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TracePro应用实例详解-

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TracePro应用实例详解-压缩版(内容不变)目录绪论光学设计基础知识1第一章导光管设计实例6第二章背光源设计实例12第三章LED设计实例-..1.18第四章手电筒设计实例由南南由南虚由由面鱼出面量自音s面自自鱼自自西由自由由由由由面由垂型由面由昏音面垂香量看证自音西垂45第五章积分球设计实例,54第六章LED设计实例二…第七章分光棱镜模拟实例……---77第八章LED汽车前照灯设计实例影中中中着,着看e,第九章简易荧光灯模型设计实例……100第十章投影仪设计实例…11111114第十一章红外光气体检测系统设计实例140第十二章荧光粉模拟实例150第十三章LED色温模拟实例…--1160第十四章消除杂散光模拟实例……167第十五章二级复合抛物面聚光器设计实例177第十六章矩形路灯聚光器的优化设计198第十七章一种LED植物生长灯的设计与制作…207第十八章简易筒灯的模拟与设计216绪论光学设计基础知识在开始本书前,我们需要了解一些基础的光学知识。一、光度学基本概念光通量:单位时间内光辐射能量的大小。它表示光源的发光能力。光通量单位:流明(lm),指lcd的均匀点光源在lsr内的光通量。发光强度(光强);光通量的角(空间的)密度,即在一定方向上的单位立体角内所发出的光通量。常用于说明光源和灯具发出的光通量在空间各方向或选定方向上的分布密度。发光强度的单位:坎德拉cd,lcd=1mSr,是国际单位制的基本单位。立体角:是任意一封闭的圆锥面内所包含的空间。单位是球面度(Sr),即以锥顶为球心,以r为半径作一圆球,如果锥面在圆球上截得的面积A为r的平方,则该立体角为一个单位立体角,而一个球体包含4π球面度。1979年10月第10届国际计量大会透过的坎德拉定义为:一个光源发出频率为540.0E1Hz的单色辐射(对应于空气中波长为550nm的单色辐射),若在一定方向上的辐射强度为1/683Wsr,则光源在该方向上的发光强度为1cd照度:单位面积(被照射面)上入射的光通量。照度单位;勒克斯(1x)注:1kx的照度是比较小的,在此照度下仅能大致辨认周围物体。晴朗的盈月夜晚,地面照度大约为0.2x;白天采光良好的室内照度为100-500x;晴天室外太阳散射光下,地面的照度约为10001x;中午太阳光照射下,地面的照度可达100001x光出射度:单位面积(发光面)上发射的光通量。其单位:辐射勒克斯(rlx)。亮度(台湾又称辉度):在一个广光源上取一个单元面积dA,从与表面法线成角的方向上去观察,在这个方向上的光强与所可见的光源面积之比,定义为光源在该方向的亮度。单位:尼特(坎德拉每平方米,cdm2)。注:太阳的亮度为1.6*10E9以上,碳极弧光灯(1.8-12)*10E8,钨丝灯(2.0-20)*10E6,蜡烛(0.5-1.0)*10OE4,蓝天0.8*10E4暗适应:由光亮处进入到黑暗处,开始一切都看不见,经过一段时间才能看见物体轮廊。所需时间较长,一般几分钟以上。明适应:有暗处进入到亮处时,开始也不能辨别物体,几秒到几十秒后才能看清物体。在有明暗变化的视场内,应考虑照明的过渡。后像:在高亮度的闪光之后,往往会感到有一连串的影像,以不规则的强度和不断降低的频率正负交替出现,即后像。强烈的后像对视力工作有很大害处。应避免。眩光:视场中有极高的亮度或强烈的亮度对比时,会造成视觉下降和眼睛的不舒适,这种现象称为眩光。前者为失能眩光,后者为不舒适眩光。不舒适眩光取决于视场内的尺寸亮度数量位置以及背景亮度等原素。注:一个明亮光源发出的光线,被一个有光泽或半光泽的表面射入观察者眼睛,可能产生轻度分散注意力甚至不舒适的感觉。当这种反射发生在作业面上时,称为“光幕反射”,如发生在作业面以外时,称为“反射眩光”。颜色:眼睛能够辨别背景上的被观察对象(细节),必须满足以下两个条件之对象与背景有不同的颜色(颜色对比),或者对象与背景在亮度上有一定的差别(亮度对比)。可见度(能见度,视度):表示被识别对象看清楚的程度。反射,折射,透射,吸收:1.据能量守衡定律,材料的反射系数+透射系数+吸收系数=1铝(普通)的反射系数为60-73%,吸收系数为2740%。铝(电解抛光)的反射系数为75-84%(光泽),62-70%(无光)。铬反射系数为65%,吸收系数为35%2.光的反射分类:定向反射( Specular reflection),散反射( Spread Reflection),漫反射( )effuse Reflection),混合反射( Compound Reflection)3.折射:水的临界折射角为48.5°,玻璃的临界折射角为30°到40°。玻璃的折射率为1.5左右。4.光的透射分类:定向透射,散透射( Spread Transmission),漫透射( DiffuseTransmission),混合透射( Mixed Transmission)5.光在玻璃表面垂直入射时,入射光在入射面被反射4%,在透过面被反射3-4%,被吸收2-8%,透过率为80-90%6.材料的表面的光反射和光透射具有光谱选择性。二、LED光学设计基础知识为了使LED芯片发出的光能够更好地输出,得到最大程度的利用,并且在照明区域内满足设计要求,需要对LED进行光学系统的设计。其中,在封装过程中的设计被称为一次光学设计;而在LED之外进行的光学设计被称为二次光学设计①一次光学设计LED芯片只是一块很小的固体,它的两个电极要在显微镜下才能看见,加入电流后它才会发光。在制作工艺上,除了要对LED芯片的两个电极进行焊接,从而引出正、负电极之外,同时还要对LED芯片和两个电极进行保护。因此,这就需要对LED芯片进行封装。在封装的过程中,为了能够最高效率地输出可见光的功能,需要进行光学设计,合适选择封装材料的形状、结构和材料,这种设计在业内被称为一次配光设计次配光设计主要是决定发光器件的出光度、光通量大小、光强大小、光强分布等。而影响封装出光效率的高低、效果的好坏,主要是由芯片、支架和模粒三要素来决定的。②二次光学设计在使用LED发光器件时,整个系统的出光效果、光强、色温的分布状况也必须进行设计,把器件发出的光线集中到期望的照明区域内,从而让整个LED照明系统能够满足设计的需要,这被称为二次光学设计。二次光学设计必须在LED发光器件次配光设计的基础上进行。一次配光设计是保证每个LED发光器件的出光质量,考虑将LED芯片中发出的光能尽量多地取出。而二次配光设计是考虑怎样把LED器件发出的光线集中到期望的照明区域上,从而让整个系统发出的光能满足设计需要。从某种意义上来说,只有封装设计即一次配光设计)合理,才能保证系统的二次配光设计顺利实现,从而提高照明和显示的效果。基于LED的二次配光设计,对最终的照明器件和产品的性能起着至关重要的作用。第一,部分光线未能达到有效的照明范围从而导致能量的损失,需要使用大数值孔径的光学系统对光线进行汇聚,进一步提高光能利用率;第二,封装之后,像面照度分布均匀性达不到改计要求,难以在每一点的照度值都大于要求的最低照度值,这都需要对LED进行二次配光设计。