在C#中将整数转换为二进制

时间:2010-06-02 04:11:34

标签: c#

如何将整数转换为二进制表示?

我正在使用此代码:

String input = "8";
String output = Convert.ToInt32(input, 2).ToString();

但它引发了一个例外:

  

找不到任何可解析的数字

20 个答案:

答案 0 :(得分:287)

您的示例有一个表示为字符串的整数。假设你的整数实际上是一个整数,你想取整数并将其转换为二进制字符串。

int value = 8;
string binary = Convert.ToString(value, 2);

返回1000。

答案 1 :(得分:40)

从任何经典基础转换为C#中的任何基础

String number = "100";
int fromBase = 16;
int toBase = 10;

String result = Convert.ToString(Convert.ToInt32(number, fromBase), toBase);

// result == "256"

支持的碱基是2,8,10和16

答案 2 :(得分:30)

非常简单,无需额外代码,只需输入,转换和输出。

using System;

namespace _01.Decimal_to_Binary
{
    class DecimalToBinary
    {
        static void Main(string[] args)
        {
            Console.Write("Decimal: ");
            int decimalNumber = int.Parse(Console.ReadLine());

            int remainder;
            string result = string.Empty;
            while (decimalNumber > 0)
            {
                remainder = decimalNumber % 2;
                decimalNumber /= 2;
                result = remainder.ToString() + result;
            }
            Console.WriteLine("Binary:  {0}",result);
        }
    }
}

答案 3 :(得分:9)

http://zamirsblog.blogspot.com/2011/10/convert-decimal-to-binary-in-c.html

    public string DecimalToBinary(string data)
    {
        string result = string.Empty;
        int rem = 0;
        try
        {
            if (!IsNumeric(data))
                error = "Invalid Value - This is not a numeric value";
            else
            {
                int num = int.Parse(data);
                while (num > 0)
                {
                    rem = num % 2;
                    num = num / 2;
                    result = rem.ToString() + result;
                }
            }
        }
        catch (Exception ex)
        {
            error = ex.Message;
        }
        return result;
    }

答案 4 :(得分:8)

原始方式:

public string ToBinary(int n)
{
    if (n < 2) return n.ToString();

    var divisor = n / 2;
    var remainder = n % 2;

    return ToBinary(divisor) + remainder;
}

答案 5 :(得分:5)

Convert.ToInt32(string, base)不进行基本转换。它假定字符串在指定的基数中包含有效数字,并转换为基数10.

因此,您收到错误,因为“8”不是基数2中的有效数字。

String str = "1111";
String Ans = Convert.ToInt32(str, 2).ToString();

将显示15(1111 base 2 = 15 base 10)

String str = "f000";
String Ans = Convert.ToInt32(str, 16).ToString();

将显示61440

答案 6 :(得分:4)

using System;

class Program 
{
    static void Main(string[] args) {

        try {

            int i = (int) Convert.ToInt64(args[0]);
            Console.WriteLine("\n{0} converted to Binary is {1}\n", i, ToBinary(i));

        } catch(Exception e) {
            Console.WriteLine("\n{0}\n", e.Message);
        }
    }

    public static string ToBinary(Int64 Decimal) {
        // Declare a few variables we're going to need
        Int64 BinaryHolder;
        char[] BinaryArray;
        string BinaryResult = "";

        while (Decimal > 0) {
            BinaryHolder = Decimal % 2;
            BinaryResult += BinaryHolder;
            Decimal = Decimal / 2;
        }

        BinaryArray = BinaryResult.ToCharArray();
        Array.Reverse(BinaryArray);
        BinaryResult = new string(BinaryArray);

        return BinaryResult;
    }
}

答案 7 :(得分:4)

我知道这个答案看起来与此处的大多数答案类似,但我注意到它们中没有一个使用for循环。这个代码可以工作,并且可以被认为是简单的,在某种意义上它可以在没有任何特殊功能的情况下工作,比如带参数的ToString(),并且也不会太长。也许有些人更喜欢for-loops而不是while-loop,这可能适合他们。

public static string ByteConvert (int num)
{
    int[] p = new int[8];
    string pa = "";
    for (int ii = 0; ii<= 7;ii = ii +1)
    {
        p[7-ii] = num%2;
        num = num/2;
    }
    for (int ii = 0;ii <= 7; ii = ii + 1)
    {
        pa += p[ii].ToString();
    }
    return pa;
}

