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Recognition of Hand Drawn Chemical Diagrams

机译:手绘化学图的识别

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摘要

Chemists often use hand-drawn structural diagrams to capture and communicate ideas about organic compounds. However, the software available today for specifying these structures to a computer relies on a traditional mouse and keyboard interface, and as a result lacks the ease of use, naturalness, and speed of drawing on paper. In response, we have developed a novel sketch-based system capable of interpreting hand-drawn organic chemistry diagrams, allowing users to draw molecules with a pen-based input device in much the same way that they would on paper. The system's ability to interpret a sketch is based on knowledge about both chemistry and chemical drawing conventions. The system employs a trainable symbol recognizer incorporating both feature-based and image-based methods to locate and identify symbols in the sketch. Analysis of the spatial context around each symbol allows the system to choose among competing interpretations and determine an initial structure for the molecule. Finally, knowledge of chemistry (in particular chemical valence) enables the system to check the validity of its interpretation and, when necessary, refine it to recover from inconsistencies. We demonstrate that the system is capable of recognizing diagrams of common organic molecules and show that using domain knowledge produces a noticeable improvement in recognition accuracy.
机译:化学家经常使用手绘的结构图来捕获和传达有关有机化合物的想法。但是,今天可用的用于为计算机指定这些结构的软件依赖于传统的鼠标和键盘界面,结果缺乏纸的易用性,自然性和绘制速度。作为回应,我们开发了一种新颖的基于草图的系统,该系统能够解释手绘的有机化学图,使用户可以使用笔式输入设备以与在纸上相同的方式绘制分子。系统解释草图的能力基于有关化学和化学制图惯例的知识。该系统采用可训练的符号识别器,结合了基于特征和基于图像的方法来定位和识别草图中的符号。对每个符号周围的空间上下文的分析使系统可以在竞争性解释中进行选择,并确定分子的初始结构。最后,化学知识(尤其是化学价)使系统能够检查其解释的有效性,并在必要时对其进行完善以从不一致中恢复。我们证明了该系统具有识别常见有机分子图的能力,并表明使用领域知识可以在识别精度上带来显着的提高。

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