Altera Ethernet Blaster Communications Cable Especificações

Consulte online ou descarregue Especificações para Redes Altera Ethernet Blaster Communications Cable. Altera Ethernet Blaster Communications Cable Specifications [en] Manual do Utilizador

  • Descarregar
  • Adicionar aos meus manuais
  • Imprimir
  • Página
    / 267
  • Índice
  • MARCADORES
  • Avaliado. / 5. Com base em avaliações de clientes

Resumo do Conteúdo

Página 1

Cyclone V Device HandbookVolume 1: Device Interfaces and Integration101 Innovation DriveSan Jose, CA 95134www.altera.comCV-5V22013.11.12SubscribeSend

Página 2 - Contents

1Logic Array Blocks and Adaptive Logic Modulesin Cyclone V Devices2013.05.06CV-52001SubscribeSend FeedbackThis chapter describes the features of the l

Página 3

VTT(V)(Board TerminationVoltage)VREF(V)(Input RefVoltage)VCCPD(V)(Pre-DriverVoltage)VCCIO(V)I/O StandardOutputInput(10)Typically does notrequire board

Página 4

If the input signal is 3.0 V or 3.3 V, Altera recommends that you use a clamping diode on the I/Opins.Note:Related InformationI/O Standards Voltage Le

Página 5

Examples:• An I/O bank can support SSTL-18 inputs and outputs, and 1.8 V inputs and outputs with a 1.8 V VCCIOand a 0.9 V VREF.• An I/O bank can suppo

Página 6

Table 5-11: Reference Clock Pin for I/O Bank Without Dedicated Reference Clock PinReference Clock Pin I/O BankData Channel I/O BankMember CodeDevice V

Página 7

Both corner PLLs can drive duplex channels in the same I/O bank if the channels that are driven by eachPLL are not interleaved. You do not require sep

Página 8

LVDS Interface with External PLL ModeThe MegaWizard Plug-In Manager provides an option for implementing the LVDS interface with the UseExternal PLL op

Página 9

Related InformationLVDS SERDES Transmitter/Receiver (ALTLVDS_RX/TX) Megafunction User GuideMore information about the different clocking requirement f

Página 10 - Related Information

Connection between Altera_PLL and ALTLVDSFigure 5-4: LVDS Interface with the Altera_PLL MegafunctionThis figure shows the connections between the Alte

Página 11

Guideline: Ensure Compatible VCCIOand VCCPDVoltage in the Same BankWhen planning I/O bank usage for Cyclone V devices, you must ensure the VCCIOvoltag

Página 12

Guideline: Adhere to the LVDS I/O Restrictions and Differential Pad Placement RulesFor Cyclone V LVDS applications, adhere to these guidelines to avoi

Página 13 - LAB Control Signals

Figure 1-1: LAB Structure and Interconnects Overview in Cyclone V DevicesThis figure shows an overview of the Cyclone V LAB and MLAB structure with th

Página 14 - ALM Resources

Figure 5-6: I/0 Banks for Cyclone V GX and GT DevicesBank 7ABank 6ATransceiver BlockBank 8ABank 5BBank 5ABank 4ABank 3BBank 3AFigure 5-7: I/0 Banks fo

Página 15 - ALM Output

Related Information• Modular I/O Banks for Cyclone V E Devices on page 5-21• Modular I/O Banks for Cyclone V GX Devices on page 5-22• Modular I/O Bank

Página 16 - ALM Operating Modes

Table 5-15: Modular I/O Banks for Cyclone V E A5, A7, and A9 Devices—PreliminaryA9A7A5Member CodeF896F672F484U484F896F672F484U484M484F484U484M383Packa

Página 17 - Arithmetic Mode

Table 5-17: Modular I/O Banks for Cyclone V GX C7 and C9 Devices—PreliminaryC9C7Member CodeF1152F896F672F484U484F896F672F484U484M484Package48321616163

Página 18 - Shared Arithmetic Mode

Table 5-19: Modular I/O Banks for Cyclone V GT D9 Devices—PreliminaryD9Member CodeF1152F896F672F484U484Package48321616163AI/O Bank48483232323B96808048

Página 19

A6A5A4A2Member CodeF896U672U484F896U672U484U672U484U672U484Package191919191919191919197AHPSColumnI/OBank222221222221222122217B12128121281281287C141414

Página 20

Related Information• I/O Banks Locations in Cyclone V Devices on page 5-19• Guideline: Use the Same VCCPDfor All I/O Banks in a Group on page 5-17Prov

Página 21 - Types of Embedded Memory

I/O Buffer and Registers in Cyclone V DevicesI/O registers are composed of the input path for handling data from the pin to the core, the output path

Página 22 - MLABM10K

Programmable IOE Features in Cyclone V DevicesTable 5-24: Summary of Supported Cyclone V Programmable IOE Features and SettingsSupported in HPS I/O(So

Página 23

Programmable Current StrengthYou can use the programmable current strength to mitigate the effects of high signal attenuation that iscaused by a long

Página 24

Figure 1-2: LAB and MLAB Structure for Cyclone V DevicesMLABLABLUT-Based-32 x 2Simple Dual-Port SRAMLUT-Based-32 x 2Simple Dual-Port SRAMLUT-Based-32

Página 25

Programmable Output Slew-Rate ControlThe programmable output slew-rate control in the output buffer of each regular- and dual-function I/O pinallows y

Página 26

Programmable Pre-EmphasisThe VODsetting and the output impedance of the driver set the output current limit of a high-speedtransmission signal. At a h

Página 27 - Embedded Memory Features

Figure 5-11: Differential VODThis figure shows the VODof the differential LVDS output.Single-Ended WaveformPositive Channel (p)Negative Channel (n)Gro

Página 28 - MLABM10KFeatures

Bus-Hold CircuitryEach I/O pin provides an optional bus-hold feature that is active only after configuration. When the deviceenters user mode, the bus

Página 29

• RSOCT with Calibration in Cyclone V Devices on page 5-35• RTOCT with Calibration in Cyclone V Devices on page 5-37• LVDS Input RDOCT in Cyclone V De

Página 30 - Embedded Memory Modes

Uncalibrated OCT (Output)I/O StandardRS(Ω)25Differential SSTL-15 Class II50Differential 1.8 V HSTL Class I25Differential 1.8 V HSTL Class II50Differen

Página 31

Calibrated OCT (Output)I/O StandardRZQ (Ω)RS(Ω)(11)10025/502.5 V LVCMOS10025/501.8 V LVCMOS10025/501.5 V LVCMOS10025/501.2 V LVCMOS10050SSTL-2 Class I

Página 32 - Independent Clock Mode

Calibrated OCT (Output)I/O StandardRZQ (Ω)RS(Ω)(11)24034, 40SSTL-12524034, 40, 48, 60, 80HSUL-1210025, 50Differential SSTL-1524034, 4024034, 40Differe

