#![allow(clippy::len_zero)]
#[macro_use]
pub mod macros;
pub mod blockify;
pub mod fact;
pub mod model;
pub mod ops;
pub mod internal {
pub use std::fmt;
pub use tract_nnef::internal::*;
pub use tract_pulse_opl::tract_nnef;
pub use downcast_rs::Downcast;
pub use crate::fact::PulsedFact;
pub use crate::model::{PulsedModel, PulsedModelExt};
pub use crate::ops::{OpPulsifier, PulsedOp};
}
use std::ops::ControlFlow;
use internal::*;
use tract_core::optim::TypedPass;
use tract_core::transform::ModelTransform;
use tract_pulse_opl::tract_nnef::tract_core;
pub use ops::PulsedOp;
#[derive(Debug, Default, serde::Deserialize)]
pub struct PulseConfig {
pub symbol: Option<String>,
pub pulse: String,
}
#[derive(Debug)]
struct PulseTransform(PulseConfig);
impl ModelTransform for PulseTransform {
fn name(&self) -> std::borrow::Cow<'static, str> {
"pulse".into()
}
fn transform(&self, model: &mut TypedModel) -> TractResult<()> {
let symbol = self.0.symbol.as_deref().unwrap_or("S");
let sym = model.symbols.sym(symbol);
let pulse_dim = parse_tdim(&model.symbols, &self.0.pulse)?;
ops::diag_gather::detect_diag_gather(model)?;
tract_core::optim::propagate_roi::PropagateRoi.run_direct(model)?;
model.declutter()?;
let pulsed = model::PulsedModel::new(model, sym, &pulse_dim)?;
*model = pulsed.into_typed()?;
Ok(())
}
}
register_model_transform!("pulse", PulseConfig, |config| Ok(Box::new(PulseTransform(config))));
register_model_transform!("blockify", blockify::BlockifyConfig, |config| Ok(Box::new(
blockify::BlockifyTransform(config)
)));
pub trait WithPulse {
fn enable_pulse(&mut self);
fn with_pulse(self) -> Self;
}
impl WithPulse for tract_nnef::framework::Nnef {
fn enable_pulse(&mut self) {
self.registries.push(tract_nnef_registry());
}
fn with_pulse(mut self) -> Self {
self.enable_pulse();
self
}
}
pub fn tract_nnef_registry() -> Registry {
let mut reg = tract_pulse_opl::tract_nnef_registry();
ops::delay::register(&mut reg);
reg.extensions.push(Box::new(decl_stream_symbol));
reg
}
fn decl_stream_symbol(
_proto_model: &mut ModelBuilder,
name: &Identifier,
_rest: &str,
) -> TractResult<ControlFlow<(), ()>> {
if name.0 == "tract_pulse_streaming_symbol" {
Ok(ControlFlow::Break(()))
} else {
Ok(ControlFlow::Continue(()))
}
}
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn test_source_must_stream() {
let mut model = TypedModel::default();
let s = model.symbols.sym("S");
let _a = model.add_source("a", f32::fact([1, 2, 3])).unwrap();
model.auto_outputs().unwrap();
assert!(PulsedModel::new(&model, s.clone(), &4.to_dim()).is_err());
let mut model = TypedModel::default();
let _a = model.add_source("a", f32::fact(dims![1, s, 3].as_ref())).unwrap();
model.auto_outputs().unwrap();
let pulse = PulsedModel::new(&model, s, &4.to_dim()).unwrap();
assert_eq!(
*pulse.outlet_fact(OutletId::new(0, 0)).unwrap().to_typed_fact().unwrap(),
f32::fact([1usize, 4, 3])
);
}
#[test]
fn test_immediate() {
let mut model = TypedModel::default();
let s = model.symbols.sym("S");
let _a = model.add_source("a", f32::fact(dims![s, 2, 3].as_ref())).unwrap();
model.auto_outputs().unwrap();
let pulse = PulsedModel::new(&model, s, &4.to_dim()).unwrap();
assert_eq!(*pulse.input_fact(0).unwrap().to_typed_fact().unwrap(), f32::fact([4, 2, 3]));
assert_eq!(*pulse.output_fact(0).unwrap().to_typed_fact().unwrap(), f32::fact([4, 2, 3]));
}
#[test]
fn test_reshape_split_streaming_axis() {
use tract_core::ops::change_axes::AxisOp;
let mut model = TypedModel::default();
let s = model.symbols.sym("S");
let a = model.add_source("a", f32::fact(dims![s.to_dim() * 2, 4].as_ref())).unwrap();
let split = model
.wire_node(
"split",
AxisOp::Reshape(0, tvec!(s.to_dim() * 2), tvec!(s.to_dim(), 2.to_dim())),
&[a],
)
.unwrap();
model.select_output_outlets(&split).unwrap();
let pulse = PulsedModel::new(&model, s.clone(), &1.to_dim()).unwrap();
assert_eq!(*pulse.input_fact(0).unwrap().to_typed_fact().unwrap(), f32::fact([2, 4]));
