We introduce anchored radial observations (ARO), a novel shape encoding for learning neural field representation of shapes that is category-agnostic and generalizable amid significant shape variations. The main idea behind our work is to reason about shapes through partial observations from a set of viewpoints, called anchors. We develop a general and unified shape representation by employing a fixed set of anchors, via Fibonacci sampling, and designing a coordinate-based deep neural network to predict the occupancy value of a query point in space. Differently from prior neural implicit models, that use global shape feature, our shape encoder operates on contextual, query-specific features. To predict point occupancy, locally observed shape information from the perspective of the anchors surrounding the input query point are encoded and aggregated through an attention module, before implicit decoding is performed. We demonstrate the quality and generality of our network, coined ARO-Net, on surface reconstruction from sparse point clouds, with tests on novel and unseen object categories, "one-shape" training, and comparisons to state-of-the-art neural and classical methods for reconstruction and tessellation.
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Generalist models, which are capable of performing diverse multi-modal tasks in a task-agnostic way within a single model, have been explored recently. Being, hopefully, an alternative to approaching general-purpose AI, existing generalist models are still at an early stage, where modality and task coverage is limited. To empower multi-modal task-scaling and speed up this line of research, we release a generalist model learning system, OFASys, built on top of a declarative task interface named multi-modal instruction. At the core of OFASys is the idea of decoupling multi-modal task representations from the underlying model implementations. In OFASys, a task involving multiple modalities can be defined declaratively even with just a single line of code. The system automatically generates task plans from such instructions for training and inference. It also facilitates multi-task training for diverse multi-modal workloads. As a starting point, we provide presets of 7 different modalities and 23 highly-diverse example tasks in OFASys, with which we also develop a first-in-kind, single model, OFA+, that can handle text, image, speech, video, and motion data. The single OFA+ model achieves 95% performance in average with only 16% parameters of 15 task-finetuned models, showcasing the performance reliability of multi-modal task-scaling provided by OFASys. Available at https://github.com/OFA-Sys/OFASys
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The security of artificial intelligence (AI) is an important research area towards safe, reliable, and trustworthy AI systems. To accelerate the research on AI security, the Artificial Intelligence Security Competition (AISC) was organized by the Zhongguancun Laboratory, China Industrial Control Systems Cyber Emergency Response Team, Institute for Artificial Intelligence, Tsinghua University, and RealAI as part of the Zhongguancun International Frontier Technology Innovation Competition (https://www.zgc-aisc.com/en). The competition consists of three tracks, including Deepfake Security Competition, Autonomous Driving Security Competition, and Face Recognition Security Competition. This report will introduce the competition rules of these three tracks and the solutions of top-ranking teams in each track.
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In this paper, we propose a novel multi-modal multi-task encoder-decoder pre-training framework (MMSpeech) for Mandarin automatic speech recognition (ASR), which employs both unlabeled speech and text data. The main difficulty in speech-text joint pre-training comes from the significant difference between speech and text modalities, especially for Mandarin speech and text. Unlike English and other languages with an alphabetic writing system, Mandarin uses an ideographic writing system where character and sound are not tightly mapped to one another. Therefore, we propose to introduce the phoneme modality into pre-training, which can help capture modality-invariant information between Mandarin speech and text. Specifically, we employ a multi-task learning framework including five self-supervised and supervised tasks with speech and text data. For end-to-end pre-training, we introduce self-supervised speech-to-pseudo-codes (S2C) and phoneme-to-text (P2T) tasks utilizing unlabeled speech and text data, where speech-pseudo-codes pairs and phoneme-text pairs are a supplement to the supervised speech-text pairs. To train the encoder to learn better speech representation, we introduce self-supervised masked speech prediction (MSP) and supervised phoneme prediction (PP) tasks to learn to map speech into phonemes. Besides, we directly add the downstream supervised speech-to-text (S2T) task into the pre-training process, which can further improve the pre-training performance and achieve better recognition results even without fine-tuning. Experiments on AISHELL-1 show that our proposed method achieves state-of-the-art performance, with a more than 40% relative improvement compared with other pre-training methods.