Página 33 - Parity Bit in Memory Blocks

Table 5-31: Selectable I/O Standards for RTOCT With CalibrationThis table lists the input termination settings for calibrated OCT on different I/O sta

Página 34 - RAM Blocks Operations

Calibrated OCT (Input)I/O StandardRZQ (Ω)RT(Ω)(12)24020, 30, 40, 60, 120Differential SSTL-125The RTOCT calibration circuit compares the total impedanc

Página 35

Figure 1-3: LAB Fast Local and Direct Link Interconnects for Cyclone V DevicesMLABALMs ALMsLABFast LocalInterconnectDirect Link Interconnect fromLeft

Página 36

Figure 5-15: Dynamic RTOCT in Cyclone V DevicesTransmitterReceiver50 Ω100 Ω100 Ω50 ΩGNDTransmitter ReceiverFPGA OCT FPGA OCTZ0= 50 ΩVCCIO100 Ω100 ΩGND

Página 37

OCT Calibration Block in Cyclone V DevicesYou can calibrate the OCT using any of the available four OCT calibration blocks for each device. Eachcalibr

Página 38 - Features

I/O banks that do not have calibration blocks share the calibration blocks in the I/O banks that havecalibration blocks.All I/O banks support OCT cali

Página 39

• Dynamic Calibrated On-Chip Termination (ALTOCT) Megafunction User GuideProvides more information about the OCT calibration block.External I/O Termin

Página 40 - Resources

External Termination SchemeI/O StandardDifferential HSTL I/O Standard TerminationDifferential 1.8 V HSTL Class IDifferential 1.8 V HSTL Class IIDiffer

Página 41 - Design Considerations

Figure 5-19: SSTL I/O Standard TerminationThis figure shows the details of SSTL I/O termination on Cyclone V devices.Transmitter Receiver50 Ω25 Ω25 ΩS

Página 42 - Block Architecture

Figure 5-20: HSTL I/O Standard TerminationThis figure shows the details of HSTL I/O termination on the Cyclone V devices.Transmitter Receiver50 ΩVREFV

Página 43 - Input Register Bank

Figure 5-21: Differential SSTL I/O Standard TerminationThis figure shows the details of Differential SSTL I/O termination on Cyclone V devices.Transmi

Página 44

Figure 5-23: LVDS and SLVS I/O Standard TerminationThis figure shows the LVDS and SLVS I/O standards termination. The on-chip differential resistor is

Página 45 - Multipliers

Figure 5-24: Emulated LVDS, RSDS, or Mini-LVDS I/O Standard TerminationThe output buffers, as shown in this figure, are available in all I/O banks. RS

Página 46

Figure 1-4: LAB-Wide Control Signals for Cyclone V DevicesThis figure shows the clock sources and clock enable signals in a LAB.Dedicated RowLAB Clock

Página 47 - Output Register Bank

Figure 5-25: Resistor Network CalculationAltera recommends that you perform additional simulations with IBIS or SPICE models to validatethat the custo

Página 48 - Independent Multiplier Mode

Figure 5-27: LVPECL DC-Coupled TerminationZ0= 50 ΩZ0= 50 Ω100 ΩLVPECLOutput BufferLVPECLInput BufferFor information about the VICMspecification, refer

Página 49

Figure 5-28: High-Speed Differential I/O Locations in Cyclone V E A2 and A4 DevicesFPGA Fabric(Logic Elements, DSP,Embedded Memory,Clock Networks)Gene

Página 50

Figure 5-31: High-Speed Differential I/O Locations in Cyclone V SE A2, A4, A5, and A6 DevicesFPGA Fabric(Logic Elements, DSP,Embedded Memory,Clock Net

Página 51 - 18 x 19 Complex Multiplier

Figure 5-33: LVDS SERDESrx_intx_outBit SlipDeserializerrx_inclock / tx_inclockIOE supports SDR, DDR, or non-registered datapathIOE supports SDR, DDR,

Página 52 - Multiplier Adder Sum Mode

The following tables list the number of true LVDS buffers supported in Cyclone V devices with theseconditions:• The LVDS channel count does not includ

Página 53 - Systolic FIR Mode

RXTXSidePackageMember Code1915Top383-pin Micro FineLine BGAA587Right2116Bottom2020Top484-pin Ultra FineLine BGA 1212Right2424Bottom2828Top484-pin Fine

Página 54 - 27-Bit Systolic FIR Mode

RXTXSidePackageMember Code2020Top484-pin Ultra FineLine BGAA91616Right2424Bottom2424Top484-pin FineLine BGA 88Right2424Bottom2828Top672-pin FineLine B

Página 55

RXTXSidePackageMember Code156Top301-pin Micro FineLine BGAC587Right208Bottom1915Top383-pin Micro FineLine BGA 87Right2116Bottom2020Top484-pin Ultra Fi

Página 56 - Initial release.1.0May 2011

RXTXSidePackageMember Code2020Top484-pin Ultra FineLine BGAC91616Right2424Bottom2424Top484-pin FineLine BGA 88Right2424Bottom2828Top672-pin FineLine B

Página 57 - Clock Networks

Figure 1-5: ALM High-Level Block Diagram for Cyclone V Devicesdatacdataddatae1dataf1adder1datae0dataf0dataadatabcarry_incarry_outCombinational/Memory

Página 58 - DeviceClock Resource

RXTXSidePackageMember Code2020Top484-pin Micro FineLine BGAD71616Right2424Bottom2020Top484-pin Ultra FineLine BGA 1616Right2424Bottom2828Top484-pin Fi

Página 59 - Global Clock Networks

Table 5-38: LVDS Channels Supported in Cyclone V SE Devices—PreliminaryRXTXSidePackageMember Code21Top484-pin Ultra FineLine BGAA2 and A444Right1210Bo

Página 60 - Regional Clock Networks

Related InformationGuideline: Use PLLs in Integer PLL Mode for LVDS on page 5-12Emulated LVDS Buffers in Cyclone V DevicesThe Cyclone V device family

Página 61 - Clock Sources Per Quadrant

Transmitter ClockingThe fractional PLL generates the parallel clocks (rx_outclock and tx_outclock), the load enable(LVDS_LOAD_EN) signal and the diffi

Página 62 - Types of Clock Regions

Figure 5-36: Serializer BypassThis figure shows the serializer bypass path. In DDR mode, tx_inclock clocks the IOE register. In SDRmode, data is passe

Página 63 - Clock Network Sources

Figure 5-37: Receiver Block Diagramrx_inBit SlipDeserializerrx_inclock / tx_inclockIOE supports SDR, DDR, or non-registered datapathLVDS ReceiverFPGAF