日前市场上常用的光学设计和分析程序主要有美国焦点软件公司开发的ZEMAX、 Optical Research Associates的 CODE V和 Light Tools、 Breault ResearchOrganization的ASAP以及 Lambda research的 TracePro等。ZEMAX是美国焦点软件公司所发展出的光学设计软件,可做光学组件设计与照明系统的照度分析,也可建立反射、折射、绕射等光学模型,并结合优化,公差等分析功能,是套可以运算 Sequential及Non- Sequential的软件。 ZEMAX不仅功能强大,而且具备直观性、软件灵活、优化快速、容易操作使用等优点,与其他软件不同的是 ZEMAX的CAD转档程序都是双向的,如IGES、STEP、SAT等格式都可转入及转出。当前有三种不同的版本: ZEMAX-SE(标准版); ZEMAX-XE(展版)ZEMAX-EE传专业版)。 ZEMAX在成像光学,特别是透镜设计方面应用十分广泛。CODE V是应用非常广泛的光学设计和分析软件,是世界上分析功能最全、优化功能最强的光学软件,为各国政府及军方研究部门、著名大学和各大光学公司广泛采用,并广泛适用于照相设备、摄影机和医疗器具等,功能强大使用简单灵活。其功能主要包括变焦结构优化和分析、环境热量分析、MIF和RMS波阵面基础公差分析、用户自定义优化、干涉和光学校正准直、非连续建模、矢量衍射计算及偏振、全球综合优化光学设计方法等。ASAP是 Breault Research Organization研制的一套不受限制的、非序列光线追迹软件。它具有对物理光学、成像系统和照明系统进行建模分析的强大功能,它的图形工具允许用户进行截图分析,或者对几何模型、光线追迹、分析结果进行三维演示。ASAP还可以分析散射、衍射、反射、折射、吸收、偏振、非序列光线追迹和高斯光束传播。Light Tools.是 Optical Research Associate制的一套全新的具有光学精度的交互式三维实体建模软件体系,它提供最现代化的手段直接描述光学系统中的光源、透镜、反射角、分束器、衍射光学元件、棱镜、机槭结构以及光路。由 Light Tools把光学和机械元件集合在统一的体系下处理,并配置“放置”光源、发射光线的非序列追迹强大功能,使它在系统初步设计、复杂系统设计规划、光机一体设计、杂光分析、照明系统设计分析、单位各部门间学术交流和数据交換、课题论证或产品推广等各环节中发挥重要的作用。TracePro是美国 Lambda Research公司开发的一款基于蒙特卡罗法( Mante Carlo)的非序列光线追迹(Non- Sequential Ray Tracing)软件,它是一套以符合工业标准的ACIS固体建模引擎为核心所发展出来的光学机构仿真软件,是一套结合了真实固体建模、强大光学分析功能、信息转换能力强及易上手的使用界面的仿真软件,它可将真实立体模型与光学分析紧密结合起来。目前,国际上在照明系统分析、传统光学分析、辐射度以及光度分析,在镜头杂散光分析、背光板、LED设计及应用、照明灯具、车灯、投影显示器等众多领域中已经大量采用该软件进行计算机辅助设计。本书主要采用该软件进行模拟设计(读者需对 TracePro软件的使用有一定了解,可以参考《 TracePro7.0中文使用手册》)。TracePro用于照明设计的一般流程如图1所示。建立模型□>建立模型建立光源优化属性结果不符合定义属性光线追迹结果分析图1模拟设计流程图三、几个知名品牌的LED模型下载地址下面是各个种类的LED模型下载地址,模型包括用在 Trace Pro里面的,也有Light Tools,,也有 ZEMAX的,下载下来直接在相应的软件上调用就可以了,十分方便。1.mh:http://www.philipslumileds.com/resources/design/listing.cfm?catoptical然后打开 Optical Design Resources点击LE链接2.lim(Cree):http:/www.cree.com/products/ledlamps.asp.然后打开 LED Components页面点击LED3.欧司朗http://www.osram-os.com/ray-filcs然后点击LED下载。第一章导光管设计实例在 TracePro中进行导光管设计,将使用到面平扫功能。主要步骤如下:打开 Trace Pro软件2.在下拉工具菜单 Insert选择实体模型 Insert/Primitive solids命令3.在基本实体模型设置对话框中,选择 Cylinder/Cone设置栏4.选中 Cylinder,在Bae下的 Major栏输入底面半径为2,在1op下的 Length输入30。如图1.1所示。■ nsert Pr盈itSolidsBlock Cylinder/Cone Torus I Sphere Thin Sheet IName: Obiect 1C Cylind. C Cone厂 EllipticalBTMajMajMinor aLength 30Base Posi tionBase rotationx:0Y:0Y:o2:in Degreesset,□li图1.15.点击 Insert插入,再点击缩放工具图标二如图1.2所示。ladel: [UntitledSurface 1tity 4Cyl/C图下一步将使用 Revolve对上面建立的导光管右端面进行旋转延伸操作:1.选中导光管右端面,即 Object 1下的 Surface22.执行下拉菜单 Edit/Surface/ Revolve命令。在 Revolve surface Selection对话框设置旋转角度为90度,半径为25mm。4.在位置坐标栏输入(0-2530);(100)。具体见图1.3所示。5.点击 Revolve surface插入旋转延伸。如图14所示。Revolve Surface Selection DXAngle 90planar suIfaces on副yDraft angle oin DegreesRadius250Positicn on axis of revolution Axis cf RevolutionPosition X 0Axis X 1Positon丫AxisY 0Position Z30Axis20Get Position fiom last mouse clickCalculate a Position using selected surfaceRevolve Surface图1.3Fuel: [Untitled1]回xobject I中 ur tace 0中 Surtace2Entity 4Model Source Radi anee图1最后将进行Swep面平扫,完成导光管的实体模型:1.选中端面 Surface3,执行下拉菜单 Edit/Surface/Sweep命令。2.在 Sweep Surface Selection对话框中,输入 Distance为l5mm,Draf为-2度。

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  • Verilog-IEEE Std 1364 -2005 IEEE Standard
