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//! Copy a output buffer to the cpu and return.
use crate::{
OUTPUT_BUFFER,
pipeline::constants::{OUTPUT_BUFFER_SIZE, UNIVERSE_BUFFER_SIZE, UNIVERSES},
storage::asset::output_device::routing::OutputRoutings,
svg::measurement_point::Universes,
wgpu_render_state,
};
use kanal::{Receiver, Sender, bounded};
use std::sync::Arc;
use wgpu::{
Buffer, BufferDescriptor, BufferUsages, CommandEncoder, MapMode, PollType, SubmissionIndex,
};
/// Number of reusable CPU-readback staging buffers kept around. Two to three
/// is enough to keep one buffer being filled on the GPU while another is mapped
/// and read on the CPU without ever allocating per frame.
const STAGING_POOL_SIZE: usize = 3;
pub struct ExtractOutput {
output_sender: Sender<(Vec<u8>, Arc<Universes>, Arc<OutputRoutings>)>,
/// Free-list of reusable map-read staging buffers. Buffers are lazily
/// created on the first `run` (the wgpu device does not exist yet when
/// `ExtractOutput::new` is called in `main`) and recycled afterwards.
free_buffers_sender: Sender<Buffer>,
free_buffers_receiver: Receiver<Buffer>,
/// Submission indices of frames whose readback should be polled. The
/// dedicated poll thread waits for each one individually so every frame's
/// `map_buffer_on_submit` callback (the readback + network send) fires as
/// soon as *that* frame's GPU work finishes, independently of any later
/// frame submitted in the same displayed frame (e.g. with `double_render`).
submit_sender: Sender<SubmissionIndex>,
/// Held until the poll thread is started on the first `run`, then taken.
submit_receiver: Option<Receiver<SubmissionIndex>>,
initialized: bool,
pub universes: Arc<Universes>,
pub routings: Arc<OutputRoutings>,
}
impl std::fmt::Debug for ExtractOutput {
fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
f.debug_struct("ExtractOutput").finish_non_exhaustive()
}
}
impl ExtractOutput {
pub fn new() -> (
Self,
Receiver<(Vec<u8>, Arc<Universes>, Arc<OutputRoutings>)>,
) {
// The output channel is sized to the staging pool: at most
// `STAGING_POOL_SIZE` readbacks can be in flight at once (each holds a
// staging buffer until its map callback returns it), and when several
// complete in the same device poll – e.g. when `double_render` submits
// twice per displayed frame – every one of them must be delivered
// instead of being collapsed into a single frame. The render thread
// still never blocks: it `try_send`s and drops on backpressure, so a
// genuinely overloaded output consumer simply loses the oldest surplus.
let (output_sender, output_receiver) = bounded(STAGING_POOL_SIZE);
let (free_buffers_sender, free_buffers_receiver) = bounded(STAGING_POOL_SIZE);
// One slot per in-flight readback is enough: a submission is only worth
// polling while its staging buffer is still mapped, and there are at
// most `STAGING_POOL_SIZE` of those. Sized a little larger so that bursts
// (double_render submitting twice per frame) are never dropped here.
let (submit_sender, submit_receiver) = bounded(STAGING_POOL_SIZE * 2);
(
Self {
output_sender,
free_buffers_sender,
free_buffers_receiver,
submit_sender,
submit_receiver: Some(submit_receiver),
initialized: false,
universes: Default::default(),
routings: Default::default(),
},
output_receiver,
)
}
/// Lazily initialise GPU-side resources once the wgpu device exists: the
/// reusable staging buffers and the dedicated poll thread that delivers each
/// finished frame's readback independently.
fn ensure_initialized(&mut self) {
if self.initialized {
return;
}
let device = wgpu_render_state().device;
for index in 0..STAGING_POOL_SIZE {
let buffer = device.create_buffer(&BufferDescriptor {
size: OUTPUT_BUFFER_SIZE,
usage: BufferUsages::MAP_READ | BufferUsages::COPY_DST,
label: Some(&format!("ExtractOutput staging buffer {index}")),
mapped_at_creation: false,
});
self.free_buffers_sender
.try_send(buffer)
.expect("staging pool channel has capacity for the pool");
}
// Spawn a thread that polls the device once per submitted frame. By
// waiting for each submission *index* in turn it lets every frame's
// `map_buffer_on_submit` callback run the instant that frame is done on
// the GPU – so frame A is read back and sent before frame B finishes,
// instead of both being delivered together at the next present poll.
if let Some(submit_receiver) = self.submit_receiver.take() {
let poll_device = device.clone();
std::thread::Builder::new()
.name("gled:output:poll".to_owned())
.spawn(move || {
#[cfg(feature = "profiling")]
profiling::register_thread!("output:poll");
while let Ok(index) = submit_receiver.recv() {
// Blocks only until this specific submission completes;
// the readback callback (and network send) runs here.
let _ = poll_device.poll(PollType::Wait {
submission_index: Some(index),
timeout: None,
});
}
})
.expect("Could not spawn output poll thread");
}
self.initialized = true;
}
/// Notify the poll thread that a frame has been submitted so its readback is
/// delivered as soon as the GPU finishes it. Called by `Project::render`
/// right after `queue.submit`. Non-blocking: if the poll thread is briefly
/// behind, the frame still gets delivered at the next present poll.
pub fn notify_submitted(&self, index: SubmissionIndex) {
let _ = self.submit_sender.try_send(index);
}
#[cfg_attr(feature = "profiling", profiling::function)]
pub fn run(&mut self, encoder: &mut CommandEncoder) {
let active_len = (self.universes.len() as u64).min(UNIVERSES) * UNIVERSE_BUFFER_SIZE;
if active_len == 0 {
return;
}
self.ensure_initialized();
// Grab a free staging buffer. If every buffer is still in flight the
// CPU side has not kept up, so we simply skip this frame's readback –
// the next rendered frame carries fresher data anyway.
let Ok(Some(output_cpu)) = self.free_buffers_receiver.try_recv() else {
return;
};
encoder.copy_buffer_to_buffer(&OUTPUT_BUFFER, 0, &output_cpu, 0, active_len);
let output_sender = self.output_sender.clone();
let free_buffers_sender = self.free_buffers_sender.clone();
let universes = self.universes.clone();
let routings = self.routings.clone();
let capturable = output_cpu.clone();
encoder.map_buffer_on_submit(&output_cpu, MapMode::Read, ..active_len, move |_v| {
let output_data = capturable
.get_mapped_range(..active_len)
.expect("Could not get mapped range of output buffer")
.to_vec();
capturable.unmap();
// Non-blocking: keep only the latest frame, never stall the render
// thread on a slow output consumer.
let _ = output_sender.try_send((output_data, universes, routings));
// Return the buffer to the pool for reuse.
let _ = free_buffers_sender.try_send(capturable);
});
}
}