Lexicographic Order in Java

后端 未结 4 1314
迷失自我
迷失自我 2021-02-19 15:21

How is the lexicographic order defined in Java especially in reference to special characters like !, . and so on?

An examplary order can be fou

相关标签:
4条回答
  • 2021-02-19 15:34

    From the docs for String.compareTo:

    Compares two strings lexicographically. The comparison is based on the Unicode value of each character in the strings.

    and

    This is the definition of lexicographic ordering. If two strings are different, then either they have different characters at some index that is a valid index for both strings, or their lengths are different, or both. If they have different characters at one or more index positions, let k be the smallest such index; then the string whose character at position k has the smaller value, as determined by using the < operator, lexicographically precedes the other string. In this case, compareTo returns the difference of the two character values at position k in the two string [...]

    So basically, it treats each string like a sequence of 16-bit unsigned integers. No cultural awareness, no understanding of composite characters etc. If you want a more complex kind of sort, you should be looking at Collator.

    0 讨论(0)
  • 2021-02-19 15:36

    from the javadocs:

    The comparison is based on the Unicode value of each character in the strings.

    more detailed:

    This is the definition of lexicographic ordering. If two strings are different, then either they have different characters at some index that is a valid index for both strings, or their lengths are different, or both. If they have different characters at one or more index positions, let k be the smallest such index; then the string whose character at position k has the smaller value, as determined by using the < operator, lexicographically precedes the other string. In this case, compareTo returns the difference of the two character values at position k in the two string ...

    0 讨论(0)
  • 2021-02-19 15:43

    In Java it's based on the Unicode value of the string:

    http://download.oracle.com/javase/1.4.2/docs/api/java/lang/String.html#compareTo(java.lang.String)

    In Oracle, it will depend on the charset you are using on your database. You'll want it to be UTF-8 to have consistent behavior with Java.

    To check the character set:

    SQL> SELECT parameter, value FROM nls_database_parameters 
         WHERE parameter = 'NLS_CHARACTERSET';
    
    PARAMETER             VALUE 
    ------------------    ---------------------
    NLS_CHARACTERSET      UTF8
    

    If it's not UTF-8, then you can get different comparison behavior depending on which character set your Oracle database is using.

    0 讨论(0)
  • 2021-02-19 15:56

    Hope this helps!!

    Employee sorted based on the descending order of the score and if two different employee has same score, then we need to consider Employee name for sorting lexicographically.

    Employee class implementation: (Used Comparable interface for this case.)

    @Override
    public int compareTo(Object obj) {
        Employee emp = (Employee) obj;
    
        if(emp.getScore() > this.score) return 1;
        else if(emp.getScore() < this.score) return -1;
        else
            return emp.getEmpName().compareToIgnoreCase(this.empName) * -1;
    }
    
    0 讨论(0)
提交回复
热议问题