- LuckySXyd
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复数的加减运算得先将指数形式转化为一般形式,也就是实部加虚部的形式才能加减。然后再转换成指数形式进行乘除运算。
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第59回 柳叶渚边嗔莺咤燕 绛云轩里召将飞符 第60回 茉莉粉替去蔷薇硝 玫瑰露引出茯苓霜
C++ 实现复数加减运算
给你弄了几行~你照着写下去吧~好久没有动手了~#includeclassComplex{public:Complex(doubler=0,doublev=0):real(r),virt(v){}friendComplexoperator+(Complexa,Complexb);friendostream&operator<<(ostream&out,Complex&a);private:doublereal;doublevirt;};ostream&operator<<(ostream&out,Complex&a){returnout<评论00加载更多2023-06-20 13:25:112
复数的加减法运算法则和向量运算的什么法则是一致的。
D 对于复数的加减法运算法则判断出①对;对于②向量a的性质 ,但 是实数,但 不一定是实数,如z=i,就不成立,故②错;对于③复数加法的几何意义判断出③对,故选D2023-06-20 13:25:181
java 中实现复数的加减
不知道是不是 ~//复数类。public class Complex{ private double real,im; //实部,虚部 public Complex(double real, double im) //构造方法 { this.real = real; this.im = im; } public Complex(double real) //构造方法重载 { this(real,0); } public Complex() { this(0,0); } public Complex(Complex c) //拷贝构造方法 { this(c.real,c.im); } public boolean equals(Complex c) //比较两个对象是否相等 { return this.real==c.real && this.im==c.im; } public String toString() { return "("+this.real+"+"+this.im+"i)"; } public void add(Complex c) //两个对象相加 { //改变当前对象,没有返回新对象 this.real += c.real; this.im += c.im; } public Complex plus(Complex c) //两个对象相加,与add()方法参数一样不能重载 { //返回新创建对象,没有改变当前对象 return new Complex(this.real+c.real, this.im+c.im); } public void subtract(Complex c) //两个对象相减 { //改变当前对象,没有返回新对象 this.real -= c.real; this.im -= c.im; } public Complex minus(Complex c) //两个对象相减,与subtract()方法参数一样不能重载 { //返回新创建的对象,没有改变当前对象 return new Complex(this.real-c.real, this.im-c.im); }}class Complex__ex{ public static void main(String args[]) { Complex a = new Complex(1,2); Complex b = new Complex(3,5); Complex c = a.plus(b); //返回新创建对象 System.out.println(a+" + "+b+" = "+c); } }/*程序运行结果如下:(1.0+2.0i) + (3.0+5.0i) = (40.0+7.0i)*/2023-06-20 13:25:421
复数的加减法[(1+i)/(1-i)]*[(1+i)/(1-i)]^2.[(1+...
首先1i/1-i可以化简.同乘1i得(i方加2i加1)/2.因为i方等于-1所以这时候这项变成i.然后原来的试子就变成了i乘i方乘i的二次方乘i的三次方乘.一直乘到i的一百次方,最后的i的五千零五十次方.化简的负一2023-06-20 13:26:051
C++ 实现复数加减运算
#include "iostream.h"class Complex{ private: double real,imag; public: Complex(double r,double i) { real=r; imag=i; } /*friend Complex operator +(Complex& a,Complex& b)//友元运算符重载 { double r=a.real+b.real; double i=a.imag+b.imag; return Complex(r,i); }*/ Complex operator +(Complex&b)//类运算符重载 { double r=real+b.real; double i=imag+b.imag; return Complex(r,i); } show() { cout<<real<<"+"<<imag<<"i"; } };void main(){ Complex c1(6,3),c2(3,6),c=c1+c2; c1.show(); cout<<"+"; c2.show(); cout<<"="; c.show(); cout<<endl;}以上重载"+",重载"-"以此类似,仅供参考2023-06-20 13:26:141
复数的加减运算中能破括号吗?
去括号的时候要把括号前的“系数”乘以括号内的每一项,也就是说如果括号前是加就直接去掉,如果是减就要改变括号内的每一项符号,再去掉2023-06-20 13:26:352
java中如何实现复数的加减?
