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33、已知程序如下,该程序实现的功能为_____。 (10) main() (20) { int counter; (30) ... //输入N值的语句,略 (40) long product = 1; (50) for counter = 1 to N step 2 (60) { product = product * counter; } (70) return product; (80) }
A.product = 1*2*3*...*(N-1)
B.product = 1+ 2+3+...+ (N-1)
C.product = 1*3*5*...* (N-1)
D.product = 1+3+5+...+(N-1)
参考答案和解析
product = 1*3*5*...* (N-1)
更多 “33、已知程序如下,该程序实现的功能为_____。 (10) main() (20) { int counter; (30) ... //输入N值的语句,略 (40) long product = 1; (50) for counter = 1 to N step 2 (60) { product = product * counter; } (70) return product; (80) }A.product = 1*2*3*...*(N-1)B.product = 1+ 2+3+...+ (N-1)C.product = 1*3*5*...* (N-1)D.product = 1+3+5+...+(N-1)” 相关考题
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阅读下列说明和 C++代码,将应填入(n)处的字句写在答题纸的对应栏内。
【说明】
生成器( Builder)模式的意图是将一个复杂对象的构建与它的表示分离,使得同样的构建过程可以创建不同的表示。图 5-1 所示为其类图。
【C++代码】
#include
#include
using namespace std;
class Product {
private:? ??
string partA, partB;
public:
Product() {?? }
? ? ?void
setPartA(const string}
???? void
setPartB(const string}
//? 其余代码省略
};
class Builder {
public:
??????? (1)?? ;
virtual void buildPartB()=0;
??????? (2)?? ;
};
class ConcreteBuilder1 : public Builder {
private:
Product*?? product;
public:
ConcreteBuilder1() {product = new Product();???? }
??? void
buildPartA() {????? (3)???? ("Component A"); }
??? void
buildPartB() {????? (4)???? ("Component B"); }
Product* getResult() { return product; }
//? 其余代码省略
};
class ConcreteBuilder2 : public Builder {? ??
/*??? 代码省略??? */
};
class Director {
private:?
Builder* builder;
public:? ?
Director(Builder* pBuilder) { builder= pBuilder;}
???? void
construct() {
? ? ? ? ? ? ? (5)???? ;? ? ?
//? 其余代码省略
????? }
//? 其余代码省略
};
int main() {
Director* director1 = new Director(new ConcreteBuilder1());?
director1->construct();? ?
delete director1;? ??
return 0;
考题
阅读下列说明和 Java 代码,将应填入(n)处的字句写在答题纸的对应栏内。
【说明】
生成器( Builder)模式的意图是将一个复杂对象的构建与它的表示分离,使得同样的构建过程可以创建不同的表示。图 6-1 所示为其类图。
阅读下列说明和C++代码,将应填入(n)处的字句写在答题纸的对应栏内。
【说明】
???? 生成器(Builder)模式的意图是将一个复杂对象的构建与它的表示分离,使得同样的构建过程可以创建不同的表示。图5-1所示为其类图。
?
【C++代码】
#include
#include
using namespace std;
class Product {
private:?
string partA, partB;
public:?
Product() {?? }? ?
void setPartA(const string}
???? void setPartB(const string}? ?
//? 其余代码省略
};
class Builder {
public:? ? ??
(1)??
;?
virtual void buildPartB()=0;? ? ?
(2)??
;
};
class ConcreteBuilder1 : public Builder {
private:?
Product*?? product;
public:
ConcreteBuilder1() {product = new Product();???? }
void buildPartA() {????? (3)???? ("Component
A"); }?
void buildPartB() {????? (4)???? ("Component
B"); }??
Product* getResult() { return product; }
//? 其余代码省略
};
class ConcreteBuilder2 : public Builder {? ??? ? ? ?
/*??? 代码省略??? */
};
class Director {
private:? ??
Builder* builder;
public:??
Director(Builder* pBuilder) { builder= pBuilder;}? ??
void construct() {
????????????????? (5)???? ;
?????????????? //? 其余代码省略? ?
}??
//? 其余代码省略
};
int main() {? ? ??
Director* director1 = new Director(new ConcreteBuilder1());? ?
director1->construct();? ? ??
delete director1;? ? ?
return 0;
【Java代码】
import jav(6)A.util.*;
class Product {? ? ? ?
private String partA;? ? ? ?
private String partB;? ? ? ??
public Product() {}? ? ??
public void setPartA(String s) { partA = s; }? ? ? ?
public void setPartB(String s) { partB = s; }
}
interface Builder {? ?
public?????? (1)???? ;? ??
public void buildPartB();? ? ??
public?????? (2)???? ;
}
class ConcreteBuilder1 implements Builder {? ? ? ?
private Product product;? ? ? ?
public ConcreteBuilder1() { product = new Product();?? }? ? ? ??
public void buildPartA() {????????
(3)??
("Component A"); }
public void buildPartB() {???? ????(4)?? ("Component B"); }? ? ??
public Product getResult() { return product;}
}
class ConcreteBuilder2 implements Builder {?? ? ? ? ?
//? 代码省略
}
class Director {? ? ? ?
private Builder builder;? ? ? ?
public Director(Builder builder) {this.builder = builder; }
public void construct() {
? ? ? ? ? ? ? ? ? (5)???? ;
? ? ? ? ? ? ? //? 代码省略? ? ??
}
}
class Test {? ? ??
public static void main(String[] args) {
???????????????? Director director1 = new
Director(new ConcreteBuilder1());
???????????????? director1.construct();? ? ? ??
}
考题
有如下程序 long fib(int n) { if(n2) return(fib(n-1)+fib(n-2)); else return(2); } main() { printf("%ld/n",fib(3)); } 该程序的输出结果是()A、2B、4C、6D、8
考题
单选题有如下程序 long fib(int n) { if(n2) return(fib(n-1)+fib(n-2)); else return(2); } main() { printf("%ld/n",fib(3)); } 该程序的输出结果是()A
2B
4C
6D
8
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