Página 64 - PLL Clock Outputs

Figure 5-39: Receiver Data Realignment RolloverThis figure shows a preset value of four bit-times before rollover occurs. The rx_cda_max signal pulses

Página 65 - Clock Control Block

You can select the rising edge option with the Quartus II MegaWizard Plug-In Manager. TheLVDS_diffioclk clock that is generated by the left and right

Página 66 - RCLK Control Block

Figure 5-42: On-Chip Differential I/O TerminationDifferential Receiverwith On-Chip 100 ΩTerminationLVDSTransmitterZ0= 50 ΩZ0= 50 ΩRDTable 5-41: Quartu

Página 67 - PCLK Control Block

Figure 5-43: Bit Orientation in the Quartus II SoftwareThis figure shows the data bit orientation of the x10 mode.9 8 7 6 5 4 3 2 1 010 LVDS BitsMSB L

Página 68 - Clock Enable Signals

Figure 1-6: ALM Connection Details for Cyclone V DevicesDQCLRDQCLRRow, ColumnDirect Link RoutingDQCLRLocalInterconnectLocalInterconnectDQCLRcarry_outG

Página 69

Internal 8-Bit Parallel DataReceiver Channel Data NumberLSB PositionMSB Position3239540476485575663864719727910808711889512961031310411114112119151201

Página 70 - Cyclone V PLLs

Figure 5-45: RSKM EquationConventions used for the equation:• RSKM—the timing margin between the receiver’s clock input and the data input sampling wi

Página 71

For LVDS receivers, the Quartus II software provides an RSKM report showing the SW, TUI, and RSKMvalues for non-DPA LVDS mode:•You can generate the RS

Página 72 - PLL Strip

ChangesVersionDate• Added the preliminary LVDS channels counts for Cyclone V SE, SX,and ST devices.• Updated the topic about LVDS input RDOCT to remov

Página 73

ChangesVersionDate• Updated the tables listing the number of LVDS channels for theCyclone V devices:• Removed the F256 package from Cyclone V GX C3 de

Página 74 - Fractional PLL Architecture

ChangesVersionDate• Removed statements about LVDS SERDES being available on top andbottom banks only.• Removed the topic about LVDS direct loopback mo

Página 75 - Fractional PLL Usage

6External Memory Interfaces in Cyclone V Devices2013.05.06CV-52006SubscribeSend FeedbackThe Cyclone V devices provide an efficient architecture that a

Página 76 - PLL Control Signals

External Memory PerformanceTable 6-2: External Memory Interface Performance in Cyclone V DevicesThe maximum and minimum operating frequencies depend o

Página 77 - Clock Feedback Modes

Guideline: Using DQ/DQS PinsThe following list provides guidelines on using the DQ/DQS pins:• The devices support DQ and DQS signals with DQ bus modes

Página 78 - Source Synchronous Mode

Table 6-4: DQ/DQS Bus Mode Pins for Cyclone V DevicesMaximum Data Pins per GroupData Mask(Optional)DQSn SupportMode11YesYesx823YesYesx16DQ/DQS Groups

Página 79 - Direct Compensation Mode

Normal ModeNormal mode allows two functions to be implemented in one Cyclone V ALM, or a single function of upto six inputs.Up to eight data inputs fr

Página 80 - Zero-Delay Buffer Mode

x16x8SidePackageMember CodeTBDTBDTop383-pin Micro FineLine BGAA5TBDTBDLeftTBDTBDRightTBDTBDBottom15Top484-pin Ultra FineLine BGA 03Right16Bottom27Top4

Página 81 - External Feedback Mode

x16x8SidePackageMember Code15Top484-pin Ultra FineLine BGAA904Right16Bottom15Top484-pin FineLine BGA 02Right16Bottom27Top672-pin FineLine BGA 06Right2

Página 82

x16x8SidePackageMember CodeTBDTBDTop301-pin Micro FineLine BGAC4C5TBDTBDLeftTBDTBDRightTBDTBDBottomTBDTBDTop383-pin Micro FineLine BGATBDTBDLeftTBDTBD

Página 83

x16x8SidePackageMember Code15Top484-pin Ultra FineLine BGAC904Right16Bottom15Top484-pin FineLine BGA 02Right16Bottom27Top672-pin FineLine BGA 06Right2

Página 84 - Automatic Switchover

DQ/DQS Groups in Cyclone V GTTable 6-7: Number of DQ/DQS Groups Per Side in Cyclone V GT DevicesThis table lists the DQ/DQS groups for the soft memory

Página 85

x16x8SidePackageMember Code15Top484-pin Micro FineLine BGAD704Right16Bottom15Top484-pin Ultra FineLine BGA 14Right16Bottom27Top484-pin FineLine BGA 02

Página 86

DQ/DQS Groups in Cyclone V SXTable 6-8: Number of DQ/DQS Groups Per Side in Cyclone V SX DevicesThis table lists the DQ/DQS groups for the soft memory

Página 87 - Manual Clock Switchover

The following device features are available for external memory interfaces:• DQS phase-shift circuitry• PHY Clock (PHYCLK) networks• DQS logic block•

Página 88 - Guidelines

Figure 6-1: External Memory Interface Datapath Overview for Cyclone V DevicesMemoryFPGADLL4nnn2nDQ (Read)DQ (Write)Read FIFODQS (Read)4n or 2n4DQS (Wr

Página 89

Figure 6-2: DQS Pins and DLLs in Cyclone V E (A2 and A4) DevicesDLLReferenceClockΔtΔtΔtΔtDQS LogicBlocksDLLReferenceClockDLLtoIOEtoIOEtoIOEtoIOEDLLDQS

Página 90

Figure 1-8: ALM in Arithmetic Mode for Cyclone V Devicesdatae0carry_incarry_outdataadatabdatacdataddatae1reg24-InputLUT4-InputLUT4-InputLUT4-InputLUTa

Página 91

Figure 6-3: DQS Pins and DLLs in Cyclone V GX (C3) DevicesDQSPinDQSPinDQSPinDQSPinto IOEto IOEto IOEto IOEΔtΔtΔtΔtDLLReferenceClockΔtΔtΔtΔtDQS LogicBl

Página 92

Figure 6-4: DQS Pins and DLLs in Cyclone V E (A5, A7, and A9), GX (C4, C5, C7, and C9), GT (D5, D7, andD9) DevicesDLLReferenceClockΔtΔtΔtΔtDQS LogicBl

Página 93

Figure 6-6: DQS Pins and DLLs in Cyclone V SX (C2, C4, C5, and C6) and ST (D5 and D6) DevicesDQS LogicBlocksDLLReferenceClockDLLtoIOEtoIOEDLLDQSPinDQS

Página 94

I/O banks between two DLLs have the flexibility to create multiple frequencies and multiple-type interfaces.These banks can use settings from either o

