C#计算器使用字符串
C# Calculator using string
我需要在不使用任何库的情况下解决字符串行上的算术运算。我尝试了以下代码 -
string s = Console.ReadLine();
switch (s[1])
{
case s[1] == "+":
Console.WriteLine("Result: " + (s[0] + s[2]));
break;
case "-":
Console.WriteLine("Result: " + (s[0] - s[2]));
break;
case "*":
Console.WriteLine("Result: " + (s[0] * s[2]));
break;
case "/":
if (s[2] != 0)
Console.WriteLine("Result: " + (s[0] / s[2]));
else
Console.WriteLine("Indeterminate");
break;
}
Console.WriteLine(s);
但我不确定如何将字符串转换为字符。
有什么方法可以让它工作吗?我正在寻找任何建议或提示。
编译器告诉你的问题:
CS0029 Cannot implicitly convert type 'string' to 'char'
此错误发生在 case 语句处。它需要 char,而不是 string。 C# 中的字符串文字用双引号括起来,字符文字 (char) 用单引号括起来。
在第一个 case 语句中,您有 s[1] == "+"。那里不应该有比较(switch case 为你做的)
switch (s[1]) // s[1] is of type char
{
case '+':
Console.WriteLine("Result: " + (s[0] + s[2]));
break;
case '-':
Console.WriteLine("Result: " + (s[0] - s[2]));
break;
case '*':
Console.WriteLine("Result: " + (s[0] * s[2]));
break;
case '/':
if (s[2] != 0)
Console.WriteLine("Result: " + (s[0] / s[2]));
else
Console.WriteLine("Indeterminate");
break;
}
最后,您应该注意字符文字数字与它们的表示形式具有不同的数值。您应该解析字符以获取数值。例如:
var value1 = int.Parse(s[0].ToString());
var value2 = int.Parse(s[2].ToString());
接下来,您会发现您的计算器只支持 1 位数字,您可能需要预先添加一些输入验证,以避免您的程序在无效输入时崩溃。
正如 jeroenh 所提到的,问题是您在 switch 情况下将 char 与 string 进行比较,这是不允许的。你必须比较相似的类型。
而且,最好先将输入字符串解析为正确的类型,然后再进行比较和数学运算,而不是依赖字符串中字符的索引。这使您可以更灵活地处理用户输入,以防他们输入 multi-digit 数字,或在运算符周围添加空格。
例如:
// These are the allowed operators
var operators = new[] {'+', '-', '/', '*'};
// Get user input
string s = Console.ReadLine();
// Find the first index of an operator
var operatorIndex = operators.Any(s.Contains)
? operators.Select(op => s.IndexOf(op)).Where(index => index > -1).Min()
: -1;
// If no valid operators are present, give an error message to the user
if (operatorIndex < 0)
{
throw new ArgumentException(
$"Input doesn't contain a valid operator ({string.Join(", ", operators)}).");
}
// Based on the operator position, find the portions of the string that
// represent the first number, the operator, and the second number.
var firstNumber = s.Substring(0, operatorIndex);
var operatorChar = s[operatorIndex];
var secondNumber = s.Substring(operatorIndex + 1);
int operand1, operand2;
// Try to parse the first and second number to integers. If either
// of them are invalid, give an error message to the user
if (!int.TryParse(firstNumber, out operand1) ||
!int.TryParse(secondNumber, out operand2))
{
throw new ArgumentException(
$"Input doesn't contain a valid integer on each side of the operator.");
}
// Now we can swich on the operator character and do math with the integers
switch (operatorChar)
{
case '+':
Console.WriteLine("Result: " + (operand1 + operand2));
break;
case '-':
Console.WriteLine("Result: " + (operand1 - operand2));
break;
case '*':
Console.WriteLine("Result: " + (operand1 * operand2));
break;
case '/':
if (operand2 != 0)
Console.WriteLine("Result: " + (operand1 / operand2));
else
Console.WriteLine("Indeterminate");
break;
}
Console.Write("\nPress any key to exit...");
Console.ReadKey();
如果任务不排除 .Net 中可用的命名空间,您可以根据需要调整 Microsoft DotNet Documentation 中的这个精彩示例。
这是他们解释的代码片段:
String[] expressions = {
"16 + 21",
"31 * 3",
"28 / 3",
"42 - 18",
"12 * 7",
"2, 4, 6, 8" };
String pattern = @"(\d+)\s+([-+*/])\s+(\d+)";
foreach (var expression in expressions)
foreach (System.Text.RegularExpressions.Match m in System.Text.RegularExpressions.Regex.Matches(expression, pattern))
{
int value1 = Int32.Parse(m.Groups[1].Value);
