20c5a17a61
Upgrades the brickwall limiter from sample-peak to true-peak (inter-sample). - src/dsp/oversampler.rs: 4x polyphase windowed-sinc (4 phases x 12 taps, Blackman, each phase normalized to unity DC). Detection-only: max_true_peak() returns the inter-sample max magnitude and discards the upsampled samples; the audio path is untouched. Built in prepare(), no realtime allocation. Cost ~ one base-rate FIR per channel; its small group delay is absorbed by the limiter look-ahead, so no added reported latency. - src/dsp/limiter.rs: detector peak = max(sample_peak, oversampler.max_true_peak()); targets a 0.3 dB margin under the ceiling to cover the 4x detection residual. - 16 unit tests (2 new: detects ~3 dB fs/4 inter-sample overshoot; preserves DC amplitude). README/docs updated: Stage 4 complete. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
261 lines
14 KiB
Markdown
261 lines
14 KiB
Markdown
# Codename 206
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*Called 206 because the Peugeot 206 has a 'maxi' variant. You'll know this is a Maximizer knockoff if you can follow that trail of thoughts.*
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Multiband Compressor / Limiter VST3 — Project Plan
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## Overview
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A VST3 multiband compressor/limiter with a custom gain curve display, inspired by FL Studio's Maximizer.
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Built with **Rust** + **NIH-plug** (VST3 + CLAP output) + **egui** for the UI.
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**Goals:**
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- 3-band (configurable crossover points) compressor/limiter
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- An 'All' aggregate channel: a 4th comp/lim stack on the summed bands, so bypassing all bands turns the plugin into a simple full-band compressor (mirrors FL's Maximizer)
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- Look-ahead brickwall output limiter with true-peak detection
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- Real-time gain reduction metering per band
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- Custom gain curve visualiser
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- Fully resizable vector UI
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---
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## Tech Stack
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| Layer | Choice |
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|---|---|
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| Language | Rust (stable) |
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| Plugin framework | [NIH-plug](https://github.com/robbert-vdh/nih-plug) |
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| Plugin formats | VST3, CLAP |
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| UI framework | egui (via `nih_plug_egui`) |
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| Build tooling | `cargo xtask bundle` |
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---
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## Signal Flow
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```
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Input
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└─ Crossover filterbank (Linkwitz-Riley LR4 @ each crossover freq)
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├─ Band 1 (low) → look-ahead delay → compressor VCA → gain stage ─┐ (bypassable)
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├─ Band 2 (mid) → look-ahead delay → compressor VCA → gain stage ─┤ (bypassable)
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└─ Band 3 (high) → look-ahead delay → compressor VCA → gain stage ─┤ (bypassable)
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│
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Sum of bands ◄──────────────────────────────────────────────------┘
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└─ 'All' channel → look-ahead delay → compressor VCA → gain stage
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└─ output brickwall limiter (true-peak, 4x oversampled) → output
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```
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The detector for each band reads `look_ahead_ms` ahead of the VCA, so gain reduction is already ramping when the transient arrives.
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**The 'All' aggregate channel** (mirrors FL's Maximizer): the three bands are summed and the
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result passes through a *fourth*, full-band compressor/limiter stack before the output limiter.
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Because the LR4 filterbank sums phase-coherently flat, **bypassing all three bands leaves the
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summed signal identical to the input** — so the plugin collapses into a plain single-band
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compressor/limiter driven entirely by the 'All' channel. That makes "multiband off = simple comp"
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a first-class mode, not an afterthought.