Página 95 - Standard SupportI/O Standard

PLLDLLBottom RightBottom LeftTop RightTop Leftpllout———DLL_BRDLL Phase-ShiftThe DLL can shift the incoming DQS signals by 0° or 90°. The shifted DQS s

Página 96

For the frequency range of each DLL frequency mode, refer to the device datasheet.Related InformationCyclone V Device DatasheetPHY Clock (PHYCLK) Netw

Página 97

Figure 6-9: PHYCLK Networks in Cyclone V GX C3 DevicesLeftPLLRightPLLRightPLLSub-BankSub-BankI/O Bank 7Sub-BankSub-BankI/O Bank 8PHYCLK NetworksSub-Ba

Página 98

Figure 6-12: PHYCLK Networks in Cyclone V SX C2, C4, C5, and C6 Devices, and Cyclone V ST D5 and D6DevicesLeftPLLSub-BankSub-BankI/O Bank 7Sub-BankSub

Página 99

Update Enable CircuitryThe update enable circuitry enables the registers to allow enough time for the DQS delay settings to travelfrom the DQS phase-s

Página 100 - Send Feedback

that any glitches on the DQS input signal during the end of a read operation and occurring while DQS is ina postamble state do not affect the DQ IOE r

Página 101

Figure 1-9: ALM in Shared Arithmetic Mode for Cyclone V Devicesdatae0carry_inshared_arith_inshared_arith_outcarry_outdataadatabdatacdataddatae14-Input

Página 102 - PLLs and Clocking

Figure 6-16: Dynamic OCT Control Block for Cyclone V DevicesDFFDQDQDFFOCT ControlOCT ControlOCT Half-Rate Clock01DQDFFDQDFF10Write ClockOCT EnableOCT

Página 103

Figure 6-17: IOE Input Registers for Cyclone V DevicesInput Reg AInput Reg BD QInput Reg CDouble Data Rate Input RegistersRead FIFOdatain [1]wrclkrdcl

Página 104

Figure 6-18: IOE Output and Output-Enable Path Registers for Cyclone V DevicesThe following figure shows the registers available in the Cyclone V outp

Página 105

Figure 6-19: Delay Chains in an I/O BlockD5 OCTdelaychainOCT EnableOutput EnableD5output-enabledelay chainD5 DelaydelaychainD1 Delaydelay chain01DQ or

Página 106

Figure 6-21: Configuration Block (I/O and DQS)This figure shows the I/O configuration block and the DQS configuration block circuitry.datainbit0bit1bi

Página 107 - Guideline: Use the Same V

DescriptionFeature• DDR3—Burst length of 8 and burst chop of 4• DDR2—Burst lengths of 4 and 8• LPDDR2—Burst lengths of 2, 4, 8, and 16Memory Burst Len

Página 108 - Voltage in the Same Bank

DescriptionFeatureYou can select the region of memory to refresh during self-refresh through the moderegister to save power.Partial Array Self-Refresh

Página 109

Numbers of MPFE Ports Per DeviceTable 6-14: Numbers of MPFE Command, Write-Data, and Read-Data Ports for Each Cyclone V DeviceMPFE PortsMember CodeVar

Página 110 - HPS Core

Figure 6-23: Hard Memory Controllers Bonding Support in Cyclone V E A7, A5, and A9 Devices, Cyclone VGX C4, C5, C7, and C9 Devices, and Cyclone V GT D

Página 111 - A4A2Member Code

Figure 6-24: Hard Memory Controllers in Cyclone V SX C2, C4, C5, and C6 Devices, and Cyclone V ST D5 andD6 DevicesThis figure shows hard memory contro

Página 112 - A9A7A5Member Code

ContentsLogic Array Blocks and Adaptive Logic Modules in Cyclone V Devices...1-1LAB ...

Página 113 - D7D5Member Code

ChangesVersionDateReorganized content and updated template.2012.12.28December 2012Updated for the Quartus II software v12.0 release:• Restructured cha

Página 114 - A6A5A4A2Member Code

Member CodePackage A9A7A5A4A2BottomTopBottomTopBottomTopBottomTopBottomTop242424402440024024F48440404040——————F67240404040——————F896Related Informatio

Página 115 - C6C5C4C2Member Code

Hard Memory Controller Width for Cyclone V GTTable 6-17: Hard Memory Controller Width Per Side in Cyclone V GT Devices—PreliminaryMember CodePackage D

Página 116 - F896F896Package

Document Revision HistoryChangesVersionDate• Moved all links to the Related Information section of respective topicsfor easy reference.• Added link to

Página 117 - Output PathInput Path

ChangesVersionDate• Added the I/O and DQS configuration blocks topic.• Updated the term "Multiport logic" to "multi-port front end"

Página 118

7Configuration, Design Security, and RemoteSystem Upgrades in Cyclone V Devices2013.06.11CV-52007SubscribeSend FeedbackThis chapter describes the conf

Página 119 - Programmable Current Strength

Table 7-1: Configuration Modes and Features Supported by Cyclone V DevicesRemote SystemUpdatePartialReconfigura-tion(14)DesignSecurityDecompres-sionMa

Página 120 - Programmable IOE Delay

Table 7-2: MSEL Pin Settings for Each Configuration Scheme of Cyclone V DevicesValid MSEL[4..0]Power-On Reset(POR) DelayVCCPGM(V)Design SecurityFeatur

Página 121 - Programmable Pre-Emphasis

Figure 7-1: Configuration Sequence for Cyclone V DevicesPower supplies including VCCPDand VCCPGMreachrecommended operating voltagenSTATUS and nCONFIG

Página 122 - Open-Drain Output

The operating voltage for the configuration input pin is independent of the I/O banks power supply, VCCIO,during configuration. Therefore, Cyclone V d

Página 123 - Pull-up Resistor

Related InformationCyclone V Device DatasheetProvides more information about tSTATUSand tCFGtiming parameters.InitializationThe initialization clock s

Página 124 - I/O Standard

2Embedded Memory Blocks in Cyclone V Devices2013.05.06CV-52002SubscribeSend FeedbackThe embedded memory blocks in the devices are flexible and designe

Página 125 - 2013.06.21

Powered ByUser ModeInput/OutputConfigurationSchemeConfiguration PinVCCPD—InputJTAGTCKVCCPD—OutputJTAGTDOVCCPGM/VCCIO(15)I/OInputAllschemesCLKUSRPull-u

Página 126 - Calibrated OCT (Output)

Powered ByUser ModeInput/OutputConfigurationSchemeConfiguration PinVCCPGM/VCCIO(15)I/OOutputFPP x16PR_READYVCCPGM/VCCIO(15)I/OOutputFPP x16PR_ERRORVCC

