nextpnr/common/route/awooter/rust/src/lib.rs

807 lines
30 KiB
Rust
Raw Normal View History

2022-11-27 01:11:18 +08:00
use std::{
collections::HashMap,
ptr::NonNull,
2022-11-27 03:38:36 +08:00
sync::{atomic::AtomicUsize, Mutex, RwLock},
2022-11-27 01:11:18 +08:00
};
2022-11-25 13:34:46 +08:00
use colored::Colorize;
use indicatif::{ProgressBar, ProgressStyle};
use rayon::prelude::*;
2022-11-20 11:20:09 +08:00
2022-11-27 03:17:43 +08:00
use crate::npnr::PortRef;
2022-11-20 11:20:09 +08:00
#[macro_use]
mod npnr;
2022-11-21 10:48:00 +08:00
enum Subpartition {
Part(Box<Partition>),
Nets(Vec<Net>),
}
struct Partition {
parts: [Option<Subpartition>; 4],
2022-11-23 11:31:50 +08:00
borders: [[Vec<npnr::WireId>; 4]; 4],
2022-11-21 10:48:00 +08:00
}
struct Net {
source: npnr::WireId,
2022-11-23 11:31:50 +08:00
sinks: Vec<npnr::WireId>,
2022-11-21 10:48:00 +08:00
}
2022-11-20 11:20:09 +08:00
#[no_mangle]
pub extern "C" fn npnr_router_awooter(ctx: Option<NonNull<npnr::Context>>) -> bool {
std::panic::catch_unwind(move || {
let ctx: &mut npnr::Context = unsafe { ctx.expect("non-null context").as_mut() };
route(ctx)
})
.unwrap_or_else(|x| {
if let Ok(x) = x.downcast::<String>() {
log_error!("caught panic: {}", x);
}
false
})
}
2022-11-23 11:31:50 +08:00
type ArcVec = Vec<((i32, i32), (i32, i32))>;
fn find_partition_point(
2022-11-25 13:34:46 +08:00
ctx: &npnr::Context,
nets: &npnr::Nets,
pips: &[npnr::PipId],
2022-11-23 11:31:50 +08:00
x_start: i32,
x_finish: i32,
y_start: i32,
y_finish: i32,
) -> (i32, i32, ArcVec, ArcVec, ArcVec, ArcVec) {
let mut x = ((x_finish - x_start) / 2) + x_start;
let mut y = ((y_finish - y_start) / 2) + y_start;
let mut x_diff = (x_finish - x_start) / 4;
let mut y_diff = (y_finish - y_start) / 4;
let mut ne;
let mut se;
let mut sw;
let mut nw;
2022-11-23 11:31:50 +08:00
while x_diff != 0 {
2022-11-25 13:34:46 +08:00
(ne, se, sw, nw) = partition_nets(ctx, nets, pips, x, y);
2022-11-23 11:31:50 +08:00
let north = ne.len() + nw.len();
let south = se.len() + sw.len();
2022-11-25 13:34:46 +08:00
let nets = (north + south) as f64;
let ne_dist = f64::abs(((ne.len() as f64) / nets) - 0.25);
let se_dist = f64::abs(((se.len() as f64) / nets) - 0.25);
let sw_dist = f64::abs(((sw.len() as f64) / nets) - 0.25);
let nw_dist = f64::abs(((nw.len() as f64) / nets) - 0.25);
let distortion = 100.0 * (ne_dist + se_dist + sw_dist + nw_dist);
// Stop early if Good Enough.