不知道是不是 ~//复数类。public class Complex{ private double real,im; //实部,虚部 public Complex(double real, double im) //构造方法 { this.real = real; this.im = im; } public Complex(double real) //构造方法重载 { this(real,0); } public Complex() { this(0,0); } public Complex(Complex c) //拷贝构造方法 { this(c.real,c.im); } public boolean equals(Complex c) //比较两个对象是否相等 { return this.real==c.real && this.im==c.im; } public String toString() { return "("+this.real+"+"+this.im+"i)"; } public void add(Complex c) //两个对象相加 { //改变当前对象,没有返回新对象 this.real += c.real; this.im += c.im; } public Complex plus(Complex c) //两个对象相加,与add()方法参数一样不能重载 { //返回新创建对象,没有改变当前对象 return new Complex(this.real+c.real, this.im+c.im); } public void subtract(Complex c) //两个对象相减 { //改变当前对象,没有返回新对象 this.real -= c.real; this.im -= c.im; } public Complex minus(Complex c) //两个对象相减,与subtract()方法参数一样不能重载 { //返回新创建的对象,没有改变当前对象 return new Complex(this.real-c.real, this.im-c.im); }}class Complex__ex{ public static void main(String args[]) { Complex a = new Complex(1,2); Complex b = new Complex(3,5); Complex c = a.plus(b); //返回新创建对象 System.out.println(a+" + "+b+" = "+c); } }/*程序运行结果如下:(1.0+2.0i) + (3.0+5.0i) = (40.0+7.0i)*/2023-06-20 13:26:441
C语言用头文件实现复数加减法
in cmplx.h#ifndef CMPLX1_H_#define CMPLX1_H_#ifdef __cplusplusextern "C"{#endiftypedef struct _CMPLX{ float c_real; float c_vir;}CMPLX, *PCMPLX;CMPLX CMPLX_(float real, float vir);//operations between CMPLXCMPLX C_add(CMPLX c_l, CMPLX c_r);CMPLX C_sub(CMPLX c_l, CMPLX c_r);CMPLX C_mul(CMPLX c_l, CMPLX c_r);CMPLX C_div(CMPLX c_l, CMPLX c_r);void C_out(CMPLX data);#ifdef __cplusplus}#endif#endif /* CMPLX1_H_ */in cmplx.c#include <stdio.h>#include <string.h>#include "cmplx.h"CMPLX CMPLX_(float real, float vir){ CMPLX d; d.c_real = real; d.c_vir = vir; return d;}CMPLX C_add(CMPLX c_l, CMPLX c_r){ c_l.c_real += c_r.c_real; c_l.c_vir += c_r.c_vir; return c_l;}CMPLX C_sub(CMPLX c_l, CMPLX c_r){ c_l.c_real -= c_r.c_real; c_l.c_vir -= c_r.c_vir; return c_l;}CMPLX C_mul(CMPLX c_l, CMPLX c_r){ int rl = c_l.c_real; int vl = c_l.c_vir; int rr = c_r.c_real; int vr = c_r.c_vir; c_l.c_real = rl*rr - vl*vr; c_l.c_vir = rl*vr + rr*vl; return c_l;}CMPLX C_div(CMPLX c_l, CMPLX c_r){ CMPLX c_r_r = CMPLX_(c_r.c_real, -c_r.c_vir);/*a-b*i*/ float c_d = (c_r.c_real*c_r.c_real + c_r.c_vir*c_r.c_vir); if(c_d == 0) { memset(&c_l, 0x00, sizeof(CMPLX)); return c_l; } c_l = C_mul(c_l, c_r_r); c_l.c_real /= c_d; c_l.c_vir /= c_d; return c_l;}void C_out(CMPLX data){ if(data.c_real!=(float)0.0 && data.c_vir!=(float)0.0) printf("%f%c%fi ", data.c_real,data.c_vir<0?("-"):("+"), data.c_vir<0?(-data.c_vir):(data.c_vir)); else if(data.c_real == (float)0) printf("%fi ", data.c_vir); else if(data.c_vir == (float)0) printf("%f ", data.c_real);}in P4.c#include <stdio.h>#include "cmplx.h"int test(){ CMPLX dat1 = CMPLX_(2, 1); CMPLX dat2 = CMPLX_(1, 1); CMPLX dat_sum = C_add(dat1, dat2); CMPLX dat_sub = C_sub(dat1, dat2); CMPLX dat_mul = C_mul(dat1, dat2); CMPLX dat_div = C_div(dat1, dat2); C_out(dat_sum); C_out(dat_sub); C_out(dat_mul); C_out(dat_div); return 1;}int main(){ test(); return 0;}2023-06-20 13:26:532
c语言 复数的加减法 满足手写规则
你必须有一个输入格式约定,无论简单或复杂。例如:必须有实部和虚部,格式为3-2i1-i1+i等。然后才好处理。这里放入charstr[80];了,如果是键盘输入流,也用类似格式。#include<stdio.h>main(){charstr[80]="1-i";//1+i2-2i2+3i0-iintr,m;inti,flag,s;flag=sscanf(str,"%d%di",&r,&m);if(flag==1){s=1;for(i=0;i<strlen(str);i++)if(str[i]=="-")s=-1;elseif(str[i]=="+")s=1;m=s;}printf("real=%dimag=%d ",r,m);return0;}2023-06-20 13:27:072
电压复数加减问题
U1uff0bU2uff1dj30uff0b100uff1d104.4U000200cb16.70u20e3ufe0fV2023-06-20 13:27:201
为什么复数相乘的方法和向量相乘不一样? 加减法都一样啊。
因为复数虽然是表示为a+bi的形式,但它和向量确实不是一回事啊~~ 复数终归就是一个数啊~ 2维向量的两个维是等同的,而复数的1和i可以看成是不同的单位。而且i*i=-1,这一点是向量办不到的。 另外,比如说复数可以计算几次方,向量根本没这回事。2023-06-20 13:27:411