Página 127

Fast Passive Parallel ConfigurationThe FPP configuration scheme uses an external host, such as a microprocessor, MAX®II device, or MAX Vdevice. This s

Página 128 - RZQ (Ω)R

Pin Connections and GuidelinesObserve the following pin connections and guidelines for this configuration setup:• Tie the following pins of all device

Página 129

When a device completes configuration, its nCEO pin is released low to activate the nCE pin of the nextdevice in the chain. Configuration automaticall

Página 130 - OCT in Cyclone V Devices

The maximum DCLK frequency supported by the AS configuration scheme is 100 MHz except for the ASmulti-device configuration scheme. You can source DCLK

Página 131 - Calibration block

Figure 7-6: Single Device AS x4 Mode ConfigurationAS_DATA0/ASDOAS_DATA1AS_DATA2AS_DATA3DCLKnCSOEPCQ Device FPGA Device10 kΩ10 kΩ10 kΩVCCPGMGNDnCEOnCEn

Página 132

Using Multiple Configuration DataTo configure multiple Cyclone V devices in a chain using multiple configuration data, connect the devicesto an EPCS o

Página 133

Using EPCS and EPCQ DevicesEPCS devices support AS x1 mode and EPCQ devices support AS x1 and AS x4 modes.Related Information• Serial Configuration (E

Página 134 - Single-ended I/O Termination

Related Information• AN 370: Using the Serial FlashLoader with the Quartus II Software• AN 418: SRunner: An Embedded Solution for Serial Configuration

Página 135

Total RAM Bit (Kb)MLABM10KMemberCodeVariant RAM Bit (Kb)BlockRAM Bit (Kb)Block1,3491592551,190119C3Cyclone V GX2,7952954722,500250C44,8844246794,46044

Página 136 - Differential I/O Termination

Figure 7-9: Connection Setup for Programming the EPCQ Using the JTAG InterfaceDATA0DATA1DATA2DATA3DCLKnCSFPGA Device1 kΩGNDnCETCKTDOTMSTDIMSEL[4..0]nS

Página 137

Figure 7-10: Connection Setup for Programming the EPCS Using the AS InterfaceDATADCLKnCSASDIAS_DATA1DCLKnCSOnCEnCONFIGnSTATUSnCEOCONF_DONEASDO10 kΩ10

Página 138

Figure 7-11: Connection Setup for Programming the EPCQ Using the AS InterfaceUsing the AS header, the programmer serially transmits the operation comm

Página 139

the byte sequence 02 1B EE 01 FA, the serial data transmitted to the device must be 0100-0000 1101-10000111-0111 1000-0000 0101-1111.You can use the P

Página 140 - LVPECL Termination

Figure 7-13: Single Device PS Configuration Using an Altera Download CableDownload Cable10-Pin Male Header(PS Mode)VCCPGMVCCPGMVCCPGMVCCPGMVCCPGMVCCIO

Página 141

Figure 7-14: Multiple Device PS Configuration when Both Devices Receive Different Sets of ConfigurationDataExternal Host(MAX II Device,MAX V Device, o

Página 142 - GT D5, D7, and D9 Devices

The nCE pins of the devices in the chain are connected to GND, allowing configuration for these devices tobegin and end at the same time.Using PC Host

Página 143 - LVDS SERDES Circuitry

• JTAG Secure Mode on page 7-34• AN 425: Using the Command-Line Jam STAPL Solution for Device Programming• Cyclone V Device DatasheetProvides more inf

Página 144

Figure 7-17: JTAG Configuration of a Single Device Using a Download CableDownload Cable10-Pin Male Header(JTAG Mode) (Top View)FPGA DeviceDCLKnCONFIGC

Página 145 - RXTXSidePackageMember Code

JTAG Multi-Device ConfigurationYou can configure multiple devices in a JTAG chain.Pin Connections and GuidelinesObserve the following pin connections

Página 146

Guideline: Implement External Conflict ResolutionIn the true dual-port RAM mode, you can perform two write operations to the same memory location.Howe

Página 147

issue all JTAG instructions. Otherwise, you can only issue the BYPASS, IDCODE, and SAMPLE JTAGinstructions.You can use the CONFIO_IO JTAG instruction

Página 148

Figure 7-20: Compressed and Uncompressed Serial Configuration Data in the Same Configuration FilenCEGNDnCEOFPGADevice 1FPGADevice 2nCE nCEO N.C.Serial

Página 149

Configuration ImagesEach Cyclone V device in your system requires one factory image. The factory image is a user-definedconfiguration image that conta

Página 150

Remote System Upgrade CircuitryThe remote system upgrade circuitry contains the remote system upgrade registers, watchdog timer, and astate machine th

Página 151

Related InformationRemote System Upgrade (ALTREMOTE_UPDATE) Megafunction User GuideRemote System Upgrade RegistersTable 7-6: Remote System Upgrade Reg

Página 152 - Transmitter Blocks

Control RegisterTable 7-7: Control Register BitsDescriptionResetValue(16)NameBitApplication not Factory bit. Indicates theconfiguration image type cur

Página 153 - Transmitter Clocking

1. After power-up, the remote system upgrade registers are reset to 0 and the factory configuration imageis loaded.2.The user logic sets the AnF bit t

Página 154

• Security against copying—the security key is securely stored in the Cyclone V device and cannot be readout through any interface. In addition, as co

Página 155

Security Key TypesCyclone V devices offer two types of keys—volatile and non-volatile. The following table lists the differencesbetween the volatile k

Página 156 - LVDS Receiver Mode

Security LevelDevice AcceptsEncrypted FileDevice AcceptsUnencrypted FileTamper ProtectionBit SettingSecurity ModeSecure with tamperresistantYesNoSetVo

Página 157

Figure 2-2: Same-Port Read-During-Write: New Data ModeThis figure shows sample functional waveforms of same-port read-during-write behavior in the “ne

Página 158 - Differential Data Orientation

Document Revision HistoryChangesVersionDateUpdated the Configuration Error Handling section.2013.06.11June 2013Removed support for active serial multi

Página 159 - Differential I/O Bit Position

8SEU Mitigation for Cyclone V Devices2013.11.12CV-52008SubscribeSend FeedbackThis chapter describes the error detection features in Cyclone V devices.

