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10、给定下面两个方法的定义: ①public static double method(double x,double y) ②public static double method(int x,double y) 对于下面的给出的语句,(在横线上填写序号) (1)double z = method(4,5)调用上述方法中的 ; (2)double z = method(4,5.5)调用上述方法中的 ; (3)double z = method(4.5,5.5)调用上述方法中的 ;
参考答案和解析
ACD解析:public static void main(string[] args),这是java程序的入口方法。这个方法被被java虚拟机调用。args,是java虚拟机传递给java程序的参数数组。args可以重命名为其他名称。Java中,String[] args与String args[]有什么区别?1、没什么区别,在java中一般都是前面的 这样定义更能体现是字符类型的数组 后边是名称2、String args[] 只是java早期为了吸引c程序员的幌子,java官方是不建议使用。3、为了项目规范,代码整洁,更是不允许使用,一律String[]args.A.public static void main(String args[]){}定义正确 。B.public static void main(String[]){} 定义错误,无数组名称。C.public static void main(String[]args){} 定义正确。D.public static void main(String[]x){}定义正确,数组名可以为其他名称。
更多 “10、给定下面两个方法的定义: ①public static double method(double x,double y) ②public static double method(int x,double y) 对于下面的给出的语句,(在横线上填写序号) (1)double z = method(4,5)调用上述方法中的 ; (2)double z = method(4,5.5)调用上述方法中的 ; (3)double z = method(4.5,5.5)调用上述方法中的 ;” 相关考题
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若程序中定义了以下函数:double myadd(double a,double b){ return(a+b);}并将其放在调用语句之后,则在调用之前应该对该函数进行说明,以下选项中错误的说明是( )。A.double myadd(double a, b)B.double myadd(double ,double )C.double myadd(double b,double a)D.double myadd(double x,double y)
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阅读下列Java程序和程序说明,将应填入(n)处的字句写在对应栏内。【说明】下面的程序先构造Point类,再顺序构造Ball类。由于在类Ball中不能直接存取类Point中的xCoordinate及yCoordinate属性值,Ball中的toString方法调用Point类中的toString方法输出中心点的值。在MovingBall类的toString方法中,super.toString调用父类Ball的toString方法输出类Ball中声明的属性值。public class Point{private double xCoordinate;private double yCoordinate;public Point 0 }public Point(ouble x, double y){xCoordinate = x;yCoordinate = y;}public String toString(){return "( + Double.toString(Coordinate)+ ","+ Double.toString(Coordinate) + ");}//other methods}public class Ball{(1); //中心点private double radius; //半径private String colour; ///颜色public Ball() { }public Ball(double xValue, double yValue, double r)// 具有中心点及半径的构造方法{center=(2);//调用类Point 中的构造方法radius = r;}public Ball(double xValue, double yValue, double r, String c)// 具有中心点、半径及颜色的构造方法{(3);//调用3个参数的构造方法colour = c;}public String toString(){return "A ball with center" + center, toString() + ", radius"+ Double.toString(radius) + ", colour" + colour;}//other methods}public class MovingBall. (4){private double speed;public MovingBall() { }public MovingBall(double xValue, double yValue, double r, String e, double s){(5);// 调用父类Ball中具有4个参数的构造方法speed = s;}public String toString( ){ return super, toString( ) + ", speed "+ Double.toString(speed); }//other methods}public class Tester{public static void main(String args[]){MovingBall mb = new MovingBall(10,20,40,"green",25);System.out.println(mb);}}
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( 23 )有如下两个类定义class XX{private:double x1;protected:double x2;public:double x3;};class YY:protected XX{private:double y1;protected:double y2;public:double y3;};在类 YY 中保护成员变量的个数是A ) 1B ) 2C ) 3D ) 4
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有下列函数定义: int fun(double a,double b) {return a*b;} 若下列选项中所用变量都已经正确定义并赋值,错误的函数调用是( )。A.if(fun(x,y)){……}B.z=fun(fun(x,y),fun(x,y));C.z=fun(fun(X,y)x,y);D.fun(x,y);
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阅读下列C++程序和程序说明,将应填入(n)处的字句写在对应栏内。【说明】Point是平面坐标系上的点类,Line是从Point派生出来的直线类。include <iostream.h>class Point{public:Point (int x, int y) ;Point (Point p) ;~Point();void set (double x, double y) ;void print();private:double X,Y;};Point::Point (int x, int y) //Point 构造函数{X=x; Y=y; }Point::Point ( (1) ) //Point 拷贝构造函数{X=p.X; Y=p.Y;}void Point::set (double x, double y){X=x; Y=y; }void Point::print(){cout<<' ('<<X<<","<<Y<<") "<<endl; }Point::~Point(){cout<<"Point 的析构函数被调用! "<<endl;class Line: public Point{public:Line (int x, int y, int k) ;Line (Line s) ;~Line();void set (double x, double y, double k)void print();private:double K;};(2)//Line 构造函数实现{ K=k;}(3)//Line 拷贝构造函数实现{K=s.K;}void Line::set (double x, double y, double k){ (4);K=k;}void Line::print(){cout<<" 直线经过点";(5);cout<<"斜率为: k="<<K<<endl;}Line: :~Line(){cout<<"Line 析构函数被调用! "<<endl;}void main(){Line 11 (1,1,2) ;11 .print();Linel2 (11) ;12.set (3,2,1) ;12.print();}