通过运算符重载,实现两个复数的加减乘除运算
#include <iostream>using namespace std;class Complex{public: Complex(double pr=0, double pi=0) { real=pr; imag=pi; } Complex operator+(Complex c); Complex operator-(Complex c); Complex operator*(Complex c); Complex operator/(Complex c); void display();private: double real; double imag;};Complex Complex::operator+(Complex c){ return Complex(real+c.real, imag+c.imag);}Complex Complex::operator-(Complex c){ return Complex(real-c.real, imag-c.imag);}Complex Complex::operator*(Complex c){ double r,i; r=real*c.real+imag*c.imag; i=imag*c.real+real*c.imag; return Complex(r,i);}Complex Complex::operator/(Complex c){ double r,i,d; r=real*c.real+imag*c.imag; i=imag*c.real+real*c.imag; d=c.real*c.real+c.imag*c.imag; if(d>0) return Complex(r/d,i/d); else{ cout <<"Error!"; exit(1); }} void Complex::display(){ cout <<real<<"+"<<imag<<"i"<<endl;}int main(){ Complex c1(3,4),c2(-5,6),c3,c4,c5,c6; c3=c1+c2; c4=c1-c2; c5=c1*c2; c6=c1/c2; c3.display(); c4.display(); c5.display(); c6.display(); return 0;}2023-06-20 13:28:041
java 编写一个可对复数进行加减运算的程序
循环用当型循环吧 复数 你单独写个世子 去判断下2023-06-20 13:28:142
用极坐标表示的复数怎么进行加减乘除运算
题中二复数之和等于-14.05-2.34i因为实部与虚部都小于0,故该复数位于复平面第三象限它的幅角应为arctan(-2.34/-14.05)-180°,从而等于170.54°复数分为实部和虚部,记为a+ib在直角坐标系中,横轴代表实数,纵轴代表虚数,以A(a,b)代表实数A=a+ib,在极坐标系中,以原点作为始点,A(a,b)作为终点的矢量代表该虚数,用A(r,θ)表示,其中r=(a平方+b平方)的开二次方,θ=arctg(b/a)。扩展资料:极坐标系是一个二维坐标系统。该坐标系统中的点由一个夹角和一段相对中心点——极点(相当于我们较为熟知的直角坐标系中的原点)的距离来表示。极坐标系的应用领域十分广泛,包括数学、物理、工程、航海以及机器人等领域。在两点间的关系用夹角和距离很容易表示时,极坐标系便显得尤为有用;而在平面直角坐标系中,这样的关系就只能使用三角函数来表示。对于很多类型的曲线,极坐标方程是最简单的表达形式,甚至对于某些曲线来说,只有极坐标方程能够表示。参考资料来源:百度百科-极坐标2023-06-20 13:28:381
c语言复数加减法如何实现输入型如1-i或1+i的数据
那个i,你把它当成字母输出2023-06-20 13:28:482
复数的加减运算,第一小题哪里错了,答案是1-i,但我算出来是1-3i啊
第二步+i移到括号时应该变成-i望采纳2023-06-20 13:28:542
如何编写程序用成员函数形式实现复数类加减法运算重载
正解见下:#include<iostream>using namespace std;class complex//复数类声明{private: double real; double image;public: complex(double r=0.0,double i=0.0)//构造函数 { real=r; image=i; } complex operator+(complex c2);//+重载为成员函数 complex operator-(complex c2);//-重载为成员函数 complex operator*(complex c2);//*重载为成员函数 friend complex operator/(complex,complex);///重载为成员函数 bool operator==(complex c2);//==重载为成员函数 void display();};complex complex::operator +(complex c2)//重载的实现{complex c;c.real=c2.real+real;c.image=c2.image+image;return complex(c.real,c.image);}complex complex::operator -(complex c2)//重载的实现{complex c;c.real=real-c2.real;c.image=image-c2.image;return complex(c.real,c.image);}complex complex::operator *(complex c2)//重载的实现{complex c;c.real=c2.real*real;c.image=c2.image*image;return complex(c.real,c.image);}complex operator/(complex c1,complex c2)//重载的实现{return complex(c1.real/c2.real,c1.image/c2.image);}bool complex::operator ==(complex c2)//重载的实现{if((real==c2.real)||(image==c2.image))return true;else return false;}void complex::display(){cout<<"("<<real<<","<<image<<")"<<endl;}void main(){complex c1(5.0,4),c2(5.0,4),c3;cout<<"c1=";c1.display();cout<<"c2=";c2.display();c3=c1+c2;//使用重载运算符完成复数加法cout<<"c3=c1+c2=";c3.display();c3=c1-c2;//使用重载运算符完成复数减法cout<<"c3=c1-c2=";c3.display();c3=c1*c2;//使用重载运算符完成复数乘法cout<<"c3=c1*c2=";c3.display();c3=c1/c2;//使用重载运算符完成复数除法cout<<"c3=c1/c2=";c3.display();//使用重载运算符完成两个复数的比较bool result=(c1==c2);cout<<"(c1==c2)="<<result<<endl2023-06-20 13:29:041
复数的加减运算 (i^2+i)+|i|+(1+i)等于什么? 要有过程
i^2=-1原式=i-1+1+1+i=1+2i2023-06-20 13:29:282
C#编程:定义一个复数类,实现复数的简单加减法运算,并能显示结果。