Página 160 - LSB PositionMSB Position

applications that require the device to operate error-free may require that your designs account for theseerrors.You can enable the error detection ci

Página 161

Timing Interval (µs)Member CodeVariant1.79D5Cyclone V GT 2.33D73.23D91.77A2Cyclone V SE1.77A42.31A52.31A61.77C4Cyclone V SX 2.31C52.31C62.31D5Cyclone

Página 162 - Document Revision History

Table 8-3: CRC Calculation Time in Cyclone V DevicesThe following table lists the minimum and maximum time taken to calculate the CRC value:• The mini

Página 163 - ChangesVersionDate

3. In the Category list, click Error Detection CRC.4. Turn on Enable Error Detection CRC_ERROR pin.5.To set the CRC_ERROR pin as output open drain, tu

Página 164

Table 8-5: Error Detection RegistersDescriptionWidth (Bits)NameContains the 32-bit CRC signature calculated for the currentframe. If the CRC value is

Página 165

Table 8-6: Error Type in EMRThe following table lists the possible error types reported in the error type field in the EMR.DescriptionError TypeBit 0B

Página 166

comes last. Therefore, you can start retrieving the contents of the EMR at the rising edge of the CRC_ERRORpin. The pin stays high until the current f

Página 167 - External Memory Performance

Table 8-8: EDERROR_INJECT instructionDescriptionInstruction CodeJTAG InstructionUse this instruction to inject errors into theconfiguration data. This

Página 168 - Guideline: Using DQ/DQS Pins

DescriptionMemory TypeOutput ModeThe RAM outputs “don’t care” or “unknown” value. TheQuartus II software analyzes the timing between write andread ope

Página 169 - DQ/DQS Groups in Cyclone V E

9JTAG Boundary-Scan Testing in Cyclone V Devices2013.05.06CV-52009SubscribeSend FeedbackThis chapter describes the boundary-scan test (BST) features i

Página 170

Table 9-1: IDCODE Information for Cyclone V DevicesIDCODE (32 Bits)Member CodeVariantLSB (1 Bit)ManufactureIdentity(11 Bits)Part Number(16 Bits)Versio

Página 171 - DQ/DQS Groups in Cyclone V GX

IDCODE (32 Bits)Member CodeVariantLSB (1 Bit)ManufactureIdentity(11 Bits)Part Number(16 Bits)Version (4 Bits)1000 0110 11100010 1101 000100010000C2Cyc

Página 172

DescriptionInstruction CodeJTAG InstructionPlaces the 1-bit bypass register betweenthe TDI and TDO pins. During normaldevice operation, the 1-bit bypa

Página 173

DescriptionInstruction CodeJTAG Instruction• Places the 1-bit bypass registerbetween the TDI and TDO pins.During normal operation, the 1-bitbypass reg

Página 174 - DQ/DQS Groups in Cyclone V GT

If the device is in a reset state and the nCONFIG or nSTATUS signal is low, the device IDCODEmight not be read correctly. To read the device IDCODE co

Página 175

Table 9-3: Supported TDO and TDI Voltage CombinationsThe TDO output buffer for VCCPDof 3.3 V or 3.0 V meets VOH(MIN) of 2.4 V, and the TDO output buff

Página 176 - DQ/DQS Groups in Cyclone V ST

Enabling and Disabling IEEE Std. 1149.1 BST CircuitryThe IEEE Std. 1149.1 BST circuitry is enabled after the Cyclone V device powers up. However for C

Página 177 - UniPHY IP

IEEE Std. 1149.1 Boundary-Scan RegisterThe boundary-scan register is a large serial shift register that uses the TDI pin as an input and the TDO pinas

Página 178 - DQS Phase-Shift Circuitry

Figure 9-2: User I/O BSC with IEEE Std. 1149.1 BST Circuitry for Cyclone V Devices01OUTPUTOEINPUTINPUTOUTPUTOEFrom orTo DeviceI/O CellCircuitryAnd/OrL

Página 179

Figure 2-5: Mixed-Port Read-During-Write: Don’t Care or Constrained Don’t Care ModeThis figure shows a sample functional waveform of mixed-port read-d

Página 180 - DQS Logic

CommentsDrivesCapturesPin TypeInputUpdateRegisterOE UpdateRegisterOutputUpdateRegisterInputCaptureRegisterOE CaptureRegisterOutputCaptureRegisterPIN_I

Página 181 - D9) Devices

10Power Management in Cyclone V Devices2013.06.28CV-52010SubscribeSend FeedbackThis chapter describes the hot-socketing feature, power-on reset (POR)

Página 182 - Delay-Locked Loop

The equation shows that power is design-dependent and is determined by the operating frequency of yourdesign. Cyclone V devices minimize static and dy

Página 183

Hot-socketing circuitry prevents excess I/O leakage during power up. When the voltage ramps up veryslowly, I/O leakage is still relatively low, even a

Página 184 - DLL Phase-Shift

Figure 10-3: Power-Up Sequence Recommendation for Cyclone V DevicesPower up VCCBATat any time. Ramp up the power rails in each group to a minimum of 8

Página 185 - PHY Clock (PHYCLK) Networks

For details about the minimum current requirements, refer to the PowerPlay Early Power Estimator (EPE),and compare to the information listed in Table

Página 186

The POR circuitry checks the functionality of the I/O level shifters powered by the VCCPDand VCCPGMpower supplies during power-up mode. The main POR c

Página 187 - DQS Logic Block

Document Revision HistoryChangesVersionDate• Added power-up sequences for Cyclone V SX, SE and ST devices.• Added the current transient that occurs on

Página 188 - DQS Postamble Circuitry

Related Information• Internal Memory (RAM and ROM) User GuideProvides more information about .mif files.• Quartus II HandbookProvides more information

Página 189 - Dynamic OCT Control

MLABM10KFeatures• Registered outputports—Cleared.• Unregistered output ports—Readmemory contents.Output ports arecleared.Power-up stateOutput register

Página 190 - IOE Registers

Mixed-Width Port ConfigurationsThe mixed-width port configuration is supported in the simple dual-port RAM and true dual-port RAMmemory modes.MLABs do

Página 191 - Output Registers

Byte Enable in Embedded Memory Blocks...2-13Byte Enable Contr

Página 192 - Delay Chains

Port APort B512 x 20512 x 161K x 101K x 82K x 52K x 44K x 28K x 1Yes—Yes—Yes———512 x 20Embedded Memory ModesTo avoid corrupting the memory contents, d

Página 193

DescriptionMLABSupportM10KSupportMemory ModeYou can use the memory blocks as ROM.• Initialize the ROM contents of the memory blocks using a .mifor .he

Página 194 - Hard Memory Controller

Memory ModeClocking ModeFIFOROMTrue Dual-PortSimple Dual-PortSingle-Port—YesYesYesYesInput/output clock mode—YesYes——Independent clock modeThe clock e

Página 195 - DescriptionFeature

Independent Clock Enables in Clocking ModesIndependent clock enables are supported in the following clocking modes:• Read/write clock mode—supported f

Página 196 - Multi-Port Front End

Data Bits Writtenbyteena[1:0][9:0]—01Table 2-13: byteena Controls in x40 Data WidthData Bits Writtenbyteena[3:0][9:0][19:10][29:20][39:30]1111 (defaul

Página 197 - Bonding Support

Memory Blocks Packed Mode SupportThe M10K memory blocks support packed mode.The packed mode feature packs two independent single-port RAM blocks into

Página 198

Figure 2-9: Address Clock Enable During the Write Cycle WaveformThis figure shows the address clock enable waveform during the write cycle.inclockwren

Página 199 - Package A9A7A5A4A2

ChangesVersionDate• Reorganized content and updated template.• Added memory capacity information from the Cyclone V DeviceOverview for easy reference.