if distortion <= 5.0 {
return (x, y, ne, se, sw, nw);
}
2022-11-26 20:44:17 +08:00
x += match north.cmp(&south) {
std::cmp::Ordering::Less => x_diff,
std::cmp::Ordering::Equal => 0,
std::cmp::Ordering::Greater => -x_diff,
};
2022-11-23 11:31:50 +08:00
let east = ne.len() + se.len();
let west = nw.len() + sw.len();
2022-11-26 20:44:17 +08:00
y += match east.cmp(&west) {
std::cmp::Ordering::Less => y_diff,
std::cmp::Ordering::Equal => 0,
std::cmp::Ordering::Greater => -y_diff,
};
2022-11-23 11:31:50 +08:00
x_diff >>= 1;
y_diff >>= 1;
}
2022-11-25 13:34:46 +08:00
(ne, se, sw, nw) = partition_nets(ctx, nets, pips, x, y);
2022-11-23 11:31:50 +08:00
let north = ne.len() + nw.len();
let south = se.len() + sw.len();
let nets = (north + south) as f64;
let ne_dist = f64::abs(((ne.len() as f64) / nets) - 0.25);
let se_dist = f64::abs(((se.len() as f64) / nets) - 0.25);
let sw_dist = f64::abs(((sw.len() as f64) / nets) - 0.25);
let nw_dist = f64::abs(((nw.len() as f64) / nets) - 0.25);
log_info!(
"Distortion: {:.02}%\n",
100.0 * (ne_dist + se_dist + sw_dist + nw_dist)
);
(x, y, ne, se, sw, nw)
}
/// finds the y location a line would be split at if you split it at a certain x location
///
/// the function assumes the line goes on forever in both directions, and it truncates the actual coordinate
2022-11-27 01:09:20 +08:00
fn split_line_over_x(line: (npnr::Loc, npnr::Loc), x_location: i32) -> i32 {
if line.0.x == line.0.y {
// the line is a straight line in the direction, there is either infinite solutions, or none
// we simply average the y coordinate to give a "best effort" guess
return (line.0.y + line.1.y) / 2;
}
let x_diff = line.0.x - line.1.x;
let y_diff = line.0.y - line.1.y;
// i hope for no overflows, maybe promote to i64 to be sure?
(y_diff * x_location + line.0.y * x_diff - line.0.x * y_diff) / x_diff
}
/// finds the x location a line would be split at if you split it at a certain y location, assuming the line goes on forever in both directions
fn split_line_over_y(line: (npnr::Loc, npnr::Loc), y_location: i32) -> i32 {
// laziness supreme!
split_line_over_x(
(
npnr::Loc {
x: line.0.y,
y: line.0.x,
z: 0,
},
npnr::Loc {
x: line.1.y,
y: line.1.x,
z: 0,
},
),
y_location,
)
}
enum Segment {
Northeast,
Southeast,
Southwest,
Northwest,
}
// A big thank you to @Spacecat-chan for fixing my broken and buggy partition code.
2022-11-25 13:34:46 +08:00
fn partition_nets(
ctx: &npnr::Context,
nets: &npnr::Nets,
pips: &[npnr::PipId],
x: i32,
y: i32,
) -> (ArcVec, ArcVec, ArcVec, ArcVec) {
let mut pips_n = HashMap::new();
let mut pips_e = HashMap::new();
let mut pips_s = HashMap::new();
let mut pips_w = HashMap::new();
2022-11-25 13:34:46 +08:00
let mut ne = Vec::new();
let mut se = Vec::new();
let mut sw = Vec::new();
let mut nw = Vec::new();
2022-11-27 01:09:20 +08:00
let mut part_horiz = AtomicUsize::new(0);
let mut part_vert = AtomicUsize::new(0);
let mut part_diag = AtomicUsize::new(0);
2022-11-25 13:34:46 +08:00
let x_str = format!("X = {}", x);
let y_str = format!("Y = {}", y);
log_info!(
"Partitioning arcs along {}, {}\n",
2022-11-26 20:44:17 +08:00
x_str.bold(),
y_str.bold()
2022-11-25 13:34:46 +08:00
);
2022-11-26 20:44:17 +08:00
// BUG: because pips don't specify direction, this puts pips of opposite directions
// in the same entry. This is bad, since it could lead to selecting a pip of the
// wrong direction.
//
// Possibly fixed? I need to double-check.
