登录
首页 » Others » 数值分析幂法与反幂法 matlab程序

数值分析幂法与反幂法 matlab程序

于 2020-12-09 发布
0 156
下载积分: 1 下载次数: 1

代码说明:

使用幂法求计算矩阵的主特征值及主特征向量,用反幂法求计算矩阵的按模最小特征值及特征向量。

下载说明:请别用迅雷下载,失败请重下,重下不扣分!

发表评论

0 个回复

  • CButtonST按钮增强类(可在VS2012直接使用)
    CButtonST按钮增强类的四个文件,针对VS2012进行过修改,跟网上大部分VC++6.0使用的版本不同。
    2020-12-04下载
    积分:1
  • PCL+VS2015+pcl.props配置属性文件(64位)
    PCL+VS2015+pcl.props配置属性文件,注意是64位
    2020-12-05下载
    积分:1
  • 赛事大师(乒乓球)-2015-10-09
    一套功能强大,免费的抽签编排软件,纯绿色免安装。
    2020-12-04下载
    积分:1
  • LMS自适应噪声对消matlab
    用LMS算法实现实时录取的语音或者音乐信号与噪声混音后提取有用信号而抑制噪声信号
    2021-05-06下载
    积分:1
  • CANOpen应用层和通讯协议(CiA301)
    CANOpen应用层和通讯协议,基于CiA301的中文翻译,整理好了书签,学习CANopen必备资料。CANopen应用层和通信协议目录1适用范围2参考资料2.规范性引用2.2信息参考3缩写和定义·非·垂8888831缩写3.2定义…标准帧扩展帧.999CAN-工DCOB-ID·········实体FSA,,,设备域9逻辑设备,++Node-ID+++++,.,+·+···对象9虚拟设备建模…104.1设备域模型104.2通信参考模型.4.2.1简述14.2.2 CANopen应用层………….114.2.2.1概述··::············::··114.2.22服务原语1142.2.3应用层服务124.3 CANopen设备模型43.1简述..124.4通信协议分类··;·······∴134.4.1简述4.4.2主/从协议6··134.4.3客户端/服务器协议1444.4生产者/消费者协议-推/拉模式144.45对象字典网络系统模型1545.1设备协议154.5.2应用协议155物理层5.1OS参考模型.∴…16介质相关接口53物理介质连接.54物理信令…166数据链路层186.1简述…∴186.2AN帧类型·4···:·;··4·44···.···:·4·4·4··4··+∴187应用层.197.1数据类型和编码规则..197.1.1数据类型和编码规则简述.19⊙CA2011-保留所有权利CANopen应用层和通信协议7.1.2数据类型定X位序207.1.3位序列7.1.3.1位序列定义7.1.3.2位序列的传输语法……207.1.4基本数据类型217.1.4.1简述217.1.4.27.1,4.3 Boolean.……7.1.4.4Void.7.1. 4.5 Unsigned interge222222111127.1.4.6 Signed Integer....7.1.4.7浮点数.··+·“·4·“··+:···;4······+······7.1.5复合数据类型237.1.6扩展数据类型7.1.6.1简述7.1.6.2八进制字符…27.1.6.3可显示字符串7.1.6.4 Unicode字符串7.1.6.5时间2223444247.1.6.6时间差.47.1.6.7域247.2通信对象247.2.1简述247.2.2过程数据对象(PDO).257.2.2.1简述257.2.2.2传输模式267.2.2.3触发模式.….267.2.2.4PD0服务7.2.2.5PD0协议287.2.3寻址PD0MPD0)7.2.3.1简述.287.2.3.2MPD0寻址模式297.2.3.3PD0服务297.2.3.4MD0协议307.2.4服务数据对象(SD)7.2.4.1简述317.2.4.2SD0服务7.2.4.3S00协议…43服务器49服务器49客户端服务器.…537.25同步对象(SYNC)597.2.5.1简述597.2.5.2SYNC服务597.2.5.3同步协议…7.2.6时间戳对象(TIME)7.2.6.1简述607.2.6.2TIME服务607.2.6.3TIME协议和“……………617.2.7应急对象(EMCY617.2.7.1应急对象的使用617.2.7.2应急的对象服务…ccⅰA2011-保留所有权利CANopen应用层和通信协议7.2.7.3应急对象协议…1547.28网络管理···.·:4·········7.2.8.1简述7.2.8.2NM服务7.2.8.3NMT协议6973网络初始化和系统 boot-up∴747.3.1简化的MMT启动∴747.3.2NT状态机.757.3.2.1概述7.3.2.2MMT状态767.3.2.3MT状态转换7.3.3通用预定义连接集7.3.4特定预定义连接集…787.3.5受限CAN-IDs7974对象字典7.4.1常规结构·++·“+“797.42索引和子索引的使用.807.4.3对象代码的使用7.4.4数据类型的使用.817.4.5访问权限的使用∴817.4.6类别和条目类别的使用.7.4.7数据类型条目的使用827.4.7.1简述7.4.7.2对象字典条目的组织结构7.4.8预定义复合数据类型规范7.4.8.1PD0通讯参数记录规格847.4.8.2PD0映射参数记录规格7.4.8.3SD0参数记录规格857.4.8.4身份记录规格857.4.8.50S调试记录规格.857.4.8.60S命令记录规格通信协议规范867.51对象及其条目说明规范∴867.5.2通信协议对象的详细规范877.5.2.1对象1000:设备类型1877.5.2.2对象1001h:错误寄存器7.5.2.3对象10021:制造商状态寄存器7.5.24对象1003:预定义错误域897.5.2.5对象1005:COB-ID同步消息∴917.5.2.6对象1006:通信循环周期.927.5.27对象1007:同步窗长度.927.5.28对象1008:制造商设备名称7.5.2.9对象1009:制造商的硬件版本937.5.2.10对象100A1:制造商软件版本947.5.2.11对象1000:监护周期947.5.2.12对象100D:生存周期因子7.5.2.13对象1010:保存参数957.5.2.14对象1011:恢复缺省参数977.5.2.15对象10121:时间戳对象COB-ID1007.5.2.16对象1013:高分辨率时间戳1017.5.2.17对象1014: EMCY