int value2 = Int32.Parse(m.Groups[3].Value);
switch (m.Groups[2].Value)
{
case "+":
Console.WriteLine("{0} = {1}", m.Value, value1 + value2);
break;
case "-":
Console.WriteLine("{0} = {1}", m.Value, value1 - value2);
break;
case "*":
Console.WriteLine("{0} = {1}", m.Value, value1 * value2);
break;
case "/":
Console.WriteLine("{0} = {1:N2}", m.Value, value1 / value2);
break;
}
}
// The example displays the following output:
// 16 + 21 = 37
// 31 * 3 = 93
// 28 / 3 = 9.33
// 42 - 18 = 24
// 12 * 7 = 84
使用正则表达式,您可以“保存”原始输入字符串的各个部分,并将其分解为表达式的匹配值。
这是正则表达式作用的图像:
正则表达式将您的字符串分解为第一个数字的捕获组(可通过 m.Groups[1] 获得并保存到 value1),一个用于您的操作员的捕获组到第 2 组和一个捕获组将您的第二个号码分组到第 3 组。
采用 Console.ReadLine() 输入并使用正则表达式,您可以获得类似的结果:
using System.Text.RegularExpressions;
//...
string expression = Console.ReadLine()
String pattern = @"(\d+)\s+([-+*/])\s+(\d+)";
foreach (Match m in Regex.Matches(expression, pattern))
{
// As others have pointed out you need to parse your numbers:
int value1 = Int32.Parse(m.Groups[1].Value);
int value2 = Int32.Parse(m.Groups[3].Value);
// Now we switch case the operator in Group 2
switch (m.Groups[2].Value)
{
case "+":
Console.WriteLine("{0} = {1}", m.Value, value1 + value2);
break;
case "-":
Console.WriteLine("{0} = {1}", m.Value, value1 - value2);
break;
case "*":
Console.WriteLine("{0} = {1}", m.Value, value1 * value2);
break;
case "/":
Console.WriteLine("{0} = {1:N2}", m.Value, value1 / value2);
break;
}
}
我需要在不使用任何库的情况下解决字符串行上的算术运算。我尝试了以下代码 -
string s = Console.ReadLine();
switch (s[1])
{
case s[1] == "+":
Console.WriteLine("Result: " + (s[0] + s[2]));
break;
case "-":
Console.WriteLine("Result: " + (s[0] - s[2]));
break;
case "*":
Console.WriteLine("Result: " + (s[0] * s[2]));
break;
case "/":
if (s[2] != 0)
Console.WriteLine("Result: " + (s[0] / s[2]));
else
Console.WriteLine("Indeterminate");
break;
}
Console.WriteLine(s);
但我不确定如何将字符串转换为字符。
有什么方法可以让它工作吗?我正在寻找任何建议或提示。
编译器告诉你的问题:
CS0029 Cannot implicitly convert type 'string' to 'char'
此错误发生在 case 语句处。它需要 char,而不是 string。 C# 中的字符串文字用双引号括起来,字符文字 (char) 用单引号括起来。
在第一个 case 语句中,您有 s[1] == "+"。那里不应该有比较(switch case 为你做的)
switch (s[1]) // s[1] is of type char
{
case '+':
Console.WriteLine("Result: " + (s[0] + s[2]));
break;
case '-':
Console.WriteLine("Result: " + (s[0] - s[2]));
break;
case '*':
Console.WriteLine("Result: " + (s[0] * s[2]));
break;
case '/':
if (s[2] != 0)
Console.WriteLine("Result: " + (s[0] / s[2]));
else
Console.WriteLine("Indeterminate");
break;
}
最后,您应该注意字符文字数字与它们的表示形式具有不同的数值。您应该解析字符以获取数值。例如:
var value1 = int.Parse(s[0].ToString());
var value2 = int.Parse(s[2].ToString());
接下来,您会发现您的计算器只支持 1 位数字,您可能需要预先添加一些输入验证,以避免您的程序在无效输入时崩溃。
正如 jeroenh 所提到的,问题是您在 switch 情况下将 char 与 string 进行比较,这是不允许的。你必须比较相似的类型。
而且,最好先将输入字符串解析为正确的类型,然后再进行比较和数学运算,而不是依赖字符串中字符的索引。这使您可以更灵活地处理用户输入,以防他们输入 multi-digit 数字,或在运算符周围添加空格。
例如:
// These are the allowed operators
var operators = new[] {'+', '-', '/', '*'};
// Get user input
string s = Console.ReadLine();
// Find the first index of an operator
var operatorIndex = operators.Any(s.Contains)
? operators.Select(op => s.IndexOf(op)).Where(index => index > -1).Min()
: -1;
// If no valid operators are present, give an error message to the user
if (operatorIndex < 0)
{
throw new ArgumentException(
$"Input doesn't contain a valid operator ({string.Join(", ", operators)}).");
}
// Based on the operator position, find the portions of the string that
// represent the first number, the operator, and the second number.