Página 200

3Variable Precision DSP Blocks in Cyclone V Devices2013.05.06CV-52003SubscribeSend FeedbackThis chapter describes how the variable-precision digital s

Página 201

Supported Operational Modes in Cyclone V DevicesTable 3-1: Variable Precision DSP Blocks Operational Modes for Cyclone V DevicesChainout SupportInputC

Página 202

Types of Clock Networks...4-3Clock Source

Página 203

ResourcesTable 3-2: Number of Multipliers in Cyclone V DevicesThe table lists the variable-precision DSP resources by bit precision for each Cyclone V

Página 204

Design ConsiderationsYou should consider the following elements in your design:• Operational modes• Internal coefficient and pre-adder• Accumulator• C

Página 205 - MSEL Pin Settings

Block ArchitectureThe Cyclone V variable precision DSP block consists of the following elements:• Input register bank• Pre-adder• Internal coefficient

Página 206 - Configuration Sequence

Input Register BankThe input register bank consists of data, dynamic control signals, and two sets of delay registers.All the registers in the DSP blo

Página 207 - Power Up

Figure 3-2: Input Register of a Variable Precision DSP Block in 18 x 19 Mode for Cyclone V DevicesThe figures show the data registers only. Registers

Página 208 - Configuration Error Handling

Figure 3-3: Input Register of a Variable Precision DSP Block in 27 x 27 Mode for Cyclone V DevicesThe figures show the data registers only. Registers

Página 209 - Device Configuration Pins

There are two multipliers per variable precision DSP block. You can configure these two multipliers inseveral operational modes:• One 27 x 27 multipli

Página 210 - Configuration Pin

ACCUMULATELOADCONSTNEGATEDescriptionFunction1X0Adds the currentresult to the previousaccumulate result.Accumulation1X1This function takesthe current r

Página 211

Operational Mode DescriptionsThis section describes how you can configure an Cyclone V variable precision DSP block to efficientlysupport the followin

Página 212

18 x 18 or 18 x 19 Independent MultiplierFigure 3-5: Two 18 x 18 or 18 x 19 Independent Multiplier Mode per Variable Precision DSP Block forCyclone V

Página 213

Guideline: Adhere to the LVDS I/O Restrictions and Differential Pad PlacementRules...

Página 214 - Active Serial Configuration

20 x 24 Independent MultiplierFigure 3-7: One 20 x 24 Independent Multiplier Mode per Variable Precision DSP Block for Cyclone V DevicesIn this mode,

Página 215

18 x 19 Complex MultiplierFigure 3-10: One 18 x 19 Complex Multiplier with Two Variable Precision DSP Blocks for Cyclone V DevicesVariable-Precision D

Página 216

Multiplier Adder Sum ModeFigure 3-11: One Sum of Two 18 x 19 Multipliers with One Variable Precision DSP Block for Cyclone VDevicesInput Register Bank

Página 217

Systolic FIR ModeThe basic structure of a FIR filter consists of a series of multiplications followed by an addition.Figure 3-13: Basic FIR Filter Equ

Página 218 - Using EPCS and EPCQ Devices

Figure 3-15: 18-Bit Systolic FIR Mode for Cyclone V DevicesInput Register Bankdataa_y0[17..0]dataa_z0[17..0]dataa_x0[17..0]COEFSELA[2..0]datab_y1[17..

Página 219

Figure 3-16: 27-Bit Systolic FIR Mode for Cyclone V DevicesInput Register Bankdataa_y0[25..0]dataa_z0[25..0]dataa_x0[26..0]COEFSELA[2..0]Pre-Adder+/-I

Página 220

ChangesVersionDateInitial release.1.0May 2011Altera CorporationVariable Precision DSP Blocks in Cyclone V DevicesSend Feedback3-19Document Revision Hi

Página 221

4Clock Networks and PLLs in Cyclone V Devices2013.05.06CV-52004SubscribeSend FeedbackThis chapter describes the advanced features of hierarchical cloc

Página 222 - Passive Serial Configuration

Table 4-1: Clock Resources in Cyclone V Devices—PreliminarySource of Clock ResourceNumber of ResourcesAvailableDeviceClock ResourceCLK[0..11][p,n] pin

Página 223

Source of Clock ResourceNumber of ResourcesAvailableDeviceClock Resource—Cyclone V E A2 and A4PCLK networksPLD-transceiver interface clocks,I/O pins,

Página 224

Transmitter Blocks...5-62Seriali

Página 225

Figure 4-1: GCLK Networks in Cyclone V DevicesThis figure represents the top view of the silicon die that corresponds to a reverse view of the device

Página 226 - JTAG Configuration

Periphery Clock NetworksCyclone V devices provide only horizontal PCLKs from the left periphery.Clock outputs from the programmable logic device (PLD)

Página 227

Figure 4-4: Hierarchical Clock Networks in Each Spine Clock Per QuadrantSCLKColumn I/O clock: clock that drivesthe I/O column core registersand I/O in

Página 228

Figure 4-5: Dual-Regional Clock Region for Cyclone V DevicesThis figure represents the top view of the silicon die that corresponds to a reverse view

Página 229 - CONFIG_IO JTAG Instruction

Related Information• PLLs and Clocking on page 5-12Provides more information about HSSI outputs.• LVDS Interface with External PLL Mode on page 5-15Pr

Página 230

CLK (p/n Pins)Clock ResourcesCLK[6]RCLK[52,53,54,55,56,57,72,78]CLK[7](3)RCLK[52,53,54,55,56,57,73,79]CLK[8]RCLK[0,4,8,10,14,18,40,41,42,43,44,45,64,6

Página 231 - Remote System Upgrades

Pin Mapping in Cyclone V DevicesTable 4-6: Mapping Between the Input Clock Pins, PLL Counter Outputs, and Clock Control Block InputsFed byClockAny of

Página 232 - Configuration Images

Figure 4-7: RCLK Control Block for Cyclone V DevicesCLKpPinPLL CounterOutputsInternal LogicCLKnPinEnable/DisableRCLKInternalLogicStatic Clock Select2W

Página 233

Figure 4-9: External PLL Output Clock Control Block for Cyclone V DevicesPLL CounterOutputsFPLL_<#>_CLKOUT pinIOEInternalLogic9Enable/DisableSta