    Verilog的IEEE标准,比较新的一个吧应该是IEEE Std 1364 TM-2005(Revision of IEEE Std 1364-2001)lEE Standard for VerilogHardware Description LanguageSponsorDesign Automation Standards Committeeof theIEEE Computer SocietyAbstract: The Verilog hardware description language(HDL) is defined in this standard. VerilogHDL is a formal notation intended for use in all phases of the creation of electronic systems. Because it is both machine-readable and human-readable, it supports the development, verificationsynthesis, and testing of hardware designs; the communication of hardware design data; and themaintenance, modification, and procurement of hardware. The primary audiences for this standardare the implementors of tools supporting the language and advanced users of the languageKeywords: computer, computer languages, digital systems, electronic systems, hardware, hardware description languages, hardware design, HDL, PLI, programming language interface, Verilog,Verilog HDL, verilog PllThe Institute of Electrical and Electronics Engineers, Inc3 Park Avenue. New york. NY 10016-5997 USACopyright@ 2006 by the Institute of Electrical and Electronics Engineers, IncAll rights reserved Published 7 April 2006. Printed in the United states of AmericaIEEE is a registered trademark in the U.S. Patent Trademark Office, owned by the Institute of Electrical and ElectronicsEngineers, IncorporatedVerilog is a registered trademark of Cadence Design Systems, IncPrint:|sBN0-738148504SH95395PDFSBN0-7381-48512SS95395No part of this publication may be reproduced in any form, in an electronic retrieval system or otherwise, without the priorwritten permission of the publisher.IEEE Standards documents are developed within the IEee Societies and the Standards CoordinatingCommittees of the iEEE Standards Association (IEEE-SA)Standards board The ieee develops its standardsthrough a consensus development process, approved by the american National Standards Institute, which bringstogether volunteers representing varied viewpoints and interests to achieve the final product. Volunteers are notnecessarily members of the Institute and serve without compensation. While the ieee administers the processand establishes rules to promote fairness in the consensus development process, the ieee does not independentlyevaluate, test, or verify the accuracy of any of the information contained in its standards.Use of an IEEE Standard is wholly voluntary. The ieee disclaims liability for any personal injury, property orother damage of any nature whatsoever, whether special, indirect, consequential, or compensatory, directly orindirectly resulting from the publication, use of, or reliance upon this, or any other iEEE Standard documentThe ieee does not warrant or represent the accuracy or content of the material contained herein, and expresslydisclaims any express or implied warranTy, including any implied warranty of merchantability or fitness for a specific purpose, or that the use of the material contained herein is free from patent infringement. IEEE Standardsdocuments are supplied "AS IsThe existence of