关于String类中的compareTo(String anotherString);方法,接下来我就两种不同的情况通过源码进行简单分析。
按照字典顺序比较:
public int compareTo(String anotherString):
使用当前字符串内容和指定的anotherString按照字典顺序比较
public class StringDemo {
public static void main(String[] args) {
String s1 = "hello";
String s2 = "hel";
String s3 = "adf";
//前面字符相同时
System.out.println(s1.compareTo(s2));
//前面字符不相同时
System.out.println(s1.compareTo(s3));
}
}
当前面字符相同时
String s1 = "hello";
String s2 = "hel";
System.out.println(s1.compareTo(s2));
通过源码进行分析:
public int compareTo(String anotherString) {
int len1 = value.length; //字符串1的长度 len1=5
int len2 = anotherString.value.length; //字符串2的长度len=3
int lim = Math.min(len1, len2); //两个长度中的最小值 lim=3
char v1[] = value; //v1[]={'h','e','l','l','o'}
char v2[] = anotherString.value; //v2[]={'h','e','l'}
int k = 0; //k=0 k=1 k=2
while (k < lim) { // (k<3) 3=3 循环结束
char c1 = v1[k]; //char c1=v1[0]='h' c1='e' c1='l'
char c2 = v2[k]; //char c2=v2[0]='h' c2='e' c2='l'
if (c1 != c2) {
return c1 - c2;
}
k++; //k=1 k=2 k=3
}
return len1 - len2; //返回 return len1-len2=5-3=2
}
当前面字符不同时
String s1 = "hello";
String s3 = "adf";
System.out.println(s1.compareTo(s3));
public int compareTo(String anotherString) {
int len1 = value.length; //字符串1的长度 len1=5
int len2 = anotherString.value.length; //字符串2的长度len=3
int lim = Math.min(len1, len2); //两个长度中的最小值 lim=3
char v1[] = value; //v1[]={'h','e','l','l','o'}
char v2[] = anotherString.value; //v2[]={'a','d','f'}
int k = 0;
while (k < lim) { //当k=0时
char c1 = v1[k]; //c1=v1[0]='h'
char c2 = v2[k]; //c2=v2[0]='a'
if (c1 != c2) { //满足 (c1 != c2)
return c1 - c2; //return c1-c2='h'-'a' 由ASCII可得
} //'h'=104, 'a'=97
//'h'-'a'=104-97=7
k++;
}
return len1 - len2;
}
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