Página 234 - DescriptionRegister

Figure 4-10: clkena Implementation with Clock Enable and Disable CircuitThis figure shows the implementation of the clock enable and disable circuit o

Página 235 - Status Register

Bonding Support...6-32Hard Me

Página 236 - Design Security

Cyclone V PLLsPLLs provide robust clock management and synthesis for device clock management, external system clockmanagement, and high-speed I/O inte

Página 237 - JTAG Secure Mode

PLL Physical Counters in Cyclone V DevicesThe physical counters for the fractional PLLs are arranged in the following sequences:• Up-to-down• Down-to-

Página 238 - Security Modes

Figure 4-14: PLL Locations for Cyclone V GX C3 DeviceThis figure represents the top view of the silicon die that corresponds to a reverse view of the

Página 239

Figure 4-16: PLL Locations for Cyclone V E A7 Device, Cyclone V GX C7 Device, Cyclone V GT D7 Device,Cyclone V SE A5 and A6 Devices, Cyclone V SX C5 a

Página 240

Figure 4-17: PLL Locations for Cyclone V E A9 Device, Cyclone V GX C9 Device, and Cyclone V GT D9 DeviceThis figure represents the top view of the sil

Página 241 - User Mode Error Detection

Fractional PLL UsageYou can configure the fractional PLL to function either in the integer or in the enhanced fractional mode.One fractional PLL can u

Página 242 - Specifications

Figure 4-19: Dual-Purpose Clock I/O Pins Associated with PLL for Cyclone V DevicesC0C1C2C3C4C5C6C7C8MI/O / FPLL_<#>_CLKOUT0/ FPLL_<#>_CLKO

Página 243 - Internal Oscillator Frequency

When areset is driven high, the PLL counters reset, clearing the PLL output and placing the PLL out-of-lock. The VCO is then set back to its nominal s

Página 244 - Enabling Error Detection

Source Synchronous ModeIf the data and clock arrive at the same time on the input pins, the same phase relationship is maintained atthe clock and data

Página 245 - Error Detection Registers

Figure 4-21: Example of Phase Relationship Between the Clock and Data in LVDS Compensation ModeData PinData at the RegisterClock at the RegisterPLL Re

Página 246 - Location

JTAG Single-Device Configuration...7-24JTAG Multi-Device Con

Página 247 - Error Detection Process

Figure 4-23: Example of Phase Relationship Between the PLL Clocks in Normal ModePLL Clock at theRegister Clock PortDedicated PLLClock OutputsPhase Ali

Página 248

Figure 4-24: ZDB Mode in Cyclone V PLLsinclk÷N PFDVCOCP/LFC0C1C2C3C4C5C6C7C8MEXTCLKOUT[1]EXTCLKOUT[0]fboutfbin210FPLL_<#>_FBMultiplexerFigure 4-

Página 249

One of the dual-purpose external clock outputs becomes the fbin input pin in this mode. The externalfeedback input pin, fbin is phase-aligned with the

Página 250 - BST Operation Control

Related InformationPLL External Clock I/O Pins on page 4-19Provides more information about PLL clock outputs.Clock Multiplication and DivisionEach Cyc

Página 251

Related InformationAltera Phase-Locked Loop (ALTERA_PLL) Megafunction User GuideProvides more information about PLL software support in the Quartus II

Página 252 - Supported JTAG Instruction

Figure 4-28: Automatic Clock Switchover Circuit Block DiagramThis figure shows a block diagram of the automatic switchover circuit built into the PLL.

Página 253

period difference is within 20%, the clock sense block detects when a clock stops toggling. However, the PLLmay lose lock after the switchover is comp

Página 254

Figure 4-30: Clock Switchover Using the clkswitch (Manual) ControlThis figure shows a clock switchover waveform controlled by the clkswitch signal. In

Página 255 - JTAG Private Instruction

Figure 4-31: Manual Clock Switchover Circuitry in Cyclone V PLLsClock SwitchControl LogicN CounterPFDinclk0inclk1muxout refclkfbclkclkswitchYou can de

Página 256 - Performing BST

Figure 4-32: VCO Switchover Operating Frequency∆FvcoPrimary Clock Stops RunningVCO Tracks Secondary ClockSwitchover OccursPLL Reconfiguration and Dyna

Página 257

JTAG Boundary-Scan Testing in Cyclone V Devices...9-1BST Operation Control ...

Página 258

ChangesVersionDate• Added note to indicate that the figures shown are the top view of thesilicon die.• Removed DPA support.• Updated clock resources t

Página 259

5I/O Features in Cyclone V Devices2013.06.21CV-52005SubscribeSend FeedbackThis chapter provides details about the features of the Cyclone V I/O elemen

Página 260

Table 5-1: Package Plan for Cyclone V E Devices—PreliminaryF896F672F484U484F256U324M484M383Member CodeGPIOGPIOGPIOGPIOGPIOGPIOGPIOGPIO——224224128176—2

Página 261 - Power Consumption

Table 5-5: Package Plan for Cyclone V SX Devices—PreliminaryF896U672Member CodeXCVRHPS I/OFPGA GPIOXCVRHPS I/OFPGA GPIO———6181145C2———6181145C49181288

Página 262 - Hot-Socketing Implementation

I/O Vertical Migration for Cyclone V DevicesFigure 5-1: Vertical Migration Capability Across Cyclone V Device Packages and Densities—PreliminaryThe ar

Página 263 - Power-Up Sequence

Verifying Pin Migration CompatibilityYou can use the Pin Migration View window in the Quartus II software Pin Planner to assist you in verifyingwhethe

Página 264 - Power Rail

Standard SupportI/O StandardJESD8-B3.0 V LVTTL/3.0 V LVCMOSPCI Rev. 2.23.0 V PCI(6)PCI-X Rev. 1.03.0 V PCI-X(7)JESD8-52.5 V LVCMOSJESD8-71.8 V LVCMOSJ

Página 265

Standard SupportI/O StandardANSI/TIA/EIA-644LVDS—RSDS(8)—Mini-LVDS(9)—LVPECLJESD8-13SLVS—Sub-LVDS—HiSpiJESD79-3DSSTL-15—SSTL-135—SSTL-125—HSUL-12JESD7

Página 266

HPS Row I/OHPS Column I/OStandard SupportI/O StandardYes——SSTL-135Yes——SSTL-125Yes——HSUL-12I/O Standards Voltage Levels in Cyclone V DevicesTable 5-9:

Página 267

VTT(V)(Board TerminationVoltage)VREF(V)(Input RefVoltage)VCCPD(V)(Pre-DriverVoltage)VCCIO(V)I/O StandardOutputInput(10)1.25—2.52.5VCCPDDifferential SS

Comentários a estes Manuais

Sem comentários