习题二及答案(1)
Answers
I. Blank filling (10%)(one point for each blank)
1. phatic
2. minimal pair
3. root
4. loan-blending
5. surface
6. deep
7. connotative
8. componential
9. pragmatics 10. sociolinguistics
II. Definition (10%)
1. allomorph: The plural meaning in English can be represented by voiceless/s/, the voiced /z/, the vowel-consonant /iz/, the nasal sound /n/ in /oksn/, and would be said to be an allomorph of the plural morpheme.
2. inflection: Inflection is the manifestation of grammatical relationship through the addition of inflectional affixes such as number, case, aspect, which do not change the grammatical class of the stems to which they are attached.
3. redundant features: features which are not necessary. For example: -tion is the suffix to form a noun. So if we see the word “civilization”, the feature “noun”is redundant.
4. implicature: implicature is deduced from the utterances, not from the sentences. It is comparable to illocutionary force in speech act theory in that they are both concerned with the contextual side of meaning.
5. denotative meaning: it is concerned with the relationship between a word and the thing it denotes, or refers to.
III Indicate the following statements as true or false (50%, one for each question)
1.T F
2. T F
3. T F
4. T F
5. T F
6. T F
7. T F
8. T F 9. T F 10. T F 11. T F 12. T F 13 T F 14. T F
15. T F 16.T F 17. T F 18. T F 19. T F 20. T F 21. T F
22. T F 23. T F 24. T F 25. T F 26. T F 27.T F
28. T F 29. T F 30. T F 31. T F 32. T F 33. T F
34. T F 35. T F 36. T F 37. T F 38. T F 39. T F
40. T F 41. T F 42. T F 43. T F 44. T F 45. T F
46. T F 47. T F 48. T F 49. T F 50. T F
IV. Answer the questions: ten points for each question
1. Language has at least seven functions: phatic, directive, Informative, interrogative, expressive, evocative and
performative. According to Wang Gang (1988,p.11), language has three main functions: a tool of communication, a tool whereby people learn about the world, and a tool by which people learn about the world, and a tool by which people create art . M .A. K.Halliday, representative of the London school, recognizes three “Macro-Functions”: ideational, interpersonal and textual
2. Pragmatics can be simply defined as the study of language in use. It is concerned with the study of meaning as communicated by a speaker (or writer) and interpreted by a listener (or reader). It has, consequently, more to do with the analysis of what people mean by their utterances than what the words or phrases in those utterances might mean by themselves.
