- First commit

This commit is contained in:
Wim Pomp
2025-03-01 19:40:37 +01:00
commit e2184b2d33
11 changed files with 1474 additions and 0 deletions

84
.gitignore vendored Normal file
View File

@@ -0,0 +1,84 @@
/target
/Cargo.lock
# Byte-compiled / optimized / DLL files
__pycache__/
.pytest_cache/
*.py[cod]
# C extensions
*.so
*.dylib
*.dll
# Distribution / packaging
.Python
.venv/
env/
bin/
build/
develop-eggs/
dist/
eggs/
lib/
lib64/
parts/
sdist/
var/
include/
man/
venv/
*.egg-info/
.installed.cfg
*.egg
# Installer logs
pip-log.txt
pip-delete-this-directory.txt
pip-selfcheck.json
# Unit test / coverage reports
htmlcov/
.tox/
.coverage
.cache
nosetests.xml
coverage.xml
# Translations
*.mo
# Mr Developer
.mr.developer.cfg
.project
.pydevproject
# Rope
.ropeproject
# Django stuff:
*.log
*.pot
.DS_Store
# Sphinx documentation
docs/_build/
# PyCharm
.idea/
# VSCode
.vscode/
# Pyenv
.python-version
/tests/files/*
/cpp/CMakeFiles/
/cpp/cmake_install.cmake
/cpp/CMakeCache.txt
/cpp/Makefile
/sitk
*.nii
TransformParameters*

31
Cargo.toml Normal file
View File

@@ -0,0 +1,31 @@
[package]
name = "sitk-registration-sys"
version = "2025.3.0"
edition = "2024"
license = "MIT OR Apache-2.0"
description = "register and interpolate images"
rust-version = "1.85.0"
authors = ["Wim Pomp <w.pomp@nki.nl>"]
homepage = "https://github.com/wimpomp/sitk-registration-sys"
repository = "https://github.com/wimpomp/sitk-registration-sys"
documentation = "https://docs.rs/sitk-registration-sys"
readme = "README.md"
keywords = ["registration", "affine", "bspline", "transform"]
categories = ["multimedia::images", "science"]
[lib]
name = "sitk_regsitration_sys"
crate-type = ["cdylib", "rlib"]
[dependencies]
anyhow = "1.0.96"
libc = "0.2.170"
ndarray = "0.16.1"
num = "0.4.3"
[dev-dependencies]
tiffwrite = "2025.2.0"
[build-dependencies]
cmake = "0.1.54"
git2 = "0.20.0"