// Lab 4: Complex.h#ifndef COMPLEX_H#define COMPLEX_H/* Write class definition for Complex */#include <iostream>//#include <double>using namespace std;#include "Complex.h"// Complex class definitionclass Complex{public: ComplexNumber(double ,double ); void setComplexNumber(double rp, double ip); // double getComplexNumber(); Complex add(const Complex & ); Complex subtract(const Complex &); void printComplex(); Complex(double ,double);private: double realPart; double imaginaryPart;};#endif// Lab 4: ComplexTest.cpp#include <iostream>using namespace std;#include "Complex.h"int main(){ Complex a( 1, 7 ), b( 9, 2 ), c(0,0); // create three Complex objects a.printComplex(); // output object a cout << " + "; b.printComplex(); // output object b cout << " = "; c = a.add( b ); // invoke add function and assign to object c c.printComplex(); // output object c cout << " "; a.setComplexNumber( 10, 1 ); // reset realPart and b.setComplexNumber( 11, 5 ); // and imaginaryPart a.printComplex(); // output object a cout << " - "; b.printComplex(); // output object b cout << " = "; c = a.subtract( b ); // invoke add function and assign to object c c.printComplex(); // output object c cout << endl;} // end main// Lab 4: Complex.cpp// Member-function definitions for class Complex.#include <iostream>using namespace std;#include "Complex.h"Complex::Complex( double real, double imaginary ){ setComplexNumber( real, imaginary );} // end Complex constructorComplex Complex::add( const Complex &right ){ /* Write a statement to return a Complex object. Add the realPart of right to the realPart of this Complex object and add the imaginaryPart of right to the imaginaryPart of this Complex object */ realPart=realPart+right.realPart; imaginaryPart=imaginaryPart+right.imaginaryPart; return Complex(realPart,imaginaryPart);} // end function addComplex Complex::subtract( const Complex &right ){ /* Write a statement to return a Complex object. Subtract the realPart of right from the realPart of this Complex object and subtract the imaginaryPart of right from the imaginaryPart of this Complex object */ realPart=realPart-right.realPart; imaginaryPart=imaginaryPart-right.imaginaryPart; return Complex(realPart,imaginaryPart);} // end function subtractvoid Complex::printComplex(){ cout << "(" << realPart << ", " << imaginaryPart << ")";} // end function printComplexvoid Complex::setComplexNumber( double rp, double ip ){ realPart = rp; imaginaryPart = ip;} // end function setComplexNumber2023-06-20 13:29:551
相量之间加减怎么运算
相量:时域函数的复数形式。所以相量的加减就是复数加减,复数加减应该将其化为复数的代数形式。故本题就是将复数的极坐标形式化为复数的代数形式。2023-06-20 13:30:203
定义一个复数类complex,用运算符重载的方法实现复数的加减乘除运算.要求分别实现
#include <iostream>using namespace std; class Complex{public: Complex(double r=0.0,double i=0.0): real(r), imag(i){} Complex operator+(const Complex &c2) const; Complex operator-(const Complex &c2) const; Complex operator*(const Complex &c2) const; Complex operator/(const Complex &c2) const; void display() const;private: double real; double imag;};Complex Complex::operator+(const Complex &c2) const{ return Complex(real+c2.real, imag+c2.imag);} Complex Complex::operator-(const Complex &c2) const{ return Complex(real-c2.real, imag-c2.imag);}Complex Complex::operator*(const Complex &c2) const{ Complex c; c.real=real*c2.real-imag*c2.imag; c.imag=imag*c2.real+real*c2.imag; return c;}Complex Complex::operator/(const Complex &c2) const{ Complex c; double d=imag*imag+c2.imag*c2.imag; c.real=(real*c2.real+imag*c2.imag)/d; c.imag=(imag*c2.real-real*c2.imag)/d; return c;}void Complex::display() const{ cout<<"("<<real<<","<<imag<<")"<<endl;} int main(){ Complex c1(5,4),c2(2,10),c3; cout<<"c1=";c1.display(); cout<<"c2=";c2.display(); c3=c1+c2; cout<<" c3=c1+c2=";c3.display(); c3=c1-c2; cout<<" c3=c1-c2=";c3.display(); c3=c1*c2; cout<<" c3=c1*c2=";c3.display(); c3=c1/c2; cout<<" c3=c1/c2=";c3.display(); return 0;}2023-06-20 13:30:292
有谁数学比较好,能告诉我复数的极坐标式怎么进行加减运算。没有的话我等会在问一遍。
解析:(a+bi)+(c+di)=(a+c)+(b+d)i~~~~~~~~~(a+bi)-(c+di)=(a-c)+(b-d)i2023-06-20 13:30:372
有角度的复数相加? 这种加法是直接角度相加吗,那前面的怎么算啊?求帮忙解答,在线等!!!
