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EXERCISING ARTIFICIAL INTELLIGENCE BY REFINING MODEL OUTPUT

机译:通过优化模型输出来发挥人工智慧

摘要

The improved exercise of artificial intelligence. Raw output data is obtained by applying an input data set to an artificial intelligence (AI). Such raw output data is sometimes difficult to interpret. The principles defined herein provide a systematic way to refine the output for a wide variety of AI models. An AI model collection characterization structure is utilized for purpose of refining AI model output so as to be more useful. The characterization structure represents, for each of multiple and perhaps numerous AI models, a refinement of output data that resulted from application of an AI model to input data. Upon obtaining output data from the AI model, the appropriate refinement may then be applied. The refined data may then be semantically indexed to provide a semantic index. The characterization structure may also provide tailored information to allow for intuitive querying against the semantic index.
机译:人工智能的改进实践。通过将输入数据集应用于人工智能(AI)获得原始输出数据。这样的原始输出数据有时很难解释。本文定义的原理提供了一种系统的方法来完善各种AI模型的输出。 AI模型集合表征结构被用于精炼AI模型输出的目的,以便更加有用。对于多个(也许是多个)AI模型中的每一个,特征结构代表了对AI数据应用到输入数据所产生的输出数据的改进。从AI模型获得输出数据后,可以应用适当的改进。然后,可以对精炼的数据进行语义索引以提供语义索引。表征结构还可以提供定制信息,以允许针对语义索引的直观查询。

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