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Utilizing Machine Learning with Unique Pentaplet Data Structure to Enhance Data Integrity
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作者 Abdulwahab Alazeb 《Computers, Materials & Continua》 SCIE EI 2023年第12期2995-3014,共20页
Data protection in databases is critical for any organization,as unauthorized access or manipulation can have severe negative consequences.Intrusion detection systems are essential for keeping databases secure.Advance... Data protection in databases is critical for any organization,as unauthorized access or manipulation can have severe negative consequences.Intrusion detection systems are essential for keeping databases secure.Advancements in technology will lead to significant changes in the medical field,improving healthcare services through real-time information sharing.However,reliability and consistency still need to be solved.Safeguards against cyber-attacks are necessary due to the risk of unauthorized access to sensitive information and potential data corruption.Dis-ruptions to data items can propagate throughout the database,making it crucial to reverse fraudulent transactions without delay,especially in the healthcare industry,where real-time data access is vital.This research presents a role-based access control architecture for an anomaly detection technique.Additionally,the Structured Query Language(SQL)queries are stored in a new data structure called Pentaplet.These pentaplets allow us to maintain the correlation between SQL statements within the same transaction by employing the transaction-log entry information,thereby increasing detection accuracy,particularly for individuals within the company exhibiting unusual behavior.To identify anomalous queries,this system employs a supervised machine learning technique called Support Vector Machine(SVM).According to experimental findings,the proposed model performed well in terms of detection accuracy,achieving 99.92%through SVM with One Hot Encoding and Principal Component Analysis(PCA). 展开更多
关键词 Database intrusion detection system data integrity machine learning pentaplet data structure
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DNA碱基质子化学位移受所在序列的五联体性质影响
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作者 余多慰 袁生 金晓燕 《生物物理学报》 CAS CSCD 北大核心 2007年第3期199-207,共9页
根据生物大分子核磁共振数据库(BMRB)内16条单链DNA序列中的碱基特征质子的化学位移信息,分析结果表明,五联体(pentaplet)是到目前为止可以由实验数据证明的、决定中部碱基质子化学位移水平的基本单位,即DNA碱基质子的NMR化学位移受所... 根据生物大分子核磁共振数据库(BMRB)内16条单链DNA序列中的碱基特征质子的化学位移信息,分析结果表明,五联体(pentaplet)是到目前为止可以由实验数据证明的、决定中部碱基质子化学位移水平的基本单位,即DNA碱基质子的NMR化学位移受所在五联体序列的控制。以五联体中部是T碱基为例,来自化学位移的证据符合来自量子力学计算所得“5'嘧啶-嘌呤比5'嘌呤-嘧啶的顺序更稳定”的论断,表现为5'嘧啶-嘌呤侧翼顺序导致的中部T碱基质子化学位移,比5'嘌呤-嘧啶顺序δ值小0.089。对于中部碱基质子化学位移,5'侧翼二联体效应与3'侧翼二联体效应明显不同。5'侧翼序列对五联体中部碱基质子化学位移的影响从大到小,与5'序列的色散力排列顺序更相关。氢谱上A H8、A H2、G H8、T H6、C H6的位移分布顺序,与从头计算(ab initio)和δ+HMON二种伴氢碳原子净电荷计算结果最为接近,相关性好。与ab initio法得到的氢原子净电荷相关性不好。二翼碱基可以对五联体中心碱基的非交换质子在8.5!的距离上产生影响,这是对NMR偶极作用距离极限的突破。DNA的质子次级化学位移不是像蛋白质那样由氢键起主导作用。以上分析为建立双链DNA碱基质子化学位移理论预测公式提供了依据。 展开更多
关键词 NMR 质子 化学位移 五联体 DNA
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