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土力学及地基基础模拟考试试题1及答案 一、填空题(10分) 1、土(区别于其它工程材料)主要工程特性是__________、__________和渗透性大。 2、直接剪切试验按排水条件不同,划分为__________、固结不排水剪(固结快剪)、__________。 3、由土的自重在地基内所产生的应力称为__________;由建筑物的荷载或其他外载在地基内所产生的应力称为__________。 4、建筑物地基变形的特征有沉降量、__________、__________和局部倾斜四种类型。 5、浅基础主要的类型有__________、__________、十字交叉基础、筏板基础、壳体基础和箱形基础。 二、选择题(20分) 1、土的三相比例指标包括:土粒比重、含水率、重度、孔隙比、孔隙率和饱和度等,其中哪些为直接试验指标?( ) (A )、含水率、孔隙比、饱和度(B )、重度、含水率、孔隙比 (C )、土粒比重、含水率、重度 2、土的变形主要是由于土中哪一部份应力引起的?( ) (A )、总应力(B )、有效应力(C )、孔隙应力 3、荷载试验的中心曲线形态上,从线性开始变成非线性关系的界限荷载称为( )。 (A )、允许荷载(B )、临界荷载(C )、临塑荷载 4、已知土层的饱和重度 sat γ,干重度为d γ,水的重度为w γ,在计算地基沉降时,采用以下 哪一项计算地下水位以下的自重应力?( ) (A )、 sat γ(B )、d γ(C )、(sat γ-w γ) 5、土的体积压缩是由下述变形造成的( )。 (A )、土孔隙的体积压缩变形(B )、土颗粒的体积压缩变形 (C )、土孔隙和土颗粒的体积压缩变形之和 6、如果墙推土而使挡土墙发生一定的位移,使土体达到极限平衡状态,这时作用在墙背上的土压力是何种土压力?( ) (A )、静止土压力(B )、主动土压力(C )、被动土压力 7、已知柱下扩展基础,基础长度l =3.0m ,宽度b =2.0m ,沿长边方向荷载偏心作用,基础底面压力最小值Pmin =30kPa ,最大值Pmax =160kPa ,指出作用于基础底面上的竖向力和力矩最接近以下哪一种组合。( ) (A )、竖向力370kN ,力矩159kN ·m (B )、竖向力540kN ,力矩150kN ·m (C )、竖向力490kN ,力矩175kN ·m (D )、竖向力570kN ,力矩195kN ·m 8、对于框架结构,地基变形一般由什么控制?( ) (A )、沉降量(B )、沉降差(C )、局部倾斜 9、属于非挤土桩的是( )。 (A )、实心的混凝土预制桩(B )、钻孔桩(C )、沉管灌注桩 10、一般端承桩基础的总竖向承载力与各单桩的竖向承载力之和的比值为( )。 (A )、>1(B )、=1(C )、<1 三、判断题(10分) 1、根据有效应力原理,总应力必然引起土体变形。( )
张汉熙高级英语试题及答案 第二册模拟试题1
《高级英语》 第二册模拟试题 (一) I. Determine whether the following statements are True or False. Mark them with T or F to indicate your answer. (10×1) 1. Although written in an objective tone, in Marrakech, Orwell shows he is outraged by the misery of the poor. 2. The title of the text, Pub Talk and the King’s English, is well chosen because it captures the readers’ attention and accurately describes the subject of the text. 3.Pub Talk and the King’s English and The Future of the English are both clear and well organized texts with a logical structure. 4. In The Libido for the Ugly, Mencken objectively and realistically describes the architecture in Westmoreland. 5. Argumentative essays always include some explanation. 6. The Worker as Creator or Machine is a piece of exposition that explains how the capitalist system has caused the worker to become alienated from their product and thus their own work. 7. The Sad Young Men is a clearly structured essay that includes many Americanisms to better explain the experience of Lost Generation. 8. The Future of the English is a misleading title because the text does not explain what the future of English people is going be like. 9.Baldwin writes with a critical and harsh tone as he describes the life of an American in Europe in The Discovery of What it Means to be an American. 10. Although Loving and Hating New York is a piece of exposition where Griffith states that he both loves and hates New York city, the author does not fully develop why he hates the city. II. Choose one out of the 10 rhetorical or figurative devices listed below that best describes the underlined words for
C试题及答案一