var firstNumber = s.Substring(0, operatorIndex);
var operatorChar = s[operatorIndex];
var secondNumber = s.Substring(operatorIndex + 1);
int operand1, operand2;
// Try to parse the first and second number to integers. If either
// of them are invalid, give an error message to the user
if (!int.TryParse(firstNumber, out operand1) ||
!int.TryParse(secondNumber, out operand2))
{
throw new ArgumentException(
$"Input doesn't contain a valid integer on each side of the operator.");
}
// Now we can swich on the operator character and do math with the integers
switch (operatorChar)
{
case '+':
Console.WriteLine("Result: " + (operand1 + operand2));
break;
case '-':
Console.WriteLine("Result: " + (operand1 - operand2));
break;
case '*':
Console.WriteLine("Result: " + (operand1 * operand2));
break;
case '/':
if (operand2 != 0)
Console.WriteLine("Result: " + (operand1 / operand2));
else
Console.WriteLine("Indeterminate");
break;
}
Console.Write("\nPress any key to exit...");
Console.ReadKey();
如果任务不排除 .Net 中可用的命名空间,您可以根据需要调整 Microsoft DotNet Documentation 中的这个精彩示例。
这是他们解释的代码片段:
String[] expressions = {
"16 + 21",
"31 * 3",
"28 / 3",
"42 - 18",
"12 * 7",
"2, 4, 6, 8" };
String pattern = @"(\d+)\s+([-+*/])\s+(\d+)";
foreach (var expression in expressions)
foreach (System.Text.RegularExpressions.Match m in System.Text.RegularExpressions.Regex.Matches(expression, pattern))
{
int value1 = Int32.Parse(m.Groups[1].Value);
int value2 = Int32.Parse(m.Groups[3].Value);
switch (m.Groups[2].Value)
{
case "+":
Console.WriteLine("{0} = {1}", m.Value, value1 + value2);
break;
case "-":
Console.WriteLine("{0} = {1}", m.Value, value1 - value2);
break;
case "*":
Console.WriteLine("{0} = {1}", m.Value, value1 * value2);
break;
case "/":
Console.WriteLine("{0} = {1:N2}", m.Value, value1 / value2);
break;
}
}
// The example displays the following output:
// 16 + 21 = 37
// 31 * 3 = 93
// 28 / 3 = 9.33
// 42 - 18 = 24
// 12 * 7 = 84
使用正则表达式,您可以“保存”原始输入字符串的各个部分,并将其分解为表达式的匹配值。
这是正则表达式作用的图像:
正则表达式将您的字符串分解为第一个数字的捕获组(可通过 m.Groups[1] 获得并保存到 value1),一个用于您的操作员的捕获组到第 2 组和一个捕获组将您的第二个号码分组到第 3 组。
采用 Console.ReadLine() 输入并使用正则表达式,您可以获得类似的结果:
using System.Text.RegularExpressions;
//...
string expression = Console.ReadLine()
String pattern = @"(\d+)\s+([-+*/])\s+(\d+)";
foreach (Match m in Regex.Matches(expression, pattern))
{
// As others have pointed out you need to parse your numbers:
int value1 = Int32.Parse(m.Groups[1].Value);
int value2 = Int32.Parse(m.Groups[3].Value);
// Now we switch case the operator in Group 2
switch (m.Groups[2].Value)
{
case "+":
Console.WriteLine("{0} = {1}", m.Value, value1 + value2);
break;
case "-":
Console.WriteLine("{0} = {1}", m.Value, value1 - value2);
break;
case "*":
Console.WriteLine("{0} = {1}", m.Value, value1 * value2);
break;
case "/":
Console.WriteLine("{0} = {1:N2}", m.Value, value1 / value2);
break;
}
}