参考文献

参考文献

[1]谭建豪,王耀南,王媛媛,等.旋翼飞行机器人研究进展[J].控制理论与应用,2015,32(10):1278-1286.

[2]刘洪剑,王耀南,谭建豪,等.基于加速度变噪声EKF的无人机姿态融合算法[J].电子测量与仪器学报,2016,30(3):333-341.

[3]张艺巍,谭建豪,王耀南.3维复杂山地环境下旋翼无人飞行器高时效航迹规划策略[J].机器人,2016,38(6):72-77.

[4]谭建豪,章兢,何志.人类控制策略在双足机器人步态控制中的应用[J].电子测量与仪器学报,2013,27(1):8-14.

[5]谭建豪,宋彩霞,张俊,等.基于多传感器融合的抓取控制研究[J].湖南大学学报(自然科学版),2012,39(12):50-55.

[6]TAN J,ZHANGJ,WANG Y.A kind of bone removal technology based on the improved watershed algorithm [J].Computer and Information Science,2012,5(5):81-87.

[7]TAN J,ZHANG J,LI W.An improved clustering algorithm based on density distribution function[J].Computer and Information Science,2010,3(3):23-29.

[8]TAN J,ZHANG J,GUO F.Machine learning emulation in nature-inspired computation systems[J].Computer and Information Science,2009,2(3):15-23.

[9]TAN J,ZHANG J,GUO F.Experimental research of optimal die-forging technological schemes based on orthogonal plan[J].Modern Applied Science,2009,3(3):26-32.

[10]谭建豪,章兢.密度分布函数在聚类算法中的应用[J].控制理论与应用,2011,28 (18):1791-1796.

[11]谭建豪,章兢.遗传算法在模糊设计中的应用[J].控制理论与应用,2010,7(4):501-504.

[12]李瑞涵,王耀南,谭建豪.Nesterov加速梯度无人机姿态融合算法[J].机器人,2018,40(06):852-859.

[13]王耀南,罗琼华,陈彦杰,等.旋翼飞行机器人多机视觉跟踪定位系统及方法[J].仪器仪表学报,2018,39(02):1-10.

[14]LI S,WANG Y,TAN J.Adaptive and robust control of quadrotor aircrafts with input saturation[J].Nonlinear Dynamics,2017,19(6):1-11.

[15]刘洪剑,王耀南,谭建豪,等.一种旋翼无人机组合导航系统设计及应用[J].传感技术学报,2017,30(02):331-336.

[16]陈彦杰,王耀南,谭建豪,等.局部环境增量采样的服务机器人路径规划[J].仪器仪表学报,2017,38(05):1093-1100.

[17]吴怀宇,谭建豪.自动控制原理[M].武汉:华中科技大学出版社,2017.

[18]熊凌,谭建豪.电气控制与PLC技术及应用[M].武汉:华中科技大学出版社,2015.

[19]谭建豪,章兢,王猛君,等.数字图像处理与移动机器人路径规划[M].武汉:华中科技大学出版社,2013.

[20]谭建豪,章兢.软计算原理及其工程应用[M].北京:中国水利水电出版社,2011.

[21]王书峰,谭建豪.计算机控制技术[M].武汉:华中科技大学出版社,2011.

[22]谭建豪,章兢,黄耀,等.数据挖掘技术[M].北京:中国水利水电出版社,2009.

[23]谭建豪,章兢,蔡立军,等.现代信息处理及其应用[M].北京:清华大学出版社,北京交通大学出版社,2006.

[24]BARNHART R K,HOTTMAN S B,MARSHALL D M,et al.无人机系统导论[M].沈林成,吴利荣,牛轶峰,等,译.北京:国防工业出版社,2014.

[25]NONAMI K,KENDOUL F,SUZUKI S,et al.自主飞行机器人——无人机和微型无人机[M].肖阳,张璇子,孟宪权,译.北京:国防工业出版社,2014.

[26]WU C J,LEE T L.A fuzzy mechanism for action selection of soccer robots[J].Journal of Intelligent&Robotic Systems,2004,39(1):57-70.

[27]刘祚时,张海英,林桂娟.群体机器人研究的现状和发展[J].电子技术应用,2004,30 (2):38-41.

[28]王越超,谈大龙.一个多智能体机器人协作装配系统[J].高技术通讯,1998,8(7):6-10.