an IEEE Standard does not imply that there are no other ways to produce, test, measurepurchase, market, or provide other goods and services related to the scope of the IEEE Standard. Furthermore, theviewpoint expressed at the time a standard is approved and issued is subject to change brought about throughdevelopments in the state of the art and comments received from users of the standard Every IeeE Standard issubjected to review at least every five years for revision or reaffirmation. When a document is more than fiveyears old and has not been reaffirmed, it is reasonable to conclude Chat ils contents, although still of some valuedo not wholly reflect the present state of the art. Users are cautioned to check to determine that they have thelatest edition of any IEEE StandardIn publishing and making this document available, the IEeE is not suggesting or rendering professional or otherervices for, or on behalf of, any person or entity. Nor is the Ieee undertaking to perform any dutyother person or entity to another. Any person utilizing this, and any other ieee Standards document, should relupon the advice of a competent professional in determining the exercise of reasonable care in any givencircumstancesInterpretations: Occasionally questions may arise regarding the meaning of portions of standards as they relate tospecific applications. When the need for interpretations is brought to the attention of IEEe, the Institute will initiateaction to prepare appropriate responses. Since ifff Standards represent a consensus of concerned interests, it isimportant to ensure that any interpretation has also received the concurrence of a balance of interests. For thisreason, IEEE and the members of its societies and standards coordinating committees are not able to provide aninstant response to interpretation requests except in those cases where the matter has previously received formalconsideration. At lectures, symposia, seminars, or educational courses, an individual presenting information onIEee standards shall make it clear that his or her views should be considered the personal views of that individuarather than the formal position, explanation, or interpretation of the IeeeComments for revision of IEEE Standards are welcome from any interested party, regardless of membership aftil-iation with IEEE. Suggestions for changes in documents should be in the form of a proposed change of texttogether with appropriate supporting comments Comments on standards and requests for interpretations shouldaddressed toIEEE-SA Standards Board445 Hoes lanePiscataway, NJ 08854USANoTE-Attention is called to the possibility that implementation of this standard may require use of subjectmatter covered by patent rights. By publication of this standard, no position is taken with respect to theexistence or validity of any patent rights in connection therewith. The IEf shall not be responsible foridentifying patents for which a license may be required by an ieee standard or for conducting inquiries into thelegal validity or scope of those patents that are brought to its