176
LICENSE-APACHE Normal file
View File

@@ -0,0 +1,176 @@
Apache License
Version 2.0, January 2004
http://www.apache.org/licenses/
TERMS AND CONDITIONS FOR USE, REPRODUCTION, AND DISTRIBUTION
1. Definitions.
"License" shall mean the terms and conditions for use, reproduction,
and distribution as defined by Sections 1 through 9 of this document.
"Licensor" shall mean the copyright owner or entity authorized by
the copyright owner that is granting the License.
"Legal Entity" shall mean the union of the acting entity and all
other entities that control, are controlled by, or are under common
control with that entity. For the purposes of this definition,
"control" means (i) the power, direct or indirect, to cause the
direction or management of such entity, whether by contract or
otherwise, or (ii) ownership of fifty percent (50%) or more of the
outstanding shares, or (iii) beneficial ownership of such entity.
"You" (or "Your") shall mean an individual or Legal Entity
exercising permissions granted by this License.
"Source" form shall mean the preferred form for making modifications,
including but not limited to software source code, documentation
source, and configuration files.
"Object" form shall mean any form resulting from mechanical
transformation or translation of a Source form, including but
not limited to compiled object code, generated documentation,
and conversions to other media types.
"Work" shall mean the work of authorship, whether in Source or
Object form, made available under the License, as indicated by a
copyright notice that is included in or attached to the work
(an example is provided in the Appendix below).
"Derivative Works" shall mean any work, whether in Source or Object
form, that is based on (or derived from) the Work and for which the
editorial revisions, annotations, elaborations, or other modifications
represent, as a whole, an original work of authorship. For the purposes
of this License, Derivative Works shall not include works that remain
separable from, or merely link (or bind by name) to the interfaces of,
the Work and Derivative Works thereof.
"Contribution" shall mean any work of authorship, including
the original version of the Work and any modifications or additions
to that Work or Derivative Works thereof, that is intentionally
submitted to Licensor for inclusion in the Work by the copyright owner
or by an individual or Legal Entity authorized to submit on behalf of
the copyright owner. For the purposes of this definition, "submitted"
means any form of electronic, verbal, or written communication sent
to the Licensor or its representatives, including but not limited to
communication on electronic mailing lists, source code control systems,
and issue tracking systems that are managed by, or on behalf of, the
Licensor for the purpose of discussing and improving the Work, but
excluding communication that is conspicuously marked or otherwise
designated in writing by the copyright owner as "Not a Contribution."
"Contributor" shall mean Licensor and any individual or Legal Entity
on behalf of whom a Contribution has been received by Licensor and
subsequently incorporated within the Work.
2. Grant of Copyright License. Subject to the terms and conditions of
this License, each Contributor hereby grants to You a perpetual,
worldwide, non-exclusive, no-charge, royalty-free, irrevocable
copyright license to reproduce, prepare Derivative Works of,
publicly display, publicly perform, sublicense, and distribute the
Work and such Derivative Works in Source or Object form.
3. Grant of Patent License. Subject to the terms and conditions of
this License, each Contributor hereby grants to You a perpetual,
worldwide, non-exclusive, no-charge, royalty-free, irrevocable
(except as stated in this section) patent license to make, have made,
use, offer to sell, sell, import, and otherwise transfer the Work,
where such license applies only to those patent claims licensable
by such Contributor that are necessarily infringed by their
Contribution(s) alone or by combination of their Contribution(s)
with the Work to which such Contribution(s) was submitted. If You
institute patent litigation against any entity (including a
cross-claim or counterclaim in a lawsuit) alleging that the Work
or a Contribution incorporated within the Work constitutes direct
or contributory patent infringement, then any patent licenses
granted to You under this License for that Work shall terminate
as of the date such litigation is filed.
4. Redistribution. You may reproduce and distribute copies of the
Work or Derivative Works thereof in any medium, with or without
modifications, and in Source or Object form, provided that You
meet the following conditions:
(a) You must give any other recipients of the Work or
Derivative Works a copy of this License; and
(b) You must cause any modified files to carry prominent notices
stating that You changed the files; and
(c) You must retain, in the Source form of any Derivative Works
that You distribute, all copyright, patent, trademark, and
attribution notices from the Source form of the Work,
excluding those notices that do not pertain to any part of
the Derivative Works; and
(d) If the Work includes a "NOTICE" text file as part of its
distribution, then any Derivative Works that You distribute must
include a readable copy of the attribution notices contained
within such NOTICE file, excluding those notices that do not
pertain to any part of the Derivative Works, in at least one
of the following places: within a NOTICE text file distributed
as part of the Derivative Works; within the Source form or
documentation, if provided along with the Derivative Works; or,
within a display generated by the Derivative Works, if and
wherever such third-party notices normally appear. The contents
of the NOTICE file are for informational purposes only and
do not modify the License. You may add Your own attribution
notices within Derivative Works that You distribute, alongside
or as an addendum to the NOTICE text from the Work, provided
that such additional attribution notices cannot be construed
as modifying the License.
You may add Your own copyright statement to Your modifications and
may provide additional or different license terms and conditions
for use, reproduction, or distribution of Your modifications, or
for any such Derivative Works as a whole, provided Your use,
reproduction, and distribution of the Work otherwise complies with
the conditions stated in this License.
5. Submission of Contributions. Unless You explicitly state otherwise,
any Contribution intentionally submitted for inclusion in the Work
by You to the Licensor shall be under the terms and conditions of
this License, without any additional terms or conditions.
Notwithstanding the above, nothing herein shall supersede or modify
the terms of any separate license agreement you may have executed
with Licensor regarding such Contributions.
6. Trademarks. This License does not grant permission to use the trade
names, trademarks, service marks, or product names of the Licensor,
except as required for reasonable and customary use in describing the
origin of the Work and reproducing the content of the NOTICE file.
7. Disclaimer of Warranty. Unless required by applicable law or
agreed to in writing, Licensor provides the Work (and each
Contributor provides its Contributions) on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or
implied, including, without limitation, any warranties or conditions
of TITLE, NON-INFRINGEMENT, MERCHANTABILITY, or FITNESS FOR A
PARTICULAR PURPOSE. You are solely responsible for determining the
appropriateness of using or redistributing the Work and assume any
risks associated with Your exercise of permissions under this License.
8. Limitation of Liability. In no event and under no legal theory,
whether in tort (including negligence), contract, or otherwise,
unless required by applicable law (such as deliberate and grossly
negligent acts) or agreed to in writing, shall any Contributor be
liable to You for damages, including any direct, indirect, special,
incidental, or consequential damages of any character arising as a
result of this License or out of the use or inability to use the
Work (including but not limited to damages for loss of goodwill,
work stoppage, computer failure or malfunction, or any and all
other commercial damages or losses), even if such Contributor
has been advised of the possibility of such damages.
9. Accepting Warranty or Additional Liability. While redistributing
the Work or Derivative Works thereof, You may choose to offer,
and charge a fee for, acceptance of support, warranty, indemnity,
or other liability obligations and/or rights consistent with this
License. However, in accepting such obligations, You may act only
on Your own behalf and on Your sole responsibility, not on behalf
of any other Contributor, and only if You agree to indemnify,
defend, and hold each Contributor harmless for any liability
incurred by, or claims asserted against, such Contributor by reason
of your accepting any such warranty or additional liability.
END OF TERMS AND CONDITIONS

