A time series similarity searching method based on segmentation weight
A similarity search and time series technology, applied in the field of information processing, can solve the problem that it is difficult for users to effectively participate in the process of mining similarity patterns of time series data, and achieve the effect of improving accuracy and accuracy
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[0062] In this embodiment, the Adiac data set in the UCR data set is used as an example to introduce detailed steps. The segmentation threshold is only selected as 0.5 for demonstration. In practical applications, the segmentation threshold can be determined through experimental debugging or empirically. The calculation of segment distance takes Euclidean distance as an example.
[0063] (1) Select a piece of data in the Adiac dataset as the query sequence, such as figure 2 as shown in (a);
[0064] (2) Choose a threshold and segment the query sequence using important turning points, such as figure 2 As shown in (b), 6 segmentation points are extracted when the segmentation threshold is 0.5.
[0065] (3) Initialize the weight of each segment to 1 / 6, and use the similarity measurement method of segmental weight to measure, calculate the segmental Euclidean distance between each sequence to be searched and the query sequence, and use the topK method to obtain the first three...
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