答案 8 :(得分:2)

class Program
{
    static void Main(string[] args)
    {
        var @decimal = 42;
        var binaryVal = ToBinary(@decimal, 2);

        var binary = "101010";
        var decimalVal = ToDecimal(binary, 2);

        Console.WriteLine("Binary value of decimal {0} is '{1}'", @decimal, binaryVal);
        Console.WriteLine("Decimal value of binary '{0}' is {1}", binary, decimalVal);
        Console.WriteLine();

        @decimal = 6;
        binaryVal = ToBinary(@decimal, 3);

        binary = "20";
        decimalVal = ToDecimal(binary, 3);

        Console.WriteLine("Base3 value of decimal {0} is '{1}'", @decimal, binaryVal);
        Console.WriteLine("Decimal value of base3 '{0}' is {1}", binary, decimalVal);
        Console.WriteLine();


        @decimal = 47;
        binaryVal = ToBinary(@decimal, 4);

        binary = "233";
        decimalVal = ToDecimal(binary, 4);

        Console.WriteLine("Base4 value of decimal {0} is '{1}'", @decimal, binaryVal);
        Console.WriteLine("Decimal value of base4 '{0}' is {1}", binary, decimalVal);
        Console.WriteLine();

        @decimal = 99;
        binaryVal = ToBinary(@decimal, 5);

        binary = "344";
        decimalVal = ToDecimal(binary, 5);

        Console.WriteLine("Base5 value of decimal {0} is '{1}'", @decimal, binaryVal);
        Console.WriteLine("Decimal value of base5 '{0}' is {1}", binary, decimalVal);
        Console.WriteLine();

        Console.WriteLine("And so forth.. excluding after base 10 (decimal) though :)");
        Console.WriteLine();


        @decimal = 16;
        binaryVal = ToBinary(@decimal, 11);

        binary = "b";
        decimalVal = ToDecimal(binary, 11);

        Console.WriteLine("Hexidecimal value of decimal {0} is '{1}'", @decimal, binaryVal);
        Console.WriteLine("Decimal value of Hexidecimal '{0}' is {1}", binary, decimalVal);
        Console.WriteLine();
        Console.WriteLine("Uh oh.. this aint right :( ... but let's cheat :P");
        Console.WriteLine();

        @decimal = 11;
        binaryVal = Convert.ToString(@decimal, 16);

        binary = "b";
        decimalVal = Convert.ToInt32(binary, 16);

        Console.WriteLine("Hexidecimal value of decimal {0} is '{1}'", @decimal, binaryVal);
        Console.WriteLine("Decimal value of Hexidecimal '{0}' is {1}", binary, decimalVal);

        Console.ReadLine();
    }


    static string ToBinary(decimal number, int @base)
    {
        var round = 0;
        var reverseBinary = string.Empty;

        while (number > 0)
        {
            var remainder = number % @base;
            reverseBinary += remainder;

            round = (int)(number / @base);
            number = round;
        }

        var binaryArray = reverseBinary.ToCharArray();
        Array.Reverse(binaryArray);

        var binary = new string(binaryArray);
        return binary;
    }

    static double ToDecimal(string binary, int @base)
    {
        var val = 0d;

        if (!binary.All(char.IsNumber))
            return 0d;

        for (int i = 0; i < binary.Length; i++)
        {
            var @char = Convert.ToDouble(binary[i].ToString());

            var pow = (binary.Length - 1) - i;
            val += Math.Pow(@base, pow) * @char;
        }

        return val;
    }
}

学习资料来源:

Everything you need to know about binary

including algorithm to convert decimal to binary

答案 9 :(得分:2)

    static void convertToBinary(int n)
    {
        Stack<int> stack = new Stack<int>();
        stack.Push(n);
        // step 1 : Push the element on the stack
        while (n > 1)
        {
            n = n / 2;
            stack.Push(n);
        }

        // step 2 : Pop the element and print the value
        foreach(var val in stack)
        {
            Console.Write(val % 2);
        }
     }

答案 10 :(得分:2)

使用EnumerableLINQ的另一种替代方案也是内联解决方案是:

int number = 25;

string binary = Enumerable.Range(0, (int) Math.Log(number, 2) + 1).Aggregate(string.Empty, (collected, bitshifts) => (number >> bitshifts) % 2 + collected);

答案 11 :(得分:2)

此函数将在C#中将整数转换为二进制:

public static string ToBinary(int N)
{
    int d = N;
    int q = -1;
    int r = -1;

    string binNumber = string.Empty;
    while (q != 1)
    {
        r = d % 2;
        q = d / 2;
        d = q;
        binNumber = r.ToString() + binNumber;
    }
    binNumber = q.ToString() + binNumber;
    return binNumber;
}