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---
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## DSP Architecture
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### Crossover Filterbank
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- Linkwitz-Riley 4th-order (LR4) filters at each crossover frequency
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- LR4 = two cascaded biquads (Butterworth LP or HP)
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- Bands sum phase-coherently to flat **magnitude** (the sum is an all-pass; lower bands get an all-pass at each later crossover to match phase — not a bit-exact time-domain null)
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- Crossover frequencies are user-adjustable parameters
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### Per-Band Compressor
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- Level detection: switchable peak / RMS (RMS window currently hardcoded small; can be exposed later)
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- Gain computer: threshold, ratio, soft knee
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- Attack / release envelopes (logarithmic ballistics)
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- Makeup gain per band
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- Look-ahead: circular delay buffer on the audio path; detector reads ahead
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### 'All' Aggregate Channel
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- Structurally **identical to a per-band compressor** — reuse the same comp/lim code/params, just fed the summed signal instead of a filtered band
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- Runs after the three bands are summed, before the output brickwall limiter
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- Bands are individually bypassable; with all three bypassed the (phase-coherent) crossover sum equals the dry input, so the 'All' channel alone acts as a full-band comp/lim
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- Has its own look-ahead; the plugin reports a single **constant** total latency (the fixed band + 'All' look-ahead), set once — see Latency below
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### Output Limiter
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- Brickwall, ceiling = 0 dBFS or user-defined (`output_ceiling`). Look-ahead + sliding-max peak detection + a ceiling clamp guarantee the output never exceeds the ceiling
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- Short attack (≤ 0.1 ms), auto-release (release time user-set)
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- **True-peak**: 4× polyphase oversampling estimates the inter-sample peak (detection only — the upsampled signal is discarded); the limiter targets a 0.3 dB margin under the ceiling to cover the 4× residual
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### Latency
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- Reported via `context.set_latency_samples()` in `initialize()` — **never** from `process()`; renegotiating latency mid-stream crashes some hosts (FL included)
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- Reported latency is a **constant** (the max look-ahead); the look-ahead control only moves the detector tap within that fixed delay
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- All bands use equal delay to preserve phase alignment
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---
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## Parameters
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### Global
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- `input_gain` — pre-gain before filterbank (dB)
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- `output_ceiling` — brickwall ceiling (dBFS, default 0.0)
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- `limiter_release_ms` — output limiter release time
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- `look_ahead_ms` — look-ahead time (0–5 ms). Reported latency is **constant** (the max look-ahead); the knob only moves the detector tap within that fixed delay, so it is safe to adjust during playback (changing reported latency mid-stream crashes some hosts, FL included)
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- `crossover_low_hz` — low/mid crossover frequency
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- `crossover_high_hz` — mid/high crossover frequency
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### Per-Channel Compressor (× 4: low, mid, high, **all** — one `#[nested]` params struct reused)
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- `detection` — peak / RMS level detection
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- `threshold_db`
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- `ratio` — 1.0 (off) to ∞ (limiting)
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- `attack_ms`
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- `release_ms`
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- `knee_db` — soft knee width
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- `makeup_gain_db`
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- `bypass` — per-channel bypass (bypassing low+mid+high = simple full-band comp via the 'all' channel)
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The 'all' channel uses the same struct so its UI and DSP are identical to a band; it just sits after the band sum.
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---
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## Project Structure
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Target layout (✅ = exists today; the rest is planned):
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```
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src/
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lib.rs # ✅ Plugin trait + Params + egui editor (all inline for now)
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params.rs # (planned) split Params out of lib.rs
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dsp/
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mod.rs # ✅ module declarations
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compressor.rs # ✅ full-band comp: peak/RMS detector, gain computer, ballistics, look-ahead delay
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crossover.rs # ✅ LR4 3-band filterbank with all-pass phase compensation
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biquad.rs # ✅ generic biquad (Transposed Direct Form II)
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limiter.rs # ✅ look-ahead brickwall limiter (sample-peak; true-peak pending)
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delay.rs # (planned) look-ahead delay (currently inside compressor.rs / limiter.rs)
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oversampler.rs # ✅ 4x polyphase oversampler for true-peak detection (detection-only)
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editor/
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mod.rs # (planned) egui editor split out of lib.rs
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widgets/
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gain_curve.rs # (planned) custom egui Widget: gain curve display
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band_meter.rs # (planned) per-band gain reduction meter
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level_meter.rs# (planned) input/output level meter
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```
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---
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## Build Steps
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The project is already scaffolded (NIH-plug + nih_plug_egui, pinned to a fixed git rev in
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`Cargo.toml`). You do **not** need the Steinberg VST3 SDK — NIH-plug bundles its own bindings.