23
LICENSE-MIT Normal file
View File

@@ -0,0 +1,23 @@
Permission is hereby granted, free of charge, to any
person obtaining a copy of this software and associated
documentation files (the "Software"), to deal in the
Software without restriction, including without
limitation the rights to use, copy, modify, merge,
publish, distribute, sublicense, and/or sell copies of
the Software, and to permit persons to whom the Software
is furnished to do so, subject to the following
conditions:
The above copyright notice and this permission notice
shall be included in all copies or substantial portions
of the Software.
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF
ANY KIND, EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED
TO THE WARRANTIES OF MERCHANTABILITY, FITNESS FOR A
PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT
SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY
CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION
OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR
IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
DEALINGS IN THE SOFTWARE.

31
README.md Normal file
View File

@@ -0,0 +1,31 @@
# sitk-registration-sys
This crate does two things:
- find an affine transform or translation that transforms one image into the other
- use bpline or nearest neighbor interpolation to apply a transformation to an image
To do this [SimpleITK](https://github.com/SimpleITK/SimpleITK.git), which is written in
C++, is used. An adapter library is created to expose the required functionality in SimpleITK
in a shared library. Because of this, compilation of this crate requires quite some time, as
wel as cmake.
## Examples
### Registration
```
let image_a = (some Array2);
let iameg_b = (some transformed Array2);
let transform = Transform::register_affine(image_a.view(), image_b.view())?;
println!("transform: {:#?}", transform);
```
### Interpolation
```
let image = (Some Array2);
let shape = image.shape();
let origin = [
((shape[1] - 1) as f64) / 2f64,
((shape[0] - 1) as f64) / 2f64,
];
let transform = Transform::new([1.2, 0., 0., 1., 10., 0.], origin, [shape[0], shape[1]]);
let transformed_image = transform.transform_image_bspline(image.view())?;
```

62
build.rs Normal file
View File

@@ -0,0 +1,62 @@
use cmake::Config;
use git2::Repository;
use std::ffi::OsStr;
use std::path::PathBuf;
fn main() {
if std::env::var("DOCS_RS").is_err() {
let out_dir = PathBuf::from(std::env::var("OUT_DIR").expect("OUT_DIR is undefined"));
let mut target_dir = out_dir.clone();
while target_dir.file_name() != Some(OsStr::new("target")) {
if !target_dir.pop() {
panic!("Could not find target directory");
}
}
let sitk_dir = if let Some(d) = target_dir.parent() {
d.join("sitk").to_path_buf()
} else {
target_dir.join("sitk")
};
if !sitk_dir.exists() {
Repository::clone("https://github.com/SimpleITK/SimpleITK.git", &sitk_dir)
.expect("unable to clone sitk");
}
let sitk_build_dir = sitk_dir.join("build");
if !sitk_build_dir.exists() {
println!("cargo::warning=Simple ITK; this will take a long time...");
Config::new(sitk_dir.join("SuperBuild"))
.out_dir(&sitk_dir)
.no_build_target(true)
.define("BUILD_TESTING", "OFF")
.define("WRAP_CSHARP", "OFF")
.define("WRAP_JAVA", "OFF")
.define("WRAP_LUA", "OFF")
.define("WRAP_R", "OFF")
.define("WRAP_RUBY", "OFF")
.define("WRAP_TCL", "OFF")
.define("WRAP_PYTHON", "OFF")
.define("WRAP_DEFAULT", "OFF")
.define("SimpleITK_USE_ELASTIX", "ON")
.build();
}
// println!("cargo::rustc-env=CMAKE_INSTALL_PREFIX=/home/wim/code/rust/sitk-sys/cpp");
println!(
"cargo::rustc-env=CMAKE_INSTALL_PREFIX={}",
out_dir.display()
);
let path = Config::new("cpp")
.very_verbose(true)
.define("Elastix_DIR", sitk_build_dir.join("Elastix-build"))
.define("ITK_DIR", sitk_build_dir.join("ITK-build"))
.define("SimpleITK_DIR", sitk_build_dir.join("SimpleITK-build"))
.define("CMAKE_INSTALL_PREFIX", out_dir)
.build();
println!("cargo::rustc-link-arg=-Wl,-rpath,{}", path.display());
println!("cargo::rustc-link-search={}", path.join("build").display());
println!("cargo::rustc-link-lib=dylib=sitk_adapter");
println!("cargo::rerun-if-changed=build.rs");
println!("cargo::rerun-if-changed=cpp/*.cxx");
}
}

11
cpp/CMakeLists.txt Normal file
View File

@@ -0,0 +1,11 @@
cmake_minimum_required(VERSION 3.16.3)
project(sitk_adapter)
set(ENV{Elastix_DIR} "../sitk/build/Elastix-build" )
set(ENV{ITK_DIR} "~/code/c/SimpleITK/build/ITK-build" )
set(ENV{SimpleITK_DIR} "~/code/c/SimpleITK/build/SimpleITK-build" )
find_package(SimpleITK)
add_library(sitk_adapter SHARED sitk_adapter.cxx)
target_link_libraries (sitk_adapter ${SimpleITK_LIBRARIES})
install(TARGETS sitk_adapter DESTINATION .)

