L + C) / 3`, not on close. A pre-computed "EMA of close"
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panel will not equal the Keltner middle line and trying to align
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them at floating-point precision will fail.
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## References
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- Chester W. Keltner, *How to Make Money in Commodities*, 1960. The
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original construction used a 10-day SMA of typical price with an
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envelope sized by the 10-day average range. The modern variant
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(EMA centerline + ATR envelope) is the form Wickra implements.
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- Linda Bradford Raschke popularised the EMA + ATR rephrasing in the
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1990s; this is the version most TA libraries ship today.
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## See also
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- [EMA](../trend/Indicator-Ema.md) — the centerline component.
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- [ATR](Indicator-Atr.md) — the envelope width component.
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- [Bollinger Bands](Indicator-BollingerBands.md) — envelope using stddev
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rather than ATR; useful side-by-side comparison.
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- [Donchian Channels](Indicator-Donchian.md) — envelope using rolling
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extrema with no smoothing.
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