• .Net/C#/VB/TSQL/Java 实现: 将天文数字转换成中文大写 (2000 年前的思路,打劫的,一点儿技术含量都没有)


    C# Code:
    /*
    .Net/C#/T-SQL/VB/Java 实现: 将天文数字转换成中文大写
    最近这里流行这个大写金额转换
    我看了几个,感觉思路都不如这个 2000 年左右用 VB6 写的:
    《VB6 之数据格式化对象使用技巧》
    http://search.csdn.net/Expert/topic/38/38970.xml?temp=.5078089
    <<精华: 将金额小写转大写的代码可转到亿位>>
    http://www.dev-club.com/club/bbs/showEssence.asp?id=20684&page=1
    思路非常简单,且没有任何位数限制!
    例如: 401,0103,1013
    读作: 肆佰零壹[亿]零壹佰零叁[万]壹仟零壹拾叁
    咱们先按每四位一组 从左到右,高位到低位分别"大声朗读"一下:
    "肆佰零壹" 单位是: "[亿]"
    "壹佰零叁" 单位是: "[万]"
    "壹仟零壹拾叁" 单位是 "" (相当于没有单位)
    很容易发现,每四位: 只有 千位,百位,十位,个位 这四种情况!
    我们把 [万],[亿] 当作单位就可以了!
    这就是规律了!简单吧!
    依据该思路,只用区区不到 50 行代码就可以搞定:
    只要你能够提供足够多的"单位"
    任何天文数字都可以正确转换!
    */
     
    namespace Microshaoft
    {
        using System;
     
        public class Util
        {
            public static string ConvertNumberToChinese(string x, string[] Nums, string[] Digits, string[] Units)
            {
                string S = ""; //返回值
                int p = 0; //字符位置指针
                int m = x.Length % 4; //取模
     
                // 四位一组得到组数
                int k = (m > 0 ? x.Length / 4 + 1 : x.Length / 4);
     
                // 外层循环在所有组中循环
                // 从左到右 高位到低位 四位一组 逐组处理
                // 每组最后加上一个单位: "[万亿]","[亿]","[万]"
                for (int i = k; i > 0; i--)
                {
                    int L = 4;
                    if (i == k && m != 0)
                    {
                        L = m;
                    }
                    // 得到一组四位数 最高位组有可能不足四位
                    string s = x.Substring(p, L);
                    int l = s.Length;
     
                    // 内层循环在该组中的每一位数上循环 从左到右 高位到低位
                    for (int j = 0; j < l; j++)
                    {
                        //处理改组中的每一位数加上所在位: "仟","佰","拾",""(个)
                        int n = Convert.ToInt32(s.Substring(j, 1));
                        if (n == 0)
                        {
                            if (j < l - 1
                                && Convert.ToInt32(s.Substring(j + 1, 1)) > 0 //后一位(右低)
                                && !S.EndsWith(Nums[n]))
                            {
                                S += Nums[n];
                            }
                        }
                        else
                        {
                            //处理 1013 一千零"十三", 1113 一千一百"一十三"
                            if (!(n == 1 && (S.EndsWith(Nums[0]) | S.Length == 0) && j == l - 2))
                            {
                                S += Nums[n];
                            }
                            S += Digits[l - j - 1];
                        }
                    }
                    p += L;
                    // 每组最后加上一个单位: [万],[亿] 等
                    if (i < k) //不是最高位的一组
                    {
                        if (Convert.ToInt32(s) != 0)
                        {
                            //如果所有 4 位不全是 0 则加上单位 [万],[亿] 等
                            S += Units[i - 1];
                        }
                    }
                    else
                    {
                        //处理最高位的一组,最后必须加上单位
                        S += Units[i - 1];
                    }
                }
                return S;
            }
     
            // 测试程序
            private static void Main()
            {
                //数字 数组
                string[] Nums = new string[] {"零", "壹", "贰", "叁", "肆", "伍", "陆", "柒", "捌", "玖"};
                //位 数组
                string[] Digits = new string[] {"", "拾", "佰", "仟"};
                //单位 数组
                string[] Units = new string[] {"", "[万]", "[亿]", "[万亿]"};
     
