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Chinipardaz Maryam Noorhosseini Seyed Majid Sarlak Ahmad 《Telecommunication Systems》2022,81(1):67-81
Telecommunication Systems - Interference is the main source of capacity limitation in wireless networks. In some medium access technologies in cellular networks, such as OFDMA, the allocation of... 相似文献
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Sensor networks play an important role in making the dream of ubiquitous computing a reality. With a variety of applications, sensor networks have the potential to influence everyone's life in the near future. However, there are a number of issues in deployment and exploitation of these networks that must be dealt with for sensor network applications to realize such potential. Localization of the sensor nodes, which is the subject of this paper, is one of the basic problems that must be solved for sensor networks to be effectively used. This paper proposes a probabilistic support vector machine (SVM)‐based method to gain a fairly accurate localization of sensor nodes. As opposed to many existing methods, our method assumes almost no extra equipment on the sensor nodes. Our experiments demonstrate that the probabilistic SVM method (PSVM) provides a significant improvement over existing localization methods, particularly in sparse networks and rough environments. In addition, a post processing step for PSVM, called attractive/repulsive potential field localization, is proposed, which provides even more improvement on the accuracy of the sensor node locations. 相似文献
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Computer users have different levels of system skills. Moreover, each user has different levels of skill across different
applications and even in different portions of the same application. Additionally, users’ skill levels change dynamically
as users gain more experience in a user interface. In order to adapt user interfaces to the different needs of user groups
with different levels of skills, automatic methods of skill detection are required. In this paper, we present our experiments
and methods, which are used to build automatic skill classifiers for desktop applications. Machine learning algorithms were
used to build statistical predictive models of skill. Attribute values were extracted from high frequency user interface events,
such as mouse motions and menu interactions, and were used as inputs to our models. We have built both task-independent and
task-dependent classifiers with promising results. 相似文献
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This paper presents the characteristic analysis of channel gain for two conductor type power line communication (PLC) system using analytical transient model. The analysis of frequency responses is presented by incorporating various lengths of transmission lines and loads at terminal side. It is suggested that variations in the frequency responses of PLC channel, especially under transient condition within the transmission line (TL) can be investigated more effectively by using the transient model. Performance of transient model is found to be significantly better than the previously available work in the literature. More accurate results are achieved in simulation as compared to results obtained from typical \(\pi \) model of lumped circuit. 相似文献
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