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A robust image steganography using teaching learning based optimization based edge detection model for smart cities

机译:一种强大的图像隐写术基于教学的智能城市优化的优化边缘检测模型

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摘要

Recently, Internet becomes a most common medium for transferring critical data and the security of the transmitted data gains maximum priority. Image steganography has been developed as a well-known model of data hiding which verifies the security level of the transferred data. The images offer high capacity, and the occurrence of accessibility over the Internet is more. An effective steganography model is required for achieving better embedding capacity and also maintaining the other variables in an acceptable value. This article introduces a new robust image steganography using Teaching Learning Based Optimization (TLBO) edge detection model. The TBLO is basically a metaheuristic algorithm which is inspired from the teaching and learning procedure in classrooms. The former stage indicates the learning from the teacher and the latter phase represents the interaction among the learners. The experimental validation takes place in a comprehensive way under several views and the outcome pointed out the superior results of the presented model.
机译:最近,Internet成为传输关键数据的最常见介质,并且传输数据的安全性获得了最大优先级。图像隐写是由众所周知的数据隐藏模型开发,验证传输数据的安全级别。图像提供高容量,并且互联网上的可访问性的发生更多。需要一种有效的隐写性模型来实现更好的嵌入能力,并且还需要在可接受的值中保持其他变量。本文介绍了一种新的强大的图像隐写术,使用基于教学的优化(TLBO)边缘检测模型。 TBLO基本上是一种成群质算法,它是在教室里的教学和学习程序的启发。前阶段表示从教师和后期的学习代表学习者之间的互动。实验验证在几个观点中以综合方式进行,结果指出所提出的模型的卓越结果。

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