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**Prerequisites (Windows):**
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- Rust stable (`rustup` — `winget install Rustlang.Rustup`)
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- Visual Studio 2022 with the "Desktop development with C++" workload (provides the MSVC linker)
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```powershell
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# Build + bundle the VST3 and CLAP
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cargo xtask bundle codename_206 --release
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# Output: target\bundled\Codename 206.vst3 and Codename 206.clap
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```
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### Deployment
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FL Studio scans `C:\Program Files\Common Files\VST3` by default, **ignores directory junctions**
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(so a symlinked bundle is invisible to its scanner), and caches failed scans. So deployment must
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copy a *real* bundle into a folder FL scans, then FL must be told to rescan failed plugins.
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Use the provided script (no need to remember the details):
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```powershell
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.\deploy.ps1 # build, then copy to the global VST3/CLAP folders (one UAC prompt)
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.\deploy.ps1 -SkipBuild # reinstall the last build without rebuilding
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.\deploy.ps1 -User # copy to %LOCALAPPDATA%\Programs\Common\VST3 instead (no admin) — best for a dev loop
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```
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`deploy.bat` is a double-click wrapper around the same script.
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After deploying, in FL Studio: **Options → Manage plugins → tick "Rescan previously failed
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plugins" → Find installed plugins**, then search for **Codename 206**. (The rescan-failed step
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is essential — without it FL silently skips a plugin it has seen before.)
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> **Known issue (deferred):** the **CLAP** build shows its name/vendor/type correctly in FL, but
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> the **VST3** still displays stale/missing metadata there. Suspected cause is FL caching the VST3
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> by its unchanged `VST3_CLASS_ID`. Likely fix is to regenerate that class ID (and/or clear FL's
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> plugin DB); low priority for now — use the CLAP build meanwhile.
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---
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## Implementation Order
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Work through these stages in order — each stage produces a loadable, audible plugin.
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**Status (2026-06-19):** Stages 1–4 done — the full signal chain works: 3-band LR4 crossover →
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per-band compressors (peak/RMS) → 'All' channel → **true-peak brickwall limiter** (4× oversampled
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detection), with a basic 4-column UI. **Next: split `params.rs`/`editor/` out of `lib.rs`, then
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Stage 6 visualisers (meters, gain curve).** DSP is in `src/dsp/` (`biquad.rs`, `crossover.rs`,
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`compressor.rs`, `limiter.rs`, `oversampler.rs`); params and the egui editor are still inline in
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`src/lib.rs`.
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### Stage 1 — Skeleton plugin ✅
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- [x] NIH-plug "passthrough" compiling and loading in DAW
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- [ ] `Params` struct with all parameters declared *(partial — compressor + look-ahead params done; global `input_gain`/`output_ceiling` and crossover params pending)*
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- [x] `process()` passes audio through untouched *(since superseded by the compressor)*
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- [x] Verify plugin loads and parameters appear in DAW *(verified in FL Studio)*
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### Stage 2 — Single-band (full-band) compressor ✅
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- [ ] Implement `biquad.rs` — generic biquad, Direct Form II transposed *(deferred to Stage 3 — not needed for the full-band comp)*
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- [x] Level detector — switchable **peak / RMS** (RMS window hardcoded for now)
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- [x] Implement gain computer (threshold, ratio, soft knee)
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- [x] Implement attack/release envelope (smooth decoupled peak detector)
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- [x] Wire into `process()`; covered by unit tests (static curve, knee continuity, steady state, RMS, constant latency)
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### Stage 3 — Crossover filterbank ✅
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- [x] Implement LR4 LP/HP biquad chains in `crossover.rs` (+ generic `biquad.rs`, Transposed Direct Form II)
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- [x] Verify bands sum flat — for IIR LR4 the sum is an **all-pass** (flat *magnitude*, phase-shifted), not a bit-exact null; lower bands get an all-pass at each later crossover to phase-match. Tested via `bands_sum_to_flat_magnitude`
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- [x] Per-band bypass — a bypassed band passes its delayed dry band; with all three bypassed the 'All' channel sees the flat-magnitude reconstruction = the simple-comp mode