2022-11-27 01:11:18 +08:00
let mut candidates = 0;
let mut north = 0;
let mut east = 0;
let mut south = 0;
let mut west = 0;
2022-11-25 13:34:46 +08:00
for &pip in pips {
let loc = ctx.pip_location(pip);
if loc.x == x || loc.y == y {
let dir = ctx.pip_direction(pip);
// This pip seems internal; skip it.
if dir.x == 0 && dir.y == 0 {
continue;
}
2022-11-27 01:09:20 +08:00
candidates += 1;
if dir.x < 0 {
north += 1;
pips_n
2022-11-27 01:11:18 +08:00
.entry((loc.x, loc.y))
2022-11-27 04:01:50 +08:00
.and_modify(|pip_list: &mut Vec<(npnr::PipId, AtomicUsize)>| {
pip_list.push((pip, AtomicUsize::new(0)))
2022-11-27 01:11:18 +08:00
})
2022-11-27 04:01:50 +08:00
.or_insert_with(|| vec![(pip, AtomicUsize::new(0))]);
}
2022-11-27 01:09:20 +08:00
if dir.x > 0 {
south += 1;
pips_s
2022-11-27 01:11:18 +08:00
.entry((loc.x, loc.y))
2022-11-27 04:01:50 +08:00
.and_modify(|pip_list: &mut Vec<(npnr::PipId, AtomicUsize)>| {
pip_list.push((pip, AtomicUsize::new(0)))
2022-11-27 01:11:18 +08:00
})
2022-11-27 04:01:50 +08:00
.or_insert_with(|| vec![(pip, AtomicUsize::new(0))]);
}
2022-11-27 01:09:20 +08:00
if dir.y < 0 {
east += 1;
pips_e
2022-11-27 01:11:18 +08:00
.entry((loc.x, loc.y))
2022-11-27 04:01:50 +08:00
.and_modify(|pip_list: &mut Vec<(npnr::PipId, AtomicUsize)>| {
pip_list.push((pip, AtomicUsize::new(0)))
2022-11-27 01:11:18 +08:00
})
2022-11-27 04:01:50 +08:00
.or_insert_with(|| vec![(pip, AtomicUsize::new(0))]);
}
2022-11-26 20:44:17 +08:00
2022-11-27 01:09:20 +08:00
if dir.y > 0 {
west += 1;
pips_w
2022-11-27 01:11:18 +08:00
.entry((loc.x, loc.y))
2022-11-27 04:01:50 +08:00
.and_modify(|pip_list: &mut Vec<(npnr::PipId, AtomicUsize)>| {
pip_list.push((pip, AtomicUsize::new(0)))
2022-11-27 01:11:18 +08:00
})
2022-11-27 04:01:50 +08:00
.or_insert_with(|| vec![(pip, AtomicUsize::new(0))]);
}
2022-11-25 13:34:46 +08:00
}
}
2022-11-27 01:11:18 +08:00
log_info!(
" Out of {} candidate pips:\n",
candidates.to_string().bold()
);
log_info!(" {} are north-bound\n", north.to_string().bold());
log_info!(" {} are east-bound\n", east.to_string().bold());
log_info!(" {} are south-bound\n", south.to_string().bold());
log_info!(" {} are west-bound\n", west.to_string().bold());
2022-11-25 13:34:46 +08:00
let progress = ProgressBar::new(nets.len() as u64);
progress.set_style(
2022-11-26 20:44:17 +08:00
ProgressStyle::with_template("[{elapsed}] [{bar:40.cyan/blue}] {msg}")
.unwrap()
.progress_chars("━╸ "),
2022-11-25 13:34:46 +08:00
);
2022-11-27 01:09:20 +08:00
let mut explored_pips = AtomicUsize::new(0);
let dereffed_nets: Vec<_> = nets
.iter()
.map(|(name, net)| (name, unsafe { net.as_mut().unwrap() }))
.collect();
2022-11-25 13:34:46 +08:00
let dereffed_port_refs: HashMap<_, _> = dereffed_nets
.iter()
.filter_map(|(name, _)| nets.users_by_name(**name).map(|a| (*name, a)))
.collect();
let arcs = dereffed_nets
.into_par_iter()
.filter(|(_, net)| !net.is_global())
.filter_map(|(name, net)| {
let source = unsafe { net.driver().as_ref().unwrap() };
source.cell().map(|cell| (name, net, cell))
})
.flat_map(|(name, net, source)| {
let source = source.location();
let source_is_north = source.x < x;
let source_is_east = source.y < y;
let source_wire = ctx.source_wire(net);
let port_ref = dereffed_port_refs.get(name);
if port_ref.is_none() {
println!(
"{} suddenly become none",
ctx.name_of(*name).to_str().unwrap()
);
}
port_ref
.expect("it's this one!")
