Academic Journal

Research on Data Mining Algorithm Based on Pattern Recognition.

Λεπτομέρειες βιβλιογραφικής εγγραφής
Τίτλος: Research on Data Mining Algorithm Based on Pattern Recognition.
Συγγραφείς: Zhang, Xuelong
Πηγή: International Journal of Pattern Recognition & Artificial Intelligence; Jun2020, Vol. 34 Issue 6, pN.PAG-N.PAG, 16p
Θεματικοί όροι: Data mining, Pattern recognition systems, Support vector machines, Data warehousing, Algorithms
Περίληψη: With the advent of the era of big data, people are eager to extract valuable knowledge from the rapidly expanding data, so that they can more effectively use these massive storage data. The traditional data processing technology can only achieve basic functions such as data query and statistics, and cannot achieve the goal of extracting the knowledge existing in the data to predict the future trend. Therefore, along with the rapid development of database technology and the rapid improvement of computer's computing power, data mining (DM) came into existence. Research on DM algorithms includes knowledge of various fields such as database, statistics, pattern recognition and artificial intelligence. Pattern recognition mainly extracts features of known data samples. The DM algorithm using pattern recognition technology is a better method to obtain effective information from massive data, thus providing decision support, and has a good application prospect. Support vector machine (SVM) is a new pattern recognition algorithm proposed in recent years, which avoids dimension disaster by dimensioning and linearization. Based on this, this paper studies the DM algorithm based on pattern recognition, and proposes a DM algorithm based on SVM. The algorithm divides the vector of the SV set into two different types and iterates through multiple iterations to obtain a classifier that converges to the final result. Finally, through the cross-validation simulation experiment, the results show that the DM algorithm based on pattern recognition can effectively reduce the training time and solve the mining problem of massive data. The results show that the algorithm has certain rationality and feasibility. [ABSTRACT FROM AUTHOR]
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Βάση Δεδομένων: Complementary Index
Περιγραφή
ISSN:02180014
DOI:10.1142/S0218001420590156