                Console.WriteLine(ConvertNumberToChinese("1100000013", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("2100000000", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("1000000000", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("40000000013", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("40000000001", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("400000010000", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("40101031013", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("40101031113", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("101140101031013", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("100000001000013", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("100000001000113", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("100011003", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("10010103", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("10110013", Nums, Digits, Units));
                Console.WriteLine(ConvertNumberToChinese("130000", Nums, Digits, Units));
                Console.ReadLine();
            }
        }
    }

    T-SQL UDF Code:
    create function ConvertNumberToChinese(@ varchar(100))
    returns varchar(100)
    as
    begin
    --declare @ varchar(100)
    --set @ = '101140101031013'
    declare @s varchar(100)
    set @s = ''
     
    declare @p integer
    set @p = 0
     
    declare @m integer
    set @m = len(@) % 4
     
    declare @k integer
    set @k = len(@)/4
     
    select @k = @k + 1
     where @m > 0
     
    declare @i integer
    set @i = @k
     
    while (@i > 0)
    begin --outer
       declare @L integer
       set @L = 4
     
       select @L = @m
        where @i = @k and @m != 0
     
       declare @ss varchar(4)
       set @ss = substring(@,@p+1,@L)
     
       declare @ll integer
       set @ll = len(@ss)
     
       --inner
       declare @j integer
       set @j = 0
     
       while (@j < @ll) --inner
       begin --inner
          declare @n integer
          set @n = cast(substring(@ss,@j+1,1) as integer)
     
          declare @num varchar(2)   
          select @num = Num
            from (
                  select 0 as id,'零' as Num
                  union all select 1,'壹'
                  union all select 2,'贰'
                  union all select 3,'叁'
                  union all select 4,'肆'
                  union all select 5,'伍'
                  union all select 6,'陆'
                  union all select 7,'柒'
                  union all select 8,'捌'
                  union all select 9,'玖'
                 ) Nums
          where id = @n
     
          if @n = 0
          begin
             select @s = @s + @num
              where @j < @ll - 1
                    and cast(substring(@ss,(@j+1)+1,1) as integer) > 0
                    and right(@ss,1) != @num
          end
          else
          begin
             declare @jj integer
             set @jj = 1
     
             select @jj = @j - 1
              where @j > 1
     
             select @s = @s + @num
              where not (@n = 1
                         and @j = @ll - 2
                         and (len(@s) = 0
                              or right(@s,1) = '零'
    /*
                                               (   select Num
                                                    from
                                                   (
                                                    select 0 as id,'零' as Num
                                                    union all select 1,'壹'
                                                    union all select 2,'贰'
                                                    union all select 3,'叁'
                                                    union all select 4,'肆'
                                                    union all select 5,'伍'
                                                    union all select 6,'陆'
                                                    union all select 7,'柒'
                                                    union all select 8,'捌'
                                                    union all select 9,'玖'
                                                   ) Nums
                                                   where id = 0
                                               )
    */
                                               )
                             )
     
             select @s = @s + digit
               from (
                     select 0 as id,'' as digit
                     union all select 1,'拾'
                     union all select 2,'佰'
                     union all select 3,'仟'
                    ) digits
              where id = @ll - @j - 1
     
          end
          set @j = @j + 1 --inner
       end --inner
       set @p = @p + @L
     
       declare @unit varchar(10)
       select @unit = Unit
         from (
               select 0 as id,'' as Unit
               union all select 1,'[万]'
               union all select 2,'[亿]'
               union all select 3,'[万亿]'
              ) Units
        where id = @i - 1
     
       if @i < @k
       begin
          select @s = @s + @unit
           where cast(@ss as integer) != 0
       end
       else
       begin
          set @s = @s + @unit
       end
       set @i = @i - 1 -- outer
    end --out
    return @s
    /*
    --Test:
    select dbo.ConvertNumberToChinese('1011111112101013')
    ,dbo.ConvertNumberToChinese('40000000001')
    ,dbo.ConvertNumberToChinese('400000010000')
    ,dbo.ConvertNumberToChinese('40101031013')
    ,dbo.ConvertNumberToChinese('101140101031013')
    ,dbo.ConvertNumberToChinese('100000001000003')
    ,dbo.ConvertNumberToChinese('10011003')
    ,dbo.ConvertNumberToChinese('10010103')
    ,dbo.ConvertNumberToChinese('10010013')
    */
    end