.into_par_iter()
.flat_map(|sink| {
ctx.sink_wires(net, *sink)
.into_par_iter()
.map(move |sink_wire| (sink, sink_wire))
})
.map(|(sink, sink_wire)| {
(
sink,
sink_wire,
&pips_n,
&pips_s,
&pips_e,
&pips_w,
&explored_pips,
&part_horiz,
&part_vert,
&part_diag,
)
})
.flat_map(
move |(
sink,
sink_wire,
pips_n,
pips_s,
pips_e,
pips_w,
explored_pips,
part_horiz,
part_vert,
part_diag,
)| {
let sink_loc = sink.cell().unwrap().location();
let sink_is_north = sink_loc.x < x;
let sink_is_east = sink_loc.y < y;
if source_is_north == sink_is_north && source_is_east == sink_is_east {
let arc = ((source.x, source.y), (sink_loc.x, sink_loc.y));
let seg = match (source_is_north, source_is_east) {
(true, true) => Segment::Northeast,
(true, false) => Segment::Northwest,
(false, true) => Segment::Southeast,
(false, false) => Segment::Southwest,
};
vec![(seg, arc)]
} else if source_is_north != sink_is_north && source_is_east == sink_is_east
{
let middle = (x, (source.y + sink_loc.y) / 2);
let middle = (
middle.0.clamp(1, ctx.grid_dim_x() - 1),
middle.1.clamp(1, ctx.grid_dim_y() - 1),
);
let pips = match source_is_north {
true => pips_s.get(&middle).unwrap(),
false => pips_n.get(&middle).unwrap(),
};
let (selected_pip, pip_uses) = pips
.iter()
.min_by_key(|(pip, uses)| {
let src_to_pip =
ctx.estimate_delay(source_wire, ctx.pip_src_wire(*pip));
let pip_to_snk =
ctx.estimate_delay(ctx.pip_dst_wire(*pip), sink_wire);
let uses = uses.load(std::sync::atomic::Ordering::Acquire);
(1000.0 * (src_to_pip + ((uses + 1) as f32) * pip_to_snk))
as u64
})
.unwrap();
pip_uses.fetch_add(1, std::sync::atomic::Ordering::Release);
let selected_pip = *selected_pip;
explored_pips
.fetch_add(pips.len(), std::sync::atomic::Ordering::Relaxed);
let pip_loc = ctx.pip_location(selected_pip);
let src_to_pip = ((source.x, source.y), (pip_loc.x, pip_loc.y));
let pip_to_dst = ((pip_loc.x, pip_loc.y), (sink_loc.x, sink_loc.y));
let (seg1, seg2) = match (source_is_north, source_is_east) {
(true, true) => (Segment::Northeast, Segment::Southeast),
(true, false) => (Segment::Northwest, Segment::Southwest),
(false, true) => (Segment::Southeast, Segment::Northeast),
(false, false) => (Segment::Southwest, Segment::Northwest),
};
part_horiz.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
vec![(seg1, src_to_pip), (seg2, pip_to_dst)]
} else if source_is_north == sink_is_north && source_is_east != sink_is_east
{
let middle = ((source.x + sink_loc.x) / 2, y);
let middle = (
middle.0.clamp(1, ctx.grid_dim_x() - 1),
middle.1.clamp(1, ctx.grid_dim_y() - 1),
);
let pips = match source_is_east {
true => pips_w.get(&middle).unwrap(),
false => pips_e.get(&middle).unwrap(),
};
let (selected_pip, pip_uses) = pips
.iter()
.min_by_key(|(pip, uses)| {
let src_to_pip =
ctx.estimate_delay(source_wire, ctx.pip_src_wire(*pip));
let pip_to_snk =
ctx.estimate_delay(ctx.pip_dst_wire(*pip), sink_wire);
let uses = uses.load(std::sync::atomic::Ordering::Acquire);
(1000.0 * (src_to_pip + ((uses + 1) as f32) * pip_to_snk))
as u64
})
.unwrap();
