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IEEE 2402-2017 en Design Criteria of Complex Virtual Instruments for Ocean Observation.pdf

1、IEEE Standard Design Criteria of Complex Virtual Instruments for Ocean Observation IEEE Std 2402-2017 IEEE Instrumentation and Measurement Society Sponsored by the Sensor Technology Committee IEEE 3 Park Avenue New York, NY 10016-5997 USAIEEE Std 2402-2017 IEEE Standard Design Criteria of Complex Vi

2、rtual Instruments for Ocean Observation Sponsor Sensor Technology Committee of the IEEE Instrumentation and Measurement Society Approved 14 February 2017 IEEE-SA Standards BoardAbstract: The framework of building a distributed ocean observing software system based on complex virtual instruments (CVI

3、s), which are used for processing and displaying the collected data from ocean instruments and the related metadata, is de ned in this standard. This framework provides the guidelines for the CVI-based development process, in which CVI structure design covers management of observed data and metadata

4、, virtual instrument engine based on geospatial information, and service interfaces for CVI interactions. CVI mapping schemes describe the corre- spondence from observed objects to CVIs. CVI relations de ne the relationships between CVIs and describe the methods of extending and compositing multiple

5、 CVIs. Keywords: CVI (complex virtual instrument), IEEE 2402, ocean observation, software development The Institute of Electrical and Electronics Engineers, Inc. 3 Park Avenue, New York, NY 10016-5997, USA Copyright 2017 by The Institute of Electrical and Electronics Engineers, Inc. All rights reser

6、ved. Published 12 May 2017. Printed in the United States of America. IEEE is a registered trademark in the U.S. Patent fitness for a particular purpose; non-infringement; and quality, accuracy, effectiveness, currency, or completeness of material. In addition, IEEE disclaims any and all conditions r

7、elating to: results; and workmanlike effort. IEEE standards documents are supplied “AS IS” and “WITH ALL FAULTS.” Use of an IEEE standard is wholly voluntary. The existence of an IEEE standard does not imply that there are no other ways to produce, test, measure, purchase, market, or provide other g

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12、SE) ARISING IN ANY WAY OUT OF THE PUBLICATION, USE OF, OR RELIANCE UPON ANY STANDARD, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE AND REGARDLESS OF WHETHER SUCH DAMAGE WAS FORESEEABLE.4 Copyright 2017 IEEE. All rights reserved. Translations The IEEE consensus development process involves the r

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28、hrough the issuance of amendments, corrigenda, or errata, visit the IEEE Xplore at http:/ ieeexplore .ieee .or g/ or contact IEEE at the address listed previously. For more information about the IEEE-SA or IEEEs standards development process, visit the IEEE-SA Website at http:/ standards .ieee .or g

29、. Errata Errata, if any, for all IEEE standards can be accessed on the IEEE-SA Website at the following URL: http:/ standards .ieee .org/ findstds/ errata/ index .html. Users are encouraged to check this URL for errata periodically. Patents Attention is called to the possibility that implementation

30、of this standard may require use of subject matter covered by patent rights. By publication of this standard, no position is taken by the IEEE with respect to the existence or validity of any patent rights in connection therewith. If a patent holder or patent applicant has filed a statement of assur

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33、tifying Essential Patent Claims for which a license may be required, for conducting inquiries into the legal validity or scope of Patents Claims, or determining whether any licensing terms or conditions provided in connection with submission of a Letter of Assurance, if any, or in any licensing agre

34、ements are reasonable or non-discriminatory. Users of this standard are expressly advised that determination of the valid- ity of any patent rights, and the risk of infringement of such rights, is entirely their own responsibility. Further information may be obtained from the IEEE Standards Associat

35、ion.6 Copyright 2017 IEEE. All rights reserved. Participants At the time this IEEE standard was completed, the Ocean Observation Working Group had the following membership: Xuye Luo, Chair Zhongwen Guo, Vice Chair Tianao Zhang, Secretary Yachen Che Yuhong Dou Jing Li Chao Liu Jiajia Liu Shiyong Liu

36、Wei Liu Zhijin Qiu Li Yang Quan Yuan Yifei Zhang The following members of the entity balloting committee voted on this standard. Balloters may have voted for approval, disapproval, or abstention. Guangzhou Smart Home Technology Standards Promotion Center National Ocean Technology Center Ocean Univer

37、sity of China Qingdao Lanwan Information Technology Co., Ltd Qingdao Star Information Technology Co. Ltd. Tianjin University ZTE Corporation When the IEEE-SA Standards Board approved this standard on 14 February 2017, it had the following membership: Jean-Philippe Faure, Chair Vacant Position, Vice

38、Chair John D. Kulick, Past Chair Konstantinos Karachalios, Secretary Chuck Adams Masayuki Ariyoshi Ted Burse Stephen Dukes Doug Edwards J. Travis Gri th Gary Ho man Michael Janezic Joseph L. Koep nger* Thomas Koshy Kevin Lu Daleep Mohla Damir Novosel Ronald C. Petersen Annette D. Reilly Robby Robson

39、 Dorothy Stanley Adrian Stephens Mehmet Ulema Phil Wennblom Howard Wolfman Yu Yuan *Member Emeritus7 Copyright 2017 IEEE. All rights reserved. Introduction This introduction is not part of IEEE Std 2402-2017, IEEE Standard Design Criteria of Complex Virtual Instruments for Ocean Observations. An oce

40、an observing system (OOS) plays an important role in improving the knowledge of oceans. An OOS involves software and hardware. The hardware part consists of various observing instruments; the software part consists of a series of applications that are responsible for data collection, data management

41、, and data visualization. Traditional developments are time-consuming due to code programming and testing while com- ponents usually need to be modified and assembled, which results in low development efficiency. Traditional virtual instruments display the observed data without considering the relat

42、ed metadata, such as the descriptive information of observed objects. A complex virtual instrument (CVI) is a software element having the following functions: It realizes unified management of observed objects and observed data. It connects with different acquisition applications and process measure

43、ments from one or multiple types of instruments. It provides data access interfaces which are designed based on observed objects. It can be extended and combined into a larger-scale CVI as a reusable software unit. This standard describes functions of the data management module, lists the requisite

44、functions in a CVI en- gine, and provides CVI interface design criteria for ocean observing. Following this standard, CVIs are ho- mogeneous and different types of CVIs can be composited into a larger system without code programming. This standard also describes the mapping schemes, which enables ea

45、sy mapping between CVIs and physical instruments. CVIs can be reused in different systems through adjusting the mapping schemes, contributing to higher-level software re-use. This standard plays an important role in improving development efficiency and standardizing development procedures for OOS software.

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