COB-ID1017.5.2.18对象1015:EMCY抑制时间.1027.5.2.19对象1016:消费者心跳超时.103⊙CA2011-保留所有权利CANopen应用层和通信协议7.52.20对象1017:生产者心跳超时………1047.5.221对象1018:对象身份1057.5.2.22对象1019:同步计数器溢出值7.5.2.23对象1020:验证配置1077.5.2.24对象1021:存储EDS1087.5.2.25对象1022:存储格式1097.5.2.26对象1023:0S命令7.5.2.27对象1024:0s命令模式…·;·中1117.5.2.28对象10251:0s调试接口.1127.5.2.29对象1026:0S提示符命令接口.1137.5.2.30对象1027:模块列表1147.5.231对象1028:应急消费对象7.5.2.32对象1029:错误行为对象.1177.5.2.33对象1200127F:SD0服务器参数1187.5.234对象128012F:SD0客户端参数.1217.5.235对象1400~15FF1:RPD0通信参数1237.5.2.36对象160017FF:RPD0映射参数.1267.5.2.37对象180019FB:TPD0通信参数1297.5.238对象1A00"1BF:TPD0映射参数1347.5.2.39对象1FA011FCF:对像扫描仪列表1367.5.2.40对象1FD0^1FFR:对象分配列表…138附件A(更多信息)140注译版木记录142CA2011-保留所有权利CANopen应用层和通信协议1适用范围本规范定义了 CANopen应用层。包括数据类型、编码规则、对象字典以及 CANopen通信服务协议。此外,本规范也定义了 CANopen网络管理服务协议本规范规定了 CANopen通信协议,例如物理层、通信对象标识符预定义连接集、应急对象( Emergency)、时间戳和同步通笮对象⊙CA2011-保留所有权利CANopen应用层和通信协议2参考资料2.1规范性引用/EN61131-3EN61131-3,可编程控制器一一第3部分:编程语言/IS07498-1/IS07498-1,信息技术-开放系统互连-基本参考模型:基本模型/IS08859/IS08859,信息技术——8位单字节编码图形字符集ISol!898-1/Is011898-1,道路车辆—控制器区域网络(CAN)——第1部分:数据链路层和物理信令/IS0ll898-2/IS0118982,道路车辆——控制器区域网络(CAN)—一第2部分:高速介质访问单元/IS01l8983ⅠS0118983,道路车辆——控制器区域网络CAN——第3部分:低速度、容错的介质相关接口。/IS010646/IS010646,信息技术通用多八位编码字符集(LCS)2.2信息参考/IEEE754/TEEE754,标准的二进制的浮点运算/IEC62390IEC TR62390,常规的白动化设备一协议的准则3缩写和定义3.1缩写ARQ自动重复请求CAN控制局域网CAN IDCAN标识符COB通信对象COB-IDCOB标识符CRC循环冗余校验CSDOClicnt-SDODAM目的地址模式FSA有限状态机LLO逻辑链路控尙LSB最低位/字节MAC介质访问控制MDI介质相关接口MPDO多路复用PD0MSB最高位/字节网络管理NODE-ID节点标识符OSI开放系统互连PDO过程数据对象PLS物理层的信令ccⅰA2011-保留所有权利CANopen应用层和通信协议PMA物理介质连接RPDO接收PDORTR远程传输请求SAM源地址模式SDO服务数据对象SSDOServer-SDoSYNC同步对象TPDO发送PDO3.2定义标准帧/IS01898-1/屮定义的最多可包含8个字节数据和11位标识符的消息扩展帧/IS011898-1/中定义最多可包含8个字节数据和29位标识符的消息CAN-ID/IS011898-1/中定义的CAN数据和远程帧标识符COB-ID包含CAN-1D和附加控制位的标识符实体特指事物如人、地点、过程、概念、组织或事件FSA若干计算行为组成的模式作为一个状态,一个启动状态,输入一个字母,映射输入符号和当前状态到下一状态的转换功能:以一个宁符串输入作为启动状态的计算起始;依赖传递函数变换到新状态(译者注:无法按字面翻译,译者定义为表示有限个状态以及在这些状态之间的转移和动作等行为的数学模型,即有限状态机)。设备域1.自动化系统中独立联网的物理实体,在特定的上下文和分隔符中使用自身接口执行指定的功能2.在自动化系统中向其他实体扶行控制、操纵和/或传感功能和相关接口的实体。逻辑设备根据改备域模型所组织的一系列对象和行为,描述了该设备的数据和行为使网络所理解Node-ID网络范围内每个 CANopen设备的独特标识对象封装了状态和行为有明确界限和身份的实体虚拟设备能够像域设备一样完成所属功能事件的软件实体,⊙CA2011-保留所有权利9CANopen应用层和通信协议4建模4.1设备域模型如图1所示,设备域至少包含一个 CANopen设备。其中每个 CANopen设备至少带有一个包含数据链路层(见本章第6节)和物理层(见本章第5节)的网络接凵、一个node-1D、至少一种通信状态机(FSA)。通信状态机不仅带有NMT从状态机(见7.3.2),还包括应急状态机(见7.27)等共他附加状态机。这些附加状态机定义于所谓的框架协议内,不属于本协议范围。一个 CANopen设备至少包含一个多至8个逻辑设备,且不可分割于多个设备域。每个逻辑设备可包含一个逻辑设备状态机(可选)和多个虚拟设备。逻辑设备不可分割于多个 CANopen设备。逻辑设备定义于所谓的设备协议中(见4.5.1),不在本协议的范围内。每个虚拟设备包含一个虚拟设备状态机且不可分割于多个逻辑设备。虚拟改备定义于所请的应用协议(请参阅子句452),不在本协议范围内。设备域的最小化结构如图2所示。Field deviceCANopen device (Node-ID)CANopen device (Node-ID)CommunicationCommunicationCommunicationCommunicationFSA●●FSAFSAFSA1st logical device1st logical deviceLogical deviceLogical deviceLogical deviceLogical device●自FSAFSAFSAFSAVirtual deviceVirtual deviceVirtual deviceVirtual deviceDevice●●DeviceDevice●●●DeviceFSAFSAFSAFSA8th logical device8th logical deviceLogical device●●Logical devicLogical device@●●Logical deviceFSAFSAFSAFSAVirtual deviceVirtual deviceVirtual deviceVirtual deviceDevice鲁●●DeviceDeviceDeviceFSAFSAFSAFSA图1:设备域模型ccⅰA2011-保留所有权利
    2020-12-04下载
    积分:1
  • Rohde&Schwarz 频谱仪操作手册(英文)
