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  • Xilinx UltraScale:新一代架构满足您的新一代架构需求(EN)

      中文版详情浏览:http://www.elecfans.com/emb/fpga/20130715324029.html   Xilinx UltraScale:The Next-Generation Architecture for Your Next-Generation Architecture    The Xilinx® UltraScale™ architecture delivers unprecedented levels of integration and capability with ASIC-class system- level performance for the most demanding applications.   The UltraScale architecture is the industr y's f irst application of leading-edge ASIC architectural enhancements in an All Programmable architecture that scales from 20 nm planar through 16 nm FinFET technologies and beyond, in addition to scaling from monolithic through 3D ICs. Through analytical co-optimization with the X ilinx V ivado® Design Suite, the UltraScale architecture provides massive routing capacity while intelligently resolving typical bottlenecks in ways never before possible. This design synergy achieves greater than 90% utilization with no performance degradation.   Some of the UltraScale architecture breakthroughs include:   • Strategic placement (virtually anywhere on the die) of ASIC-like system clocks, reducing clock skew by up to 50%    • Latency-producing pipelining is virtually unnecessary in systems with massively parallel bus architecture, increasing system speed and capability   • Potential timing-closure problems and interconnect bottlenecks are eliminated, even in systems requiring 90% or more resource utilization   • 3D IC integration makes it possible to build larger devices one process generation ahead of the current industr y standard    • Greatly increased system performance, including multi-gigabit serial transceivers, I/O, and memor y bandwidth is available within even smaller system power budgets   • Greatly enhanced DSP and packet handling   The Xilinx UltraScale architecture opens up whole new dimensions for designers of ultra-high-capacity solutions.

    标签: UltraScale Xilinx 架构

    上传时间: 2013-11-13

    上传用户:瓦力瓦力hong

  • Verilog_HDL的基本语法详解(夏宇闻版)

            Verilog_HDL的基本语法详解(夏宇闻版):Verilog HDL是一种用于数字逻辑电路设计的语言。用Verilog HDL描述的电路设计就是该电路的Verilog HDL模型。Verilog HDL既是一种行为描述的语言也是一种结构描述的语言。这也就是说,既可以用电路的功能描述也可以用元器件和它们之间的连接来建立所设计电路的Verilog HDL模型。Verilog模型可以是实际电路的不同级别的抽象。这些抽象的级别和它们对应的模型类型共有以下五种:   系统级(system):用高级语言结构实现设计模块的外部性能的模型。   算法级(algorithm):用高级语言结构实现设计算法的模型。   RTL级(Register Transfer Level):描述数据在寄存器之间流动和如何处理这些数据的模型。   门级(gate-level):描述逻辑门以及逻辑门之间的连接的模型。   开关级(switch-level):描述器件中三极管和储存节点以及它们之间连接的模型。   一个复杂电路系统的完整Verilog HDL模型是由若干个Verilog HDL模块构成的,每一个模块又可以由若干个子模块构成。其中有些模块需要综合成具体电路,而有些模块只是与用户所设计的模块交互的现存电路或激励信号源。利用Verilog HDL语言结构所提供的这种功能就可以构造一个模块间的清晰层次结构来描述极其复杂的大型设计,并对所作设计的逻辑电路进行严格的验证。   Verilog HDL行为描述语言作为一种结构化和过程性的语言,其语法结构非常适合于算法级和RTL级的模型设计。这种行为描述语言具有以下功能:   · 可描述顺序执行或并行执行的程序结构。   · 用延迟表达式或事件表达式来明确地控制过程的启动时间。   · 通过命名的事件来触发其它过程里的激活行为或停止行为。   · 提供了条件、if-else、case、循环程序结构。   · 提供了可带参数且非零延续时间的任务(task)程序结构。   · 提供了可定义新的操作符的函数结构(function)。   · 提供了用于建立表达式的算术运算符、逻辑运算符、位运算符。   · Verilog HDL语言作为一种结构化的语言也非常适合于门级和开关级的模型设计。因其结构化的特点又使它具有以下功能:   - 提供了完整的一套组合型原语(primitive);   - 提供了双向通路和电阻器件的原语;   - 可建立MOS器件的电荷分享和电荷衰减动态模型。   Verilog HDL的构造性语句可以精确地建立信号的模型。这是因为在Verilog HDL中,提供了延迟和输出强度的原语来建立精确程度很高的信号模型。信号值可以有不同的的强度,可以通过设定宽范围的模糊值来降低不确定条件的影响。   Verilog HDL作为一种高级的硬件描述编程语言,有着类似C语言的风格。其中有许多语句如:if语句、case语句等和C语言中的对应语句十分相似。如果读者已经掌握C语言编程的基础,那么学习Verilog HDL并不困难,我们只要对Verilog HDL某些语句的特殊方面着重理解,并加强上机练习就能很好地掌握它,利用它的强大功能来设计复杂的数字逻辑电路。下面我们将对Verilog HDL中的基本语法逐一加以介绍。

