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MatPredict
MatPredict is a synthetic dataset for material-centric scene understanding. It supports two main tasks:
- Inverse rendering: predict material properties such as albedo, roughness, and metallic maps from RGB images.
- Material segmentation: predict material regions or material classes from RGB images.
The dataset contains rendered object variants with paired RGB images, material property maps, segmentation labels, camera transforms, and metadata.
Dataset Structure
MatPredict/
material_segmentation_map.yaml
config/
object_disjoint_v1.yaml
variance_disjoint_v1.yaml
<object_name>/
<variant_name>/
images/ # RGB input images
albedo/ # base color targets
ORM/ # packed material map; roughness=G, metallic=B
label/ # material segmentation labels
depth/
normal_mat/
normal_obj/
transforms.json
metadata.json
material_segmentation_map.json
Tasks
Inverse Rendering
Input:
images/*.png
Targets:
albedo/*.png
ORM/*.png
Material Segmentation
Input:
images/*.png
Target:
label/*.png
Splits
The dataset includes two split files:
config/object_disjoint_v1.yaml: train, validation, and test sets use disjoint object identities.config/variance_disjoint_v1.yaml: train, validation, and test sets use disjoint material/rendering variants.
Both split files store relative sample ids in the form:
<object_name>/<variant_name>/<frame_id>
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