    Rohde&Schwarz 频谱仪操作手册(英文) 1145.5850系列全英文,详细的操作方式,各类使用技巧R&S FSHContentsContentsSpecificationsSafety InstructionsCertificate of qualitEC-Certificate of conformitySupport Center AddressList of R&S RepresentativesPutting into OperationFront view1.1Putting into Operation1.2Unpacking the Instrument1.2Setting up the InstrumentSwitching on the Spectrum Analyzer1.4Spectrum Analyzer Connectors1.5Screen SettingsQCountry-Specific Settings1.10Setting the Date and TimeSetting the date.1.11Setting the time1.1Charging the Battery......1.12Selecting the Instrument Default Setup1.13External Reference /External Trigger Switchover1.14Controlling the rF Attenuator1.15Using a Preamplifier…1.15PIN Entr1.17Connecting Printers.1.19Setting the Baud rate for Remote Control1.21Enabling Options1.21Checking the Installed options1.221145.5973.12E-15ContentsR&S FSH2 Getting Started2.Measurements on cw signals2.1Level measurement2Setting the Reference Level量‘面2.2Frequency Measurements2.3Harmonic Measurements of a sinewave Signal面面2.4Power Measurements Using the Power Sensor2.5Power and return loss measurements with the r&s FsH-z14 or the r&s FSH-Z444427Two-Port Transmission measurements2.9Measurement of return loss2.11Performing Distance-To-Fault Measurements...2.14Operation in Receiver Mode2.20Measuring the carrier-to-Noise power ratio2.Determining the Reference2.26Sts…2.26Selecting the reference channel2.27Entering the channel bandwidth of the reference channel2.27Selecting the unit for the reference...2.27Manually entering the reference2.27Automatic level adjustment2.27Measuring the Noise Power and Calculating Carrier Power /Noise Power.........2.28Selecting the result display2.28Frequency setting of the noise channel..2.28Setting the noise channel measurement bandwidth2.29Setting the C/N channel bandwidth2.29Automatic level adjustment2.29Correcting the displayed average noise level2.30Hiding the result display2.30Saving and Recalling Settings and Test Results2.31Saving Measurement Results2.31Saving Calibration Data2.32Recalling measurement results2.33Printing Out Measurement Results……2.341145.5973.122E-15R&S FSHContents3 Operation3.Screen LayoutScreen layout for spectrum-mode measurements without markers3.1Screen layout when the marker mode is selected3.2Entering Measurement ParametersEntering values and texts3.3Entering units3.4Menu overview.3.5Frequency entryFrequency span...Level setting…3.5Bandwidth settingTrace setting3.6Measurement functions3.7Marke3.10Save and print menu3.12Instrument setup3.12Status display3.12Menus in the Receiver Mode(option R&S FSH-K3)3.13Menu for 3GPP BTS Code domain Power Measurement (Option R&S FSH-K4)3.16Menu for Vector Voltmeter(Option R&S FSH-K2)3.161145.5973.12E-15ContentsR&S FSH4 Instrument functions4Instrument Default Setup4.1Status Display..................4.1Setting the Frequency4.2Entering the center frequency..4.2Setting a frequency offset4.2Entering the center-frequency step size4.3Entering the start and stop frequency4.4Working with channel tablesSetting the Span1面4.6Setting the Amplitude Parameters4.7Setting the reference levelEntering the display range94.9Entering the display unit4.9Entering the reference offset4.10Entering the input impedance.