Host cardinal number estimation method based on artificial neural network
The invention discloses a host cardinal number estimation method based on an artificial neural network, and the method comprises the following steps: (1) scanning IP addresses in all IP messages in a time window, and estimating the cardinal number of each host in an internal network; (2) sorting and...
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Main Authors | , , , , , , , , , , , , |
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Format | Patent |
Language | Chinese English |
Published |
18.01.2022
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Subjects | |
Online Access | Get full text |
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Summary: | The invention discloses a host cardinal number estimation method based on an artificial neural network, and the method comprises the following steps: (1) scanning IP addresses in all IP messages in a time window, and estimating the cardinal number of each host in an internal network; (2) sorting and grouping each host, and grouping to construct a sampling host set; (3) constructing a training attribute set trainX and a cardinal number estimation deviation set trainY of each sampling host; (4) training an artificial neural network by using the sets trainX and trainY; and (5) predicting an intranet host cardinal number estimation error according to the trained artificial neural network, and adjusting a host cardinal number estimation value. According to the method, a sampling IP sequence is constructed, then data used during host cardinal number estimation and a cardinal number estimated value serve as attributes used during cardinal number correction, the relation between the cardinal number estimated value an |
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Bibliography: | Application Number: CN202111191513 |