从2D图像中学习可变形的3D对象通常是一个不适的问题。现有方法依赖于明确的监督来建立多视图对应关系,例如模板形状模型和关键点注释,这将其在“野外”中的对象上限制了。建立对应关系的一种更自然的方法是观看四处移动的对象的视频。在本文中,我们介绍了Dove,一种方法,可以从在线可用的单眼视频中学习纹理的3D模型,而无需关键点,视点或模板形状监督。通过解决对称性诱导的姿势歧义并利用视频中的时间对应关系,该模型会自动学会从每个单独的RGB框架中分解3D形状,表达姿势和纹理,并准备在测试时间进行单像推断。在实验中,我们表明现有方法无法学习明智的3D形状,而无需其他关键点或模板监督,而我们的方法在时间上产生了时间一致的3D模型,可以从任意角度来对其进行动画和呈现。
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从单眼图像中恢复纹理的3D网格是高度挑战的,尤其是对于缺乏3D地面真理的野外物体。在这项工作中,我们提出了网络文化,这是一个新的框架,可通过利用3D GAN预先训练的3D纹理网格合成的3D GAN的生成性先验。重建是通过在3D GAN中搜索最类似于目标网格的潜在空间来实现重建。由于预先训练的GAN以网状几何形状和纹理封装了丰富的3D语义,因此在GAN歧管内进行搜索,因此自然地使重建的真实性和忠诚度正常。重要的是,这种正则化直接应用于3D空间,从而提供了在2D空间中未观察到的网格零件的关键指导。标准基准测试的实验表明,我们的框架获得了忠实的3D重建,并在观察到的部分和未观察到的部分中都具有一致的几何形状和纹理。此外,它可以很好地推广到不太常见的网格中,例如可变形物体的扩展表达。代码在https://github.com/junzhezhang/mesh-inversion上发布
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通过手动创建或使用3D扫描工具来创建高质量的铰接3D动物3D模型。因此,从2D图像重建铰接的3D对象的技术至关重要且非常有用。在这项工作中,我们提出了一个实用问题设置,以估算只有几个(10-30)特定动物物种(例如马)的野外图像(Horse)的3D姿势和形状。与依赖于预定义模板形状的现有作品相反,我们不假设任何形式的2D或3D地面真相注释,也不利用任何多视图或时间信息。此外,每个输入图像合奏都可以包含具有不同姿势,背景,照明和纹理的动物实例。我们的主要见解是,与整体动物相比,3D零件的形状要简单得多,并且它们是强大的W.R.T.动物姿势关节。遵循这些见解,我们提出了Lassie,这是一个新颖的优化框架,以最少的用户干预以自我监督的方式发现3D部分。 Lassie背后的关键推动力是使用自我篇幅的深度功能实现2D-3D零件的一致性。与先前的艺术相比,关于Pascal-Part和自我收集的野生动物数据集的实验表明,3D重建以及2D和3D部分的发现都更好。项目页面:chhankyo.github.io/lassie/
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单视图重建的方法通常依赖于观点注释,剪影,缺乏背景,同一实例的多个视图,模板形状或对称性。我们通过明确利用不同对象实例的图像之间的一致性来避免所有此类监督和假设。结果,我们的方法可以从描述相同对象类别的大量未标记图像中学习。我们的主要贡献是利用跨境一致性的两种方法:(i)渐进式调理,一种培训策略,以逐步将模型从类别中逐步专业为课程学习方式进行实例; (ii)邻居重建,具有相似形状或纹理的实例之间的损失。对于我们方法的成功也至关重要的是:我们的结构化自动编码体系结构将图像分解为显式形状,纹理,姿势和背景;差异渲染的适应性公式;以及一个新的优化方案在3D和姿势学习之间交替。我们将我们的方法(独角兽)在多样化的合成造型数据集上进行比较,这是需要多种视图作为监督的方法的经典基准 - 以及标准的实数基准(Pascal3d+ Car,Cub,Cub,Cub,Cub),大多数方法都需要已知的模板和Silhouette注释。我们还展示了对更具挑战性的现实收藏集(Compcars,LSUN)的适用性,在该收藏中,剪影不可用,图像没有在物体周围裁剪。
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在自然界中,动物的集体行为(例如飞鸟)由同一物种的个体之间的相互作用主导。但是,对鸟类物种中这种行为的研究是一个复杂的过程,即人类无法使用常规的视觉观察技术(例如自然界的焦点采样)进行。对于鸟类等社会动物,群体形成的机制可以帮助生态学家了解社交线索及其视觉特征随着时间的流逝(例如姿势和形状)之间的关系。但是,恢复飞行鸟类的不同姿势和形状是一个极具挑战性的问题。解决此瓶颈的一种广泛的解决方案是将姿势和形状从2D图像提取到3D对应关系。 3D视觉的最新进展导致了关于3D形状和姿势估计的许多令人印象深刻的作品,每项作品都有不同的利弊。据我们所知,这项工作是首次尝试概述基于单眼视觉的3D鸟重建的最新进展,使计算机视觉和生物学研究人员概述了现有方法,并比较其特征。