[29]雷艳敏,冯志彬,宋继红.基于行为的多机器人编队控制的仿真研究[J].长春大学学报,2008,18(8):40-44.

[30]杨甜甜,刘志远,陈虹,等.移动机器人编队控制的现状与问题[J].智能系统学报,2007,2(4):21-27.

[31]LEE G,CHONG N Y.Decentralized formation control for small-scale robot teams with anonymity[J].Mechatronics,2009,19(1):85-105.

[32]陈杨杨,田玉平.多智能体沿多条给定路径编队运动的有向协同控制[J].自动化学报,2009,35(12):1541-1549.

[33]雷艳敏,朱齐丹,冯志彬.基于混合式控制结构的多机器人编队控制研究[J].计算机工程与应用,2010,46(11):49-52.

[34]雷艳敏,冯志彬,宋继红.基于行为的多机器人编队控制的仿真研究[J].长春大学学报,2008,18(8):40-44.

[35]王佳,王艳新.基于滑动模型与图论的多机器人跟踪控制[J].计算机仿真,2010,27 (10):156-159.

[36]赵杰,姜健,臧希喆.基于强化学习的多机器人编队导航[J].辽宁工程技术大学学报,2007,26(6):915-918.

[37]FAN Y,FENG G,WANG Y,et al.A novel approach to coordination of multiple robots with communication failures via proximity graph[J].Automatica,2011,47(8):1800-1805.

[38]JI Z,WANG Z,LIN H,et al.Interconnection topologies for multi-agent coordination under leader-follower framework [J].Automatica A Journal of IFAC the International Federation of Automatic Control,2009,45(12):2857-2863.

[39]SAMIA S,TAISUKE I,KOICHI W.Oracle-based flocking of mobile robots in crash-recovery model[J].Theoretical Computer Science,2011,412(33):4350-4360.

[40]YANG Y,SOUISSI S,DEFAGO X,et al.Fault-tolerant flocking for a group of autonomous mobile robots[J].Journal of Systems&Software,2011,84(1):29-36.

[41]YANG H,STAROSWIECKI M,JIANG B,et al.Fault tolerant cooperative control for a class of nonlinear multi-agent systems[J].Systems&Control Letters,2011,60(4):271-277.

[42]任德华,卢桂章.对队形控制的思考[J].控制与决策,2005,20(6):601-606.

[43]董炀斌.多机器人系统的协作研究[M].杭州:浙江大学出版社,2006.

[44]秦元庆.多移动机器人系统运动控制研究[M].武汉:华中科技大学出版社,2007.

[45]程磊.移动机器人系统及其协调控制[M].武汉:华中科技大学出版社,2014.

[46]PARKER L E.Alliance:an architecture for fault-tolerant multi-robot cooperation[J].IEEE Transactions on Robotics and Automation,1994,14(2):220-240

[47]谭民,王硕,曹志强.多机器人系统[M].北京:清华大学出版社,2005.

[48]蔡自兴.多移动机器人协同原理与技术[M].北京:国防工业出版社,2011.

[49]REN W,BEARD R W.Distributed consensus in multi-vehicle cooperative Control:Theory and Applications[M].London:Springer-Verlag,2008.

[50]BULLO F,CORTRS J,MARTINEZ S.Distributed control of robotic networks[M].Princeton:Princeton Univ.,2009.

[51]QU Z.Cooperative control of dynamical systems:applications to autonomous vehicles[M].London:Springer-Verlag,2009.

[52]MESBAHI M,EGERSTEDT M.Graph theoretic methods for multi-agent networks [M].Princeton:Princeton University,2010.

[53]REN W,CAO Y.Distributed coordination of multi-agent networks [M].London:Springer-Verlag,2011.

[54]BAI H,ARCAK M,WEN J.Cooperative control design:a systematic,passivity-based approach[M].New York:Springer-Verlag,2011.

[55]刘磊.多移动机器人编队及协调控制研究[M].武汉:华中科技大学出版社,2009.

[56]任德华.多机器人系统队形控制研究[M].天津:南开大学出版社,2005.

[57]兰莹.基于混杂控制方法的多自主移动机器人协同目标追踪与路径跟踪研究[M].杭州:浙江大学出版社,2011.

