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AIR5665A
Architecture Framework for Unmanned Systems
Architecture Framework for Unmanned Systems
2009-04-01
有效
【范围】 This SAE Aerospace Information Report (AIR) describes the Architecture Framework for Unmanned Systems (AFUS). AFUS comprises a Conceptual View, a Capabilities View, and an Interoperability View. The Conceptual View provides definitions and background for key terms and concepts used in the unmanned systems domain. The Capabilities View uses terms and concepts from the Conceptual View to describe capabilities of unmanned systems and of other entities in the unmanned systems domain. The Interoperability View provides guidance on how to design and develop systems in a way that supports interoperability. 1.1 Purpose The purpose of this Aerospace Information Report is to communicate to the unmanned systems community a common set of principles, terms, concepts, patterns, structures, and guidance for creating system architectures that include or interact with unmanned systems. 1.2 Overview The approach of the Unmanned Systems Committee to the generation of the Architecture Framework for Unmanned Systems has evolved over the history of the Framework. From initially approaching the Framework with the intent to identify individual capabilities, needed immediately, the committee now approaches the Framework with the intent of addressing the Unmanned System as a whole. As Unmanned Systems gain acceptance, the focus of the Framework has moved from individual systems to systems of systems. Finally, as the abilities of Unmanned Systems grow, it has been necessary to ensure that the capabilties described herein are supportive of more autonomous systems, while still enabling the teleoperated systems. Automony is an emergent property of this Framework. For an unmanned system to be autonomous, it takes multiple characteristics of this Framework for the system to be somewhat self aware and to complete its task/mission without human intervention. Autonomy is key and critical to the future of unmanned systems as end users desire systems that permit them to perform other tasks while still making the major decisions of the task/mission. There is a need for a single operator (human) to control multiple unmanned systems. For example in port security, multiple ground and surface vehicles may work together monitoring a port or ship, only needing a single security person to make the final decision as to what action to take when a security anomoly is detected. Expanding markets for unmanned systems are demanding increased autonomy characteristics. The AS-4 committee recognizes this fact and continues to include the necessary characteristics in this Architecture Framework. 1.3 Field of Application Fields of application of AFUS include unmanned systems of all classes, command and control (C2) systems, and related areas such as communications, safety, security, sensors, manipulators, and simulation. 1.4 How to Use This Architecture Framework has several uses: to provide background information on unmanned systems to a variety of readers; to provide a common vocabulary for understanding standards, specifications, and designs for unmanned systems; to provide a common set of semantics for the vocabulary; to provide a base set of behaviors common in unmanned systems; to provide guidelines for developing systems that are interoperable; and to provide a set of capabilities from which unmanned systems requirements can be derived. AFUS is intended to serve as a companion document to other Specifications published by AS-4. As such, it gives additional and supporting information to system procurers and specifiers, designers, program managers, standards writers, and other readers that require a more thorough understanding of the Specifications. 1.5 Acknowledgements Development of this report was supported in part by U.S. Army Aviation and Missile Research, Development, and Engineering Center contract W31P4Q-05-A-0031/0008.strRefField
【与前一版的变化】

包含缩略语

AFUS
AIR
ALFUS
AS
AUS
C2
DAPS
DOD
DOF
DUT 1
ELT
EOD
ERA
FAA
GIS
GMT
GOA
GPS
HMI
IDD
IED
IEEE
IR
ISO
JAUS
JPL
LADAR
LASER
NASA
NBC
NED
NIST
OCU
PKI
POLA
PSDD
PTU
RF
SI
TAI
TT
UAS
UAV
UGV
UML
UMS
UMV
USV
UT1
UT
UTC
UUV
UV
UXO
VIN
WGS

引用文件/被引文件

JAUS Transport Considerations
Generic Open Architecture (GOA) Framework
JAUS Core Service Set
JAUS Transport Specification
JAUS Service Interface Definition Language
JAUS Mobility Service Set
Standard Terminology for Urban Search and Rescue Robotic Operations
Standard Guide for Unmanned Undersea Vehicles (UUV) Autonomy and Control
Standard Terminology for Unmanned Air Vehicle Systems
http://forms.faa.gov/forms/faa7233-1.pdf.
Recommended Practice for Architectural Description of Software-Intensive Systems
1994 Open Systems Interconnection - Basic Reference Model: The Basic Model
Planetary Science Data Dictionary
Huang
Taylor
[W3C04] W3C Technical Architecture Group. Architecture of the World Wide Web
Albus
Meystel
Dictionary.com Unabridged (v 1.1). Random House
Halpern
Halpern
Hamilton
Kelso
Koks
Li
Miller
Miller
Nelson
WordNet 3.0
Smith
JAUS Compliance and Interoperability Policy

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包含图表

ARCHITECTURE OF THE
CONCEPT DESCRIPTIONS
AFUS CONCEPTS
EMISSION TYPES
DELIVERY MECHANISMS
SCENARIO DISCOVER RE
SCENARIO DISCOVER RE
SCENARIO DISCOVER CA
SYNCHRONOUS AND ASYN
SCENARIO COMMUNICATI
SCENARIO GAIN ACCESS
SCENARIO GRANT ACCES
SCENARIO REVOKE ACCE
SCENARIO EVENT REPOR
SCENARIO GAIN CONTRO
SCENARIO TERMINATE C
SCENARIO FIRST PARTY
SCENARIO SECOND PART
SCENARIO SECOND PART
SCENARIO CONTINGENCY
SCENARIO POSE MOBILI
SCENARIO STATION KEE
SCENARIO KINEMATIC M
SCENARIO PATH MOBILI
SCENARIO PRIMITIVE M
EXAMPLE DATA FOR MIS
POSITION REPORTING F
REMOTE SENSING VIA O
CREATING AND STARTIN
ACCESSING LOGGED DAT
HIERARCHICAL TYPES O
MESSAGE FLOW IN A LA
INTEGRATION OF LAYER
TABLE 1

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