415
cpp/sitk_adapter.cxx Normal file
View File

@@ -0,0 +1,415 @@
#include <SimpleITK.h>
#include <sitkImageOperators.h>
#include <cstring>
namespace sitk = itk::simple;
using namespace std;
template <typename T>
sitk::Image make_image(
unsigned int width,
unsigned int height,
T* image,
sitk::PixelIDValueEnum id
) {
sitk::Image im(width, height, id);
if (id == sitk::PixelIDValueEnum::sitkUInt8) {
uint8_t* b = im.GetBufferAsUInt8();
memcpy(b, image, width * height);
} else if (id == sitk::PixelIDValueEnum::sitkInt8) {
int8_t* b = im.GetBufferAsInt8();
memcpy(b, image, width * height);
} else if (id == sitk::PixelIDValueEnum::sitkUInt16) {
uint16_t* b = im.GetBufferAsUInt16();
memcpy(b, image, width * height * 2);
} else if (id == sitk::PixelIDValueEnum::sitkInt16) {
int16_t* b = im.GetBufferAsInt16();
memcpy(b, image, width * height * 2);
} else if (id == sitk::PixelIDValueEnum::sitkUInt32) {
uint32_t* b = im.GetBufferAsUInt32();
memcpy(b, image, width * height * 4);
} else if (id == sitk::PixelIDValueEnum::sitkInt32) {
int32_t* b = im.GetBufferAsInt32();
memcpy(b, image, width * height * 4);
} else if (id == sitk::PixelIDValueEnum::sitkUInt64) {
uint64_t* b = im.GetBufferAsUInt64();
memcpy(b, image, width * height * 8);
} else if (id == sitk::PixelIDValueEnum::sitkInt64) {
int64_t* b = im.GetBufferAsInt64();
memcpy(b, image, width * height * 8);
} else if (id == sitk::PixelIDValueEnum::sitkFloat32) {
float* b = im.GetBufferAsFloat();
memcpy(b, image, width * height * 4);
} else if (id == sitk::PixelIDValueEnum::sitkFloat64) {
double* b = im.GetBufferAsDouble();
memcpy(b, image, width * height * 8);
}
return im;
}
sitk::Image
interp(
double* transform,
double* origin,
sitk::Image image,
bool bspline_or_nn
) {
try {
vector<double> matrix = {transform[0], transform[1], transform[2], transform[3]};
vector<double> translation = {transform[4], transform[5]};
vector<double> ori = {origin[0], origin[1]};
sitk::AffineTransform t(matrix, translation, ori);
sitk::InterpolatorEnum interpolator = (bspline_or_nn == false) ? sitk::sitkBSpline : sitk::sitkNearestNeighbor;
image = sitk::Resample(image, t, interpolator);
return image;
} catch (const std::exception &exc) {
cerr << exc.what();
return image;
}
}
extern "C" void
interp_u8(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
uint8_t** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkUInt8);
im = interp(transform, origin, im, bspline_or_nn);
uint8_t* c = im.GetBufferAsUInt8();
memcpy(*image, c, width * height);
}
extern "C" void
interp_i8(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
int8_t** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkInt8);
im = interp(transform, origin, im, bspline_or_nn);
int8_t* c = im.GetBufferAsInt8();
memcpy(*image, c, width * height);
}
extern "C" void
interp_u16(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
uint16_t** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkUInt16);
im = interp(transform, origin, im, bspline_or_nn);
uint16_t* c = im.GetBufferAsUInt16();
memcpy(*image, c, width * height);
}
extern "C" void
interp_i16(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
int16_t** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkInt16);
im = interp(transform, origin, im, bspline_or_nn);
int16_t* c = im.GetBufferAsInt16();
memcpy(*image, c, width * height);
}
extern "C" void
interp_u32(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
uint32_t** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkUInt32);
im = interp(transform, origin, im, bspline_or_nn);
uint32_t* c = im.GetBufferAsUInt32();
memcpy(*image, c, width * height);
}
extern "C" void
interp_i32(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
int32_t** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkInt32);
im = interp(transform, origin, im, bspline_or_nn);
int32_t* c = im.GetBufferAsInt32();
memcpy(*image, c, width * height);
}
extern "C" void
interp_u64(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
uint64_t** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkUInt64);
im = interp(transform, origin, im, bspline_or_nn);
