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Generalized deep 3d shape prior via part-discretized diffusion process
We develop a generalized 3D shape generation prior model, tailored for multiple 3D tasks
including unconditional shape generation, point cloud completion, and cross-modality …
including unconditional shape generation, point cloud completion, and cross-modality …
Neural template: Topology-aware reconstruction and disentangled generation of 3d meshes
This paper introduces a novel framework called DT-Net for 3D mesh reconstruction and
generation via Disentangled Topology. Beyond previous works, we learn a topology-aware …
generation via Disentangled Topology. Beyond previous works, we learn a topology-aware …
DeepMesh: mesh-based cardiac motion tracking using deep learning
3D motion estimation from cine cardiac magnetic resonance (CMR) images is important for
the assessment of cardiac function and the diagnosis of cardiovascular diseases. Current …
the assessment of cardiac function and the diagnosis of cardiovascular diseases. Current …
Robust Shape Fitting for 3D Scene Abstraction
Humans perceive and construct the world as an arrangement of simple parametric models.
In particular, we can often describe man-made environments using volumetric primitives …
In particular, we can often describe man-made environments using volumetric primitives …
A review of deep learning-powered mesh reconstruction methods
Z Chen - arxiv preprint arxiv:2303.02879, 2023 - arxiv.org
With the recent advances in hardware and rendering techniques, 3D models have emerged
everywhere in our life. Yet creating 3D shapes is arduous and requires significant …
everywhere in our life. Yet creating 3D shapes is arduous and requires significant …
Neural volumetric mesh generator
Deep generative models have shown success in generating 3D shapes with different
representations. In this work, we propose Neural Volumetric Mesh Generator (NVMG) which …
representations. In this work, we propose Neural Volumetric Mesh Generator (NVMG) which …
3dqd: Generalized deep 3d shape prior via part-discretized diffusion process
We develop a generalized 3D shape generation prior model, tailored for multiple 3D tasks
including unconditional shape generation, point cloud completion, and cross-modality …
including unconditional shape generation, point cloud completion, and cross-modality …
A survey of deep learning-based 3D shape generation
Deep learning has been successfully used for tasks in the 2D image domain. Research on
3D computer vision and deep geometry learning has also attracted attention. Considerable …
3D computer vision and deep geometry learning has also attracted attention. Considerable …
Facevae: Generation of a 3d geometric object using variational autoencoders
S Park, H Kim - Electronics, 2021 - mdpi.com
Deep learning for 3D data has become a popular research theme in many fields. However,
most of the research on 3D data is based on voxels, 2D images, and point clouds. At actual …
most of the research on 3D data is based on voxels, 2D images, and point clouds. At actual …
Design Automation: A Conditional VAE Approach to 3D Object Generation Under Conditions
M Hohmann, S Eilermann, W Großmann… - 2024 IEEE 29th …, 2024 - ieeexplore.ieee.org
Traditionally, engineering designs are created manually by experts. This process can be
time-consuming and requires significant computing resources. Designs are iteratively …
time-consuming and requires significant computing resources. Designs are iteratively …