0

In OpenGL, when sampling a texture, what is the precision or format used for the location?

To elaborate: when sampling with texture(sampler, vTextureCoordinates) in a shader, on e.g. precision highp float, two float32+ go in. However, is that precision used to sample the texture, or will it be degraded (e.g. "snapped to fixed point" like in d3d)?


While I am primarily interested in WebGL2, this would also be interesting to know for other OpenGL versions.

My current guess is, that it will be truncated to a 16-bit normalized unsigned integer, but I am not sure. Perhaps it is also unspecified, in which case, what can be depended upon?

This is related to my texture-coordinate-inaccuracy question. Now that I have several hints, that this degradation might really take place, I can ask about the specific part. Should sampling precision indeed be a 16-bit normalized integer, I could also close that one.

1 Answer 1

1

This is a function of the hardware, not the graphics API commanding that hardware. So it doesn't matter if you're using D3D, WebGL, Vulkan, or whatever, the precision of texture coordinate sampling is based on the hardware you're running on.

Most APIs don't actually tell you what this precision is. They will generally require some minimum precision, but hardware can vary.

Vulkan actually allows implementations to tell you the sub-texel precision. The minimum requirement is 4 bits of sub-texel precision (16 values). The Vulkan hardware database shows that hardware varies between 4 and 8, with 8 being 10x more common than 4.

2
  • 1
    DirectX 11 requires 8-bits of sub-texel accuracy, so even though not required by OpenGL most hardware implementations are likely to want to align with cross-API requirements. (See learn.microsoft.com/en-us/windows/win32/direct3d11/…)
    – solidpixel
    Jan 24 at 23:23
  • Thanks! Important for me was also noticing, that scaling is typically done first, then conversion to fixed-point, and it's usually something like a 16.8 fixed-point, not one representing the range [0, 1] (the latter in hindsight would also be rather inconvenient, but I had only found the page for normalized integers). For a bit I wondered, why precision and texture-size aren't correlated.
    – Doofus
    Jan 25 at 17:47

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.