A Hybrid Intelligent Text Watermarking and Natural Language Processing Approach for Transferring and Receiving an Authentic English Text Via Internet

Author:

Hilal Anwer Mustafa1,Al-Wesabi Fahd N23,Abdelmaboud Abdelzahir4,Hamza Manar Ahmed1,Mahzari Mohammad5,Hassan Abdulkhaleq Q A6

Affiliation:

1. Department of Computer and Self Development, Preparatory Year Deanship, Prince Sattam bin Abdulaziz University, AlKharj 11642, Saudi Arabia

2. Department of Computer Science, King Khalid University, Muhayel Aseer 61421, KSA

3. Faculty of Computer and IT, Sana’a University, Yemen

4. Department of Information Systems, King Khalid University, Muhayel Aseer 61421, KSA

5. Department of English, College of Science & Humanities, Prince Sattam bin Abdulaziz University, AlKharj 11642, Saudi Arabia

6. Department of English, King Khalid University, Muhayel Aseer 61421, KSA

Abstract

Abstract Due to the rapid increase in the exchange of text information via internet networks, the security and the reliability of digital content have become a major research issue. The main challenges faced by researchers are authentication, integrity verification, and tampering detection of the digital contents. In this paper, a Robust English Text Watermarking and Natural Language Processing Approach (RETWNLPA) is proposed based on word mechanism and first level order of Markov model to improve the accuracy of tampering detection of sensitive English text. The RETWNLPA approach embeds and detects the watermark logically without altering the original text document. Based on the hidden Markov model (HMM), the first-level order of word mechanism is used to analyze the interrelationship between English text. The extracted features are used as watermark information and integrated with text zero-watermarking techniques. To detect eventual tampering, RETWNLPA has been implemented and validated with attacked English text. Experiments were performed on four datasets of varying sizes under random locations of common tampering attacks. The simulation results prove the tampering detection accuracy of our method against all kinds of tampering attacks. Comparison results show that RETWNLPA outperforms baseline approaches HNLPZWA (an intelligent hybrid of natural language processing and zero-watermarking approach) and ZWAFWMMM (Zero-Watermarking Approach based on Fourth level order of Word Mechanism of Markov Model) in terms of tampering detection accuracy.

Funder

Deanship of Scientific Research at King Khalid University

Publisher

Oxford University Press (OUP)

Subject

General Computer Science

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