[问答题]什么是动态信道分配,有何优点
[问答题]先秦说理散文中最有文学价值的是哪一部
[问答题](d) Sirus raised a loan with a bank of $2 million on 1 May 2007. The market interest rate of 8% per annum is tobe paid annually in arrears and the principal is to be repaid in 10 years time. The terms of the loan allow Sirusto redeem the loan after seven years by paying the full amount of the interest to be charged over the ten yearperiod, plus a penalty of $200,000 and the principal of $2 million. The effective interest rate of the repaymentoption is 9·1%. The directors of Sirus are currently restructuring the funding of the company and are in initialdiscussions with the bank about the possibility of repaying the loan within the next financial year. Sirus isuncertain about the accounting treatment for the current loan agreement and whether the loan can be shown asa current liability because of the discussions with the bank. (6 marks)Appropriateness of the format and presentation of the report and quality of discussion (2 marks)Required:Draft a report to the directors of Sirus which discusses the principles and nature of the accounting treatment ofthe above elements under International Financial Reporting Standards in the financial statements for the yearended 30 April 2008.
[问答题]民族吹管乐器乐器有哪些
[问答题]毕业前夕,初三(2)班计划开展一次活动,活动前,班委会提出以下要求:(1)请你根据下面这段话提炼一个活动主题.只有起程,才能达到理想的目的地;只有拼搏,才能获得辉煌的成功;只有播种,才能收获甜美的果实;只有奋斗,才能品味幸福的人生.
[问答题]阅读以下函数说明和C代码,回答问题[说明]任何一种程序都是为了解决问题而撰写的,解决问题时需要实现一些特定的运算法则.在策略(Strategy)模式下,可以更换实现算法的部分而不留痕迹,切换整个算法,简化改为采用其他方法来解决同样问题.以下是一个“剪刀石头布”游戏.猜拳时的“策略”有2种方法:第一种是“猜赢后继续出同样的招式”(WinningStrategy),第二种是“从上一次出的招式种,以概率分配方式求出下一个招式的几率”(ProbStrategy).程序中定义了Hand类表示猜拳时的“手势”,类内部以0(石头)、1(剪刀)、2(布)来表示.Hand类的实例只会产生3个.以下是C语言实现,省略了不相关属性及方法,方法实现体亦有所省略,能够正确编译通过.[C代码]typedef (1) (*funl)( );enum HandValue{HANDVALUE_GUU=0, HANDVALUE_CHO=1, HANDVALUE_PAA=2};//手势可取值,依次为“石头”、“剪刀”、“布”//其大小顺序是循环相克的,即:石头赢剪刀,剪刀赢布,布赢石头bool won;struct Hand *WSprevHand;struct Hand{//手势enum HandValue handvalue;}hand[3]={HANDVALUE_GUU, HANDVALUE_CHO, HANDVALUE_PAA};int fight(struct Hand *h1, struct Hand *h2)//比较h1和h2.h1代表的手势较大时返回1,h1较小时返回-1,相等时返回0//{if(h1->handvalue == h2->handvalue){return 0;}else if((h1->handvalue+1)% (2) == h2>handvalue){return 1;}else{return -1;}}struct Hand* getHand(int handvalue){//依据手势代表的值取得手势,若handvalue不合法,返回NULLswitch(handvalue){case 0:return &hand[0];break;case 1:return &hand[1];bteak;case 2;return &hand[2];break;}return (3) ;}struct Strategy{//策略funl nextHand;//下一个手势};struct Hand* WSnextHand( ){if(!won){PSprevHand = getHand(rand( )%3);}return PSprevHand;}struct Player{char name[20];(4) strategy;//策略int wincount;int losecount;int gamecount;};void main( ){Strategy WS;WS.nextHand = WSnextHand;WSpreVHand = NULL;struct Player WSplayer;(5)(WSplayer.name,ww);WSplayer.wincount = 0;WSplayer.losecount = 0;WSplayer.gamecount = 0;WSplayer.strategy = &WS;}
[问答题]本题的功能是监听键盘键的敲击,并显示在窗口中. import javax,.swing.*; importjava.awt.*; , import java.awt.event.*; public class java3 extends JFrame. extends KeyListener { private String linel=line2= private String line3= private JTextArea textArea; public java3 { super(java3); textArea=new JTextArea(10,15); textArea.setText(Press any key on the key- board…); textArea.setEnabled(false); addKeyListener(this); getContentPane.add(textArea); setSize(350,100); show; } public void keyPressed(KeyEvent e) { linel=Key pressed:+e.getKeyText(e. getKeyCode); setLines2and3(e); } public void keyReleased(KeyEvent e) { linel=Key released:+e.getKeyText(e. getKeyCode); setLines2and3(e): } public void keyTyped(KeyEvent e) { Linel=Key typed:+e.getKeychar; setLines2and3(e); } private void setLines2and3(KeyEvent e) { line2=This key is+(e.isActionKey? :not)+an action key; String temp=e.getKeyModifiersText(e.get- Modifiers); hne3=Modifier keys pressed:+(temp.e- quals()?none:temp); textArea.setText(linel+\n+line2+\n +line3+\n); } public static void main(String args[]) { java3 app=new java3; addWindowListener(new Windowadapted { public void windowClosing(WindowEvent e) { System.exit(0); } }); } }
[问答题]如何理解“管理者不要去做别人能做的事,而只做那些必须由自己来做的事”
[问答题]脑血栓形成的鉴别诊断
[问答题]《标准》规定的检验项目的现场质量检验应如何向监理工程师报告
[问答题]发现事变隐患应该怎样办
[问答题]试说明利益相关者如何影响企业战略的制订
[问答题](b) Assuming that the income from the sale of the books is not treated as trading income, calculate Bob’s taxableincome and gains for all relevant tax years, using any loss reliefs in the most tax-efficient manner. Youranswer should include an explanation of the loss reliefs available and your reasons for using (or not using)them. (12 marks)Assume that the rates and allowances for 2004/05 apply throughout this part of the question.