pip_uses.fetch_add(1, std::sync::atomic::Ordering::Release);
let selected_pip = *selected_pip;
explored_pips
.fetch_add(pips.len(), std::sync::atomic::Ordering::Relaxed);
let pip_loc = ctx.pip_location(selected_pip);
let src_to_pip = ((source.x, source.y), (pip_loc.x, pip_loc.y));
let pip_to_dst = ((pip_loc.x, pip_loc.y), (sink_loc.x, sink_loc.y));
let (seg1, seg2) = match (source_is_north, source_is_east) {
(true, true) => (Segment::Northeast, Segment::Northwest),
(true, false) => (Segment::Northwest, Segment::Northeast),
(false, true) => (Segment::Southeast, Segment::Southwest),
(false, false) => (Segment::Southwest, Segment::Southeast),
};
part_vert.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
vec![(seg1, src_to_pip), (seg2, pip_to_dst)]
2022-11-27 01:11:18 +08:00
} else {
let middle = (x, split_line_over_x((source, sink_loc), x));
let middle = (
middle.0.clamp(1, ctx.grid_dim_x() - 1),
middle.1.clamp(1, ctx.grid_dim_y() - 1),
);
let pips = match source_is_east {
true => pips_w.get(&middle).unwrap(),
false => pips_e.get(&middle).unwrap(),
};
let (horiz_pip, pip_uses) = pips
.iter()
.min_by_key(|(pip, uses)| {
let src_to_pip =
ctx.estimate_delay(source_wire, ctx.pip_src_wire(*pip));
let pip_to_snk =
ctx.estimate_delay(ctx.pip_dst_wire(*pip), sink_wire);
let uses = uses.load(std::sync::atomic::Ordering::Acquire);
(1000.0 * (src_to_pip + ((uses + 1) as f32) * pip_to_snk))
as u64
})
.unwrap();
pip_uses.fetch_add(1, std::sync::atomic::Ordering::Release);
let horiz_pip = *horiz_pip;
explored_pips
.fetch_add(pips.len(), std::sync::atomic::Ordering::Relaxed);
let middle = (split_line_over_y((source, sink_loc), y), y);
let middle = (
middle.0.clamp(1, ctx.grid_dim_x() - 1),
middle.1.clamp(1, ctx.grid_dim_y() - 1),
);
let pips = match source_is_north {
true => pips_s.get(&middle).unwrap(),
false => pips_n.get(&middle).unwrap(),
};
let (vert_pip, pip_uses) = pips
.iter()
.min_by_key(|(pip, uses)| {
let src_to_pip =
ctx.estimate_delay(source_wire, ctx.pip_src_wire(*pip));
let pip_to_snk =
ctx.estimate_delay(ctx.pip_dst_wire(*pip), sink_wire);
let uses = uses.load(std::sync::atomic::Ordering::Acquire);
(1000.0 * (src_to_pip + ((uses + 1) as f32) * pip_to_snk))
as u64
})
.unwrap();
pip_uses.fetch_add(1, std::sync::atomic::Ordering::Release);
let vert_pip = *vert_pip;
explored_pips
.fetch_add(pips.len(), std::sync::atomic::Ordering::Relaxed);
let horiz_loc = ctx.pip_location(horiz_pip);
let horiz_is_east = horiz_loc.y < y;
let vert_loc = ctx.pip_location(vert_pip);
let (src_to_mid1, mid1_to_mid2, mid2_to_dst) =
if horiz_is_east == source_is_east {
(
((source.x, source.y), (horiz_loc.x, horiz_loc.y)),
((horiz_loc.x, horiz_loc.y), (vert_loc.x, vert_loc.y)),
((vert_loc.x, vert_loc.y), (sink_loc.x, sink_loc.y)),
)
} else {
(
((source.x, source.y), (vert_loc.x, vert_loc.y)),
((vert_loc.x, vert_loc.y), (horiz_loc.x, horiz_loc.y)),
((horiz_loc.x, horiz_loc.y), (sink_loc.x, sink_loc.y)),
)
};
let (seg1, seg2, seg3) =
match (source_is_north, source_is_east, horiz_is_east) {