    标签: Verilog_HDL

    上传时间: 2013-11-23

    上传用户:青春给了作业95

  • 《器件封装用户向导》赛灵思产品封装资料

    Introduction to Xilinx Packaging Electronic packages are interconnectable housings for semiconductor devices. The major functions of the electronic packages are to provide electrical interconnections between the IC and the board and to efficiently remove heat generated by the device. Feature sizes are constantly shrinking, resulting in increased number of transistors being packed into the device. Today's submicron technology is also enabling large-scale functional integration and system-on-a-chip solutions. In order to keep pace with these new advancements in silicon technologies, semiconductor packages have also evolved to provide improved device functionality and performance. Feature size at the device level is driving package feature sizes down to the design rules of the early transistors. To meet these demands, electronic packages must be flexible to address high pin counts, reduced pitch and form factor requirements. At the same time,packages must be reliable and cost effective.

    标签: 封装 器件 用户 赛灵思

    上传时间: 2013-10-22

    上传用户:ztj182002

  • WP200-将Spartan-3 FPGA用作远程数码相机的低成本控制器

      The introduction of Spartan-3™ devices has createdmultiple changes in the evolution of embedded controldesigns and pushed processing capabilities to the “almostfreestage.” With these new FPGAs falling under $20, involume, with over 1 million system gates, and under $5for 100K gate-level units, any design with programmablelogic has a readily available 8- or 16-bit processor costingless than 75 cents and 32-bit processor for less than $1.50.

    标签: Spartan FPGA 200 WP

    上传时间: 2013-12-10

    上传用户:zgu489

  • WP328-FPGA的语音数据融合

      The SDI standards are the predominant standards for uncompressed digital videointerfaces in the broadcast studio and video production center. The first SDI standard,SD-SDI, allowed standard-definition digital video to be transported over the coaxial cableinfrastructure initially installed in studios to carry analog video. Next, HD-SDI wasto support high-definition video. Finally, dual link HD-SDI and 3G-SDIdoubled the bandwidth of HD-SDI to support 1080p (50 Hz and 60 Hz) and other videoformats requiring more bandwidth than HD-SDI provides.

    标签: FPGA 328 WP 语音

    上传时间: 2013-10-08

    上传用户:yjj631

  • FPGA设计重利用方法(Design Reuse Methodology)

      FPGAs have changed dramatically since Xilinx first introduced them just 15 years ago. In thepast, FPGA were primarily used for prototyping and lower volume applications; custom ASICswere used for high volume, cost sensitive designs. FPGAs had also been too expensive and tooslow for many applications, let alone for System Level Integration (SLI). Plus, the development

    标签: Methodology Design Reuse FPGA

    上传时间: 2013-10-23

    上传用户:旗鱼旗鱼

  • WP409利用Xilinx FPGA打造出高端比特精度和周期精度浮点DSP算法实现方案

    WP409利用Xilinx FPGA打造出高端比特精度和周期精度浮点DSP算法实现方案: High-Level Implementation of Bit- and Cycle-Accurate Floating-Point DSP Algorithms with Xilinx FPGAs

    标签: Xilinx FPGA 409 DSP

    上传时间: 2013-11-07

    上传用户:defghi010

  • UART 4 UART参考设计,Xilinx提供VHDL代码

    UART 4 UART参考设计,Xilinx提供VHDL代码 uart_vhdl This zip file contains the following folders:  \vhdl_source  -- Source VHDL files:      uart.vhd  - top level file      txmit.vhd - transmit portion of uart      rcvr.vhd -  - receive portion of uart \vhdl_testfixture  -- VHDL Testbench files. This files only include the testbench behavior, they         do not instantiate the DUT. This can easily be done in a top-level VHDL          file or a schematic. This folder contains the following files:      txmit_tb.vhd  -- Test bench for txmit.vhd.      rcvr_tf.vhd  -- Test bench for rcvr.vhd.

    标签: UART Xilinx VHDL 参考设计

    上传时间: 2013-11-07

    上传用户:jasson5678

  • 如何选择补偿的硅压力传感器

    Abstract: This reference design provides design ideas for a cost-effective, low-power liquid-level measurement dataacquisition system (DAS) using a compensated silicon pressure sensor and a high-precision delta-sigma ADC. Thisdocument discusses how to select the compensated silicon pressure sensor, suggest system algorithms, and providenoise analyses. It also describes calibration ideas to improve system performance while also reducing complexity andcost.

    标签: 如何选择 补偿 硅压力传感器

    上传时间: 2013-10-08

    上传用户:sjy1991

  • 6 芯嵌STM32入门教程之六《如何使用MDK + J-Link调试》

    芯嵌stm32开发板教程

    标签: J-Link STM MDK 32

    上传时间: 2014-12-30

    上传用户:ttpay