[58]CAO Y,YU W,REN W,et al.An overview of recent progress in the study of distributed multi-agent coordination[J].IEEE Transactions on Industrial Informatics,2013,9(1):427-438.

[59]MARTINEZ S,CORTES J,BULLO F.Motion coordination with distributed information [J].IEEE Control Systems Magazine,2007,27(4):5-88.

[60]JADBABAIE A,LIN J,MORSE A S.Coordination of groups of mobile autonomous agents using nearest neighbor rules[J].IEEE Transactions on Automatic Control,2003,48(6):988-1001.

[61]OLFATI S R,MURRAY R M.Consensus problems in networks of agents with switching topology and time-delays[J].IEEE Transactions on Automatic Control,2004,49(9):1520-1533.

[62]LIN Z,BROUCKE M,FRANCIS B.Local control strategies for groups of mobile autonomous agents[J].IEEE Transactions on Automatic Control,2004,49(4):622-629.

[63]MOREAU L.Stability of multiagent systems with time-dependent communication links[J].IEEE Transactions on Automatic Control,2005,50(2):69-182.

[64]REN W,BEARD R W.Consensus seeking in multi-agent systems under dynamically changing interaction topologies[J].IEEE Transactions on automatic control,2005,50(5):655-661.

[65]REN W,BEARD R W,Atkins E M.Information consensus in multivehicle cooperative control[J].IEEE Control systems magazine,2007,2(27):71-82.

[66]OLFATI S R.Flocking for multi-agent dynamic systems:Algorithms and theory[J].IEEE Transactions on Automatic Control,2006,51(3):401-420.

[67]TANNER H G,JADBABAIE A,PAPPAS G J.Flocking in fixed and switching networks[J].IEEE Transactions on Automatic Control,2007,52(5):863-868.

[68]LEE D,SPONG M W.Stable flocking of multiple inertial agents on balanced graphs[J].IEEE Transactions on Automatic Control,2007,52(8):469-1475.

[69]CUCKER F,DONG J G.Avoiding collisions in flocks[J].IEEE Transactions on Automatic Control,2010,55(5):1238-1243.

[70]CUCKER F,DONGJG.A general collision-avoiding flocking framework[J].IEEE transactions on automatic control,2011,56(5):1124-1129.

[71]ZHANG H T,ZHAI C,CHEN Z.A general alignment repulsion algorithm for flocking of multi-agent systems[J].IEEE Transactions on Automatic Control,2011,56(2):430-435.

[72]GAZI V.Swarm aggregations using artificial potentials and sliding-mode control[J].IEEE Transactions on Robotics,2005,21(6):1208-1214.

[73]GAZI V,PASSINO K M.Swarm Stability and Optimization[M].Berlin:Springer,2011.

[74]CORTES J,MARTINEZ S,KARATAS T,et al.Coverage control for mobile sensing networks[J].IEEE Transactions on Robotics and Automation,2004,20(2):1327-1332.

[75]SCHWAGER M,RUS D,SLOTINE J J.Decentralized,adaptive coverage control for networked robots[J].The International Journal of Robotics Research,2009,28(3):357-375.

[76]DES V,GHRIST R.Coordinate-free coveragein sensor networks with controlled boundaries via homology[J].The International Journal of Robotics Research,2006,25(12):1205-1222.

[77]ZHONG M,CASSANDRAS C G.Distributed coverage control and data collection with mobile sensor networks[J].IEEE Transactions on Automatic Control,2011,56(10):2445-2455.

[78]DURHAM J W,CARLI R,FRASCA P,et al.Discrete partitioning and coverage control for gossiping robots[J].IEEE Transactions on Robotics,2012,28(2):364-378.

[79]FAX J A,MURRAY R M.Information flow and cooperative control of vehicle formations[J].IEEE Transactions on Automatic Control,2004,49(9):1465-1476.

[80]LIN Z,FRANCIS B,MAGGIORE M.Necessary and sufficient graphical conditions for formation control of unicycles[J].IEEE Transactions on Automatic Control,2005,50(1):121-127.

[81]REN W.Consensus strategies for cooperative control of vehicle formations[J].IET Control Theory and Applications,2007,1(2):505-512.

[82]YU C,HENDRICKX J M,FIDAN B,et al.Three and higher dimensional autonomous formations:Rigidity,persistence and structural persistence [J].Automatica,2007,43 (3):387-402.