这种格式只适合复数的乘除,乘方、开方计算不适合复数的加减计算,角度不能相加,角度相加是复数乘法的计算法则所以一般还是转化为a+bi(数学中的复数表示方法)或a+jb(电工学中的复数表示方法)后计算。2023-06-20 13:30:531
复数运算法则的加减法
复数的加法按照以下规定的法则进行:设z1=a+bi,z2=c+di是任意两个复数,则它们的和是 (a+bi)+(c+di)=(a+c)+(b+d)i.两个复数的和依然是复数,它的实部是原来两个复数实部的和,它的虚部是原来两个虚部的和。复数的加法满足交换律和结合律,即对任意复数z1,z2,z3,有: z1+z2=z2+z1; (z1+z2)+z3=z1+(z2+z3). 复数的减法按照以下规定的法则进行:设z1=a+bi,z2=c+di是任意两个复数,则它们的差是 (a+bi)-(c+di)=(a-c)+(b-d)i.两个复数的差依然是复数,它的实部是原来两个复数实部的差,它的虚部是原来两个虚部的差。2023-06-20 13:32:141
复数的加减法[(1+i)/(1-i)]*[(1+i)/(1-i)]^2.........[(1+i)/(1-i)]^100
首先1 i/1-i可以化简。同乘1 i得(i方加2i加1)/2。因为i方等于-1所以这时候这项变成i。然后原来的试子就变成了i乘i方乘i的二次方乘i的三次方乘。。。。。一直乘到i的一百次方,最后的i的五千零五十次方。化简的负一2023-06-20 13:33:091
用极坐标表示的复数怎么进行加减乘除运算
加减法需要把极坐标形式化成代数形式计算,以后把结果再化成极坐标形式。乘除需要模模相乘除,复角相加减2023-06-20 13:33:203
复数是几年级学的 复数的运算法则是什么
1、复数是指实数和虚数,是高等数学的基础知识,是大学一年级的第一章。我们把形如z=a+bi(a,b均为实数)的数称为复数,其中a称为实部,b称为虚部,i称为虚数单位。当z的虚部等于零时,常称z为实数;当z的虚部不等于零时,实部等于零时,常称z为纯虚数。 2、复数运算法则有:加减法、乘除法。两个复数的和依然是复数,它的实部是原来两个复数实部的和,它的虚部是原来两个虚部的和。复数的加法满足交换律和结合律。此外,复数作为幂和对数的底数、指数、真数时,其运算规则可由欧拉公式e^iθ=cos θ+i sin θ(弧度制)推导而得。2023-06-20 13:34:401
用结构体和函数怎么编写复数的加减运算
#define ARR_SIZE 20typedef struct complex{int aNum;int bNum;}Complex;void Add(Complex *A, Complex *B){ A->aNum=A->aNum+B->aNum; A->bNum=A->bNum+B->bNum;}void Minus(Complex *A, Complex *B){A->aNum=A->aNum-B->aNum;A->bNum=A->bNum-B->bNum;}char * FormatComplex(Complex *A) //格式化复数,变成a+bi{char temp[ARR_SIZE];wsprintf(temp,"%d+%d i",A->aNum,A->bNum);return temp;}2023-06-20 13:34:561
复数的极坐标能直接加减么
不能2023-06-20 13:35:062
c++写一个复数类,完成复数的加减乘运算。应包括构造函数。编写主函数,完成对类的使用
string.hpp:#ifndef __STRING_HPP__#define __STRING_HPP__#include<iostream>#include<cstring>#include<cstdio>#include<cstdlib>using namespace std;class String{ private: char* data; int len; public: String();//构造函数 String(int,char);//构造函数的存在 String(const char*); ~String();//析构函数 String(const String&);//拷贝构造函数 //赋值运算符函数 String& operator=(const String&); void show(); friend ostream& operator<< (ostream&,const String&);//插入运算符的重载 //提取运算符的重载 friend istream& operator>>(istream&,String&); const String operator +(const String&)const; String& operator+=(const String&); char& operator[](int); char* getdata(); int getlength(); operator char*(); friend bool operator==(const String&,const String&); friend bool operator!=(const String&,const String&); friend bool operator<(const String&,const String&); friend bool operator>(const String&,const String&);};#endif //__STRING_HPP__string.cpp中:#include"string.hpp"String::String()//构造函数{ data=new char[1]; len=0; *data="";}String::String(int n,char ch)//构造函数的存在{ data=new char[1+n]; len=n; char* p=data;w while(n-->0) *p++=ch;}String::String(const char* str){ /*if(str!=NULL) { len=strlen(str); data=new char[1+len]; strcpy(data,str); } else { data=new char[1]; len=0; *data=""; }*/ len=strlen(str?str:""); data=new char[1+len]; strcpy(data,str?str:"");}String::~String()//析构函数{ delete[]data; data=NULL;}String::String(const String& that)//拷贝构造函数{ //cout<<"拷贝构造函数被调用"<<endl; len=that.len; data=new char[1+len]; strcpy(data,that.data);}//赋值运算符函数String& String::operator=(const String& that){ // obj3=obj4; //初级程序员的写法 /*if(this==&that) return *this;//防止自赋值 delete[]data;//释放原内存 data=new char[1+that.len];//开辟新的内存 len=that.len; strcpy(data,that.data);//拷贝新内容 return *this;//返回自引用*/ //中级程序员的写法 //a=that; if(&that==this) return *this; char* p=new char[1+that.len]; if(!p) { cout<<"内存开辟失败"<<endl; exit(-1); } //如果开辟内存不成功的话,就抛出一个异常 delete[]data; data=strcpy(p,that.data); len=that.len; return *this; //高级程序员的写法 //a=that if(&that!