用扩散模型生成晶体,保持真实对称性,避免复制数据库内容。
SymmCD: Symmetry-Preserving Crystal Generation with Diffusion Models
- 将晶体拆解为不对称单元和对称操作,联合建模生成
- 在材料项目子集上生成多样且对称性真实的晶体
- 新表示方法支持跨对称群泛化,适合材料设计者
生成新型晶体材料有望推动电子、能源存储和催化等领域的发展。晶体的核心特征是其对称性,它直接决定材料的物理性质。然而,现有晶体生成方法要么无法生成具有真实晶体对称性的材料,要么只是简单复制数据库中的对称信息。为此,我们提出SymmCD,一种基于扩散模型的新生成方法,显式地将晶格对称性融入生成过程。我们将晶体分解为两个部分:1)不对称单元——通过对称操作可生成整个晶体的最小原子集合;2)每个原子所需应用的对称操作。我们还引入一种新颖且可解释的操作表示,实现不同晶系对称群间的泛化。在材料项目(Materials Project)的一个子集上,SymmCD展现出竞争性性能,生成了多样且对称性真实、预测性质合理的晶体。
原文摘要 · Abstract (English)
Generating novel crystalline materials has the potential to lead to advancements in fields such as electronics, energy storage, and catalysis. The defining characteristic of crystals is their symmetry, which plays a central role in determining their physical properties. However, existing crystal generation methods either fail to generate materials that display the symmetries of real-world crystals, or simply replicate the symmetry information from examples in a database. To address this limitation, we propose SymmCD, a novel diffusion-based generative model that explicitly incorporates crystallographic symmetry into the generative process. We decompose crystals into two components and learn their joint distribution through diffusion: 1) the asymmetric unit, the smallest subset of the crystal which can generate the whole crystal through symmetry transformations, and; 2) the symmetry transformations needed to be applied to each atom in the asymmetric unit. We also use a novel and interpretable representation for these transformations, enabling generalization across different crystallographic symmetry groups. We showcase the competitive performance of SymmCD on a subset of the Materials Project, obtaining diverse and valid crystals with realistic symmetries and predicted properties.
Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。