When dealing with thin objects we really have two thicknesses to
consider, the thickness in the direction of the normal, which
corresponds to the value used for solid objects, and the thickness of
the object's walls, which generally is a constant.
Reusing thickness in the later case is problematic for assets that have
a thickness map, but are rendered hollow.
In the future we can even imagine handling double-sided hollow objects
by using the thickness information -- e.g. a hollow cube.
Normally the IOR is deduced from the reflectance, but now we allow to
specify the IOR instead or in addition to the reflectance.
In the later case, it's possible to create physically impossible
materials, but this can be useful for artistic reasons.
For the street light glb from the Khronos suite, this reduces texture
loading time from 290 ms to 110 ms.
Stay tuned for another feature: notification callbacks.
Related to #1876.
TrackingPolicy::Debug didn't store the base pointer of the Area, and
instead relied on the first allocation to discover it, however, because
of alignment, the first allocation may not match the base pointer.
Because of that there could be an overflow in onRewind(), i.e. we
could rewind to a pointer before the (wrongly computed) base. This
overflow caused the debug memset to go awry and stomped on memory.
This is fixed by passing the base pointer to the constructor of the
TrackingPolicy. This base pointer could be nullptr with certain
allocators, but in that case, onReset/onRewind should never be called;
and this is enforced at compile time.
Also fixed a (luckily) harmless buffer overflow when preparing the
dynamic lights, if the number of lights wasn't a multiple of 4. This
was harmless because we use a linear allocator, so overflows are not
really overflows.
Clients who do not yet have this fix can usually work around this issue
by calling the non-array overload of `MaterialInstance::setParameter`
when the array size is 1.
This was caught by ASAN.
Our algorithm header has many one-liners that compute the "next power of
two length / 2" but they all have the caveat that if the input is
already POT, then the "/ 2" part does not occur.
Usually we deal with this by testing the difference against zero.
However in `partition_point` we were skipping the test, thus causing a
potential out-of-bounds access.
I fixed `partition_point` and added a few more tests for non-POT cases.
- we use by-value parameters in some places, which helps the compiler
(not sure why, but assuming references can be aliased and the
compiler is cautious about that).
This helps matrix multiplies (which is almost never inlined) and
transpose (but that's almost always inlined and merged with
something else, so the gain here is not completely real)
- remove support for matrices-of-matrices because this wasn't complete
anyways.
- improve matrix * scalar by inlining the loop manually instead of
going through *=, this saves some extra writes.
Sparse accessors are easy to punt gracefully, we can emit a warning
and instead use the dense "base" data.
Also, after cgltf support for this lands, we will need to apply sparse
data in ResourceLoader, so this adds a bit of plumbing to prep for that.
Relates to #1727.
These constants are not part of the standard. We instead use our own
constexpr definitions in the filament::math namespace, as part of
the scalar.h include.
* Add the ability to modify clip space coordinates in the vertex shader
This introduces MaterialVertexInputs.clipSpaceTransform, a mat4 that
is applied to gl_Position before exiting the vertex stage.
* Address code review comments
* Lower limit from API 21 to API 19
This was requested by an internal application. API 19 is when OpenGL
ES 3.0 support was added so there is no good reason for us to not
support this API level. The only trick is to avoid referring to the
glTexStorage2DMultisample symbol directly as it only exists in 3.1.
* Compile out code we never use
* Use reflection to handle shared EGL contexts pre-API 21.
* Remove comment
* More fixes required to run on API level 19
- dlym() fails for ashmem on API 19, so we only try on API 26+ instead.
- Older emulation for OpenGL ES 3.0 returns error states for valid API calls so we need to clear the GL error bit before we create the GL driver.
- Activity lifecycle changes since API 19 would cause animations to keep running and to reference destroyed objects.
- EGLContext.getNativeHandle() is new in API 21, we need to use reflection on API 19. The new code path uses the class loading trick to avoid a bytecode verification error on API 19.
* Filament now runs properly on API level 19
This commit adds a new api_level() API to libutils which can be used to
query the platform's API level. On Android it works as expected, other
platforms currently return 0.
the C++ standard says:
if T is a class type with a default constructor that is neither
user-provided nor deleted (that is, it may be a class with an
implicitly-defined or defaulted default constructor), the object
is zero-initialized and then it is default-initialized if it has a
non-trivial default constructor
Unfortunately, MSVC always calls the default constructor, even if it
is trivial, which breaks constexpr-ness.
To workaround this, we're always zero-initializing TVecN<>
Also removed constexpr from default constructors, since they never can
be constexpr as they're not initializing the vector.