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We study the notion of consistency between a 3D shape and a 2D observation and propose a differentiable formulation which allows computing gradients of the 3D shape given an observation from an arbitrary view. We do so by reformulating view consistency using a differentiable ray consistency (DRC) term. We show that this formulation can be incorporated in a learning framework to leverage different types of multi-view observations e.g. foreground masks, depth, color images, semantics etc. as supervision for learning single-view 3D prediction. We present empirical analysis of our technique in a controlled setting. We also show that this approach allows us to improve over existing techniques for single-view reconstruction of objects from the PASCAL VOC dataset.
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我们提出了可区分的立体声,这是一种多视图立体方法,可从几乎没有输入视图和嘈杂摄像机中重建形状和纹理。我们将传统的立体定向和现代可区分渲染配对,以构建端到端模型,该模型可以预测具有不同拓扑和形状的物体的纹理3D网眼。我们将立体定向作为优化问题,并通过简单的梯度下降同时更新形状和相机。我们进行了广泛的定量分析,并与传统的多视图立体声技术和基于最先进的学习方法进行比较。我们展示了令人信服的重建,这些重建是在挑战现实世界的场景上,以及具有复杂形状,拓扑和纹理的大量对象类型。项目网页:https://shubham-goel.github.io/ds/
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本文介绍了一个新的大型多视图数据集,称为Humbi的人体表达式,具有天然衣物。 HUMBI的目标是为了便于建模特异性的外观和五个主要身体信号的几何形状,包括来自各种各样的人的凝视,面部,手,身体和服装。 107同步高清摄像机用于捕获772个跨性别,种族,年龄和风格的独特科目。使用多视图图像流,我们使用3D网格模型重建高保真体表达式,允许表示特定于视图的外观。我们证明HUMBI在学习和重建完整的人体模型方面非常有效,并且与人体表达的现有数据集互补,具有有限的观点和主题,如MPII-Gaze,Multi-Pie,Human 3.6m和Panoptic Studio数据集。基于HUMBI,我们制定了一种展开的姿态引导外观渲染任务的新基准挑战,其旨在大大延长了在3D中建模的不同人类表达式中的光敏性,这是真实的社会远程存在的关键能力。 Humbi公开提供http://humbi-data.net
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Automatically estimating 3D skeleton, shape, camera viewpoints, and part articulation from sparse in-the-wild image ensembles is a severely under-constrained and challenging problem. Most prior methods rely on large-scale image datasets, dense temporal correspondence, or human annotations like camera pose, 2D keypoints, and shape templates. We propose Hi-LASSIE, which performs 3D articulated reconstruction from only 20-30 online images in the wild without any user-defined shape or skeleton templates. We follow the recent work of LASSIE that tackles a similar problem setting and make two significant advances. First, instead of relying on a manually annotated 3D skeleton, we automatically estimate a class-specific skeleton from the selected reference image. Second, we improve the shape reconstructions with novel instance-specific optimization strategies that allow reconstructions to faithful fit on each instance while preserving the class-specific priors learned across all images. Experiments on in-the-wild image ensembles show that Hi-LASSIE obtains higher quality state-of-the-art 3D reconstructions despite requiring minimum user input.