=this) { String other(that); len=that.len; swap(data,other.data); } return *this;}void String::show(/*int a*/){ cout<<data<<" "<<len<<endl;}ostream& operator<<(ostream& os,const String& that){ //在插入运算符中可以把流对象os当作cout来使用 //最后还要返回流对象自身,以备连用 return os<<that.data<<" "<<that.len; //return os;}istream& operator>>(istream& is,String& that){ //return is>>that.data; char buf[256]={}; is.getline(buf,100); that.len=strlen(buf); delete[]that.data; that.data=new char[1+that.len]; strcpy(that.data,buf); return is;}const String String::operator+(const String& that) const{ String other; other.len=len+that.len; delete[]other.data; other.data=new char[1+other.len]; //strcat(strcpy(other.data,data),that.data); strcpy(other.data,data); strcat(other.data,that.data); //that.len=0; return other;}//obj1 =obj2 + obj3 //int a,b,c;//a=b+c;//ok//b+c=a;//error匿名变量只能做右值/*a=1,b=2,c=3;(a=b)=c;a=3 b=2 c=3*/String& String::operator+=(const String& that){ /*String other(*this); delete[]data; len+=that.len; data=new char[1+len]; strcat(strcpy(data,other.data),that.data);*/ *this=*this+that; return *this;}char& String::operator[](int i){ if(i<0||i>len) { cout<<"数组下标越界"<<endl; exit(-1); } return data[i];}/*obj1("abcdf");cout<<obj1[0]<<endl;//aobj1[0]="A";cout<<obj1<<endl;//Abcdf*/char* String::getdata(){ return data;}int String::getlength(){ return len;}String::operator char*(){ static char buf[256]={}; sprintf(buf,"%s%d",data,len); return buf;}//obj1("abcdef");//cout<<(char*)obj1<<endl;//abcdef6bool operator==(const String&that,const String&other){ return strcmp(that.data,other.data)==0;}bool operator!=(const String&that,const String&other){ //return strcmp(that.data,other.data)!=0; return !(that==other);}bool operator>(const String&that,const String&other){ return strcmp(that.data,other.data)>0;}bool operator<(const String&that,const String&other){ return strcmp(that.data,other.data)<0;}至于对类的使用,你可以自己写个程序测试下吧2023-06-20 13:35:281
复数极坐标加减运算
(600,120°)+(400,-60°)=(600,120°)+(-400,120°)=(200,120°)2023-06-20 13:35:401
复数问题 i+-i=0吗? 还是不能加减 靠谱一点
因为 i^2=-1 假设上式成立 . 两边平方 计算左边 即[(i+(-i)]^2=i^2+(-i)^2+2i(-i)=-1+(-1)-2i^2=-2+2=0=右边 所以i+(-i)=0正确2023-06-20 13:35:501
C++设计一个类 实现复数加减乘除的功能,?? 代码版的啊 最好能有注释??
#include "iostream"using namespace std;class calc{public: int a1,b1,a2,b2; char temp[32]; void add(); void cut(); void multiply(); void divide();private: void init();};void calc::init(){ cout<<"请输入第一个数的实部:"; cin>>a1; cout<<"请输入第一个数的虚部:"; cin>>b1; cout<<"请输入第二个数的实部:"; cin>>a2; cout<<"请输入第二个数的虚部:"; cin>>b2;}void calc::add(){ init(); sprintf(temp,("%d,%di + %d,%di = %d,%di"),a1,b1,a2,b2,a1+a2,b1+b2); cout<<temp<<endl;}void calc::cut(){ init(); sprintf(temp,("%d,%di - %d,%di = %d,%di"),a1,b1,a2,b2,a1-a2,b1-b2); cout<<temp<<endl;}void calc::multiply(){ init(); sprintf(temp,("%d,%di × %d,%di = %d,%di"),a1,b1,a2,b2,a1*a2-b1*b2,a1*b2+a2*b1); cout<<temp<<endl;}void calc::divide(){ init(); sprintf(temp,("%d,%di ÷ %d,%di = %d,%di"), a1,b1,a2,b2,(a1*a2+b1*b2)/(a2*a2+b2*b2),(b1*a2-a1*b2)/(a2*a2+b2*b2)); cout<<temp<<endl;}void main(){ int i; calc ll; while(1) { cout<<endl<<endl; cout<<" 1.加法 2.减法 3.乘法 4.除法 5.退出"<<endl; cin>>i; switch (i) { case 1:ll.add(); break; case 2:ll.cut(); break; case 3:ll.multiply(); break; case 4:ll.divide(); break; case 5:return; break; default: cout<<"输入错误!"<<endl; } }}2023-06-20 13:35:571
极坐标复数的加减运算
题中二复数之和等于-14.05-2.34i因为实部与虚部都小于0,故该复数位于复平面第三象限,它的幅角应为arctan(-2.34/-14.05)-180°,从而等于170.54°2023-06-20 13:36:271
复数积分问题
你仔细看看复变函数吧,我学过的.复变其实就相当于复数的基本运算加上微积分,里面从复数的极限、连续、导数、极数再到积分,都是有的.大体的思想还是差不多的,比如可导推出连续.不过在复数域里还是有很多与实数域相差别的地方.比如sin x在复数域里不再是有界函数,而是可以取尽复数域的所有数.复数域里面...2023-06-20 13:36:422
电路 复数极坐标加减运算
运算过程分解,配图解2023-06-20 13:37:221
如何用C++编写复数类complex ,和 加减乘除的重载哦,高手help~~~~~
