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<ArticleSet>
  <ARTICLE>
    <Journal>
      <PublisherName>مرکز منطقه ای اطلاع رسانی علوم و فناوری</PublisherName>
      <JournalTitle>Journal of Information Systems and Telecommunication (JIST) </JournalTitle>
      <ISSN>2322-1437</ISSN>
      <Volume>11</Volume>
      <Issue>44</Issue>
      <PubDate PubStatus="epublish">
        <Year>2023</Year>
        <Month>12</Month>
        <Day>16</Day>
      </PubDate>
    </Journal>
    <ArticleTitle>Joint Cooperative Spectrum Sensing and Resource Allocation in Dynamic Wireless Energy Harvesting Enabled Cognitive Sensor Networks</ArticleTitle>
    <VernacularTitle>Joint Cooperative Spectrum Sensing and Resource Allocation in Dynamic Wireless Energy Harvesting Enabled Cognitive Sensor Networks</VernacularTitle>
    <FirstPage>320</FirstPage>
    <LastPage>330</LastPage>
    <ELocationID EIdType="doi">10.61186/jist.33968.11.44.320</ELocationID>
    <Language>en</Language>
    <AuthorList>
      <Author>
        <FirstName>maryam</FirstName>
        <LastName>Najimi</LastName>
        <Affiliation>University of Science and Technology of Mazandaran</Affiliation>
      </Author>
    </AuthorList>
    <History PubStatus="received">
      <Year>2022</Year>
      <Month>2</Month>
      <Day>3</Day>
    </History>
    <Abstract>Due to the limitations of the natural frequency spectrum, dynamic frequency allocation is required for wireless networks.  Spectrum sensing of a radio channel is a technique to identify the spectrum holes.  In this paper, we investigate a dynamic cognitive sensor network, in which the cognitive sensor transmitter has the capability of the energy harvesting.  In the first slot, the cognitive sensor transmitter participates in spectrum sensing and in the existence of the primary user, it harvests the energy from the primary signal, otherwise the sensor transmitter sends its signal to the corresponding receiver while in the second slot, using the decode-and-forward (DF) protocol, a part of the bandwidth is used to forward the signal of the primary user and the remained bandwidth is used for transmission of the cognitive sensor. Therefore, our purposed algorithm is to maximize the cognitive network transmission rate by selection of the suitable cognitive sensor transmitters subject to the rate of the primary transmission and energy consumption of the cognitive sensors according to the mobility model of the cognitive sensors in the dynamic network. Simulation results illustrate the effectiveness of the proposed algorithm in performance improvement of the network as well as reducing the energy consumption.</Abstract>
    <ObjectList>
      <Object Type="Keyword">
        <Param Name="Value">Cognitive Sensor Network</Param>
      </Object>
      <Object Type="Keyword">
        <Param Name="Value">Transmission Rate</Param>
      </Object>
      <Object Type="Keyword">
        <Param Name="Value">Mobility Model</Param>
      </Object>
      <Object Type="Keyword">
        <Param Name="Value">Decode-and-Forward (DF) Protocol</Param>
      </Object>
      <Object Type="Keyword">
        <Param Name="Value">Energy Consumption.</Param>
      </Object>
    </ObjectList>
    <ArchiveCopySource DocType="Pdf">http://jist.ir/ar/Article/Download/33968</ArchiveCopySource>
  </ARTICLE>
</ArticleSet>