uint64_t* c = im.GetBufferAsUInt64();
memcpy(*image, c, width * height);
}
extern "C" void
interp_i64(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
int64_t** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkInt64);
im = interp(transform, origin, im, bspline_or_nn);
int64_t* c = im.GetBufferAsInt64();
memcpy(*image, c, width * height);
}
extern "C" void
interp_f32(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
float** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkFloat32);
im = interp(transform, origin, im, bspline_or_nn);
float* c = im.GetBufferAsFloat();
memcpy(*image, c, width * height);
}
extern "C" void
interp_f64(
unsigned int width,
unsigned int height,
double* transform,
double* origin,
double** image,
bool bspline_or_nn
) {
sitk::Image im = make_image(width, height, *image, sitk::PixelIDValueEnum::sitkFloat64);
im = interp(transform, origin, im, bspline_or_nn);
double* c = im.GetBufferAsDouble();
memcpy(*image, c, width * height);
}
void
reg(
sitk::Image fixed,
sitk::Image moving,
bool t_or_a,
double** transform
) {
try {
string kind = (t_or_a == false) ? "translation" : "affine";
sitk::ElastixImageFilter tfilter = sitk::ElastixImageFilter();
tfilter.LogToConsoleOff();
tfilter.SetFixedImage(fixed);
tfilter.SetMovingImage(moving);
tfilter.SetParameterMap(sitk::GetDefaultParameterMap(kind));
tfilter.Execute();
sitk::ElastixImageFilter::ParameterMapType parameter_map = tfilter.GetTransformParameterMap(0);
for (sitk::ElastixImageFilter::ParameterMapType::iterator parameter = parameter_map.begin(); parameter != parameter_map.end(); ++parameter) {
if (parameter->first == "TransformParameters") {
vector<string> tp = parameter->second;
if (t_or_a == true) {
for (int j = 0; j < tp.size(); j++) {
(*transform)[j] = stod(tp[j]);
}
} else {
(*transform)[0] = 1.0;
(*transform)[1] = 0.0;
(*transform)[2] = 0.0;
(*transform)[3] = 1.0;
for (int j = 0; j < tp.size(); j++) {
(*transform)[j + 4] = stod(tp[j]);
}
}
}
}
} catch (const std::exception &exc) {
cerr << exc.what();
}
}
extern "C" void
register_u8(
unsigned int width,
unsigned int height,
uint8_t* fixed_arr,
uint8_t* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkUInt8;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_i8(
unsigned int width,
unsigned int height,
int8_t* fixed_arr,
int8_t* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkInt8;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_u16(
unsigned int width,
unsigned int height,
uint16_t* fixed_arr,
uint16_t* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkUInt16;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_i16(
unsigned int width,
unsigned int height,
int16_t* fixed_arr,
int16_t* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkInt16;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_u32(
unsigned int width,
unsigned int height,
uint32_t* fixed_arr,
uint32_t* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkUInt32;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_i32(
unsigned int width,
unsigned int height,
int32_t* fixed_arr,
int32_t* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkInt32;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_u64(
unsigned int width,
unsigned int height,
uint64_t* fixed_arr,
uint64_t* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkUInt64;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_i64(
unsigned int width,
unsigned int height,
int64_t* fixed_arr,
int64_t* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkInt64;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_f32(
unsigned int width,
unsigned int height,
float* fixed_arr,
float* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkFloat32;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}
extern "C" void
register_f64(
unsigned int width,
unsigned int height,
double* fixed_arr,
double* moving_arr,
bool t_or_a,
double** transform
) {
sitk::PixelIDValueEnum id = sitk::PixelIDValueEnum::sitkFloat64;
sitk::Image fixed = make_image(width, height, fixed_arr, id);
sitk::Image moving = make_image(width, height, moving_arr, id);
reg(fixed, moving, t_or_a, transform);
}