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阅读以下函数说明和Java代码,将应填入(n)处的字句写在对应栏内。【说明】下面的程序先构造Point类,再顺序构造Ball类。由于在类Ball中不能直接存取类Point中的xCoordinate及yCoordinate属性值,Ball中的toString方法调用Point类中的toStrinS方法输出中心点的值。在MovingBsll类的toString方法中,super.toString调用父类Ball的toString方法输出类Ball中声明的属性值。【Java代码】//Point.java文件public class Point{private double xCoordinate;private double yCoordinate;public Point(){}public Point(double x,double y){xCoordinate=x;yCoordinate=y;}public String toStrthg(){return"("+Double.toString(xCoordinate)+","+Double.toString(yCoordinate)+")";}//other methods}//Ball.java文件public class Ball{private (1);//中心点private double radius;//半径private String color;//颜色public Ball(){}public Ball(double xValue, double yValue, double r){//具有中心点及其半径的构造方法center=(2);//调用类Point中的构造方法radius=r;}public Ball(double xValue, double yValue, double r, String c){//具有中心点、半径和颜色的构造方法(3);//调用3个参数的构造方法color=c;}public String toString(){return "A ball with center"+center.toString()+",radius "+Double.toString(radius)+",color"+color;}//other methods}class MovingBall (4) {private double speed;public MovingBall(){}public MoyingBall(double xValue, double yValue, double r, String c, double s){(5);//调用父类Ball中具有4个参数的构造方法speed=s;}public String toString(){return super.toString()+",speed"+Double.toString(speed);}//other methods}public class test{public static void main(String args[]){MovingBall mb=new MovingBall(10,20,40,"green",25);System.out.println(mb);}}
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阅读以下说明和C++代码,[说明]现要编写一个画矩形的程序,目前有两个画图程序:DP1和DP2,DP1用函数draw_a_line(x1,y1,x2,y2)画一条直线,DP2则用drawline(x1,x2,y1,y2)画一条直线。当实例化矩形时,确定使用DP1还是DP2。为了适应变化,包括“不同类型的形状”和“不同类型的画图程序”,将抽象部分与实现部分分离,使它们可以独立地变化。这里,“抽象部分”对应“形状”,“实现部分”对应“画图”,与一般的接口(抽象方法)与具体实现不同。这种应用称为Bridge(桥接)模式。图6-1显示了各个类间的关系。[图6-1]这样,系统始终只处理3个对象:Shape对象、Drawingg对象、DP1或DP2对象。以下是C++语言实现,能够正确编译通过。[C++代码]class DP1{public:static void draw_a_line(double x1,double y1,double x2,double y2){//省略具体实现}};class DP2{public:static void drawline(double x1,double x2,double y1,double y2){//省略具体实现}};class Drawing{public:(1) void drawLine(double x1,double y1,double x2,double y2)=0;};class V1Drawing:public Drawing{public:void drawLine(double x1,double y1,double x2,double y2){DP1::draw_a_line(x1,y1,x2,y2);}};class V2Drawing:public Drawing{public:void drawLine(double x1,double y1,double x2,double y2){(2)}};class Shape{privatc:(3) dp;public:Shape(Drawing*dp);virtual void draw()=0;void drawLine(double x1,double y1,double x2,double y2);};Shape::Shape(Drawing*dp){_dp=dp;}void Shape::drawLine(double x1,double y1,double x2,double y2){ //画一条直线(4);}class Rectangle:public Shape{privatc:double_x1,_y1,_x2,_y2;public:Rectangle(Drawing *dp,double x1,double y1,double x2,double y2);void draw();};Rectangle::Rectangle(Drawing*dp,double x1,double y1,double x2,double y2): (5){_x1=x1;_y1=yl;_x2=x2;_y2=y2;}void Rectangle::draw(){//省略具体实现}(1)
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在下列方法的定义中,正确的是 ( )A.public double x(){..;return false;}B.public static int x(double y){...}C.void x(doubled){...;return d}D.public static x(double a){..}
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阅读以下说明和c++代码,将应填入(n)处的字句写在对应栏内。【说明】现要编写一个画矩形的程序,目前有两个画图程序:DP1和DP2,DP1用函数draw_a_line(x1, y1,x2,y2)画一条直线,DF2则用drawline(x1,x2,y1,y2)画一条直线。当实例画矩形时,确定使用DP1还是DP2。为了适应变化,包括“不同类型的形状”和“不同类型的画图程序”,将抽象部分与实现部分分离,使它们可以独立地变化。这里,“抽象部分”对应“形状”,“实现 部分”对应“画图”,与一般的接口(抽象方法)与具体实现不同。这种应用称为Bridge(桥接)模式。图9-7显示了各个类间的关系。这样,系统始终只处理3个对象:Shape对象、Drawing对象、DP1或DP2对象。以下是 C++语言实现,能够正确编译通过。【C++代码】class DP1{public:static void draw_a_line(double x1, double y1,double x2, double y2){//省略具体实现});class DP2{public:static void drawline(double x1, double x2,double y1, double y2){//省略具体实现}};class Drawing{public:(1) void drawLine(double x1,double y1,double x2,double y2)=0;};class V1Drawing:public Drawing{public:void drawLine(double x1, double y1,double x2, double y2){DP1::draw_a_line(x1,y1,x2,y2);}};class V2Drawing:public Drawing{public:void drawLine(double x1, double y1, double x2, double y2){(2);}};class Shape{private:(3) _dp;public:Shape(Drawing *dp);virtual void draw()=0;void drawLine(double x1, double y1, double x2, double y2);};Shape::Shape(Drawing *dp){_dp = dp;}void Shape::drawLine(double x1, double y1, double x2, double y2){ //画一条直线(4);}class Rectangle: public Shape{private:double _x1,_y1,_x2,_y2;public:Rectangle(Drawing *dp, double x1, double y1,double x2, double y2);void draw();};Rectangle::Rectangle(Drawing *dp, double x1, double y1, double x2, double y2):(5){_x1=x1;_y1=y1;_x2=x2;_y2=y2;}void Rectangle::draw(){//省略具体实现}