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We propose LiDAL, a novel active learning method for 3D LiDAR semantic segmentation by exploiting inter-frame uncertainty among LiDAR frames. Our core idea is that a well-trained model should generate robust results irrespective of viewpoints for scene scanning and thus the inconsistencies in model predictions across frames provide a very reliable measure of uncertainty for active sample selection. To implement this uncertainty measure, we introduce new inter-frame divergence and entropy formulations, which serve as the metrics for active selection. Moreover, we demonstrate additional performance gains by predicting and incorporating pseudo-labels, which are also selected using the proposed inter-frame uncertainty measure. Experimental results validate the effectiveness of LiDAL: we achieve 95% of the performance of fully supervised learning with less than 5% of annotations on the SemanticKITTI and nuScenes datasets, outperforming state-of-the-art active learning methods. Code release: https://github.com/hzykent/LiDAL.
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In this work, we focus on the problem of safe policy transfer in reinforcement learning: we seek to leverage existing policies when learning a new task with specified constraints. This problem is important for safety-critical applications where interactions are costly and unconstrained policies can lead to undesirable or dangerous outcomes, e.g., with physical robots that interact with humans. We propose a Constrained Markov Decision Process (CMDP) formulation that simultaneously enables the transfer of policies and adherence to safety constraints. Our formulation cleanly separates task goals from safety considerations and permits the specification of a wide variety of constraints. Our approach relies on a novel extension of generalized policy improvement to constrained settings via a Lagrangian formulation. We devise a dual optimization algorithm that estimates the optimal dual variable of a target task, thus enabling safe transfer of policies derived from successor features learned on source tasks. Our experiments in simulated domains show that our approach is effective; it visits unsafe states less frequently and outperforms alternative state-of-the-art methods when taking safety constraints into account.
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这是Parse2022 Challenge最终结果中第9位的技术报告。我们通过使用基于3D CNN网络的两阶段方法来解决肺动脉的分割问题。粗模型用于定位ROI,并使用精细模型来完善分割结果。此外,为了提高细分性能,我们采用了多视图和多窗口级方法,同时我们采用了微调策略来减轻不一致的标签影响。
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热应力和变形的快速分析在热控制措施和卫星结构设计的优化中起着关键作用。为了实现卫星主板的实时热应力和热变形分析,本文提出了一种新型的多任务注意UNET(MTA-UNET)神经网络,将多任务学习(MTL)和U-NET的优势结合在一起注意机制。此外,在训练过程中使用了物理知识的策略,其中部分微分方程(PDE)被整合到损失函数中作为残留项。最后,将基于不确定性的损失平衡方法应用于重量的多个培训任务的不同损失功能。实验结果表明,与单任务学习(STL)模型相比,提出的MTA-UNET有效提高了多个物理任务的预测准确性。此外,物理信息的方法在每个任务的预测中的错误较小,尤其是在小型数据集上。代码可以在:\ url {https://github.com/komorebitso/mta-unet}下载。
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现有的最佳3D对象检测器通常依赖于多模式融合策略。但是,由于忽略了特定于模式的有用信息,因此从根本上限制了该设计,并最终阻碍了模型性能。为了解决这一局限性,在这项工作中,我们介绍了一种新型的模式相互作用策略,在该策略中,在整个过程中学习和维护单个单模式表示,以使其在物体检测过程中被利用其独特特征。为了实现这一建议的策略,我们设计了一个深层互动体系结构,其特征是多模式代表性交互编码器和多模式预测交互解码器。大规模Nuscenes数据集的实验表明,我们所提出的方法经常超过所有先前的艺术。至关重要的是,我们的方法在竞争激烈的Nuscenes对象检测排行榜上排名第一。
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创伤性脑损伤(TBI)患者的脑网络分析对于其意识水平评估和预后评估至关重要,这需要分割某些意识相关的大脑区域。但是,由于很难收集TBI患者的手动注释的MR扫描,因此很难构建TBI分割模型。数据增强技术可用于缓解数据稀缺问题。但是,常规数据增强策略(例如空间和强度转化)无法模仿创伤性大脑中的变形和病变,这限制了后续分割任务的性能。为了解决这些问题,我们提出了一种名为TBIGA的新型医学图像授课模型,以通过配对的脑标签图合成TBI MR扫描。我们的TBIGAN方法的主要优势在于,它可以同时生成TBI图像和相应的标签映射,这在以前的医学图像的先前涂上方法中尚未实现。我们首先按照粗到细节的方式在边缘信息的指导下生成成分的图像,然后将合成强度图像用作标签上填充的先验。此外,我们引入了基于注册的模板增强管道,以增加合成图像对的多样性并增强数据增强能力。实验结果表明,提出的TBIGAN方法可以产生具有高质量和有效标签图的足够合成的TBI图像,这可以大大改善与替代方案相比的2D和3D创伤性脑部分割性能。
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