BIN
interp_test.tif Normal file

Binary file not shown.

282
src/lib.rs Normal file
View File

@@ -0,0 +1,282 @@
mod sys;
use crate::sys::{PixelType, interp, register};
use anyhow::{Result, anyhow};
use ndarray::{Array2, ArrayView2, array, s};
use std::ops::Mul;
use std::path::PathBuf;
#[derive(Clone, Debug)]
pub struct Transform {
pub parameters: [f64; 6],
pub dparameters: [f64; 6],
pub origin: [f64; 2],
pub shape: [usize; 2],
}
impl Mul for Transform {
type Output = Transform;
#[allow(clippy::suspicious_arithmetic_impl)]
fn mul(self, other: Transform) -> Transform {
let m = self.matrix().dot(&other.matrix());
let dm = self.dmatrix().dot(&other.matrix()) + self.matrix().dot(&other.dmatrix());
Transform {
parameters: [
m[[0, 0]],
m[[0, 1]],
m[[1, 0]],
m[[1, 1]],
m[[2, 0]],
m[[2, 1]],
],
dparameters: [
dm[[0, 0]],
dm[[0, 1]],
dm[[1, 0]],
dm[[1, 1]],
dm[[2, 0]],
dm[[2, 1]],
],
origin: self.origin,
shape: self.shape,
}
}
}
impl Transform {
/// parameters: flat 2x2 part of matrix, translation; origin: center of rotation
pub fn new(parameters: [f64; 6], origin: [f64; 2], shape: [usize; 2]) -> Self {
Self {
parameters,
dparameters: [0f64; 6],
origin,
shape,
}
}
/// find the affine transform which transforms moving into fixed
pub fn register_affine<T: PixelType>(
fixed: ArrayView2<T>,
moving: ArrayView2<T>,
) -> Result<Transform> {
let (parameters, origin, shape) = register(fixed, moving, true)?;
Ok(Transform {
parameters,
dparameters: [0f64; 6],
origin,
shape,
})
}
/// find the translation which transforms moving into fixed
pub fn register_translation<T: PixelType>(
fixed: ArrayView2<T>,
moving: ArrayView2<T>,
) -> Result<Transform> {
let (parameters, origin, shape) = register(fixed, moving, false)?;
Ok(Transform {
parameters,
dparameters: [0f64; 6],
origin,
shape,
})
}
/// create a transform from a xy translation
pub fn from_translation(translation: [f64; 2]) -> Self {
Transform {
parameters: [1f64, 0f64, 0f64, 1f64, translation[0], translation[1]],
dparameters: [0f64; 6],
origin: [0f64; 2],
shape: [0usize; 2],
}
}
/// read a transform from a file
pub fn from_file(file: PathBuf) -> Result<Self> {
todo!()
}
/// write a transform to a file
pub fn to_file(&self, file: PathBuf) -> Result<()> {
todo!()
}
/// true if transform does nothing
pub fn is_unity(&self) -> bool {
self.parameters == [1f64, 0f64, 0f64, 1f64, 0f64, 0f64]
}
/// transform an image using nearest neighbor interpolation
pub fn transform_image_bspline<T: PixelType>(&self, image: ArrayView2<T>) -> Result<Array2<T>> {
interp(self.parameters, self.origin, image, false)
}
/// transform an image using bspline interpolation
pub fn transform_image_nearest_neighbor<T: PixelType>(
&self,
image: ArrayView2<T>,
) -> Result<Array2<T>> {
interp(self.parameters, self.origin, image, true)
}
/// get coordinates resulting from transforming input coordinates
pub fn transform_coordinates<T>(&self, coordinates: ArrayView2<T>) -> Result<Array2<f64>>
where
T: Clone + Into<f64>,
{
let s = coordinates.shape();
if s[1] != 2 {