attentionAuthorization to photocopy portions of any individual standard for internal or personal use is granted by the Institute of Electrical and Electronics Engineers, Inc, provided that the appropriate fee is paid to Copyright ClearanceCenter. To arrange for payment of licensing fee, please contact Copyright Clearance Center, Customer Service222 Rosewood Drive, Danvers, MA01923 USA; +19787508400. Permission to photocopy portions of any indi-idual standard for educational classroom use can also be obtained through the Copyright Clearance CenterIntroductionThis introduction is not a part of IEEE Std 1364-2005, IEEE Standard for Verilog Hardware Description LanguageThe Verilog hardware description language(HDL) became an IEEE standard in 1995 as IEEE Std 13641995. It was designed to be simple, intuitive, and effective at multiple levels of abstraction in a standardtextual format for a variety of design tools, including verification simulation, timing analysis, test analysisand synthesis. It is because of these rich features that verilog has been accepted to be the language of choiceby an overwhelming number of integrated circuit(IC)designersVerilog contains a rich set of built-in primitives, including logic gates, user-definable primitives, switches,and wired logic. It also has device pin-to-pin delays and timing checks. The mixing of abstract levels isessentially provided by the semantics of two data types: nets and variables. Continuous assignments, inwhich expressions of both variables and nets can continuously drive values onto nets, provide the basicstructural construct. Procedural assignments, in which the results of calculations involving variable and netvalues can be stored into variables, provide the basic behavioral construct. a design consists of a set of modules, each of which has an input/output(1/O)interface, and a description of its function, which can be structural, behavioral, or a mix. These modules are formed into a hierarchy and are interconnected with netsThe Verilog language is extensible via the programming language interface(PLI)and the verilog procedural interface(VPi) routines. The Pli/vPi is a collection of routines that allows foreign functions to accessinformation contained in a Verilog hdl description of the design and facilitates dynamic interaction withsimulation. Applications of PLI/VPI include connecting to a Verilog HDL simulator with other simulationand computer-assisted design(CAD)systems, customized debugging TaskS, delay calculators, andannotatorsThe language that influenced Verilog HDL the most was HILO-2, which was developed at Brunel University in England under a contract to produce a test generation system for the British Ministry of DefensehiLO-2 successfully combined the gate and register transfer levels of abstraction and supported verificationsimulation, timing analysis, fault simulation, and test generationIn 1990, Cadence Design Systems placed the Verilog HDL into the public domain and the independentOpen Verilog International(oVi)was formed to manage and promote Verilog HDL. In 1992, the Board