(true, true, true) => {
(Segment::Northeast, Segment::Southeast, Segment::Southwest)
}
(true, true, false) => {
(Segment::Northeast, Segment::Northwest, Segment::Southwest)
}
(true, false, true) => {
(Segment::Northwest, Segment::Northeast, Segment::Southeast)
}
(true, false, false) => {
(Segment::Northwest, Segment::Southwest, Segment::Southeast)
}
(false, true, true) => {
(Segment::Southeast, Segment::Northeast, Segment::Northwest)
}
(false, true, false) => {
(Segment::Southeast, Segment::Southwest, Segment::Northwest)
}
(false, false, true) => {
(Segment::Southwest, Segment::Southeast, Segment::Northeast)
}
(false, false, false) => {
(Segment::Southwest, Segment::Northwest, Segment::Northeast)
}
};
part_diag.fetch_add(1, std::sync::atomic::Ordering::Relaxed);
vec![
(seg1, src_to_mid1),
(seg2, mid1_to_mid2),
(seg3, mid2_to_dst),
]
2022-11-27 01:11:18 +08:00
}
},
)
})
.collect::<Vec<_>>();
for (segment, arc) in arcs {
match segment {
Segment::Northeast => ne.push(arc),
Segment::Southeast => se.push(arc),
Segment::Southwest => sw.push(arc),
Segment::Northwest => nw.push(arc),
2022-11-25 13:34:46 +08:00
}
}
2022-11-25 15:12:14 +08:00
progress.finish_and_clear();
2022-11-25 13:34:46 +08:00
2022-11-27 01:11:18 +08:00
log_info!(
" {} pips explored\n",
explored_pips.get_mut().to_string().bold()
);
2022-11-25 13:34:46 +08:00
let north = ne.len() + nw.len();
let south = se.len() + sw.len();
let nets = (north + south) as f64;
2022-11-26 20:44:17 +08:00
let ne_dist = ((ne.len() as f64) / nets) - 0.25;
let se_dist = ((se.len() as f64) / nets) - 0.25;
let sw_dist = ((sw.len() as f64) / nets) - 0.25;
let nw_dist = ((nw.len() as f64) / nets) - 0.25;
2022-11-25 13:34:46 +08:00
let ne_str = ne.len().to_string();
let se_str = se.len().to_string();
let sw_str = sw.len().to_string();
let nw_str = nw.len().to_string();
2022-11-26 20:44:17 +08:00
let dist_str = |dist: f64| {
if dist > 0.20 {
"(way too many nets)".red()
} else if dist > 0.05 {
"(too many nets)".yellow()
} else if dist < -0.05 {
"(too few nets)".yellow()
} else if dist < -0.20 {
"(way too few nets)".red()
} else {
"(balanced)".green()
}
};
2022-11-25 13:34:46 +08:00
log_info!(
" {} arcs partitioned horizontally\n",
2022-11-27 01:09:20 +08:00
part_horiz.get_mut().to_string().bold()
2022-11-25 13:34:46 +08:00
);
log_info!(
" {} arcs partitioned vertically\n",
2022-11-27 01:09:20 +08:00
part_vert.get_mut().to_string().bold()
2022-11-25 13:34:46 +08:00
);
log_info!(
" {} arcs partitioned both ways\n",
2022-11-27 01:09:20 +08:00
part_diag.get_mut().to_string().bold()
2022-11-25 13:34:46 +08:00
);
log_info!(
2022-11-26 20:44:17 +08:00
" {} arcs in the northeast {}\n",
ne_str.color(if ne_dist.abs() > 0.20 {
colored::Color::Red
} else if ne_dist.abs() > 0.05 {
colored::Color::Yellow
2022-11-25 13:34:46 +08:00
} else {
2022-11-26 20:44:17 +08:00
colored::Color::Green
}),
dist_str(ne_dist)
2022-11-25 13:34:46 +08:00
);
log_info!(
2022-11-26 20:44:17 +08:00
" {} arcs in the southeast {}\n",
se_str.color(if se_dist.abs() > 0.20 {
colored::Color::Red