[83]HENDRCKX J M,ANDERSON B,DELVENNE JC,et al.Directed graphs for the analysis of rigidity and persistence in autonomous agent systems[J].International Journal of Robust and Nonlinear Control,2007,17(10-11):960-981.

[84]ANDERSON B,YU C,FIDAN B,et al.Rigid graph control architectures for autonomous formations[J].IEEE Control Systems Magazine,2008,28(6):48-63.

[85]HENDRICKX J,FIDAN B,YU C,et al.Formation reorganization by primitive operations on directed graphs[J].IEEE Trans on Automatic Control,2008,53(4):968-979.

[86]YU C,ANDERSON B,DASGUPTA S,et al.Control of minimally persistent formations in the plane[J].SIAM Journal on Control and Optimization,2009,48(1):206-233.

[87]SUMMERS T,YU C,DASGUPTA S,et al.Control of minimally persistent leader-remotefollower and coleader formations in the plane[J].IEEE Transactions on Automatic Control,2011,56(12):2778-2792.

[88]OH K K,PARK M C,AHN H S.A survey of multi-agent formation control[J].Automatica,2015,53:424-440.

[89]DESAIJP,OSTROWSKIJP,Kumar V.Modeling and control of formations of nonholonomic mobile robots[J].IEEE Transactions on Robotics and Automation,2001,17(6):905-908.

[90]DAS A,FIERRO R,KUMAR R,et al.A vision-based formation control framework[J].IEEE Transactions on Robotics and Automation,2002,18(5):813-825.

[91]TANNER H G,PAPPAS G J,KUMAR V.Leader-to-formation stability[J].IEEE Transactions on Robotics and Automation,2004,20(3):443-455.

[92]LEWIS M A,TAN K H.High precision formation control of mobile robots using virtual structures[J].Autonomous Robots,1997,4(4):387-403.

[93]RENW,BEARD R.Formation feedback control for multiple spacecraft via virtual structures[J].IET Control Theory and Applications,2004,5(3):357-368.

[94]RENW,BEARD R.Decentralized scheme for spacecraft formation flying via the virtual structure approach[J].Journal of Guidance,Control,and Dynamics,2004,27(1):73-82.

[95]BALCH T,ARKIN R C.Behavior-based formation control for multirobot teams[J].IEEE Transactions on Robotics and Automation,1998,14(6):926-939.

[96]LAWTON J R T,BEARD R W,YOUNG B J.A decentralized approach to formation maneuvers[J].IEEE Transactions on Robotics and Automation,2003,19(6):933-941.

[97]YAMAGUCHI H.A distributed motion coordination strategy for multiple nonholonomic mobile robots in cooperative hunting operations [J].Robotics and Autonomous Systems,2003,43:257-282.

[98]FREDA L,ORIOLO G.Vision-based interception of a moving target with a nonholonomic mobile robot[J].Robotics and Autonomous Systems,2007,55(6):419-432.

[99]ANTONELLI G,ARRICHIELLO F,CHIAVERINI S.The entrapment/escorting mission [J].IEEE Robotics and Automation Magazine,2008,15(1):22-29.

[100]KIM T H,SUGIE T.Cooperative control for target-capturing task based on a cyclic pursuit strategy[J].Automatica,2007,43(8):1426-1431.

[101]SWARTLINGJ O,SHAMESI,JOHANSSON K H,et al.Collective circumnavigation[J].Unmanned Systems,2014,2(3):219-22.

[102]FRANCHI A,STEGAGNO P,ORIOLO G.Decentralized multi-robot encirclement of a 3D target with guaranteed collision avoidance[J].Autonomous Robots,2015:1-21.

[103]CECCARELLI N,Di Marco M,GARULLI,et al.Collective circular motion of multi-vehicle systems[J].Automatica,2008,44(12):3025-3035.

[104]SEPULCHRE R,PALEY D A,LEONARD N E.Stabilization of planar collective motion:all-toall communication[J].IEEE Transactions on Automatic Control,2007,52(5):811-824.

[105]SEPULCHRE R,PALEY D A,Leonard N E.Stabilization of planar collective motion with limited communication[J].IEEE Transactions on Automatic Control,2008,53(3):706-719.

[106]FREW E W,LAWRENCE D A,MORRIS S.Coordinated standoff tracking of moving targets using Lyapunov guidance vector fields[J].Journal of Guidance,Control,and Dynamics,2008,31(2):290-306.