return Err(anyhow!("coordinates must have two columns"));
}
let m = self.matrix();
let mut res = Array2::zeros([s[0], s[1]]);
for i in 0..s[0] {
let a = array![
coordinates[[i, 0]].clone().into(),
coordinates[[i, 1]].clone().into(),
1f64
]
.to_owned();
let b = m.dot(&a);
res.slice_mut(s![i, ..]).assign(&b.slice(s![..2]));
}
Ok(res)
}
/// get the matrix defining the transform
pub fn matrix(&self) -> Array2<f64> {
Array2::from_shape_vec(
(3, 3),
vec![
self.parameters[0],
self.parameters[1],
self.parameters[4],
self.parameters[2],
self.parameters[3],
self.parameters[5],
0f64,
0f64,
1f64,
],
)
.unwrap()
}
/// get the matrix describing the error of the transform
pub fn dmatrix(&self) -> Array2<f64> {
Array2::from_shape_vec(
(3, 3),
vec![
self.dparameters[0],
self.dparameters[1],
self.dparameters[4],
self.dparameters[2],
self.dparameters[3],
self.dparameters[5],
0f64,
0f64,
1f64,
],
)
.unwrap()
}
/// get the inverse transform
pub fn inverse(&self) -> Result<Transform> {
fn det(a: ArrayView2<f64>) -> f64 {
(a[[0, 0]] * a[[1, 1]]) - (a[[0, 1]] * a[[1, 0]])
}
let m = self.matrix();
let d0 = det(m.slice(s![1.., 1..]));
if d0 == 0f64 {
return Err(anyhow!("transform matrix is not invertible"));
}
let d2 = det(m.slice(s![..2, ..2]));
let parameters = [
d0 / d2,
-det(m.slice(s![..;2, 1..])) / d2,
-det(m.slice(s![1.., ..;2])) / d2,
det(m.slice(s![..;2, ..;2])) / d2,
det(m.slice(s![..2, 1..])) / d2,
-det(m.slice(s![..2, ..;2])) / d2,
];
Ok(Transform {
parameters,
dparameters: [0f64; 6],
origin: self.origin,
shape: self.shape,
})
}
/// adapt the transform to a new origin and shape
pub fn adapt(&mut self, origin: [f64; 2], shape: [usize; 2]) {
self.origin = [
origin[0] + (((self.shape[0] - shape[0]) as f64) / 2f64),
origin[1] + (((self.shape[1] - shape[1]) as f64) / 2f64),
];
self.shape = shape;
}
}
#[cfg(test)]
mod tests {
use super::*;
use anyhow::Result;
use ndarray::Array2;
use num::Complex;
use tiffwrite::IJTiffFile;
/// An example of generating julia fractals.
fn julia_image() -> Result<Array2<u8>> {
let imgx = 800;
let imgy = 600;
let scalex = 3.0 / imgx as f32;
let scaley = 3.0 / imgy as f32;
let mut im = Array2::<u8>::zeros((imgy, imgx));
for x in 0..imgx {
for y in 0..imgy {
let cx = y as f32 * scalex - 1.5;
let cy = x as f32 * scaley - 1.5;
let c = Complex::new(-0.4, 0.6);
let mut z = Complex::new(cx, cy);
let mut i = 0;
while i < 255 && z.norm() <= 2.0 {
z = z * z + c;
i += 1;
}
im[[y, x]] = i as u8;
}
}
Ok(im)
}
#[test]
fn test_interp() -> Result<()> {
let j = julia_image()?;
let mut tif = IJTiffFile::new("interp_test.tif")?;
tif.save(&j, 0, 0, 0)?;
let shape = j.shape();
let origin = [
((shape[1] - 1) as f64) / 2f64,
((shape[0] - 1) as f64) / 2f64,
];
let transform = Transform::new([1.2, 0., 0., 1., 10., 0.], origin, [shape[0], shape[1]]);
let k = transform.transform_image_bspline(j.view())?;
tif.save(&k, 1, 0, 0)?;
let t = Transform::register_affine(k.view(), j.view())?;
println!("t: {:#?}", t);
println!("m: {:#?}", t.matrix());
println!("i: {:#?}", t.inverse()?.matrix());
Ok(())
}
}

