Systems Engineering and Electronics ›› 2020, Vol. 42 ›› Issue (5): 1063-1072.doi: 10.3969/j.issn.1001-506X.2020.05.13
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Bingfeng GE(), Boyuan XIA(
), Zhiwei YANG(
), Qingsong ZHAO(
), Hechuan WEI(
)
Received:
2019-08-26
Online:
2020-04-30
Published:
2020-04-30
Supported by:
CLC Number:
Bingfeng GE, Boyuan XIA, Zhiwei YANG, Qingsong ZHAO, Hechuan WEI. Modeling and analysis of ExtendSim model and data-driven command and control processes[J]. Systems Engineering and Electronics, 2020, 42(5): 1063-1072.
Table 1
Types of CCP based on function"
类型 | 描述 |
开始节点 | CCP开始通常受某个事件触发,比如探测到敌方特定信息后触发CCP运行 |
活动 | 代表具体的指控活动,由对应的指控单元完成 |
资源 | 在实际指控活动中,每个指控活动均需要处理相关的信息,因而需要消耗一定的资源。具体包括指控席位、指控人员、通信设备、线路等 |
信息队列 | 当一个指控单元处理的信息超过信息处理容量时,后续的信息需要排队等候处理,不能即时处理的信息形成信息队列 |
指控单元 | 指控单元并不是CCP中的活动,而是其对应的执行者;指控单元间有同级和上下级之分 |
结束节点 | 表示CCP执行结束的节点即为结束节点 |
Table 2
Types of CCP based on operation"
功能 | 描述 |
信息感知 | 用于探测特定目标的指控行为, “异常事件”通常作为CCP的触发条件 |
信息上传 | 信息上传下级信息传达给上级指挥单元的指控活动;由于上下级之间的沟通通常需要信息的汇总确认,因此,在CCP中,通常占用一定的人力和线路资源,并消耗相对较多的时间 |
下达命令 | 下达命令是上级指挥所对汇总信息进行处理之后,生成命令,并传达给下级指挥单元的指控活动;在CCP中,通常占用较少的人力资源和一定的线路资源 |
信息共享 | 信息共享是同级指挥所之间的信息交互行为,在扁平化指控结构中占有较大的比重,信息共享在CCP中不需要进行信息汇总,只需占用线路资源 |
信息处理 | 信息处理是上级指挥所下发命令之前需要进行的指控活动;通常占用一定的人力、线路资源,消耗一定的时间 |
命令执行 | 命令执行通常是CCP最后阶段的活动,当然,如果任务执行不成功,会重新触发流程循环或者触发另外一套新的流程 |
1 | WANG Y M , CHEN S , PAN C S , et al. Measure of invulnerability for command and control network based on mission link[J]. Information Sciences, 2018, 426, 148- 159. |
2 | MARUSICH L R , BAKDASH J Z , ONAL E , et al. Effects of information availability on command and control decision making: performance, trust, and situation awareness[J]. Human Factors, 2016, 58 (2): 301- 321. |
3 | ZHANG J R , WANG G , WANG S Y . Command and control system construction in big data era[J]. Journal of Physics: Conference Series, 2019, 1168 (3): 032022. |
4 | JOHNSON D E . Military capabilities for hybrid war: insights from the Israel defense forces in Lebanon and Gaza[M]. Santa Monica: Rand Corporation, 2014. |
5 | KALLONIATIS A , ROWE C , LA P , et al. Network analysis of decision loops in operational command and control arrange-ments[M]. Data and Decision Sciences in Action. Borlin: Springer, 2018: 343- 355. |
6 | GLOWALLA P , SUNYAEV A . Process-driven data quality management: a critical review on the application of process mo-deling languages[J]. Journal of Data and Information Quality, 2014, 5 (1/2): 1936- 1955. |
7 | BAJARI P , HONG H , KRAINER J , et al. Estimating static models of strategic interactions[J]. Journal of Business & Economic Statistics, 2010, 28 (4): 469- 482. |
8 |
王南星, 王劲松, 季雨林. 基于Petri网的网络空间作战指挥机构运行流程分析[J]. 装甲兵工程学院学报, 2017, 31 (4): 10- 13.
doi: 10.3969/j.issn.1672-1497.2017.04.003 |
WANG N X , WANG J S , JI Y L . Analysis of working process of cyberspace operational commanding institution based on Petri net[J]. Journal of Academy of Armored Force Engineering, 2017, 31 (4): 10- 13.
doi: 10.3969/j.issn.1672-1497.2017.04.003 |
|
9 |
杨志华, 刘顺利, 刘己斌. 基于Petri网的防空兵群指挥信息结构建模分析[J]. 兵工自动化, 2012, 31 (4): 39- 42.
doi: 10.3969/j.issn.1006-1576.2012.04.011 |
YANG Z H , LIU S L , LIU J B . Modeling analysis on information structure of air defense group based on Petri net[J]. Ordnance Industry Automation, 2012, 31 (4): 39- 42.
doi: 10.3969/j.issn.1006-1576.2012.04.011 |
|
10 |
吴定刚. 基于UML的舰载预警机协同作战流程建模研究[J]. 舰船电子工程, 2012, 32 (5): 8- 11.
doi: 10.3969/j.issn.1627-9730.2012.05.003 |
WU D G . Research on operation cooperated flow modeling of AEWA based on UML[J]. Ship Electronic Engineering, 2012, 32 (5): 8- 11.
doi: 10.3969/j.issn.1627-9730.2012.05.003 |
|
11 |
黄欣鑫, 阮拥军. 基于UML的联合作战装备保障指挥决策信息流模型建立[J]. 兵器装备工程学报, 2017, 38 (2): 155- 158.