ofDirectors of ovi began an effort to establish Verilog hdl as an ieeE standard. In 1993, the first IEeEworking group was formed; and after 18 months of focused efforts, Verilog became an IEEE standard asIEEE Std 1364-1995After the standardization process was complete, the IEEe P1364 Working Group started looking for feedback from IEEE 1364 users worldwide so the standard could be enhanced and modified accordingly. Thisled to a five-year effort to get a much better Verilog standard in IEEE Std 1364-2001With the completion of IEEE Std 1364-2001, work continued in the larger Verilog community to identifyoutstanding issues with the language as well as ideas for possible enhancements. As Accellera began work-ing on standardizing System Verilog in 2001, additional issues were identified that could possibly have led toincompatibilities between Verilog 1364 and System Verilog. The IEEE P1364 Working group was established as a subcomittee of the System Verilog P1800 Working Group to help ensure consistent resolution ofsuch issues. The result of this collaborative work is this standard ieee Std 1364-2005Copyright C 2006 IEEE. All rights reservedNotice to usersErrataErrata,ifanyforthisandallotherstandardscanbeaccessedatthefollowingurL:http:/stan-dards.ieee.org/reading/ieee/updates/errata/index.html. Users are encouraged to check this URL for errataperiodicaInterpretationsCurrentinterpretationscanbeaccessedatthefollowingUrl:http:/standards.ieeeorg/reading/ieee/interp/Index. htmlPatentsAttention is called to the possibility that implementation of this standard may require use of subject mattercovered by patent rights. By publication of this standard, no position is taken with respect to the existence orvalidity of any patent rights in connection therewith. The IEee shall not be responsible for identifyingpatents or patent applications for which a license may be required to implement an IEEE standard or forconducting inquiries into the legal validity or scope of those patents that are brought to its attentionParticipantsAt the time this standard was completed, the ieee P1364 Working group had the following membershipJohny Srouji, IBM, IEEE SyStem verilog Working Group chairTom Fitzpatrick, Mentor Graphics Corporation, ChairNeil Korpusik, Sun Microsystems, Inc, Co-chairStuart sutherland sutherland hdl inc. editorShalom Bresticker, Intel Corporation, Editor through February 2005The Errata Task Force had the following membershipKaren pynopsys,rKurt baty. WFSDB ConsultinDennis marsa. XilinxStefen Boyd, Boyd TechnologyFrancoise Martinolle, Cadence Design Systems, IncShalom Bresticker, Intel CorporationMike McNamara, Verisity, LtdDennis Brophy, Mentor Graphics CorporationDon Mills, LCDM EngineeringCliff Cummings, Sunburst Design, IncAnders nordstrom, Cadence Design Systems, IncCharles dawson, Cadence Design Systems, IncKaren Pieper, Synopsys, IncTom Fitzpatrick, Mentor Graphics CorpoBrad Pierce, Synopsys, IncRonald goodstein, first shot Logic simulation andSteven Sharp Cadence Design Systems, IncAlec Stanculescu. Fintronic USA IncDesignStuart Sutherland. Sutherland