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@@ -880,194 +880,87 @@ bool radv_format_pack_clear_color(VkFormat format, |
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uint32_t clear_vals[2], |
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VkClearColorValue *value) |
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{ |
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uint8_t r = 0, g = 0, b = 0, a = 0; |
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const struct vk_format_description *desc = vk_format_description(format); |
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if (vk_format_get_component_bits(format, VK_FORMAT_COLORSPACE_RGB, 0) <= 8) { |
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if (desc->colorspace == VK_FORMAT_COLORSPACE_RGB) { |
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r = float_to_ubyte(value->float32[0]); |
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g = float_to_ubyte(value->float32[1]); |
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b = float_to_ubyte(value->float32[2]); |
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a = float_to_ubyte(value->float32[3]); |
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} else if (desc->colorspace == VK_FORMAT_COLORSPACE_SRGB) { |
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r = util_format_linear_float_to_srgb_8unorm(value->float32[0]); |
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g = util_format_linear_float_to_srgb_8unorm(value->float32[1]); |
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b = util_format_linear_float_to_srgb_8unorm(value->float32[2]); |
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a = float_to_ubyte(value->float32[3]); |
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} |
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} |
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switch (format) { |
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case VK_FORMAT_R8_UNORM: |
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case VK_FORMAT_R8_SRGB: |
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clear_vals[0] = r; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R8G8_UNORM: |
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case VK_FORMAT_R8G8_SRGB: |
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clear_vals[0] = r | g << 8; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R8G8B8A8_SRGB: |
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case VK_FORMAT_R8G8B8A8_UNORM: |
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clear_vals[0] = r | g << 8 | b << 16 | a << 24; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_B8G8R8A8_SRGB: |
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case VK_FORMAT_B8G8R8A8_UNORM: |
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clear_vals[0] = b | g << 8 | r << 16 | a << 24; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_A8B8G8R8_UNORM_PACK32: |
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case VK_FORMAT_A8B8G8R8_SRGB_PACK32: |
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clear_vals[0] = r | g << 8 | b << 16 | a << 24; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R8_UINT: |
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clear_vals[0] = value->uint32[0] & 0xff; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R8_SINT: |
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clear_vals[0] = value->int32[0] & 0xff; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R16_UINT: |
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clear_vals[0] = value->uint32[0] & 0xffff; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R8G8_UINT: |
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clear_vals[0] = value->uint32[0] & 0xff; |
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clear_vals[0] |= (value->uint32[1] & 0xff) << 8; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R8G8_SINT: |
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clear_vals[0] = value->int32[0] & 0xff; |
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clear_vals[0] |= (value->int32[1] & 0xff) << 8; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R8G8B8A8_UINT: |
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clear_vals[0] = value->uint32[0] & 0xff; |
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clear_vals[0] |= (value->uint32[1] & 0xff) << 8; |
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clear_vals[0] |= (value->uint32[2] & 0xff) << 16; |
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clear_vals[0] |= (value->uint32[3] & 0xff) << 24; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R8G8B8A8_SINT: |
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clear_vals[0] = value->int32[0] & 0xff; |
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clear_vals[0] |= (value->int32[1] & 0xff) << 8; |
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clear_vals[0] |= (value->int32[2] & 0xff) << 16; |
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clear_vals[0] |= (value->int32[3] & 0xff) << 24; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_A8B8G8R8_UINT_PACK32: |
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clear_vals[0] = value->uint32[0] & 0xff; |
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clear_vals[0] |= (value->uint32[1] & 0xff) << 8; |
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clear_vals[0] |= (value->uint32[2] & 0xff) << 16; |
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clear_vals[0] |= (value->uint32[3] & 0xff) << 24; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R16G16_UINT: |
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clear_vals[0] = value->uint32[0] & 0xffff; |
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clear_vals[0] |= (value->uint32[1] & 0xffff) << 16; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R16G16B16A16_UINT: |
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clear_vals[0] = value->uint32[0] & 0xffff; |
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clear_vals[0] |= (value->uint32[1] & 0xffff) << 16; |
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clear_vals[1] = value->uint32[2] & 0xffff; |
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clear_vals[1] |= (value->uint32[3] & 0xffff) << 16; |
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break; |
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case VK_FORMAT_R32_UINT: |
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clear_vals[0] = value->uint32[0]; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R32G32_UINT: |
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clear_vals[0] = value->uint32[0]; |
