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Distributed sensor network consistency filtering method with unknown colored noise

A distributed sensor and colored noise technology, which is applied in the direction of impedance network, digital technology network, electrical components, etc., can solve the problem of unknown colored noise without considering parameters, and achieve the effect of avoiding calculation burden, improving estimation accuracy, and being easy to implement

Pending Publication Date: 2022-02-08
SHANGHAI JIAO TONG UNIV
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Problems solved by technology

[0004] The traditional consensus filtering algorithm requires the system to have Gaussian noise. However, for the system in the state of colored noise, the classic consensus algorithm cannot perform effective state estimation.
In view of the presence of colored noise in the measurement equations in distributed sensor networks, the method of state extension and measurement difference can be applied to the consistency filtering algorithm, but the situation of colored noise with unknown parameters is not considered

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  • Distributed sensor network consistency filtering method with unknown colored noise
  • Distributed sensor network consistency filtering method with unknown colored noise
  • Distributed sensor network consistency filtering method with unknown colored noise

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Embodiment Construction

[0062] The following is a detailed description of the embodiments of the present invention: this embodiment is implemented on the premise of the technical solution of the present invention, and provides detailed implementation methods and specific operation processes. It should be noted that those skilled in the art can make several modifications and improvements without departing from the concept of the present invention, and these all belong to the protection scope of the present invention.

[0063] The invention relates to a consistency filtering method based on Gaussian process regression (GPR) and state expansion. This method can be applied to the collaborative state estimation and target tracking of distributed sensor networks in the presence of colored noise.

[0064] This embodiment provides a distributed sensor network consistency filtering method with unknown colored noise, including the following steps:

[0065] Step 1: Determine the training set of unknown colored...

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Abstract

The invention provides a distributed sensor network consistency filtering method with unknown colored noise, which comprises the following steps of: learning state noise and measurement noise parameters of each node in a distributed sensor network according to a group of given training data; meanwhile, performing state extension, extending learned colored noise parameters to a state vector, and finally, state estimation is completed by using a consistency Kalman filtering algorithm, so that estimated values of all sensor nodes are converged to be globally consistent. To improve computational efficiency, only local measurement noise and state noise are integrated into an extended state for each node. Simulation results show that the unknown colored noise in the distributed sensor network can be effectively estimated, and the accuracy of distributed estimation is improved. The method can be applied to the fields of distributed sensor network radars, infrared target tracking, mobile robot positioning and the like.

Description

technical field [0001] The invention relates to a method for consistent filtering of a distributed sensor network with unknown colored noise. Background technique [0002] In the sensor network, due to the strong scalability and high fault tolerance of the distributed state estimation algorithm, its application is more and more extensive. The algorithm has low requirements on network connectivity and system observability; maintaining global observability of the network does not necessarily mean that every sensor is observable. Furthermore, the fusion center does not need to collect raw measurements from all nodes in the sensor network. The distributed strategy therefore provides a more optimal choice, is more robust, requires less communication and allows parallel processing. On the contrary, the centralized fusion algorithm will generate a large amount of communication and computing burden at the central node. [0003] There are three different methods for distributed st...

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): H03H17/02
CPCH03H17/0211H03H17/0282H03H2017/0205
Inventor 敬忠良宋凌云董鹏王靳然
Owner SHANGHAI JIAO TONG UNIV
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