HDL IncMark Hartog, Synopsys incGordon Vreugdenhil, Mentor Graphics CorporationJames Markevitch, Evergreen Technology GroupJason Woolf, Cadence design Systems, IncCopyright C 2006 IEEE. All rights reservedThe behavioral Task Force had the following membership:Steven Sharp, Cadence Design Systems, InC, ChairKurt Baty, WFSDB ConsultingJay lawrence. Cadence design Systems. IncStefen Boyd, Boyd TechnologyFrancoise Martinolle, Cadence Design Systems, IncShalom Bresticker, Intel CorporationKathryn McKinley, Cadence Design Systems, IncDennis brophy, Mentor graphics corporationMichael mcnamara. Verisity LtdCliff Cummings, Sunburst Design, IncDon Mills, LCDM EngineeringSteven Dovich, Cadence Design Systems, IncMehdi Mohtashemi, Synopsys, IncTom Fitzpatrick, Mentor Graphics CorporationKaren Pieper, Synopsys, IncRonald Goodstein, First Shot Logic Simulation andBrad Pierce, Synopsys, IncDesignDave Rich, Mentor Graphics CorporationKeith Gover, Mentor Graphics CorporationSteven Sharp, Cadence Design Systems, IncMark Hartoog, Synopsys, IncAlec Stanculescu. Fintronic USAEnnis Hawk, Jeda TechnologiesStuart Sutherland. Sutherland hdl. IncAtsushi kasuya, Jcda TechnologicsGordon Vrcugdcnhil, Mentor Graphics CorporationThe PLI Task Force had the following membershipCharles Dawson, Cadence Design Systems, Inc, ChairGhassan Khoory, Synopsys, Inc Co-chairTapati Basu, Synopsys, IncMichael rohleder. Freescale Semiconductor. IncSteven Dovich, Cadence Design Systems, IncRob Slater, Freescale Semiconductor IncRalph duncan, Mentor Graphics CorporationJohn Stickley, Mentor Graphics CorporationJim garnett, Mentor Graphics CorporationStuart Sutherland. Sutherland HDL. incJoao geada CLK Design AutomationBassam Tabbara. Novas software. IncAndrzej litwiniuk, Synopsys, IncJim Vellenga, Cadence Design Systems, IncFrancoise Martinolle, Cadence Design Systems, IncDoug Warmke, Mentor Graphics CorporationSachchidananda Patel, Synopsys, IncIn addition, the working group wishes to recognize the substantial efforts of past contributorsMichael McNamara, Cadence Design Systems, Inc1364 Working Group past chair(through September 2004)Alec Stanculescu, Fintronic USA, 1304 Working Group past vice-chair(through June 2004)Stefen Boyd, Boyd Technology, ETF past co-chair(through November 2004)The following members of the entity balloting commitlee voted on this standard. Balloters may have votedfor approval, disapproval, or abstentionAccelleraIntel CorporationBluespec, Inc.Mentor Graphics CorporationCadence Dcsign Systcms, IncSun microsystems, IncIntronic u.s.aSunburst design, IncIBMSutherland hdl lncInfineon TechnologiesSynopsys, IncCopyright C 2006 IEEE. All rights reservedWhen the IEEE-SA Standards Board approved this standard on 8 November 2005, it had the followingmembershipSteve M. mills. chairRichard h. hulett vice chairDon wright Past chairJudith gorman. secretaryMark d. bowmanWilliam B HopfT W. olsenDennis B. BrophyLowell G. JohnsonGlenn parsonsJoseph brudeHerman KochRonald c. petersenRichard coxJoseph L. Koepfinger*Gary s. RobinsonBob davisDavid J lawFrank stoneJulian forster kDaleep c mohlaMalcolm v thadenJoanna n. gueninPaul nikolichRichard l. townsendS. HalpJoe d. watseRaymond hapemanHoward L, wolfmanAlso included are the following nonvoting Ieee-Sa Standards board liaisonsSatish K. aval, NRC RepresentativeRichard Deblasio, DOE RepresentativeAlan H. Cookson, NIST RepresentativeMichelle d, trIEEE Standards Project EditoCopyright C 2006 IEEE. All rights reservedContentsOverview1. 