C#和SQL实现的字符串相似度计算代码分享

C#实现:

复制代码 代码如下:

#region 计算字符串相似度
        ///
        /// 计算字符串相似度
        ///

        /// 字符串1
        /// 字符串2
        /// 相似度
        public static float Levenshtein(string str1, string str2)
        {
            //计算两个字符串的长度。 
            int len1 = str1.Length;
            int len2 = str2.Length;
            //比字符长度大一个空间 
            int[,] dif = new int[len1 + 1, len2 + 1];
            //赋初值,步骤B。 
            for (int a = 0; a <= len1; a++)
            {
                dif[a, 0] = a;
            }
            for (int a = 0; a <= len2; a++)
            {
                dif[0, a] = a;
            }
            //计算两个字符是否一样,计算左上的值 
            int temp;
            for (int i = 1; i <= len1; i++)
            {
                for (int j = 1; j <= len2; j++)
                {
                    if (str1.Substring(i - 1, 1) == str2.Substring(j - 1, 1))
                    {
                        temp = 0;
                    }
                    else
                    {
                        temp = 1;
                    }
                    //取三个值中最小的 
                    dif[i, j] = Min(dif[i - 1, j - 1] + temp, dif[i, j - 1] + 1, dif[i - 1, j] + 1);
                }
            }
            return 1 - (float)dif[len1, len2] / Math.Max(str1.Length, str2.Length);
        }
        #endregion

        //比较3个数字得到最小值 
        private static int Min(int i, int j, int k)
        {
            return i < j ? (i < k ? i : k) : (j < k ? j : k);
        }

SQL实现:

复制代码 代码如下:

CREATE   function get_semblance_By_2words
(
@word1 varchar(50),
@word2 varchar(50)  
)
returns nvarchar(4000)
as
begin
declare @re int
declare @maxLenth int
declare @i int,@l int
declare @tb1 table(child varchar(50))
declare @tb2 table(child varchar(50))
set @i=1
set @l=2
set @maxLenth=len(@word1)
if len(@word1) begin
set @maxLenth=len(@word2)
end
while @l<=len(@word1) 
begin
while @i begin
insert @tb1 (child) values( SUBSTRING(@word1,@i,@l) ) 
set @i=@i+1
end
set @i=1
set @l=@l+1
end
set @i=1
set @l=2
while @l<=len(@word2) 
begin
while @i begin
insert @tb2 (child) values( SUBSTRING(@word2,@i,@l) ) 
set @i=@i+1
end
set @i=1
set @l=@l+1
end  
select @re=isnull(max( len(a.child)*100/  @maxLenth ) ,0) from @tb1 a, @tb2 b where a.child=b.child
return @re
end
GO
 
--测试
--select dbo.get_semblance_By_2words('我是谁','我是谁啊') 
--75
--相似度

你可能感兴趣的:(C#和SQL实现的字符串相似度计算代码分享)