…………4.10Setting the Bandwidths4.11Resolution bandwidth4.11Video bandwidth4.13Setting the Sweep4.14Sweep time.4.15Sweep mode.4.15Trigger4.16Trace Settings4.19Trace mode∴4.19Detector4.20Trace memory…4.22Trace mathematics4.23Using the Markers4.24Automatic marker positioning .......4.25Using more than one marker at a time(multimarker mode).........,4.27Marker functions4.30Measuring the noise power density4.30Measuring the frequency4.31Measuring the filter bandwidth or the signal bandwidth4.32aF demodulation4.331145.5973.12E-15R&S FSHContentsUsing the dis play line…….….….….….….….….….…..….….……….…..34Setting and Using the Measurement Functions4.35Measuring the channel power of continuously modulated signals………………4.35Selecting the standard4.36Setting the reference level4.38Setting the channel bandwidth4.38Changing the spaPower displaPower measurements on TDMA signals4.42Selecting a standard∴4.42Setting the measurement time4.44Optimizing the reference level ..4.44Power readout4.45Setting the trigger4.45Measuring the occupied bandwidth4.46Selecting a standard4.47Setting the reference level4.48Setting the channel bandwidth4.49Entering the power percent to determine the occupied bandwidth4.50Displaying thupied bandwidth4.50Changing the spai1145.5973.12E-15ContentsR&S FSHMeasuring the Carrier-to-Noise Ratio.......4.52Determining the reference4.53Setting the reference channel4.53Setting the reference channel bandwidth……4.53Setting the analyzer reference level for the reference channel measurement4.54Manual reference mode4.54Inserting the c/N referenceUnits of the c/n reference4.55StandardsUSER Standard4.56User-specific standards4.56Predefined user-specific standards4.59Predefined user-specific standard Digital TX4.59Predefined user-specific standard ANalog tv mode4.60Predefined user-specific standard ctx4.60Measuring the noise channel power and calculating the carrier power/noise power.4.62Frequency setting of the noise channel………4.63Setting the noise channel bandwidth4.64Setting the C/N ratio channel bandwidth4.64Setting the reference level during noise channel measurement.4.65Selecting the c/ N result display..…,…4.65C/N measurement result display4.66Changing the span4.66Correction of inherent noise power4.67Using the R&S FSH in receiver mode4.68Setting the frequencySetting the reference level,,,。.。4.71Setting the bandwidth4.72Setting the detector4.73Setting the measurement time4.73Measurement on multiple frequencies or channels(scan)4.74Measurements using the power sensor4.76Connecting the power sensor……4.76Zeroing the power sensor.4.78Selecting the unit for the power readout4.79Setting the averaging time.……4.80Taking additional loss or gain into account4.81Measuring forward and reflected power∴4.82Zeroing the power sensor4.84Setting the power measurement weighting4.85Selecting the unit for the power readout4.86Taking additional attenuation into account4.881145.5973.126E-15R&S FSHContentsTwo-port measurements with the tracking generator489Measuring the transmission of two-ports4.91Vector transmission measurement494Measuring the transmission magnitude........4.96Measuring the transmission phase4.96Measuring the electrical length when measuring transmission面B国4.99Measuring the group delay when measuring transmission4.100Transmission measurement using the connected VSWR Bridge R&S FSH-Z3.. 