2 Conventions used in this standard1.3SIption1 4 Use of color in this standard1.5 Contents of this standard1.6 Deprecated clauses……….….….….…1.7 Header file listings....18 Examples…………………1.9PNormative references63. Lexical conventions83.1 Lexical tokens3.2 White space3. 3 Comments中··…·········:···············中·····“:·:·:·4·····“··········3. 4 Operators3. 5 Numberssteger constants3.5.2 Real constants123.5.3 Conversion123.6 Strings123.6. 1 String variable declaration133.6.2 String manipulation133.6.3 Special cha3.7 Identifiers. keds, and syste143.7.1 Escaped identifiers143.7.2 Keywords153.7.3 System tasks and functions3.7.4 Compiler directives153.8 Attrib163.8.1 Examples3.8.2 SyIata typ··4.1 Val214.2 Nets and variables4.2.1 Net declarations4.2.2 Variable declarations4.3V4.3.1g v244.3.2 Veclor net accessibility44.4 Strengths4.4.1 Charge strength4.4.2 Drive strength.....卓········中····“·········:·····················:········254.5 Implicit declarations4.6 Net types………264.6.1 Wire and tri nets264.6.2 Wired nets4.6.3TCopyright C 2006 IEEE. All rights reserved4.6.4 Trio and tri l nets4.6.5 Unresolved nets4.6.6 Supply nets324.7 Regs324.8 Integers, reals, times, and realtime4.8.1 Operators and real numbers4.8.2 Conversion4.9 Arrays4.9.1Net arrays…·中·····:··344.9.2 reg and variable arrays344.9.3 Memories4.10 Parameters…………………354.10.1 Module parameters…364.10.2 Local parameters(localparam““374.10.3 Specify parameters……384. Name spaces…39Expressions……5.1 Operators41Operators with real operands425.1.2 Operator precedence………5.1.3 Using integer numbers in expressions…….445.1.4 Expression evaluation order……2451. 5 Arithmetic operators5.1.6 Arithmetic expressions with regs and integers5. 1.7 Relational operators485.1.8Equ495.1.9 Logical operators…495.1.10 bitw isators505.1.11 Reduction operators5.112 Shift operators…….535. 1. 13 Conditional operator535.1. 14 Concatenations545.2 Operands………5.2. 1 Vector bit-Select and part-select addressing..565.2.2 Array and memory addressing.......,.……5.2.3ings585.3 Minimum, typical, and maximum delay expressions5.4 Expression bit lengths5.4.1 Rules for expression bit lengths65.4.2 Examole of expression bit-length problerpl635.4.3 Example of self-determined expressions.645.5 Signed expressions5.5.1 Rules for expression types.....5.5.2 Steps for evaluating5.5.3 Steps for evaluating an assignment5.54 Handling X and Z in signed expressions………5.6 Assignments and truncation6. Assignments……………686.1 Continuous assignments686. 1. 1 The net declaration assignment6.1.2 The continuous assignment statement·····中···:·:·4·中·····6.1.371Copyright C 2006 IEEE. All rights reserved
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