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clear_vals[1] = value->uint32[1]; |
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break; |
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case VK_FORMAT_R32_SINT: |
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clear_vals[0] = value->int32[0]; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R16_SFLOAT: |
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clear_vals[0] = util_float_to_half(value->float32[0]); |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R16G16_SFLOAT: |
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clear_vals[0] = util_float_to_half(value->float32[0]); |
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clear_vals[0] |= (uint32_t)util_float_to_half(value->float32[1]) << 16; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R16G16B16A16_SFLOAT: |
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clear_vals[0] = util_float_to_half(value->float32[0]); |
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clear_vals[0] |= (uint32_t)util_float_to_half(value->float32[1]) << 16; |
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clear_vals[1] = util_float_to_half(value->float32[2]); |
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clear_vals[1] |= (uint32_t)util_float_to_half(value->float32[3]) << 16; |
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break; |
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case VK_FORMAT_R16_UNORM: |
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clear_vals[0] = ((uint16_t)util_iround(CLAMP(value->float32[0], 0.0f, 1.0f) * 0xffff)) & 0xffff; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R16G16_UNORM: |
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clear_vals[0] = ((uint16_t)util_iround(CLAMP(value->float32[0], 0.0f, 1.0f) * 0xffff)) & 0xffff; |
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clear_vals[0] |= ((uint16_t)util_iround(CLAMP(value->float32[1], 0.0f, 1.0f) * 0xffff)) << 16; |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R16G16B16A16_UNORM: |
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clear_vals[0] = ((uint16_t)util_iround(CLAMP(value->float32[0], 0.0f, 1.0f) * 0xffff)) & 0xffff; |
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clear_vals[0] |= ((uint16_t)util_iround(CLAMP(value->float32[1], 0.0f, 1.0f) * 0xffff)) << 16; |
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clear_vals[1] = ((uint16_t)util_iround(CLAMP(value->float32[2], 0.0f, 1.0f) * 0xffff)) & 0xffff; |
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clear_vals[1] |= ((uint16_t)util_iround(CLAMP(value->float32[3], 0.0f, 1.0f) * 0xffff)) << 16; |
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break; |
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case VK_FORMAT_R16G16B16A16_SNORM: |
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clear_vals[0] = ((uint16_t)util_iround(CLAMP(value->float32[0], -1.0f, 1.0f) * 0x7fff)) & 0xffff; |
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clear_vals[0] |= ((uint16_t)util_iround(CLAMP(value->float32[1], -1.0f, 1.0f) * 0x7fff)) << 16; |
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clear_vals[1] = ((uint16_t)util_iround(CLAMP(value->float32[2], -1.0f, 1.0f) * 0x7fff)) & 0xffff; |
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clear_vals[1] |= ((uint16_t)util_iround(CLAMP(value->float32[3], -1.0f, 1.0f) * 0x7fff)) << 16; |
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break; |
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case VK_FORMAT_A2B10G10R10_UNORM_PACK32: |
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clear_vals[0] = ((uint16_t)util_iround(CLAMP(value->float32[0], 0.0f, 1.0f) * 0x3ff)) & 0x3ff; |
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clear_vals[0] |= (((uint16_t)util_iround(CLAMP(value->float32[1], 0.0f, 1.0f) * 0x3ff)) & 0x3ff) << 10; |
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clear_vals[0] |= (((uint16_t)util_iround(CLAMP(value->float32[2], 0.0f, 1.0f) * 0x3ff)) & 0x3ff) << 20; |
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clear_vals[0] |= (((uint16_t)util_iround(CLAMP(value->float32[3], 0.0f, 1.0f) * 0x3)) & 0x3) << 30; |
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clear_vals[1] = 0; |
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return true; |
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case VK_FORMAT_R32G32_SFLOAT: |
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clear_vals[0] = fui(value->float32[0]); |
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clear_vals[1] = fui(value->float32[1]); |
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break; |
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case VK_FORMAT_R32_SFLOAT: |
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clear_vals[1] = 0; |
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clear_vals[0] = fui(value->float32[0]); |
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break; |
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case VK_FORMAT_B10G11R11_UFLOAT_PACK32: |
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if (format == VK_FORMAT_B10G11R11_UFLOAT_PACK32) { |
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clear_vals[0] = float3_to_r11g11b10f(value->float32); |
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clear_vals[1] = 0; |
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break; |
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case VK_FORMAT_R32G32B32A32_SFLOAT: |
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if (value->float32[0] != value->float32[1] || |
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value->float32[0] != value->float32[2]) |
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return false; |
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clear_vals[0] = fui(value->float32[0]); |
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clear_vals[1] = fui(value->float32[3]); |
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break; |
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case VK_FORMAT_R32G32B32A32_UINT: |
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if (value->uint32[0] != value->uint32[1] || |
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value->uint32[0] != value->uint32[2]) |
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return false; |
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return true; |
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} |
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if (desc->layout != VK_FORMAT_LAYOUT_PLAIN) { |
