The manager is always in a bad () on Mondays which signal the beginning of another exhausting week.A.moodB.humorC.modeD.voice

题目
The manager is always in a bad () on Mondays which signal the beginning of another exhausting week.

A.mood

B.humor

C.mode

D.voice

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更多“The manager is always in a bad () on Mondays which signal the beginning of another exhausting week. ”相关问题

  • 第1题:

    在生产者/消费者问题中,用s表示实施互斥的信号量,e表示与缓冲区空闲空间数量相关的信号量,n表示与缓冲区中数据项个数相关的信号量,下列生产者和消费者的操作(生产者和消费者可并发执行),可能产生死锁的是()。

    A.生产者:wait(s); wait(e); append(); signal(n); signal(s);消费者: wait(s); wait(n); take(); signal(e); signal(s);

    B.生产者:wait(s); wait(e); append(); signal(n); signal(s);消费者: wait(n); wait(s); take(); signal(s); signal(e);

    C.生产者:wait(e); wait(s); append(); signal(s); signal(n);消费者: wait(s); wait(n); take(); signal(e); signal(s);

    D.生产者:wait(e); wait(s); append(); signal(s); signal(n);消费者: wait(n); wait(s); take(); signal(s); signa


    D

  • 第2题:

    在生产者/消费者问题中,用s表示互斥信号量,e表示空缓冲区资源信号量,n表示满缓冲区资源信号量,下列生产者和消费者的操作(生产者和消费者可并发执行),可能产生死锁的是()。

    A.生产者:wait(s); wait(e); append(); signal(n); signal(s);消费者: wait(s); wait(n); take(); signal(e); signal(s);

    B.生产者:wait(s); wait(e); append(); signal(n); signal(s);消费者: wait(n); wait(s); take(); signal(s); signal(e);

    C.生产者:wait(e); wait(s); append(); signal(s); signal(n);消费者: wait(s); wait(n); take(); signal(e); signal(s);

    D.生产者:wait(e); wait(s); append(); signal(s); signal(n);消费者: wait(n); wait(s); take(); signal(s); signa


  • 第3题:

    11、在生产者/消费者问题中,用s表示实施互斥的信号量,e表示与缓冲区空闲空间数量相关的信号量,n表示与缓冲区中数据项个数相关的信号量,下列生产者和消费者的操作(生产者和消费者可并发执行),可能产生死等的是()。

    A.消费者: wait(s); wait(n); take(); signal(e); signal(s); 生产者: wait(s); wait(e); append(); signal(n); signal(s);

    B.消费者: wait(n); wait(s); take(); signal(s); signal(e); 生产者: wait(s); wait(e); append(); signal(n); signal(s);

    C.消费者: wait(s); wait(n); take(); signal(e); signal(s); 生产者: wait(e); wait(s); append(); signal(s); signal(n);

    D.消费者: wait(n); wait(s); take(); signal(s); signal(e); 生产者: wait(e); wait(s); append(); signal(s


    生产者: wait(s); wait(n); take(); signal (e); signal (s); 消费者: wait(s); wait(e); append(); signal (n); signal (s);;生产者: wait(s); wait(e); append(); signal (n); signal (s); 消费者: wait(n); wait(s); take(); signal (s); signal (e);;生产者: wait(e); wait(s); append(); signal (s); signal (n); 消费者: wait(s); wait(n); take(); signal (e); signal (s);

  • 第4题:

    已知基类Employee只有一个构造函数,其定义如下: Employee::Employee(int n):id(n){ } Manager是Employee的派生类,则下列对Manager的构造函数的定义中,正确的是?

    A.Manager::Manager(int n):id(n){}

    B.Manager::Manager(int n){id=n;}

    C.Manager::Manager(int n):Employee(n){}

    D.Manager::Manager(int n){Employee(n);}


    Manger::manger(int n):Employee(n){}

  • 第5题:

    3、下列哪一个表述是正确:

    A.always@(posedge CLK or RST)

    B.always@(posedge CLK or negedge RST or A)

    C.always@(posedge CLK or D or Q)

    D.always@(posedge CLK or negedge RST)


    deductive,guided discovery

  • 第6题:

    【单选题】另外850亿元用于新建或升级城市垃圾处理和污水处理设施。Which of the following translation is correct?

    A.Another 85 billion yuan will be used to build or upgrade the facilities to dispose of urban garbage and sewage.

    B.Another 8500 million yuan will be used to build or upgrade urban garbage and sewage facilities.

    C.Another 85 billion yuan will be used to build or upgrade the facilities to urban garbage and sewage dispose of.

    D.Another 85000 million yuan will be used to build or upgrade dispose of urban garbage and sewage fa


    错误

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