复数运算Description输入两个复数a1+b1i和a2+b2i,对此进行加(+)、减(-)、乘(*)和除(/)法运算。Input输入多组测试数据,第一行为测试数据的组数T,每组测试数据由3行组成,第1行为a1和b1,第2行为一个字符,代表a1+b1i与a2+b2i所进行的运算(可能的值有+、-、*、/),第3行为a2和b2。这里的a1、b1、a2、b2均为整数。我们的测试数据保证在进行除法运算时不会发生被0除的情况。Output每组测试数据输出一行,即计算后的结果a3+b3i的最简形式,中间不包含任何空格,其中a3和b3均保留1位小数。SampleInput311+1111-1011+-1-1#include<iostream>#include<iomanip>usingnamespacestd;classComplex{private:doublereal;doubleimag;public:Complex(){real=0;imag=0;}voidInit();Complexoperator+(Complex&c2);Complexoperator-(Complex&c2);Complexoperator*(Complex&c2);Complexoperator/(Complex&c2);doubleGet_real(){returnreal;}doubleGet_imag(){returnimag;}voiddisplay();};voidComplex::Init(){cin>>real>>imag;}ComplexComplex::operator+(Complex&c2){Complexc;c.real=real+c2.real;c.imag=imag+c2.imag;returnc;}ComplexComplex::operator-(Complex&c2){Complexc;c.real=real-c2.real;c.imag=imag-c2.imag;returnc;}ComplexComplex::operator*(Complex&c2){Complexc;c.real=real*c2.real-imag*c2.imag;c.imag=real*c2.imag+imag*c2.real;returnc;}ComplexComplex::operator/(Complex&c2){Complexc;doublet=c2.real*c2.real+c2.imag*c2.imag;c.real=(real*c2.real+imag*c2.imag)/t;c.imag=(imag*c2.real-real*c2.imag)/t;returnc;}voidComplex::display(){doublere=real,im=imag;if(re==0){if(im==0)cout<<"0.0 ";else{if(im==1)cout<<"i"<<endl;elseif(im==-1)cout<<"-i"<<endl;elsecout<<setiosflags(ios::fixed)<<setprecision(1)<<im<<"i"<<endl;}}else{if(im==0)cout<<setiosflags(ios::fixed)<<setprecision(1)<<re<<endl;elseif(im>0){if(im==1){cout<<setiosflags(ios::fixed)<<setprecision(1)<<re;cout<<"+"<<setiosflags(ios::fixed)<<setprecision(1)<<"i"<<endl;}else{cout<<setiosflags(ios::fixed)<<setprecision(1)<<re;cout<<"+"<<setiosflags(ios::fixed)<<setprecision(1)<<im<<"i"<<endl;}}else{if(im==-1){cout<<setiosflags(ios::fixed)<<setprecision(1)<<re;cout<<setiosflags(ios::fixed)<<setprecision(1)<<"-i"<<endl;}else{cout<<setiosflags(ios::fixed)<<setprecision(1)<<re;cout<<setiosflags(ios::fixed)<<setprecision(1)<<im<<"i"<<endl;}}}}intmain(){Complexc1,c2,c3;intt;cin>>t;while(t--){charch;c1.Init();cin>>ch;c2.Init();if(ch=="+")c3=c1+c2;elseif(ch=="-")c3=c1-c2;elseif(ch=="*")c3=c1*c2;elsec3=c1/c2;c3.display();}return0;}2023-06-20 13:37:391
实数与复数能不能加减乘除,请给予公式
1+2i+3+4i=4+6i 只能这么加2023-06-20 13:38:012
复数的加减运算只能用代数式吗?采用极坐标式只能换成代数式才能运算吗?
你不嫌麻烦,用正弦定理与余弦定理算,也可以。2023-06-20 13:38:111
复数加常数怎么计算
先把复数算出结果,再加上常数就可以得出答案。在计算复数加常数的时候,要先把复数的短式子计算出来,再用计算出来的答案和常数相加就可以得出最终的答案。复数运算法则有加减法、乘除法,两复数之和是复数,所得和的实部数值为原两复数实部之和,所得和的虚部是原两复数虚部之和,复数的加法满足交换律和结合律,两复数之差是复数,所得差的实部是原来两个复数实部的差,所得差的虚部是原两复数虚部之差。两复数之积是复数,两复数相除计算方法与乘法相同,需要分子分母相乘时乘分母的共轭,互为共轭的两复数之积是实常数。2023-06-20 13:38:271
1.运用java 编写一个复数类,有实部和虚部,并实现复数的加减乘除运算?
public class ComplexNumber { /** * @param args */ int shi,xu;//复数的实部和虚部 public ComplexNumber(int n,int ni){ shi = n; xu = ni; } public void ComplexShow(){ String output = ""; output+=shi; if(xu>=0){ output+="+"; } output+=xu; output+="i"; System.out.println(output); } public void ComplexShow1(){//不要换行 String output = ""; output+=shi; if(xu>=0){ output+="+"; } output+=xu; output+="i"; System.out.print(output); } public static void ComplexAdd(ComplexNumber x1,ComplexNumber x2){//实现两个复数相加 ComplexNumber cn = new ComplexNumber(0, 0);//将两个复数相加等于cn cn.shi = x1.shi + x2.shi; cn.xu = x1.xu + x2.xu; cn.ComplexShow(); } public static void ComplexMinus(ComplexNumber x1,ComplexNumber x2){//实现两个复数相减,第一个数减第二个数 ComplexNumber cn = new ComplexNumber(0, 0);//将两个复数相加等于cn cn.shi = x1.shi - x2.shi; cn.xu = x1.xu - x2.xu; cn.ComplexShow(); } public static void ComplexMultiply(ComplexNumber x1,ComplexNumber x2){//实现两个复数相乘 ComplexNumber cn = new ComplexNumber(0, 0);//将两个复数相加等于cn cn.shi = x1.shi * x2.shi - x1.xu * x2.xu; cn.xu = x1.xu * x2.shi + x2.xu * x1.shi; cn.ComplexShow(); } public static void ComplexDivide(ComplexNumber x1,ComplexNumber x2){//实现两个复数相除,第一个数除以第二个数 ComplexNumber x2_gong = new ComplexNumber(x2.shi,0-x2.xu);//求被除数的共轭复数 ComplexNumber cn = new ComplexNumber(0, 0);//将两个复数相加等于cn cn.shi = x1.shi * x2_gong.shi - x1.xu * x2_gong.xu;//x1/x2,求分子实部 cn.xu = x1.xu * x2_gong.shi + x2_gong.xu * x1.shi;//x1/x2,求分子虚部 int fenMu = x2.shi * x2.shi + x2.xu * x2.xu; if(fenMu!