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fprintf(stderr, "failed to fast clear for non-plain format %d\n", format); |
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return false; |
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} |
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if (!util_is_power_of_two_or_zero(desc->block.bits)) { |
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fprintf(stderr, "failed to fast clear for NPOT format %d\n", format); |
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return false; |
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} |
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if (desc->block.bits > 64) { |
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/* |
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* We have a 128 bits format, check if the first 3 components are the same. |
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* Every elements has to be 32 bits since we don't support 64-bit formats, |
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* and we can skip swizzling checks as alpha always comes last for these and |
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* we do not care about the rest as they have to be the same. |
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*/ |
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if (desc->channel[0].type == VK_FORMAT_TYPE_FLOAT) { |
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if (value->float32[0] != value->float32[1] || |
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value->float32[0] != value->float32[2]) |
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return false; |
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} else { |
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if (value->uint32[0] != value->uint32[1] || |
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value->uint32[0] != value->uint32[2]) |
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return false; |
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} |
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clear_vals[0] = value->uint32[0]; |
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clear_vals[1] = value->uint32[3]; |
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break; |
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case VK_FORMAT_R32G32B32A32_SINT: |
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if (value->int32[0] != value->int32[1] || |
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value->int32[0] != value->int32[2]) |
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return true; |
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} |
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uint64_t clear_val = 0; |
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for (unsigned c = 0; c < 4; ++c) { |
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if (desc->swizzle[c] < 0 || desc->swizzle[c] >= 4) |
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continue; |
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const struct vk_format_channel_description *channel = &desc->channel[desc->swizzle[c]]; |
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assert(channel->size); |
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uint64_t v = 0; |
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if (channel->pure_integer) { |
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v = value->uint32[c] & ((1ULL << channel->size) - 1); |
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} else if (channel->normalized) { |
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if (channel->type == VK_FORMAT_TYPE_UNSIGNED && |
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desc->swizzle[c] < 3 && |
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desc->colorspace == VK_FORMAT_COLORSPACE_SRGB) { |
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assert(channel->size == 8); |
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v = util_format_linear_float_to_srgb_8unorm(value->float32[c]); |
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} else if (channel->type == VK_FORMAT_TYPE_UNSIGNED) { |
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v = MAX2(MIN2(value->float32[c], 1.0f), 0.0f) * ((1ULL << channel->size) - 1); |
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} else { |
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v = MAX2(MIN2(value->float32[c], 1.0f), -1.0f) * ((1ULL << (channel->size - 1)) - 1); |
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} |
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} else if (channel->type == VK_FORMAT_TYPE_FLOAT) { |
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if (channel->size == 32) { |
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memcpy(&v, &value->float32[c], 4); |
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} else if(channel->size == 16) { |
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v = util_float_to_half(value->float32[c]); |
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} else { |
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fprintf(stderr, "failed to fast clear for unhandled float size in format %d\n", format); |
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return false; |
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} |
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} else { |
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fprintf(stderr, "failed to fast clear for unhandled component type in format %d\n", format); |
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return false; |
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clear_vals[0] = value->int32[0]; |
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clear_vals[1] = value->int32[3]; |
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break; |
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default: |
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fprintf(stderr, "failed to fast clear %d\n", format); |
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return false; |
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} |
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clear_val |= (v & ((1ULL << channel->size) - 1)) << channel->shift; |
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} |
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clear_vals[0] = clear_val; |
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clear_vals[1] = clear_val >> 32; |
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return true; |
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} |
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