4.102Sppectrum measurements with the VsWR Bridge R&s FSH-Z3 or R&S FSH-Z2connectedSetting for detecting the R&S FSH-Z3 in the transm. and spectr. measurement .. 4.104Supplying DC voltage to active DUTs4.105Reflection measurements4.105Scalar measurement of reflection4.106Vector measurement of reflection4.108Measuring the reflection magnitude4.111Measuring the reflection phase.……4.111Measuring the electrical length when measuring reflection4.112Displaying the reflection in the Smith chart4.113Measuring the group delay when measuring reflection4.118Selecting the calibration standards4.120Spectrum measurements with the vswr Bridge r&s FSH-Z3 or R&S FSH-z2connected4.121Settings for detection of the R&SFSH-z2andR&SFSH-Z3………4.122One-Port measurement of cable loss4.123Vector voltmeter.4.124Reflection measurements(S11)4.125Measuring transmission coefficients(S21)4.128Cable measurements4.134Cable selection∴4.135Selecting the frequency range…4.138Calibrating the test setupa.::::::.“14.139Locating cable faults by means of the marker function4.142Measuring spectrum and reflection4.145Further information∴4.146Setting the span4.146Selecting the center frequency.........∴4.147Measurement4.148Length measurement accuracy4.148Using limit Lines∴4.149Measurements with limit lines国面面4.151Definition range of limit lines4.152Data sets containing limit lines...4.1521145.5973.127ContentsR&S FSHMeasuring with Transducer Factors.4.153Unit for measurements with transducers4.156Reference level settings for measurements with transducers4.156Frequency range of transducer………4.156Data sets containing transducer factors4.156Field-Strength Measurement with Isotropic Antenna∴4.157Connecting the antenna to the R&S FSH4.157Measurement of the resultant field strength in a transm. channel with large bandwidth .......4.159Code Domain Power Measurement on 3GPP FDD Signals.4.166Saving and Loading Instrument Settings and Measurement Results4.173Saving results4.174Entering a data set name4.175Loading measurement results.4.175Deleting saved data sets4.176Deleting all data sets4.177Printing out Measurement Results4.178Measurements4.179How a spectrum analyzer operates…4.1791145.5973.12E-15
    2020-12-10下载
    积分:1
  • k-means 源代码(C++实现)
    这是用C++实现的普通K-means算法,附带iris.dat数据集k-means 源代码 C++实现 C++ k均值
    2020-11-30下载
    积分:1
  • k均值聚类算法源码(matlab).m
    【实例简介】k均值聚类算法源码(matlab)k均值聚类算法源码(matlab)
    2021-11-30 00:54:36下载
    积分:1
  • PCA+GUI的人脸识别
    也是刚学的matlab,学习GUI编程,还是直接看程序,写代码比较好。看书吧,程序敲下来都有不通的。自己结合别人代码稍微改了下,训练和测试库都带了,界面简单明了,可以运行。为了像自己一样的matlab小白,我还写了一个运行指导。简单但是对做识别整个流程很清晰的。
    2020-12-10下载
    积分:1
  • 自适应滤波器matlab仿真
    是关于自适应滤波器的列子,matlab实现。可以运行。适合初学者
    2020-12-03下载
    积分:1
  • 696518资源总数
  • 104226会员总数
  • 29今日下载