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一个3D场景由一组对象组成,每个对象都有一个形状和一个布局,使其在太空中的位置。从2D图像中了解3D场景是一个重要的目标,并具有机器人技术和图形的应用。尽管最近在预测单个图像的3D形状和布局方面取得了进步,但大多数方法都依赖于3D地面真相来进行训练,这很昂贵。我们克服了这些局限性,并提出了一种方法,该方法学会预测对象的3D形状和布局,而无需任何地面真相形状或布局信息:相反,我们依靠具有2D监督的多视图图像,可以更轻松地按大规模收集。通过在3D仓库,Hypersim和扫描仪上进行的广泛实验,我们证明了我们的进近量表与逼真的图像的大型数据集相比,并与依赖3D地面真理的方法进行了比较。在Hypersim和Scannet上,如果没有可靠的3D地面真相,我们的方法优于在较小和较少的数据集上训练的监督方法。
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综合照片 - 现实图像和视频是计算机图形的核心,并且是几十年的研究焦点。传统上,使用渲染算法(如光栅化或射线跟踪)生成场景的合成图像,其将几何形状和材料属性的表示为输入。统称,这些输入定义了实际场景和呈现的内容,并且被称为场景表示(其中场景由一个或多个对象组成)。示例场景表示是具有附带纹理的三角形网格(例如,由艺术家创建),点云(例如,来自深度传感器),体积网格(例如,来自CT扫描)或隐式曲面函数(例如,截短的符号距离)字段)。使用可分辨率渲染损耗的观察结果的这种场景表示的重建被称为逆图形或反向渲染。神经渲染密切相关,并将思想与经典计算机图形和机器学习中的思想相结合,以创建用于合成来自真实观察图像的图像的算法。神经渲染是朝向合成照片现实图像和视频内容的目标的跨越。近年来,我们通过数百个出版物显示了这一领域的巨大进展,这些出版物显示了将被动组件注入渲染管道的不同方式。这种最先进的神经渲染进步的报告侧重于将经典渲染原则与学习的3D场景表示结合的方法,通常现在被称为神经场景表示。这些方法的一个关键优势在于它们是通过设计的3D-一致,使诸如新颖的视点合成捕获场景的应用。除了处理静态场景的方法外,我们还涵盖了用于建模非刚性变形对象的神经场景表示...
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Rapid advances in 2D perception have led to systems that accurately detect objects in real-world images. However, these systems make predictions in 2D, ignoring the 3D structure of the world. Concurrently, advances in 3D shape prediction have mostly focused on synthetic benchmarks and isolated objects. We unify advances in these two areas. We propose a system that detects objects in real-world images and produces a triangle mesh giving the full 3D shape of each detected object. Our system, called Mesh R-CNN, augments Mask R-CNN with a mesh prediction branch that outputs meshes with varying topological structure by first predicting coarse voxel representations which are converted to meshes and refined with a graph convolution network operating over the mesh's vertices and edges. We validate our mesh prediction branch on ShapeNet, where we outperform prior work on single-image shape prediction. We then deploy our full Mesh R-CNN system on Pix3D, where we jointly detect objects and predict their 3D shapes. Project page: https://gkioxari.github.io/meshrcnn/.
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Recovering the skeletal shape of an animal from a monocular video is a longstanding challenge. Prevailing animal reconstruction methods often adopt a control-point driven animation model and optimize bone transforms individually without considering skeletal topology, yielding unsatisfactory shape and articulation. In contrast, humans can easily infer the articulation structure of an unknown animal by associating it with a seen articulated character in their memory. Inspired by this fact, we present CASA, a novel Category-Agnostic Skeletal Animal reconstruction method consisting of two major components: a video-to-shape retrieval process and a neural inverse graphics framework. During inference, CASA first retrieves an articulated shape from a 3D character assets bank so that the input video scores highly with the rendered image, according to a pretrained language-vision model. CASA then integrates the retrieved character into an inverse graphics framework and jointly infers the shape deformation, skeleton structure, and skinning weights through optimization. Experiments validate the efficacy of CASA regarding shape reconstruction and articulation. We further demonstrate that the resulting skeletal-animated characters can be used for re-animation.
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Pixel-aligned Implicit function (PIFu): We present pixel-aligned implicit function (PIFu), which allows recovery of high-resolution 3D textured surfaces of clothed humans from a single input image (top row). Our approach can digitize intricate variations in clothing, such as wrinkled skirts and high-heels, including complex hairstyles. The shape and textures can be fully recovered including largely unseen regions such as the back of the subject. PIFu can also be naturally extended to multi-view input images (bottom row).
