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  <title>DSpace Collection:</title>
  <link rel="alternate" href="http://dspace.cus.ac.in/jspui/handle/1/3089" />
  <subtitle />
  <id>http://dspace.cus.ac.in/jspui/handle/1/3089</id>
  <updated>2026-04-06T20:33:07Z</updated>
  <dc:date>2026-04-06T20:33:07Z</dc:date>
  <entry>
    <title>Internet of things-based approximation of sun radiative-evapotranspiration models</title>
    <link rel="alternate" href="http://dspace.cus.ac.in/jspui/handle/1/6426" />
    <author>
      <name>Ray, Partha Pratim</name>
    </author>
    <id>http://dspace.cus.ac.in/jspui/handle/1/6426</id>
    <updated>2019-10-23T20:31:15Z</updated>
    <published>2018-01-01T00:00:00Z</published>
    <summary type="text">Title: Internet of things-based approximation of sun radiative-evapotranspiration models
Authors: Ray, Partha Pratim</summary>
    <dc:date>2018-01-01T00:00:00Z</dc:date>
  </entry>
  <entry>
    <title>Continuous glucose monitoring: a systematic review of sensor systems and prospects</title>
    <link rel="alternate" href="http://dspace.cus.ac.in/jspui/handle/1/6425" />
    <author>
      <name>Ray, Partha Pratim</name>
    </author>
    <id>http://dspace.cus.ac.in/jspui/handle/1/6425</id>
    <updated>2019-10-23T20:31:17Z</updated>
    <published>2018-01-01T00:00:00Z</published>
    <summary type="text">Title: Continuous glucose monitoring: a systematic review of sensor systems and prospects
Authors: Ray, Partha Pratim
Abstract: Purpose: &#xD;
       Continuous glucose monitoring (CGM) is a notable invention introduced in the biomedical industry. It provides valuable information about intermittent capillary blood glucose that is normally unattainable by regular clinical blood sample tests. CGM includes several progressive facilities such as instantaneous and real-time display of blood glucose level, “24/7” coverage, continuous motion of alerts for actual or impending hypo- and hyperglycemia and the ability to characterize glycemic variability. CGM allows users and physicians to visualize and diagnose more accurate and precise rate of change of glucose by capacitating small, comfortable, user-friendly sensor devices. Sometimes, this vital information is shared to the personal message box over Internet. In short, CGM is capable to inform, educate, motivate and alert (IEMA) people with diabetes. Despite the huge expectation with CGM, the available solutions have not attracted much attention among people. The huge potential of CGM in future diabetic study relies on the successful implication of the CGM. This paper aims at disseminating of state-of-the-art knowledge about existing work around the CGM.&#xD;
Design/methodology/approach: &#xD;
      This paper presents a comprehensive systematic review on the recent developments in CGM development techniques that have been reported in credible sources, namely PubMed, IEEE Xplore, Science Direct, Springer Link, Scopus and Google Scholar. Detailed analysis and systematic comparison are provided to highlight the achievement and future direction of CGM deployment.&#xD;
Findings: &#xD;
     Several key challenges are also portrayed for suitable opportunistic orientation. CGM solutions from four leading manufacturers such as Tandem, Dexcom, Abbott and Medtronic are compared based on the following factors including accuracy (% MARD); sensor lifetime, calibration requirement, smart device, compatibility and remote monitoring. Qualitative and quantitative analyses are performed.</summary>
    <dc:date>2018-01-01T00:00:00Z</dc:date>
  </entry>
  <entry>
    <title>Communicating through visible light: Internet of things perspective</title>
    <link rel="alternate" href="http://dspace.cus.ac.in/jspui/handle/1/6325" />
    <author>
      <name>Ray, Partha Pratim</name>
    </author>
    <id>http://dspace.cus.ac.in/jspui/handle/1/6325</id>
    <updated>2019-09-12T11:54:05Z</updated>
    <published>2016-01-01T00:00:00Z</published>
    <summary type="text">Title: Communicating through visible light: Internet of things perspective
Authors: Ray, Partha Pratim</summary>
    <dc:date>2016-01-01T00:00:00Z</dc:date>
  </entry>
  <entry>
    <title>A Survey on visual programming languages in Internet of things</title>
    <link rel="alternate" href="http://dspace.cus.ac.in/jspui/handle/1/6324" />
    <author>
      <name>Ray, Partha Pratim</name>
    </author>
    <id>http://dspace.cus.ac.in/jspui/handle/1/6324</id>
    <updated>2019-09-12T11:52:49Z</updated>
    <published>2017-01-01T00:00:00Z</published>
    <summary type="text">Title: A Survey on visual programming languages in Internet of things
Authors: Ray, Partha Pratim
Abstract: Visual programming has transformed the art of programming in recent years. Several organizations are in race to develop novel ideas to run visual programming in multiple domains with Internet of Things. IoT, being the most emerging area of computing, needs substantial contribution from the visual programming paradigm for its technological propagation. This paper surveys visual programming languages being served for application development, especially in Internet of Things field. 13 such languages are visited from several popular research-electronic databases (e.g., IEEE Xplore, Science Direct, Springer Link, Google Scholar, Web of Science, and Postscapes) and compared under four key attributes such as programming environment, license, project repository, and platform supports. Grouped into two segments, open source and proprietary platform, these visual languages pertain few crucial challenges that have been elaborated in this literature. The main goal of this paper is to present existing VPLs per their parametric proforma to enable naïve developers and researchers in the field of IoT to choose appropriate variant of VPL for particular type of application. It is also worth validating the usability and adaptability of VPLs that is essential for selection of beneficiary in terms of IoT.</summary>
    <dc:date>2017-01-01T00:00:00Z</dc:date>
  </entry>
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