[问答题]甲股份有限公司经批准于1999年1月1日发行5年期10000000元可转换公司债券,债券票面利率为6%,按面值发行(不考虑发行费用),并由A企业全部购买.债券发行一年后可转换为股份,每100元转普通股4股,股票面值1元.假如转换日为2000年4月1日,可转换债券的账面价值10600000元(面值10000000元,应计利息600000元),2000年1月1日至3月31日尚未计提利息.假如A企业全部将债券转换为股份,转换后对甲公司财务和经营决策无重大影响,长期股权投资采用成本法核算.完成A企业有关账务处理.
[问答题]播音主持讨论和话题讨论有什么区别
[问答题]为什么计算机的内存越大,其速度越高
[问答题]在“db4.mdb”数据库中有“库存数据”和“销售数据”两张表.(1)将“库存数据”表货名列冻结,按“进货价格”升序排列,将“规格”列移至“进货价格”和“数量”列之间.(2)设置库存数据表和“销售数据”表的关系为一对多,实施参照完整性.(3)将库存数据表的“规格”字段长度改为2,默认值为“件”.库存数据表如图所示.库存数新:表x货名圆以纯运动短裤件¥19.007以纯运动。件¥20.006依恋休闲外套件¥45红色挡风帽¥50.004泡泡纱裙Y156.00碎花裙顶件件¥210.00橘红毛衣¥220.00〔目减B/和中丽人大衣件¥900.00¥000记录:M4t共有记录数8
[问答题](问题7)按系统默认的方式配置了KZ和QQQ两个网站(如图3-5所示),此时两个网站均处于停止状态,若要使这两个网站能同时工作,请给出三种可行的解决办法.方法一: (10) ;方法二: (11) ;方法三: (12).INternet信息服务aIs)管理器文件)操作)查看0窗囗( )帮助0回x中→回田国岛度回恩|■主机头值T地到D体地计算机默认网站(停止全部未分配全部未分配程序池qQQ停止)544已N止A54468.1.2停止)T666冒eb服务扩展由念默认SMP虚拟服务图3-5
[问答题]请教一道教师资格考试的论述题的最佳答案有人说学生在学校进一步,回到家里退一步,走入社会退两步,请运用德育原则分析这种现象
[问答题]列表比较咯血与呕血的鉴别.
[问答题]通过配置VLAN划分各个部门,并配置ACL以实现每个部门经理之间能够通讯,普通员工之间不能相互通讯.SwSwitch>enSwitchConf tEnter configuration commands, one per line. End with CNTL/Z.Switch(config)int f0/1Switch(config-if)switchport mode trunk (11)%LINEPROTO-5-UPDOWN:Line protocol on Interface FastEthernet0/1,changed state to down%LINEPROTO-5-UPDOWN:Line protocol on Interface FastEthernet0/1,changed state to upSwitch(config-if)exitSwitch(config)vlan 2创建VLAN 2Switch(config-vlan) (12) //VLAN2命名为工程部Switch(config-vlan)exitSwitch(config)vlan 3创建VLAN 3Switch(config-vlan) (13) //VLAN2命名为财务部Switch(config-Vlan)exitSwitch(config-vlan)vlan 4创建VLAN 4Switch(config-vlan) (14) //VLAN2命名为?术部Switch(config-vlan)exitSwitch(config)int f0/2Switch(config-if)switchport access vlan 2 (15)Switch(config-if)exitSwitch(config)int f0/3Switch(config-if)switchport access vlan 2Switch(config-if)exitSwitch(config)int f0/4Switch(config-if)switchport access vlan 3Switch(config-if)exitSwitch(config)int f0/5Switch(config-if)switchport access vlan 3Switch(config-if)exitSwitch(config)int f0/6Switch(config-if)switchport access vlan 4Switch(config-if)exitSwitch(config)int f0/7Switch(config-if)switchport access vlan 4Switch(config-if)exit然后定义访问控制列表. (在此题中,允许一台特定主机而拒绝一个网段,所以要把拒绝主机放在上面.)注意:要想一个访问列表能够得到应用,必须在接口绑定.R1r1 (config)access-list 10 permit 192.168.2.2 0.0.0.0r1(config)access-list 10 deny 192.168.2.0 0.0.0.255_r1(config)access-list i0 permit 192.168.3.2 0.0.0.0_r1(config)access-list 10 deny 192.168.3.0 0.0.0.255_r1(config)access-list 10 permit any_r1(config)int f0/0.1r1(config-subif)ip access-group 10 outr1(config-subif)exitr1(config)access-list 11 permit 192.168.1.2 0.0.0.0r1(config)access-list 11 deny 192.168.1.0 0.0.0.255r1(config)access-list 11 permit 192.168.3.2 0.0.0.0r1(config)access-list 11 deny 192.168.3.0 0.0.0.255r1(config)access-list 11 permit anyr1(config)int f0/0.2r1(config-subif)ip access-group 11 outr1(config-subif)exitr1(config)access-list 12 permit 192.168.1.2 0.0.0.0r1(config)access-list 12 deny 192.168.1.0 0.0.0.255r1(config)access-list 12 permit 192.168.2.2 0.0.0.0r1(config)access-list 12 deny 192.168.2.0 0.0.0.255r1(config)access-list 12 permit anyr1(config)int f0/0.3r1(config-subif)ip access-group 12 outr1(config-subif)exit现通过配置后所有的员工都能与互联网通讯. (由于主机较多就不一一列述)