assert_eq!(*pulse.output_fact(0).unwrap().to_typed_fact().unwrap(), f32::fact([1, 2, 4]));
let out_stream = pulse.output_fact(0).unwrap().stream.as_ref().unwrap();
assert_eq!(out_stream.axis, 0);
assert_eq!(out_stream.dim, s.to_dim());
}
#[test]
fn test_reshape_merge_streaming_axis() {
use tract_core::ops::change_axes::AxisOp;
let mut model = TypedModel::default();
let s = model.symbols.sym("S");
let a = model.add_source("a", f32::fact(dims![s, 2, 4].as_ref())).unwrap();
let merged = model
.wire_node(
"merge",
AxisOp::Reshape(0, tvec!(s.to_dim(), 2.to_dim()), tvec!(s.to_dim() * 2)),
&[a],
)
.unwrap();
model.select_output_outlets(&merged).unwrap();
let pulse = PulsedModel::new(&model, s.clone(), &1.to_dim()).unwrap();
assert_eq!(*pulse.input_fact(0).unwrap().to_typed_fact().unwrap(), f32::fact([1, 2, 4]));
assert_eq!(*pulse.output_fact(0).unwrap().to_typed_fact().unwrap(), f32::fact([2, 4]));
let out_stream = pulse.output_fact(0).unwrap().stream.as_ref().unwrap();
assert_eq!(out_stream.axis, 0);
assert_eq!(out_stream.dim, s.to_dim() * 2);
}
#[test]
fn test_reshape_split_then_run() {
use tract_core::ops::change_axes::AxisOp;
let mut model = TypedModel::default();
let s = model.symbols.sym("S");
let a = model.add_source("a", f32::fact(dims![s.to_dim() * 2].as_ref())).unwrap();
let split = model
.wire_node(
"split",
AxisOp::Reshape(0, tvec!(s.to_dim() * 2), tvec!(s.to_dim(), 2.to_dim())),
&[a],
)
.unwrap();
model.select_output_outlets(&split).unwrap();
let pulse = PulsedModel::new(&model, s, &1.to_dim()).unwrap();
let plan = SimplePlan::new(pulse.into_typed().unwrap()).unwrap();
let mut state = SimpleState::new(&plan).unwrap();
let chunk1 = tensor1(&[1f32, 2.0]);
let out1 = state.run(tvec!(chunk1.into_tvalue())).unwrap();
assert_eq!(*out1[0], tensor2(&[[1f32, 2.0]]).into());
let chunk2 = tensor1(&[3f32, 4.0]);
let out2 = state.run(tvec!(chunk2.into_tvalue())).unwrap();
assert_eq!(*out2[0], tensor2(&[[3f32, 4.0]]).into());
}
#[test]
fn test_pulse_meet_with_arange_branch_types_through() {
use tract_core::ops::array::Range;
use tract_core::ops::cnn::{Deconv, KernelFormat, PaddingSpec, PoolSpec};
use tract_core::ops::nn::DataFormat;
let mut model = TypedModel::default();
let t = model.symbols.sym("T");
let src = model.add_source("x", f32::fact(dims![1, 2, t.to_dim()].as_ref())).unwrap();
let kernel = model
.add_const("kernel", tract_core::ndarray::Array3::<f32>::zeros((2, 2, 8)))
.unwrap();
let bias = model.add_const("bias", tract_core::ndarray::arr1(&[0.0f32, 0.0])).unwrap();
let conv_out = model
.wire_node(
"convtr",
Deconv {
pool_spec: PoolSpec {
data_format: DataFormat::NCHW,
kernel_shape: tvec!(8),
padding: PaddingSpec::Valid,
dilations: Some(tvec!(1)),
strides: Some(tvec!(4)),
input_channels: 2,
output_channels: 2,
},
kernel_format: KernelFormat::OIHW,
adjustments: tvec!(0),
group: 1,
},
&[src, kernel, bias],
)
.unwrap()[0];
let start = model.add_const("range_start", tensor0(TDim::Val(0))).unwrap();
let end = model
.add_const(
"range_end",
tract_core::ndarray::arr0(t.to_dim() * 4 + 4).into_dyn().into_tensor(),
)
.unwrap();
let step = model.add_const("range_step", tensor0(TDim::Val(1))).unwrap();
let range_out = model
.wire_node("range", Range::new(t.to_dim() * 4 + 4), &[start, end, step])
.unwrap()[0];
let range_f32 = model
.wire_node("range_cast", tract_core::ops::cast::cast(f32::datum_type()), &[range_out])
.unwrap()[0];
let range_bc = model
.wire_node(
"range_unsqueeze",
tract_core::ops::change_axes::AxisOp::Add(0),
&[range_f32],
)
.unwrap()[0];
let range_bc = model
.wire_node(
"range_unsqueeze2",
tract_core::ops::change_axes::AxisOp::Add(0),
&[range_bc],
)
.unwrap()[0];
let added =
model.wire_node("add", tract_core::ops::math::add(), &[conv_out, range_bc]).unwrap();
model.select_output_outlets(&added).unwrap();
let _pulse = PulsedModel::new(&model, t, &2.to_dim()).expect("pulsification");
}
}