[107]SUMMERS T H,AKELLA M R,MEARS M J.Coordinated standoff tracking of moving targets:control laws and information architectures[J].Journal of Guidance,Control,and Dynamics,2009,32(1):56-69.

[108]BRINON A L,SEURET A,SCANUDA DE WIT C.Cooperative control design for time-varying formations of multi-agent systems[J].IEEE Transactions on Automatic Control,2014,59(8):2283-2288.

[109]孙敬陶,王耀南,谭建豪,等.旋翼飞行机械臂系统的混合视觉伺服控制[J/OL].控制理论与应用:1-11 [2018-12-20].http:/kns.cnki.net/kcms/detail/44.1240.TP.20181105.0919.012.html.

[110]李希,谭建豪.基于自适应RBFNN噪声估计的自抗扰控制在姿态控制中的应用[J/OL].机器人:1-10[2018-12-20].https://doi.org/10.13973/j.cnki.robot.180019.

[111]赵帅.四旋翼飞行器几种姿态控制算法的研究[D].桂林:广西师范大学,2017.

[112]王大鹏.四旋翼飞行器飞行动力学特性分析[D].南京:南京理工大学,2017.

[113]高洁.四旋翼无人机模糊PID控制算法研究和电路设计[D].哈尔滨:哈尔滨工业大学,2017.

[114]杨成顺.多旋翼飞行器建模与飞行控制技术研究[D].南京:南京航空航天大学,2013.

[115]祝燕华,蔡体菁,杨卓鹏.MEMS-IMU/GPS组合导航系统的实现[J].中国惯性技术学报,2009,17:(5):552-561.

[116]李力,王耀南,刘洪剑,等.旋翼飞行机器人视觉定位方法及系统[J].机器人,2016,38(1):8-16.

[117]王燕英.基于CML的移动机器人导航算法研究[D].长沙:湖南大学,2017.

[118]张艺巍.基于稀疏A~*与神经动力学融合算法的无人机航迹规划研究[D].长沙:湖南大学,2017.

[119]黄耀.基于栅格法的汽车路径规划[D].武汉:华中科技大学,2008.

[120]贾广芝.基于遗传算法和稀疏A*算法的无人机三维航迹规划研究[D].南京:南京邮电大学,2017.

[121]凌金福.四旋翼飞行器飞行控制算法的研究[D].南昌:南昌大学,2013.

[122]李树帅.无人飞行器的轨迹跟踪控制算法研究[D].长沙:湖南大学,2017.

[123]张红.非线性系统的滑模变结构控制理论研究[D].大庆:大庆石油学院,2008.

[124]武文娟.非线性系统的分数阶控制理论研究[D].南京:南京林业大学,2011.

[125]王明建.平流层飞艇平台的建模与控制方法研究[D].长沙:国防科学技术大学,2007.

[126]于姗姗.基于倒立摆系统的智能控制算法研究[D].西安:西安电子科技大学,2007.

[127]郑敏.基于变结构自适应控制方法的小卫星姿态控制研究[D].南京:南京航空航天大学,2008.

[128]巫武琴.交流伺服系统的模糊滑模控制研究[D].重庆:重庆大学,2008.

[129]郑守军.空空导弹鲁棒自适应制导律及其视景仿真研究[D].南京:南京航空航天大学,2007.

[130]孙华林.基于C空间和人工势场的4R机器人路径规划[D].合肥:合肥工业大学,2007.

[131]荆奇.蚁群算法在特种机器人智能控制中的应用研究[D].哈尔滨:哈尔滨工程大学,2010.

[132]张立志.六自由度点焊机器人结构设计与动态性能分析[D].沈阳:东北大学,2010.

[133]李东.空间站在轨飞行与操作虚拟仿真技术研究[D].沈阳:沈阳理工大学,2012.

[134]贾雪峰.基于虚拟样机的4DOF码垛机器人分析与仿真验证[D].泰安:山东农业大学,2014.

[135]杨锦涛.多用途工业机器人轨迹规划、运动学与动力学研究[D].江苏科技大学,2015.

[136]孙敬陶,钟杭,王耀南,等.旋翼飞行机械臂的混合视觉伺服和分层控制方法[J].仪器仪表学报,2018,39(07):56-65.