答案 12 :(得分:2)

class Program{

   static void Main(string[] args){

      try{

     int i = (int)Convert.ToInt64(args[0]);
         Console.WriteLine("\n{0} converted to Binary is {1}\n",i,ToBinary(i));

      }catch(Exception e){

         Console.WriteLine("\n{0}\n",e.Message);

      }

   }//end Main


        public static string ToBinary(Int64 Decimal)
        {
            // Declare a few variables we're going to need
            Int64 BinaryHolder;
            char[] BinaryArray;
            string BinaryResult = "";

            while (Decimal > 0)
            {
                BinaryHolder = Decimal % 2;
                BinaryResult += BinaryHolder;
                Decimal = Decimal / 2;
            }

            // The algoritm gives us the binary number in reverse order (mirrored)
            // We store it in an array so that we can reverse it back to normal
            BinaryArray = BinaryResult.ToCharArray();
            Array.Reverse(BinaryArray);
            BinaryResult = new string(BinaryArray);

            return BinaryResult;
        }


}//end class Program

答案 13 :(得分:1)

提供Convert.ToString(n, 2)的BCL是好的,但是如果你需要一个替代实现,它比BCL提供的更快。

以下自定义实现适用于所有整数(-ve和+ ve)。 原始来源取自https://davidsekar.com/algorithms/csharp-program-to-convert-decimal-to-binary

static string ToBinary(int n)
{
    int j = 0;
    char[] output = new char[32];

    if (n == 0)
        output[j++] = '0';
    else
    {
        int checkBit = 1 << 30;
        bool skipInitialZeros = true;
        // Check the sign bit separately, as 1<<31 will cause
        // +ve integer overflow
        if ((n & int.MinValue) == int.MinValue)
        {
            output[j++] = '1';
            skipInitialZeros = false;
        }

        for (int i = 0; i < 31; i++, checkBit >>= 1)
        {
            if ((n & checkBit) == 0)
            {
                if (skipInitialZeros)
                    continue;
                else
                    output[j++] = '0';
            }
            else
            {
                skipInitialZeros = false;
                output[j++] = '1';
            }
        }
    }

    return new string(output, 0, j);
}

以上代码是我的实现。所以,我很想听到任何反馈:)

答案 14 :(得分:1)

        static void Main(string[] args) 
        {
        Console.WriteLine("Enter number for converting to binary numerical system!");
        int num = Convert.ToInt32(Console.ReadLine());
        int[] arr = new int[16];

        //for positive integers
        if (num > 0)
        {

            for (int i = 0; i < 16; i++)
            {
                if (num > 0)
                {
                    if ((num % 2) == 0)
                    {
                        num = num / 2;
                        arr[16 - (i + 1)] = 0;
                    }
                    else if ((num % 2) != 0)
                    {
                        num = num / 2;
                        arr[16 - (i + 1)] = 1;
                    }
                }
            }
            for (int y = 0; y < 16; y++)
            {
                Console.Write(arr[y]);
            }
            Console.ReadLine();
        }

        //for negative integers
        else if (num < 0)
        {
            num = (num + 1) * -1;

            for (int i = 0; i < 16; i++)
            {
                if (num > 0)
                {
                    if ((num % 2) == 0)
                    {
                        num = num / 2;
                        arr[16 - (i + 1)] = 0;
                    }
                    else if ((num % 2) != 0)
                    {
                        num = num / 2;
                        arr[16 - (i + 1)] = 1;
                    }
                }
            }

            for (int y = 0; y < 16; y++)
            {
                if (arr[y] != 0)
                {
                    arr[y] = 0;
                }
                else
                {
                    arr[y] = 1;
                }
                Console.Write(arr[y]);
            }
            Console.ReadLine();
        }           
    }

答案 15 :(得分:1)

如果您希望可以从类内部的main方法调用的简洁函数,这可能会有所帮助。如果您需要数字而不是字符串,则可能仍需要调用int.Parse(toBinary(someint)),但是我发现此方法效果很好。另外,如果愿意,可以调整为使用for循环而不是do-while

    public static string toBinary(int base10)
    {
        string binary = "";
        do {
            binary = (base10 % 2) + binary;
            base10 /= 2;
        }
        while (base10 > 0);

        return binary;
    }

toBinary(10)返回字符串"1010"

答案 16 :(得分:1)

