2022
DOI: 10.1155/2022/1084794
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BRScS Approach for Resolving Heterogeneity of Data from Multiple Resources at Semantic Level

Abstract: Data have multiplied at an exponential rate in the age of the Internet. Large amounts of data can be combined at this science hotspot. Making sense of big data has become increasingly difficult due to its volume, velocity, precision, and variety (sometimes referred to as heterogeneity). Many data sources are employed to create data heterogeneity. Big data fusion has both advantages and disadvantages when it comes to integrating data from a variety of sources. The focus of this work is on large data fusion usin… Show more

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“…Liu and Yang assigned weights to various pieces of users' personal information in Sina Weibo comments and completed sentiment analysis with the help of comment content, before nally completing the evaluation of content credibility as the input of a rumor classi er [7]. Due to the fact that semantic features and sentiment features belong to two different dimensions [8], it is difficult to consider the relationship between them. erefore, we have made some improvements.…”
Section: Introductionmentioning
confidence: 99%
“…Liu and Yang assigned weights to various pieces of users' personal information in Sina Weibo comments and completed sentiment analysis with the help of comment content, before nally completing the evaluation of content credibility as the input of a rumor classi er [7]. Due to the fact that semantic features and sentiment features belong to two different dimensions [8], it is difficult to consider the relationship between them. erefore, we have made some improvements.…”
Section: Introductionmentioning
confidence: 99%