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我们介绍了Amazon Berkeley对象(ABO),这是一个新的大型数据集,旨在帮助弥合真实和虚拟3D世界之间的差距。ABO包含产品目录图像,元数据和艺术家创建的3D模型,具有复杂的几何形状和与真实的家用物体相对应的物理基础材料。我们得出了具有挑战性的基准,这些基准利用ABO的独特属性,并测量最先进的对象在三个开放问题上的最新限制,以了解实际3D对象:单视3D 3D重建,材料估计和跨域多视图对象检索。
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We introduce Structured 3D Features, a model based on a novel implicit 3D representation that pools pixel-aligned image features onto dense 3D points sampled from a parametric, statistical human mesh surface. The 3D points have associated semantics and can move freely in 3D space. This allows for optimal coverage of the person of interest, beyond just the body shape, which in turn, additionally helps modeling accessories, hair, and loose clothing. Owing to this, we present a complete 3D transformer-based attention framework which, given a single image of a person in an unconstrained pose, generates an animatable 3D reconstruction with albedo and illumination decomposition, as a result of a single end-to-end model, trained semi-supervised, and with no additional postprocessing. We show that our S3F model surpasses the previous state-of-the-art on various tasks, including monocular 3D reconstruction, as well as albedo and shading estimation. Moreover, we show that the proposed methodology allows novel view synthesis, relighting, and re-posing the reconstruction, and can naturally be extended to handle multiple input images (e.g. different views of a person, or the same view, in different poses, in video). Finally, we demonstrate the editing capabilities of our model for 3D virtual try-on applications.
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铰接式3D形状重建的事先工作通常依赖于专用传感器(例如,同步的多摄像机系统)或预先构建的3D可变形模型(例如,Smal或SMPL)。这些方法无法在野外扩展到不同的各种物体。我们呈现Banmo,这是一种需要专用传感器的方法,也不需要预定义的模板形状。 Banmo在可怜的渲染框架中从许多单眼休闲视频中建立高保真,铰接式的3D模型(包括形状和动画皮肤的重量)。虽然许多视频的使用提供了更多的相机视图和对象关节的覆盖范围,但它们在建立不同背景,照明条件等方面建立了重大挑战。我们的主要洞察力是合并三所思想学校; (1)使用铰接骨骼和混合皮肤的经典可变形形状模型,(2)可容纳基于梯度的优化,(3)在像素之间产生对应关系的规范嵌入物模型。我们介绍了神经混合皮肤模型,可允许可微分和可逆的铰接变形。与规范嵌入式结合时,这些模型允许我们在跨越可通过循环一致性自我监督的视频中建立密集的对应。在真实和合成的数据集上,Banmo显示比人类和动物的先前工作更高保真3D重建,具有从新颖的观点和姿势的现实图像。项目网页:Banmo-www.github.io。
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人类性能捕获是一种非常重要的计算机视觉问题,在电影制作和虚拟/增强现实中具有许多应用。许多以前的性能捕获方法需要昂贵的多视图设置,或者没有恢复具有帧到帧对应关系的密集时空相干几何。我们提出了一种新颖的深度致密人体性能捕获的深层学习方法。我们的方法是基于多视图监督的弱监督方式培训,完全删除了使用3D地面真理注释的培训数据的需求。网络架构基于两个单独的网络,将任务解散为姿势估计和非刚性表面变形步骤。广泛的定性和定量评估表明,我们的方法在质量和稳健性方面优于现有技术。这项工作是DeepCAP的扩展版本,在那里我们提供更详细的解释,比较和结果以及应用程序。
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Understanding the 3D world without supervision is currently a major challenge in computer vision as the annotations required to supervise deep networks for tasks in this domain are expensive to obtain on a large scale. In this paper, we address the problem of unsupervised viewpoint estimation. We formulate this as a self-supervised learning task, where image reconstruction provides the supervision needed to predict the camera viewpoint. Specifically, we make use of pairs of images of the same object at training time, from unknown viewpoints, to self-supervise training by combining the viewpoint information from one image with the appearance information from the other. We demonstrate that using a perspective spatial transformer allows efficient viewpoint learning, outperforming existing unsupervised approaches on synthetic data, and obtains competitive results on the challenging PASCAL3D+ dataset.
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