    // I use this function
    public static string ToBinary(long number)
    {
        string digit = Convert.ToString(number % 2);
        if (number >= 2)
        {
            long remaining = number / 2;
            string remainingString = ToBinary(remaining);
            return remainingString + digit;
        }
        return digit;
     }

答案 17 :(得分:0)

    int x=550;
    string s=" ";
    string y=" ";

    while (x>0)
    {

        s += x%2;
        x=x/2;
    }


    Console.WriteLine(Reverse(s));
}

public static string Reverse( string s )
{
    char[] charArray = s.ToCharArray();
    Array.Reverse( charArray );
    return new string( charArray );
}

答案 18 :(得分:0)

我在编码挑战中遇到了这个问题,您必须将32位十进制转换为二进制并找到子字符串的可能组合。

using System;
using System.Collections.Generic;
using System.Globalization;
using System.Numerics;
using System.IO;
using System.Linq;
using System.Text;
using System.Threading.Tasks;

namespace ConsoleApp2
{
    class Program
    {

        public static void Main()
        {
            int numberofinputs = int.Parse(Console.ReadLine());
            List<BigInteger> inputdecimal = new List<BigInteger>();
            List<string> outputBinary = new List<string>();


            for (int i = 0; i < numberofinputs; i++)
            {
                inputdecimal.Add(BigInteger.Parse(Console.ReadLine(), CultureInfo.InvariantCulture));
            }
            //processing begins 

            foreach (var n in inputdecimal)
            {
                string binary = (binaryconveter(n));
                subString(binary, binary.Length);
            }

            foreach (var item in outputBinary)
            {
                Console.WriteLine(item);
            }

            string binaryconveter(BigInteger n)
            {
                int i;
                StringBuilder output = new StringBuilder();

                for (i = 0; n > 0; i++)
                {
                    output = output.Append(n % 2);
                    n = n / 2;
                }

                return output.ToString();
            }

            void subString(string str, int n)
            {
                int zeroodds = 0;
                int oneodds = 0;

                for (int len = 1; len <= n; len++)
                {

                    for (int i = 0; i <= n - len; i++)
                    {
                        int j = i + len - 1;

                        string substring = "";
                        for (int k = i; k <= j; k++)
                        {
                            substring = String.Concat(substring, str[k]);

                        }
                        var resultofstringanalysis = stringanalysis(substring);
                        if (resultofstringanalysis.Equals("both are odd"))
                        {
                            ++zeroodds;
                            ++oneodds;
                        }
                        else if (resultofstringanalysis.Equals("zeroes are odd"))
                        {
                            ++zeroodds;
                        }
                        else if (resultofstringanalysis.Equals("ones are odd"))
                        {
                            ++oneodds;
                        }

                    }
                }
                string outputtest = String.Concat(zeroodds.ToString(), ' ', oneodds.ToString());
                outputBinary.Add(outputtest);
            }

            string stringanalysis(string str)
            {
                int n = str.Length;

                int nofZeros = 0;
                int nofOnes = 0;

                for (int i = 0; i < n; i++)
                {
                    if (str[i] == '0')
                    {
                        ++nofZeros;
                    }
                    if (str[i] == '1')
                    {
                        ++nofOnes;
                    }

                }
                if ((nofZeros != 0 && nofZeros % 2 != 0) && (nofOnes != 0 && nofOnes % 2 != 0))
                {
                    return "both are odd";
                }
                else if (nofZeros != 0 && nofZeros % 2 != 0)
                {
                    return "zeroes are odd";
                }
                else if (nofOnes != 0 && nofOnes % 2 != 0)
                {
                    return "ones are odd";
                }
                else
                {
                    return "nothing";
                }

            }
            Console.ReadKey();
        }

    }
}

答案 19 :(得分:0)

这是一个有趣的阅读,我正在寻找快速复制粘贴。 我知道我很久以前就用 bitmath 做了不同的事情。

这是我的看法。

// i had this as a extension method in a static class (this int inValue);

public static string ToBinaryString(int inValue)
{
    string result = "";
    for (int bitIndexToTest = 0; bitIndexToTest < 32; bitIndexToTest++)
        result += ((inValue & (1 << (bitIndexToTest))) > 0) ? '1' : '0';
    return result;
}

你可以在循环中使用一些模数来保持间距。

        // little bit of spacing
        if (((bitIndexToTest + 1) % spaceEvery) == 0)
            result += ' ';

您可能可以使用或传入一个字符串生成器并直接附加或索引以避免释放,并且还可以通过这种方式绕过 += 的使用;