} else if se_dist.abs() > 0.05 {
colored::Color::Yellow
2022-11-25 13:34:46 +08:00
} else {
2022-11-26 20:44:17 +08:00
colored::Color::Green
}),
dist_str(se_dist)
2022-11-25 13:34:46 +08:00
);
log_info!(
2022-11-26 20:44:17 +08:00
" {} arcs in the southwest {}\n",
sw_str.color(if sw_dist.abs() > 0.20 {
colored::Color::Red
} else if sw_dist.abs() > 0.05 {
colored::Color::Yellow
2022-11-25 13:34:46 +08:00
} else {
2022-11-26 20:44:17 +08:00
colored::Color::Green
}),
dist_str(sw_dist)
2022-11-25 13:34:46 +08:00
);
log_info!(
2022-11-26 20:44:17 +08:00
" {} arcs in the northwest {}\n",
nw_str.color(if nw_dist.abs() > 0.20 {
colored::Color::Red
} else if nw_dist.abs() > 0.05 {
colored::Color::Yellow
2022-11-25 13:34:46 +08:00
} else {
2022-11-26 20:44:17 +08:00
colored::Color::Green
}),
dist_str(nw_dist)
2022-11-25 13:34:46 +08:00
);
(ne, se, sw, nw)
}
2022-11-20 11:20:09 +08:00
fn route(ctx: &mut npnr::Context) -> bool {
2022-11-26 20:44:17 +08:00
log_info!(
"{}{}{}{}{}{} from Rust!\n",
"A".red(),
"w".green(),
"o".yellow(),
"o".blue(),
"o".magenta(),
"o".cyan()
);
2022-11-20 11:20:09 +08:00
log_info!(
"Running on a {}x{} grid\n",
2022-11-26 20:44:17 +08:00
ctx.grid_dim_x().to_string().bold(),
ctx.grid_dim_y().to_string().bold(),
2022-11-20 11:20:09 +08:00
);
2022-11-21 10:48:00 +08:00
2022-11-25 13:34:46 +08:00
let wires = ctx.wires_leaking();
2022-11-26 20:44:17 +08:00
log_info!("Found {} wires\n", wires.len().to_string().bold());
2022-11-25 13:34:46 +08:00
let pips = ctx.pips_leaking();
2022-11-26 20:44:17 +08:00
log_info!("Found {} pips\n", pips.len().to_string().bold());
2022-11-24 07:55:33 +08:00
2022-11-24 07:02:30 +08:00
let nets = npnr::Nets::new(ctx);
2022-11-25 13:34:46 +08:00
let nets_str = nets.len().to_string();
2022-11-26 20:44:17 +08:00
log_info!("Found {} nets\n", nets_str.bold());
2022-11-21 10:48:00 +08:00
2022-11-23 11:31:50 +08:00
let mut count = 0;
2022-11-24 07:02:30 +08:00
for (name, net) in nets.iter() {
2022-11-23 11:31:50 +08:00
let _src = ctx.source_wire(*net);
let net = unsafe { net.as_mut().unwrap() };
2022-11-24 07:02:30 +08:00
let users = nets.users_by_name(*name).unwrap().iter();
for user in users {
2022-11-27 01:09:20 +08:00
count += ctx.sink_wires(net, *user).len();
2022-11-23 11:31:50 +08:00
}
}
2022-11-26 20:44:17 +08:00
log_info!("Found {} arcs\n", count.to_string().bold());
2022-11-23 11:31:50 +08:00
let (name, net) = nets
.iter()
2022-11-24 07:02:30 +08:00
.max_by_key(|(name, net)| {
2022-11-23 11:31:50 +08:00
let net = unsafe { net.as_mut().unwrap() };
if net.is_global() {
0
} else {
2022-11-24 07:02:30 +08:00
nets.users_by_name(**name)
.unwrap()
.iter()
2022-11-27 01:09:20 +08:00
.fold(0, |acc, sink| acc + ctx.sink_wires(net, *sink).len())
2022-11-23 11:31:50 +08:00
}
})
.unwrap();
let net = unsafe { net.as_mut().unwrap() };
2022-11-24 07:02:30 +08:00
let count = nets
.users_by_name(*name)
.unwrap()
.iter()
2022-11-27 01:09:20 +08:00
.fold(0, |acc, sink| acc + ctx.sink_wires(net, *sink).len())
2022-11-25 13:34:46 +08:00