C + + 程序设计模拟试卷(一) 一、单项选择题(本大题共20小题,每小题1分,共20分)在每小题列出的四个备选项中只有一个是符合题目要求的,请将其代码填写在题后的括号内。错选、多选或未选均无分。 1. 编写C++程序一般需经过的几个步骤依次是() A. 编辑、调试、编译、连接 B. 编辑、编译、连接、运行 C. 编译、调试、编辑、连接 D. 编译、编辑、连接、运行答案:B 解析:经过编辑、编译、连接和运行四个步骤。编辑是将C++源程序输入计算机的过程,保 存文件名为cpp。编译是使用系统提供的编译器将源程序cpp生成机器语言的过程,目标文件为obj,由于没有得到系统分配的绝对地址,还不能直接运行。连接是将目标文件obj转换为可执行程序的过程,结果为exe。运行是执行exe,在屏幕上显示结果的过程。 2. 决定C++语言中函数的返回值类型的是() A. return 语句中的表达式类型 B. 调用该函数时系统随机产生的类型 C. 调用该函数时的主调用函数类型 D. 在定义该函数时所指定的数据类型 答案:D 解析:函数的返回值类型由定义函数时的指定的数据类型决定的。A项的表达式的值要转换 成函数的定义时的返回类型。 3. 下面叙述不正确的是() A. 派生类一般都用公有派生 B. 对基类成员的访问必须是无二义性的 C. 赋值兼容规则也适用于多重继承的组合 D. 基类的公有成员在派生类中仍然是公有的 答案: D 解析:继承方式有三种:公有、私有和保护。多继承中,多个基类具有同名成员,在它们的子类中访问这些成员,就产生了二义性,但进行访问时,不能存在二义性。赋值兼容规则是指派生类对象可以当作基类对象使用,只要存在继承关系,所以单继承或多继承都适用。基类中的公有成员采用私有继承时,在派生类中变成了私有成员,所以D项错误。 4. 所谓数据封装就是将一组数据和与这组数据有关操作组装在一起,形成一个实体,这实体也就是() A. 类 B. 对象 C. 函数体 D. 数据块 答案:A 解析:类即数据和操作的组合体,数据是类的静态特征,操作是类具有的动作。 5. 在公有派生类的成员函数不能直接访问基类中继承来的某个成员,则该成员一定是基类中的() A. 私有成员 B. 公有成员 C. 保护成员 D. 保护成员或私有成员 答案:A 解析:在派生类中基类的保护或者基类公有都可以直接访问,基类的私有成员只能是基类的成员函数来访问。所以选择A项。 6. 对基类和派生类的关系描述中,错误的是() A. 派生类是基类的具体化 B. 基类继承了派生类的属性 C. 派生类是基类定义的延续 D. 派生类是基类的特殊化 答案:B 解析:派生类的成员一个是来自基类,一个来自本身,所以派生类是基类的扩展,也是基类的具体化和特殊化,派生类是对基类扩展。B项基类不能继承派生类成员,所以错误。 7. 关于this 指针使用说法正确的是() A. 保证每个对象拥有自己的数据成员,但共享处理这些数据的代码 B. 保证基类私有成员在子类中可以被访问。 C. 保证基类保护成员在子类中可以被访问。
专业英语考试试题与答案
1.Why are cast metal sheet ingots hot-rolled first instead of being cold-rolled? Because of cold rolling is to use hot rolled steel coils as the raw material, after acid pickling to remove oxide skin for cold rolling, the finished product is hard roll, because of cold work hardening caused by deformation of continuous cold rolling hard roll strength, increase hardness, toughness and plastic index decreased, so the stamping performance will deteriorate, can only be used for simple deformation of the parts 2.What type of heat treatment is given to the rolled metal sheet after hot and “warm” rolling? What is its purpose? 轧钢的热处理的类型?轧钢热处理的目的? Heat treatment of the main types are annealing, normalizing, quenching and tempering, solution treatment and aging treatment, cold treatment, chemical treatment, etc. Annealing: The steel is heated to a certain temperature and heat preservation for a period of time, and then make it slowly cooling, called annealing. Steel annealing is a heat the steel to the phase change or part of the phase change temperature, slow cooling after heat preservation heat treatment method. The purpose of annealing is to eliminate tissue defects, improve the organization make composition uniformity and fine grains, increase mechanical properties of the steel, reduce residual stress; Can decrease the hardness at the same time, improve the plasticity and toughness, improve machinability. So before annealing in order to eliminate and improve both the legacy of tissue defects and internal stress, and to prepare for the follow-up process, so the annealing is belong to the intermediate heat treatment, also called heat treatment in advance Normalizing: Normalizing is heated to above the critical temperature of steel, to all into homogeneous austenitic steel, heat treatment and natural cooling in air. It can eliminate hypereutectoid steel mesh cementite, for hyposteel normalizing can refine crystal lattice, improve comprehensive mechanical properties, low requirements for the parts use the normalized instead of the annealing process is more economic. Quenching: Quenching is the steel is heated to above the critical temperature, heat preservation for a period of time, then quickly into the quenching medium, the temperature plummeted, rapid cooling at greater than the critical cooling rate of speed, which is mainly composed of martensite and unbalanced heat treatment method of the organization. Can increase strength and hardness of the steel quenching, but to reduce its plasticity. That is commonly used in quenching hardening agent are: water, oil, caustic soda, and salt solution, etc
(完整版)实变函数试题库1及参考答案
实变函数试题库及参考答案(1) 本科 一、填空题 1.设,A B 为集合,则()\A B B U A B U (用描述集合间关系的符号填写) 2.设A 是B 的子集,则A B (用描述集合间关系的符号填写) 3.如果E 中聚点都属于E ,则称E 是 4.有限个开集的交是 5.设1E 、2E 是可测集,则()12m E E U 12mE mE +(用描述集合间关系的符号填写) 6.设n E ?? 是可数集,则* m E 0 7.设()f x 是定义在可测集E 上的实函数,如果1 a ?∈?,()E x f x a ??≥??是 ,则称()f x 在E 上可测 8.可测函数列的上极限也是 函数 9.设()()n f x f x ?,()()n g x g x ?,则()()n n f x g x +? 10.设()f x 在E 上L 可积,则()f x 在E 上 二、选择题 1.下列集合关系成立的是( ) A ()\ B A A =?I B ()\A B A =?I C ()\A B B A =U D ()\B A A B =U 2.若n R E ?是开集,则( ) A E E '? B 0E E = C E E = D E E '= 3.设(){} n f x 是E 上一列非负可测函数,则( ) A ()()lim lim n n E E n n f x dx f x dx →∞ →∞≤?? B ()()lim lim n n E E n n f x dx f x dx →∞ →∞ ≤?? C ()()lim lim n n E E n n f x dx f x dx →∞ →∞≤?? D ()()lim lim n n E E n n f x dx f x →∞→∞ ≤?? 三、多项选择题(每题至少有两个以上的正确答案) 1.设[]{}0,1E = 中无理数,则( ) A E 是不可数集 B E 是闭集 C E 中没有内点 D 1m E = 2.设n E ?? 是无限集,则( )
1试题及(答案)
1试题及(答案)
三个办法一个指引知识考试测试题(一) 一、单项选择题:(25分,每题0.5) 1、固定资产贷款单笔金额超过超过项目总投资___超过___万元人 民币的贷款资金支付,应采用贷款人受托支付方式。 ( C ) 。 A、5%,300 B、10%,300 C、5%,500 D、10%,500 2、《流动资金贷款管理暂行办法》的核心指导思想是( B )。 A、授信条件 B、需求测算 C、支付方式 3、( B )是指对现有企、事业单位原有设施进行技术改造(包括固 定资产更新)以及相应配套的辅助性生产、生产福利设施等工程和 有关工作。 A、基本建设贷款 B、技术改造贷款 C、项目融资 D、流动资金贷款 4、商业银行的贷款余额与存款余额的比例应符合下列哪项条件? A、不得低于25% B、不得低于10% C、不得超过50% D、不得超过75% 答案:D 5、任何单位和个人购买商业银行股份总额多大比率以上的,应事 先经中国人民银行批准? A、5% B、8% C、10% D、15% 答案:C 6、在下列哪种情况下,中国人民银行可以对商业银行实施接管? A、严重违法经营 B、重大违约行为
C、可能发生信用危机 D、擅自开办新业务答案:C 7、李先生在2007年2月1日存入一笔1 000元的活期存款,3月1日取出全部本金,如果按照积数计息法计算,假设年利率为 0.72%,扣除20%利息税后,他能取回的全部金额是( )。 A、1000.60元 B、1000.56元 C、1000.48元 D、1000.45元答案:D 8、( )又叫做辛迪加贷款。 A、流动资金循环贷款 B、银团贷款 C、贸易融资贷款 D、项目贷款答案:B 9、制定营销策略是银行( )的职责。 A、总行 B、分行 C、支行 D、以上都行答案:A 10、国家助学贷款的贷款对象不包括( )。答案:B A、北京市普通高等学校中经济确实困难的全日制本科生 B、天津市普通高等学校中经济确实困难的在职研究生 C、上海市普通高等学校中经济确实困难的全日制高职生 D、广东省普通高等学校中经济确实困难的全日制研究生 11、( )是基于银行同客户的现有关系,向客户推荐银行的其他产品。答案:C A、情感营销 B、分层营销 C、交叉营销 D、单一营销 12、个人教育贷款在贷款审查和审批环节中的风险点不包括( )。 A.业务不合规,业务风险与效益不匹配