doi: 10.11809/scbgxb2017.02.034 |
HUANG X X , RUAN Y J . Establishment of the information flow model of joint operations equipment support command and decision based on UML[J]. Journal of Ordnance Equipment Engineering, 2017, 38 (2): 155- 158.
doi: 10.11809/scbgxb2017.02.034 |
|
12 | 蒲玮, 李雄. 基于Agent行动图的作战建模方法[J]. 系统工程与电子技术, 2017, 39 (4): 795- 805. |
PU W , LI X . Research on warfare modeling method based on Agent action diagrams[J]. Systems Engineering and Electronics, 2017, 39 (4): 795- 805. | |
13 | 徐建国, 李孟军, 姜江, 等. 预警作战体系超网络建模及结构分析[J]. 系统工程与电子技术, 2018, 40 (5): 1043- 1049. |
XU J G , LI M J , JIANG J , et al. Supernetwork modeling and structure analyzing for warning combat system[J]. Systems Engineering and Electronics, 2018, 40 (5): 1043- 1049. | |
14 | 李琳琳, 路云飞, 张壮, 等. 基于信息优势的指控系统指标体系构建及建模[J]. 系统工程与电子技术, 2018, 40 (3): 577- 582. |
LI L L , LU Y F , ZHANG Z , et al. System construction and modeling of command and control system index based on information superiority[J]. Systems Engineering and Electronics, 2018, 40 (3): 577- 582. | |
15 | 戴浩. 指挥控制的理论创新—网络赋能的C2[J]. 指挥与控制学报, 2015, 1 (1): 99- 106. |
DAI H . Innovation of command and control theory:network enabled C2[J]. Journal of Command and Control, 2015, 1 (1): 99- 106. | |
16 | KANG B G , SEO K M , KIM T G . Machine learning-based discrete event dynamic surrogate model of communication systems for simulating the command, control, and communication system of systems[J]. Simulation, 2019, 95 (8): 673- 691. |
17 | OOSTHUIZEN R, VENTER J P, SERFONTEIN C J. Model based systems engineering process for complex command and control systems[C]//Proc.of the 23rd International Command and Control Research and Technology Symposium, 2018. |
18 | RAZ A K, BLASCH E, CRUISE R, et al. Enabling autonomy in command and control via game-theoretic models and machine learning with a systems perspective[C]//Proc.of the AIAA Scitech Forum, 2019. |
19 | TIRUMALA S, YANG Y R, BALAKRISHNAN M. Command and control: a programming model for IoT device ma-nagement[D]. New Haven: Yale University, 2017. |
20 | LI N , HUAI W Q , WANG S D . The solution of target assignment problem in command and control decision-making behaviour simulation[J]. Enterprise Information Systems, 2017, 11 (7): 1059- 1077. |
21 |
CHEN B , YU H Y , WANG Y M , et al. Multilevel command and control supernetwork modeling based on attribute synergy prioritization[J]. IEEE Access, 2019, 7, 32693- 32702.
doi: 10.1109/ACCESS.2019.2903520 |
22 | MOFFAT J , CAMPBELL I , GLOVER P . Validation of the mission-based approach to representing command and control in simulation models of conflict[J]. Journal of the Operational Research Society, 2004, 55 (4): 340- 349. |
23 | STRAKA M , MALINDZAKOVA M , TREBUNA P , et al. Application of EXTENDSIM for improvement of production logistics'efficiency[J]. International Journal of Simulation Modelling, 2017, 16 (3): 422- 434. |
24 |
武文, 陈永志, 王瑜. 基于ExtendSim的指挥信息系统租住结构效能对比分析[J]. 火力与指挥控制, 2015, 40 (1): 49- 53.
doi: 10.3969/j.issn.1002-0640.2015.01.012 |
WU W , CHEN Y Z , WANG Y . Comparative analysis of the effectiveness of extendsim-based C4ISR's organization structure[J]. Fire Control & Command Control, 2015, 40 (1): 49- 53.
doi: 10.3969/j.issn.1002-0640.2015.01.012 |
|
25 | LI X L, YANG J S, WANG T, et al. Optimization research of sales and delivery processes based on ExtendSim[C]//Proc.of the 5th International Conference on Transportation Engineering, 2015: 900-909. |
26 |
STRAKA M , MALINDZAKOVA M , TREBUNA P , et al. Application of extend sim for improvement of production logistics'efficiency[J]. International Journal of Simulation Modeling, 2017, 16 (3): 422- 434.
doi: 10.2507/IJSIMM16(3)5.384 |
27 |
程启月, 邱菀华, 付毅峰. 基于系统时效熵的指挥流程效率评估方法[J]. 系统工程理论与实践, 2008, 28 (4): 155- 158.
doi: 10.3321/j.issn:1000-6788.2008.04.023 |
CHENG Q Y , QIU W H , FU Y F . The method efficiency va-luation studies in the command of process based on the system of the time efficacy entropy[J]. Systems Engineering-Theory & Practice, 2008, 28 (4): 155- 158.
doi: 10.3321/j.issn:1000-6788.2008.04.023 |
|
28 | 张志鹏, 苏中. 拦截低慢小目标的指控系统建模与仿真[J]. 系统仿真学报, 2018, 30 (11): 4340- 4347, 4358. |
ZHANG Z P , SU Z . Modeling and simulation of C2 system for intercepting LSS targets[J]. Journal of System Simulation, 2018, 30 (11): 4340- 4347, 4358. |
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