221 research outputs found

    Estimation Of Target Movement In Wireless Sensor Network

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    Recently, Wireless Sensor Network (WSN) used in wide range of applications such as target detection and tracking, military and in environment monitoring. Target tracking can be implemented by face (polygon) based algorithm. We had considered technique of face tracking. Face is defined by Region Of Interest (ROI) which consist target like human, animal etc. Moving target detected by Face. For Face tracking we used brink detection algorithm because it consumes less energy and detect target easily also tracks the target continuously. Optimal node selection algorithm is used to select an optimal node for tracking. When target is lost they indicate that target is in which region. This drawback is overcome by increasing the area of face. Along with tracking it solves the problem of missing node as and when node failure occurs. Simulation results which compared with existing work and show that Face Track obtains better tracking results and power competence

    Detecting movements of a target using face tracking in wireless sensor networks

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    Abstract—Target tracking is one of the key applications of wireless sensor networks (WSNs). Existing work mostly requires organizing groups of sensor nodes with measurements of a target’s movements or accurate distance measurements from the nodes to the target, and predicting those movements. These are, however, often difficult to accurately achieve in practice, especially in the case of unpredictable environments, sensor faults, etc. In this paper, we propose a new tracking framework, called FaceTrack, which employs the nodes of a spatial region surrounding a target, called a face. Instead of predicting the target location separately in a face, we estimate the target’s moving toward another face. We introduce an edge detection algorithm to generate each face further in such a way that the nodes can prepare ahead of the target’s moving, which greatly helps tracking the target in a timely fashion and recovering from special cases, e.g., sensor fault, loss of tracking. Also, we develop an optimal selection algorithm to select which sensors of faces to query and to forward the tracking data. Simulation results, compared with existing work, show that FaceTrack achieves better tracking accuracy and energy efficiency. We also validate its effectiveness via a proof-of-concept system of the Imote2 sensor platform. Index Terms—Wireless sensor networks, target tracking, sensor selection, edge detection, face tracking, fault tolerance Ç

    Combined Coverage Area Reporting and Geographical Routing in Wireless Sensor-Actuator Networks for Cooperating with Unmanned Aerial Vehicles

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    In wireless sensor network (WSN) applications with multiple gateways, it is key to route location dependent subscriptions efficiently at two levels in the system. At the gateway level, data sinks must not waste the energy of the WSN by injecting subscriptions that are not relevant for the nodes in their coverage area and at WSN level, energy-efficient delivery of subscriptions to target areas is required. In this paper, we propose a mechanism in which (1) the WSN provides an accurate and up-to-date coverage area description to gateways and (2) the wireless sensor network re-uses the collected coverage area information to enable efficient geographical routing of location dependent subscriptions and other messages. The latter has a focus on routing of messages injected from sink nodes to nodes in the region of interest. Our proposed mechanisms are evaluated in simulation

    Self organization of sensor networks for energy-efficient border coverage

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    Networking together hundreds or thousands of cheap sensor nodes allows users to accurately monitor a remote environment by intelligently combining the data from the individual nodes. As sensor nodes are typically battery operated, it is important to efficiently use the limited energy of the nodes to extend the lifetime of the wireless sensor network (WSN). One of the fundamental issues in WSNs is the coverage problem. In this paper, the border coverage problem in WSNs is rigorously analyzed. Most existing results related to the coverage problem in wireless sensor networks focused on planar networks; however, three dimensional (3D) modeling of the sensor network would reflect more accurately real-life situations. Unlike previous works in this area, we provide distributed algorithms that allow the selection and activation of an optimal border cover for both 2D and 3D regions of interest. We also provide self-healing algorithms as an optimization to our border coverage algorithms which allow the sensor network to adaptively reconfigure and repair itself in order to improve its own performance. Border coverage is crucial for optimizing sensor placement for intrusion detection and a number of other practical applications

    Integrating Technologies for Scalable Ecology and Conservation

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    Integration of multiple technologies greatly increases the spatial and temporal scales over which ecological patterns and processes can be studied, and threats to protected ecosystems can be identified and mitigated. A range of technology options relevant to ecologists and conservation practitioners are described, including ways they can be linked to increase the dimensionality of data collection efforts. Remote sensing, ground-based, and data fusion technologies are broadly discussed in the context of ecological research and conservation efforts. Examples of technology integration across all of these domains are provided for large-scale protected area management and investigation of ecological dynamics. Most technologies are low-cost or open-source, and when deployed can reach economies of scale that reduce per-area costs dramatically. The large-scale, long-term data collection efforts presented here can generate new spatio-temporal understanding of threats faced by natural ecosystems and endangered species, leading to more effective conservation strategies

    Detection of Hacking nodes using Dynamic Sensor with Ant Colony Optimization

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    ABSTRACT: Detection of hacking nodes can be defined as tracking system to show the negative effects that malicious nodes cause in MANET (Mobile ad hoc network. This paper proposes an survey about Detection of hacking nodes based on data transmission. The main problem in existing system is that the variable brink length of the polygon and the impact of the targets dynamic movements, brink detection and real time polygon. After the survey on various literature papers, we are concluding a new way, that increases confidentiality of the data and efficiency, , we have enclosed the proposed method with the ACO algorithm which allow itself to detect the terrorist nodes that are to be labeled and performs the active classification,. A mobile ad hoc network (MANET) is a group of mobile hosts and able to communicate one another in the absence of fixed infrastructure.. If the entity at a particular range cannot be determined then several static nodes are located for better coverage and to reduce the total travelled distance by the nodes. The approximation and the foreseeing of the nodes are done by space Theory and the location of the nodes by using ant colony optimization.

    Utilization Of A Large-Scale Wireless Sensor Network For Intrusion Detection And Border Surveillance

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    To control the border more effectively, countries may deploy a detection system that enables real-time surveillance of border integrity. Events such as border crossings need to be monitored in real time so that any border entries can be noted by border security forces and destinations marked for apprehension. Wireless Sensor Networks (WSNs) are promising for border security surveillance because they enable enforcement teams to monitor events in the physical environment. In this work, probabilistic models have been presented to investigate senor development schemes while considering the environmental factors that affect the sensor performance. Simulation studies have been carried out using the OPNET to verify the theoretical analysis and to find an optimal node deployment scheme that is robust and efficient by incorporating geographical coordination in the design. Measures such as adding camera and range-extended antenna to each node have been investigated to improve the system performance. A prototype WSN based surveillance system has been developed to verify the proposed approach
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