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有如下两个类定义: class XX{ private: double xl; protected: double x2; public: double x3; }; class YY:protected XX{ private: double yl; protected: double y2; public: double y3; 在类YY中保护成员变量的个数是( )。A.1B.2C.3D.4
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下面哪个方法与题目中的不是重载方法public int max(int x,int y)
A.public double max(double x,double y)B.publicintmax(intn,int k)C.publicintmax(intx,int y, int z)D.public double max(double n,double k)
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有以下方法的定义,请选择该方法的返回类型()。ReturnType method(bytex,doubley){return(short)x/y*2;}A、byteB、shortC、intD、double
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下面给出的四个关于函数定义形式中,正确的是()。A、double FUN(int x,int y);B、double FUN(int x,int y)C、double FUN(int x;int y);D、double FUN(int x,y)
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Which will declare a method that is available to all members of the same package and can be referenced without an instance of the class?() A、 Abstract public void methoda();B、 Public abstract double methoda();C、 Static void methoda(double d1){}D、 Public native double methoda(){}E、 Protected void methoda(double d1){}
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Which will declare a method that is available to all members of the same package and be referenced without an instance of the class?()A、 abstract public void methoda ();B、 public abstract double inethoda ();C、 static void methoda (double dl) {}D、 public native double methoda () {}E、 protected void methoda (double dl) {}
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Which will declare a method that forces a subclass to implement it? () A、 Public double methoda();B、 Static void methoda (double d1) {}C、 Public native double methoda();D、 Abstract public void methoda();E、 Protected void methoda (double d1){}
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有以下方法的定义,请选择该方法的返回类型()。 ReturnType method(byte x, double y){ return (short)x/y*2;}A、byteB、shortC、intD、double
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下列方法定义中,方法头不正确的是()。A、public static x(double a)B、public static int x(double y)C、void x(double d)
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若程序中定义了以下函数 double myadd(double a,double b) { return(a+b); } 并将其放在调用语句之后,则在调用之前应该对该函数进行说明,以下选项中错误的说明是()A、double myadd(double a,b);B、double myadd(double,double);C、double myadd(double b,double a);D、double myadd(double x,double y);
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单选题若程序中定义了以下函数 double myadd(double a,double b) { return(a+b); } 并将其放在调用语句之后,则在调用之前应该对该函数进行说明,以下选项中错误的说明是()A
double myadd(double a,b);B
double myadd(double,double);C
double myadd(double b,double a);D
double myadd(double x,double y);
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单选题有以下方法的定义,请选择该方法的返回类型()。 ReturnType method(byte x, double y){ return (short)x/y*2;}A
byteB
shortC
intD
double
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单选题Which will declare a method that forces a subclass to implement it? ()A
Public double methoda();B
Static void methoda (double d1) {}C
Public native double methoda();D
Abstract public void methoda();E
Protected void methoda (double d1){}
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单选题下列选项中,能实现对父类的getSalary方法重写的是( )。
class Employee{
public double getSalary(){}
}A
class Manager extends Employee{
public int getSalary(double x){}
}B
class Manager extends Employee{
public double getSalary(int x,int y){}
}C
class Manager extends Employee{
public double getSalary(){}
}D
class Manager extends Employee{
public int getSalary(int x,int y){}
}
考题
单选题Which will declare a method that is available to all members of the same package and can be referenced without an instance of the class?()A
Abstract public void methoda();B
Public abstract double methoda();C
Static void methoda(double d1){}D
Public native double methoda() {}E
Protected void methoda(double d1) {}
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单选题下列方法定义中,方法头不正确的是()。A
public static x(double a)B
public static int x(double y)C
void x(double d)
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单选题Which will declare a method that is available to all members of the same package and be referenced without an instance of the class?()A
abstract public void methoda ();B
public abstract double inethoda ();C
static void methoda (double dl) {}D
public native double methoda () {}E
protected void methoda (double dl) {}
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