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- [x] Apply per-band compressor to each band
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- [x] Sum bands back together
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- [x] Run the summed signal through the 'All' channel compressor before output
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### Stage 4 — Output brickwall limiter + oversampler ✅
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- [x] Look-ahead delay (circular buffer) — inside `compressor.rs` and `limiter.rs`, no separate `delay.rs`
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- [x] Wire look-ahead: detector reads N samples ahead of the VCA
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- [x] Report latency — `context.set_latency_samples()` once; constant three-stage total (bands + 'All' + limiter)
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- [x] Brickwall output limiter (`limiter.rs`): look-ahead + sliding-max + ceiling clamp guarantee
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- [x] `oversampler.rs` — 4× polyphase windowed-sinc, detection-only (returns the inter-sample max)
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- [x] True-peak limiting: limiter peak = max(sample, inter-sample); targets a 0.3 dB margin under the ceiling for the 4× residual
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### Stage 5 — Basic egui UI *(basic version done early)*
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- [x] Add `nih_plug_egui` editor
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- [x] Sliders for all current parameters (`ParamSlider` grid)
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- [ ] Per-band bypass toggles *(partial — single-band bypass present; per-band arrives with Stage 3)*
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- [x] Confirm UI controls update DSP in real time
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### Stage 6 — Custom visualisations
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- [ ] `level_meter.rs` — input/output RMS + peak meters
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- [ ] `band_meter.rs` — per-band gain reduction meters (vertical bars)
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- [ ] `gain_curve.rs` — static gain curve display per band (threshold/ratio/knee)
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- [ ] Draggable crossover handles on a frequency display
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---
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## Key Implementation Notes
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### No allocations in `process()`
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Rust's borrow checker will help, but be explicit. All buffers (delay lines, filter states)
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must be pre-allocated in `initialize()`. Use `assert_process_allocs` feature flag during
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development to catch violations.
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### Denormal flushing
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Handled by the framework — no plugin code needed. NIH-plug wraps `process()` and `reset()` in
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`process_wrapper`, which enables the CPU's **Flush-To-Zero** mode for the duration via its
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`ScopedFtz` guard (x86 `MXCSR` bit 15 / AArch64 `FPCR` bit 24, set with inline asm and restored
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on drop). FTZ has a fixed threshold at the normal/subnormal boundary (~−759 dB for f32), so the
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decaying envelope/RMS tails and all the IIR filter state are flushed to zero automatically,
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far below audibility. We therefore do **not** set the register ourselves or flush values in code.
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(Note: NIH-plug sets FTZ but not DAZ; for our feed-forward IIR work FTZ on results is sufficient.)
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### Parameter smoothing
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NIH-plug provides `Smoother` — use it for all gain/threshold params to avoid zipper noise.
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### Thread safety
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Params are atomics. The editor and audio thread communicate only through params and
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`Arc<Mutex<...>>` meter data. Never pass DSP state to the UI directly.
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### VST3 licensing
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You must accept Steinberg's VST3 SDK licence before distributing VST3 binaries.
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NIH-plug's VST3 bindings are GPLv3; if you distribute, the plugin must also be GPLv3
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(or you need a commercial Steinberg licence). CLAP has no such restriction.
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---
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## Reference Material
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- [NIH-plug repo](https://github.com/robbert-vdh/nih-plug) — read the `plugins/` examples first
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- [NIH-plug docs](https://nih-plug.robbertvanderhelm.nl/)
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- [Cookiecutter template](https://github.com/robbert-vdh/nih-plug-template)
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- [egui docs](https://docs.rs/egui)
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- Zölzer, *DAFX: Digital Audio Effects* — biquad filter cookbook
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- Giannoulis et al., "Digital Dynamic Range Compressor Design" (JAES 2012) — compressor ballistics reference
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- AES paper on true-peak limiting / inter-sample peaks (ITU-R BS.1770) |