.to_string();
2022-11-23 11:31:50 +08:00
log_info!(
2022-11-26 20:44:17 +08:00
"Highest non-global fanout net is {}\n",
ctx.name_of(*name).to_str().unwrap().bold()
2022-11-23 11:31:50 +08:00
);
2022-11-26 20:44:17 +08:00
log_info!(" with {} arcs\n", count.bold());
2022-11-23 11:31:50 +08:00
let mut x0 = 0;
let mut y0 = 0;
let mut x1 = 0;
let mut y1 = 0;
2022-11-24 07:02:30 +08:00
for sink in nets.users_by_name(*name).unwrap().iter() {
2022-11-25 13:34:46 +08:00
let cell = sink.cell().unwrap().location();
x0 = x0.min(cell.x);
y0 = y0.min(cell.y);
x1 = x1.max(cell.x);
y1 = y1.max(cell.y);
2022-11-23 11:31:50 +08:00
}
2022-11-25 13:34:46 +08:00
let coords_min = format!("({}, {})", x0, y0);
let coords_max = format!("({}, {})", x1, y1);
log_info!(
2022-11-25 15:12:14 +08:00
" which spans from {} to {}\n",
2022-11-26 20:44:17 +08:00
coords_min.bold(),
coords_max.bold()
2022-11-25 13:34:46 +08:00
);
2022-11-23 11:31:50 +08:00
log_info!(
"rayon reports {} threads available\n",
rayon::current_num_threads().to_string().bold()
);
2022-11-27 02:57:53 +08:00
let (x_part, y_part, ne, se, sw, nw) =
find_partition_point(ctx, &nets, pips, 0, ctx.grid_dim_x(), 0, ctx.grid_dim_y());
let mut invalid_arcs_in_ne = 0;
let mut invalid_arcs_in_se = 0;
let mut invalid_arcs_in_sw = 0;
let mut invalid_arcs_in_nw = 0;
for ((source_x, source_y), (sink_x, sink_y)) in ne {
if source_x > x_part || source_y > y_part || sink_x > x_part || sink_y > y_part {
invalid_arcs_in_ne += 1;
}
}
for ((source_x, source_y), (sink_x, sink_y)) in se {
if source_x < x_part || source_y > y_part || sink_x < x_part || sink_y > y_part {
invalid_arcs_in_se += 1;
}
}
for ((source_x, source_y), (sink_x, sink_y)) in sw {
if source_x < x_part || source_y < y_part || sink_x < x_part || sink_y < y_part {
invalid_arcs_in_sw += 1;
}
}
for ((source_x, source_y), (sink_x, sink_y)) in nw {
if source_x > x_part || source_y < y_part || sink_x > x_part || sink_y < y_part {
invalid_arcs_in_nw += 1;
}
}
if [
invalid_arcs_in_ne,
invalid_arcs_in_se,
invalid_arcs_in_sw,
invalid_arcs_in_nw,
]
.into_iter()
.all(|x| x == 0)
{
2022-11-27 01:11:18 +08:00
log_info!(
"{}\n",
"Found no arcs crossing partition boundaries.".green()
);
} else {
println!("{}", "found arcs crossing partition boundaries!".yellow());
println!("count in ne: {}", invalid_arcs_in_ne.to_string().bold());
println!("count in se: {}", invalid_arcs_in_se.to_string().bold());
println!("count in sw: {}", invalid_arcs_in_sw.to_string().bold());
println!("count in nw: {}", invalid_arcs_in_nw.to_string().bold());
}
2022-11-24 07:55:33 +08:00
2022-11-23 11:31:50 +08:00
/*log_info!("=== level 2 NE:\n");
let _ = find_partition_point(&ne, x_start, x, y_start, y);
log_info!("=== level 2 SE:\n");
let _ = find_partition_point(&se, x, x_finish, y_start, y);
log_info!("=== level 2 SW:\n");
let _ = find_partition_point(&sw, x, x_finish, y, y_finish);
log_info!("=== level 2 NW:\n");
let _ = find_partition_point(&nw, x_start, x, y, y_finish);*/
2022-11-20 11:20:09 +08:00
true
2022-11-23 11:31:50 +08:00
}