=0){ System.out.print("("); cn.ComplexShow1(); System.out.print(")"); System.out.println("/"+fenMu); } else System.out.println("分母为零,无法相除"); } public static void main(String[] args) { // TODO Auto-generated method stub ComplexNumber cn = new ComplexNumber(-1, -1);//初始化复数 cn.ComplexShow();//显示复数 ComplexNumber c1 = new ComplexNumber(-1, -1); ComplexNumber c2 = new ComplexNumber(1, 1); System.out.print("加:"); ComplexAdd(c1, c2); System.out.print("减:"); ComplexMinus(c1, c2); System.out.print("乘:"); ComplexMultiply(c1, c2); System.out.print("除:"); ComplexDivide(c1, c2);//自己化简 }}2023-06-20 13:38:371
C++的问题:定义描述复数的结构体类型变量,并实现复数之间的加减法运算和输入输出
C++的问题:定义描述复数的结构体类型变量,并实现复数之间的加减法运算和输入输出我记得在书本上直接有一个案例的,直接引用模板即可解决。2023-06-20 13:38:561
C++用运算符重载实现复数的加减乘除输出结果不对
complex complex::operator /(complex &p) {complex n;double s=p.real*p.real+p.imag*p.imag;n.real=(real*p.real+imag*p.imag)/s;n.imag=(imag*p.real-real*p.imag)/s;return n;}这是复数除号运算符重载的代码,验证了下应该没问题。2023-06-20 13:39:362
设计一个复数类。从键盘输入2个复数,完成复数的加减运算,然后输出运算结果。
你的函数从头到尾都是结构体啊,你题目的要求是用类实现,补充你的函数是用结构体实现,你到底是要实现你题目的要求,还是补充你的函数呢?2023-06-20 13:39:542
为什么复数相乘的方法和向量相乘不一样? 加减法都一样啊。
因为复数虽然是表示为a+bi的形式,但它和向量确实不是一回事啊~~ 复数终归就是一个数啊~ 2维向量的两个维是等同的,而复数的1和i可以看成是不同的单位。而且i*i=-1,这一点是向量办不到的。 另外,比如说复数可以计算几次方,向量根本没这回事。2023-06-20 13:40:011
请问大学电工电子电流复数极坐标表达式的相加怎么做,就图中的加减为例,第一行怎么变第二行
①先将极坐标形式化成直角坐标形式:20∠60°=20cos60°+j20sin60°=10+j17.320∠-45°=10cos-45°+j10sin-45°=7.07-j7.07②再将直角坐标式的实部与实部相加,虚部与虚部相加。这样就得到第二行。2023-06-20 13:40:111
一个等式中,未知数是Z(复数),可以直接对其进行加减乘除吗?
bu ke yi2023-06-20 13:40:283
用java定义一个复数类,能实现加减,获得实部和虚部,将复数转换成字符串这几个方法
easy~~#include<iostream>#include<math.h>using namespace std;class Complex{private: double real; double image;public: Complex(double real,double image) { this-> real=real; this->image=image; } float modulo () void display() { cout<<"("<<real<<","<<image<<")"<<endl; }};int main(){cout<<"enter the real and the image"<<endl;double A,B;cout<<"输入数的实部:";cin>>A;cout<<endl<<"输入数的虚部:";cin>>B;Complex C (A,B);C.display();cout<<"此复数的模为:"<<C.modulo();}2023-06-20 13:40:382
如何用java程序编写输入两个复数,然后进行那个加减乘,最后显示结果。
按照你要的程序 这里有个 希望对你有用 谢谢public class Complex { private double realPart; private double imaginaryPart; public Complex(double a, double b) { this.realPart = a; this.imaginaryPart = b; } public Complex add(Complex a) { Complex result = new Complex(this.realPart + a.realPart, this.imaginaryPart + a.imaginaryPart);//(why?) return result; } public Complex decrease(Complex a) { Complex result = new Complex(this.realPart - a.realPart, this.imaginaryPart - a.imaginaryPart);//(why?) return result; } public Complex multiply(Complex a) { double newReal = this.realPart*a.realPart - this.imaginaryPart * a.imaginaryPart; double newImaginary = this.realPart*a.imaginaryPart + this.imaginaryPart * a.realPart; Complex result = new Complex(newReal, newImaginary); return result; } public Complex divide(Complex a) { Complex conjugate = new Complex(this.realPart, -this.imaginaryPart); Complex multiplication = conjugate.multiply(a); multiplication.realPart /= this.realPart*this.realPart + this.imaginaryPart * this.imaginaryPart; multiplication.imaginaryPart /= this.realPart*this.realPart + this.imaginaryPart * this.imaginaryPart; return multiplication; } public String toString() { String show = this.realPart + " + " + this.imaginaryPart + "i"; return show; } public static void main(String [] args) { Complex a = new Complex (2, 3); Complex b = new Complex (1,1); System.out.println((a.add(b)).toString()); System.out.println((a.decrease(b)).toString()); System.out.println((a.multiply(b)).toString()); System.out.println((a.divide(b)).toString()); } }2023-06-20 13:41:113