359
src/sys.rs Normal file
View File

@@ -0,0 +1,359 @@
use anyhow::Result;
use libc::{c_double, c_uint};
use ndarray::{Array2, ArrayView2};
use std::ptr;
macro_rules! register_fn {
($T:ty, $t:ident) => {
fn $t(
width: c_uint,
height: c_uint,
fixed_arr: *const $T,
moving_arr: *const $T,
translation_or_affine: bool,
transform: &mut *mut c_double,
);
};
}
macro_rules! interp_fn {
($T:ty, $t:ident) => {
fn $t(
width: c_uint,
height: c_uint,
transform: *const c_double,
origin: *const c_double,
image: &mut *mut $T,
bspline_or_nn: bool,
);
};
}
unsafe extern "C" {
register_fn!(u8, register_u8);
register_fn!(i8, register_i8);
register_fn!(u16, register_u16);
register_fn!(i16, register_i16);
register_fn!(u32, register_u32);
register_fn!(i32, register_i32);
register_fn!(u64, register_u64);
register_fn!(i64, register_i64);
register_fn!(f32, register_f32);
register_fn!(f64, register_f64);
interp_fn!(u8, interp_u8);
interp_fn!(i8, interp_i8);
interp_fn!(u16, interp_u16);
interp_fn!(i16, interp_i16);
interp_fn!(u32, interp_u32);
interp_fn!(i32, interp_i32);
interp_fn!(u64, interp_u64);
interp_fn!(i64, interp_i64);
interp_fn!(f32, interp_f32);
interp_fn!(f64, interp_f64);
}
pub trait PixelType: Clone {
const PT: u8;
}
macro_rules! sitk_impl {
($T:ty, $sitk:expr) => {
impl PixelType for $T {
const PT: u8 = $sitk;
}
};
}
sitk_impl!(u8, 1);
sitk_impl!(i8, 2);
sitk_impl!(u16, 3);
sitk_impl!(i16, 4);
sitk_impl!(u32, 5);
sitk_impl!(i32, 6);
sitk_impl!(u64, 7);
sitk_impl!(i64, 8);
#[cfg(target_pointer_width = "64")]
sitk_impl!(usize, 7);
#[cfg(target_pointer_width = "32")]
sitk_impl!(usize, 5);
#[cfg(target_pointer_width = "64")]
sitk_impl!(isize, 8);
#[cfg(target_pointer_width = "32")]
sitk_impl!(isize, 6);
sitk_impl!(f32, 9);
sitk_impl!(f64, 10);
pub(crate) fn interp<T: PixelType>(
parameters: [f64; 6],
origin: [f64; 2],
image: ArrayView2<T>,
bspline_or_nn: bool,
) -> Result<Array2<T>> {
let shape: Vec<usize> = image.shape().to_vec();
let width = shape[1] as c_uint;
let height = shape[0] as c_uint;
let mut im: Vec<_> = image.into_iter().cloned().collect();
let im_ptr: *mut T = ptr::from_mut(unsafe { &mut *im.as_mut_ptr() });
match T::PT {
1 => unsafe {
interp_u8(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut u8),
bspline_or_nn,
);
},
2 => unsafe {
interp_i8(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut i8),
bspline_or_nn,
);
},
3 => unsafe {
interp_u16(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut u16),
bspline_or_nn,
);
},
4 => unsafe {
interp_i16(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut i16),
bspline_or_nn,
);
},
5 => unsafe {
interp_u32(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut u32),
bspline_or_nn,
);
},
6 => unsafe {
interp_i32(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut i32),
bspline_or_nn,
);
},
7 => unsafe {
interp_u64(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut u64),
bspline_or_nn,
);
},
8 => unsafe {
interp_i64(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut i64),
bspline_or_nn,
);
},
9 => unsafe {
interp_f32(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut f32),
bspline_or_nn,
);
},
10 => unsafe {
interp_f64(
width,
height,
parameters.as_ptr(),
origin.as_ptr(),
&mut (im_ptr as *mut f64),
bspline_or_nn,
);
},
_ => {}
}
Ok(Array2::from_shape_vec(
(shape[0], shape[1]),
im.into_iter().collect(),
)?)
}
pub(crate) fn register<T: PixelType>(
fixed: ArrayView2<T>,
moving: ArrayView2<T>,
translation_or_affine: bool,
) -> Result<([f64; 6], [f64; 2], [usize; 2])> {
let shape: Vec<usize> = fixed.shape().to_vec();
let width = shape[1] as c_uint;
let height = shape[0] as c_uint;
let fixed: Vec<_> = fixed.into_iter().collect();
let moving: Vec<_> = moving.into_iter().collect();
let mut transform: Vec<c_double> = vec![0.0; 6];
let mut transform_ptr: *mut c_double = ptr::from_mut(unsafe { &mut *transform.as_mut_ptr() });
match T::PT {
1 => {
unsafe {
register_u8(
width,
height,
fixed.as_ptr() as *const u8,
moving.as_ptr() as *const u8,
translation_or_affine,
&mut transform_ptr,
)
};
}
2 => {
unsafe {
register_i8(
width,
height,
fixed.as_ptr() as *const i8,
moving.as_ptr() as *const i8,
translation_or_affine,
&mut transform_ptr,
)
};
}
3 => {
unsafe {
register_u16(
width,
height,
fixed.as_ptr() as *const u16,
moving.as_ptr() as *const u16,
translation_or_affine,
&mut transform_ptr,
)
};
}
4 => {
unsafe {
register_i16(
width,
height,
fixed.as_ptr() as *const i16,
moving.as_ptr() as *const i16,
translation_or_affine,
&mut transform_ptr,
)
};
}
5 => {
unsafe {
register_u32(
width,
height,
fixed.as_ptr() as *const u32,
moving.as_ptr() as *const u32,
translation_or_affine,
&mut transform_ptr,
)
};
}
6 => {
unsafe {
register_i32(
width,
height,
fixed.as_ptr() as *const i32,
moving.as_ptr() as *const i32,
translation_or_affine,
&mut transform_ptr,
)
};
}
7 => {
unsafe {
register_u64(
width,
height,
fixed.as_ptr() as *const u64,
moving.as_ptr() as *const u64,
translation_or_affine,
&mut transform_ptr,
)
};
}
8 => {
unsafe {
register_i64(
width,
height,
fixed.as_ptr() as *const i64,
moving.as_ptr() as *const i64,
translation_or_affine,
&mut transform_ptr,
)
};
}
9 => {
unsafe {
register_f32(
width,
height,
fixed.as_ptr() as *const f32,
moving.as_ptr() as *const f32,
translation_or_affine,
&mut transform_ptr,
)
};
}
10 => {
unsafe {
register_f64(
width,
height,
fixed.as_ptr() as *const f64,
moving.as_ptr() as *const f64,
translation_or_affine,
&mut transform_ptr,
)
};
}
_ => {}
}
Ok((
[
transform[0] as f64,
transform[1] as f64,
transform[2] as f64,
transform[3] as f64,
transform[4] as f64,
transform[5] as f64,
],
[
((shape[0] - 1) as f64) / 2f64,
((shape[1] - 1) as f64) / 2f64,
],
[shape[0], shape[1]],
))
}