控制神经网络攻击使批振幅扰动和曼哈顿距离约束产生反效果

Q4 Mathematics
Dr. Dev Ras Pandey, Dr. Atul Bhardwaj, Dr. Nidhi Mishra
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引用次数: 0

摘要

近年来,随着深度学习创新的推进,大脑网络在越来越多的领域发挥着不可否认的重要作用。尽管如此,研究表明,大脑网络对不良模型的攻击无能为力。本文的目的是集中研究不良模型年龄的标准,并提出另一种创建对抗模型的技术。与现有的策略相比,我们的技术实现了更好的误导率,并减少了对图片像素的干扰。在一个强调聚集方面的时代,不同的像素会被激怒,而曼哈顿距离的必要性会被添加到它们中。我们的计算在测试中表现良好。对比和Carlini Wagner技术,只增加了60个方面,这表明我们的计算成本是完全可以的。此外,对比和FGSM计算,在年龄季节几乎相同的情况下,重复率增加了12%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control of Attacks by Neural Networks to Make Batch Amplitude Disturbances and Manhattan-Distance Constraints Counterproductive
As of late, with the advancement of profound learning innovation, brain networks assume an undeniably significant part in an ever increasing number of fields. Notwithstanding, research shows that brain networks are helpless against the assault of ill-disposed models. The reason for this paper is to concentrate on the standard of ill-disposed models age and propose another technique for creating antagonistic models. Contrasted and existed strategies, our technique accomplishes better misdirection rate and bothers less pixels of pictures. During an age in clump aspect emphasis, different pixels are irritated while Manhattan-Distance imperatives are added to them. Our calculation performs well in tests. Contrasted and Carlini-Wagner technique, just 60 additional aspects are bothered, which demonstrates that the calculation cost of our calculation is totally OK. Plus, contrasted and FGSM calculation, the duplicity rate increments by 12% while the age seasons of them are practically same.
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来源期刊
Philippine Statistician
Philippine Statistician Mathematics-Statistics and Probability
CiteScore
0.50
自引率
0.00%
发文量
92
期刊介绍: The Journal aims to provide a media for the dissemination of research by statisticians and researchers using statistical method in resolving their research problems. While a broad spectrum of topics will be entertained, those with original contribution to the statistical science or those that illustrates novel applications of statistics in solving real-life problems will be prioritized. The scope includes, but is not limited to the following topics:  Official Statistics  Computational Statistics  Simulation Studies  Mathematical Statistics  Survey Sampling  Statistics Education  Time Series Analysis  Biostatistics  Nonparametric Methods  Experimental Designs and Analysis  Econometric Theory and Applications  Other Applications
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