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Are There Deep Reasons Underlying the Pathologies of Today's Deep Learning Algorithms?

机译:当今的深度学习算法的病态有深层原因吗?

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Some currently popular and successful deep learning architectures display certain pathological behaviors (e.g. confidently classifying random data as belonging to a familiar category of nonrandom images; and misclassifying miniscule perturbations of correctly classified images). It is hypothesized that these behaviors are tied with limitations in the internal representations learned by these architectures, and that these same limitations would inhibit integration of these architectures into heterogeneous multi-component AGI architectures. It is suggested that these issues can be worked around by developing deep learning architectures that internally form states homologous to image-grammar decompositions of observed entities and events.
机译:一些当前流行且成功的深度学习架构显示出某些病理行为(例如,将随机数据自信地分类为属于熟悉的非随机图像类别;并对正确分类的图像的微小扰动进行错误分类)。假设这些行为与这些体系结构学习到的内部表示形式的限制有关,并且这些相同的局限性将阻止将这些体系结构集成到异构多组件AGI体系结构中。建议通过开发深度学习体系结构来解决这些问题,这些体系结构内部形成与观察到的实体和事件的图像语法分解同源的状态。

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