    VB6 Code:
    《VB6 之数据格式化对象使用技巧》
    http://search.csdn.net/Expert/topic/38/38970.xml?temp=.5078089
    <<精华: 将金额小写转大写的代码可转到亿位>>
    http://www.dev-club.com/club/bbs/showEssence.asp?id=20684&page=1

    VB.Net Code:
    可自行将 C# Code 编译成 EXE 后, Reflector 反编译获取 VB.Net/Delphi.Net/IL 等语言源码

    Java Code:
    public class Class1
    {
        public static String ConvertNumberToChinese(String x, String[] Nums, String[] Digits, String[] Units)
        {
            String S = ""; //返回值
            int p = 0; //字符位置指针
            int m = x.length() % 4; //取模
     
            // 四位一组得到组数
            int k = (m > 0 ? x.length() / 4 + 1 : x.length() / 4);
     
            // 外层循环在所有组中循环
            // 从左到右 高位到低位 四位一组 逐组处理
            // 每组最后加上一个单位: "[万亿]","[亿]","[万]"
            for (int i = k; i > 0; i--)
            {
                int L = 4;
                if (i == k && m != 0)
                {
                    L = m;
                }
                // 得到一组四位数 最高位组有可能不足四位
                String s = x.substring(p, p + L);
                int l = s.length();
     
                // 内层循环在该组中的每一位数上循环 从左到右 高位到低位
                for (int j = 0; j < l; j++)
                {
                    //处理改组中的每一位数加上所在位: "仟","佰","拾",""(个)
                    int n = java.lang.Integer.parseInt(s.substring(j, j+1));
                    if (n == 0)
                    {
                        if ((j < l - 1)
                            && (java.lang.Integer.parseInt(s.substring(j + 1, j + 1+ 1)) > 0) //后一位(右低)
                            && !S.endsWith(Nums[n]))
                        {
                            S += Nums[n];
                        }
                    }
                    else
                    {
                        //处理 1013 一千零"十三", 1113 一千一百"一十三"
                        if (!(n == 1 && (S.endsWith(Nums[0]) | S.length() == 0) && j == l - 2))
                        {
                            S += Nums[n];
                        }
                        S +=  Digits[l - j - 1];
                    }
                }
                p += L;
                // 每组最后加上一个单位: [万],[亿] 等
                if (i < k) //不是最高位的一组
                {
                    if (java.lang.Integer.parseInt(s) != 0)
                    {
                        //如果所有 4 位不全是 0 则加上单位 [万],[亿] 等
                        S += Units[i - 1];
                    }
                }
                else
                {
                    //处理最高位的一组,最后必须加上单位
                    S += Units[i - 1];
                }
            }
            return S;
        }
     
        // 测试程序
        public static void main(String[] args) throws Exception
        {
            //数字 数组
            String[] Nums = new String[] {"零", "壹", "贰", "叁", "肆", "伍", "陆", "柒", "捌", "玖"};
            //位 数组
            String[] Digits = new String[] {"", "拾", "佰", "仟"};
            //单位 数组
            String[] Units = new String[] {"", "[万]", "[亿]", "[万亿]"};
     
            System.out.println(ConvertNumberToChinese("111112100113", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("1100000000", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("1000000000", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("40000000013", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("40000000001", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("400000010000", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("40101031013", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("40101031113", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("101140101031013", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("100000001000013", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("100000001000113", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("100011003", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("10010103", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("10110013", Nums, Digits, Units));
            System.out.println(ConvertNumberToChinese("130000", Nums, Digits, Units));
     
            //System.in.read();
        }
    }

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  • 原文地址:https://www.cnblogs.com/Microshaoft/p/2485732.html
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