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Image Understanding as a Second Course in AI: Preparing Students for Research

机译:图像理解作为人工智能的第二门课程:为研究做准备

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This paper describes the development and structure of a second course in artificial intelligence that was developed to meet the needs of upper-division undergraduate and graduate computer science and computer engineering students. These students already have a background in either computer vision or artificial intelligence, and desire to apply that knowledge to the design of algorithms that are able to automate the process of extracting semantic content from either static or dynamic imagery. Theory and methodology from diverse areas were incorporated into the course, including techniques from image processing, statistical pattern recognition, knowledge representation, multivariate analysis, cognitive modeling, and probabilistic inference. Students read selected current literature from the field, took turns presenting the selected literature to the class, and participated in discussions about the literature. Programming projects were required of all students, and in addition, graduate students were required to propose, design, implement, and defend an image understanding project of their own choosing. The course served as preparation for and an incubator of an active research group.
机译:本文介绍了第二门人工智能课程的开发和结构,该课程是为满足高年级本科生和计算机科学与计算机工程专业学生的需求而开发的。这些学生已经具有计算机视觉或人工智能方面的背景,并希望将这些知识应用于能够自动从静态或动态图像提取语义内容的过程的算法设计中。来自不同领域的理论和方法学被纳入课程,包括图像处理,统计模式识别,知识表示,多元分析,认知建模和概率推理的技术。学生从该领域阅读精选的当前文学作品,轮流向全班展示所选的文学作品,并参与有关文学作品的讨论。所有学生都需要编程项目,此外,研究生还必须提出,设计,实施和维护自己选择的图像理解项目。该课程是活跃研究小组的准备和孵化器。

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