本文深入解析了String.split方法如何处理正则表达式,通过代码实例展示了其内部逻辑,并提供了中文博客写作建议。
今天遇到一个bug, 执行下面代码的时候输出为0.
String[] temp = "8.5".split(".");
System.out.println(temp.length); 百思不得其解,上stackoverflow查了一下,看到相似问题才发现split方法的输入是当做正则表达式来处理的,于是找到该方法的源码,贴在下面。
不难看出方法先判断regex是否是正则表达式的形式,如果不是就快速匹配;如果是则调用Pattern.compile来进行正则表达式的处理。
public String[] split(String regex, int limit) {
/* fastpath if the regex is a
(1)one-char String and this character is not one of the
RegEx's meta characters ".$|()[{^?*+\\", or
(2)two-char String and the first char is the backslash and
the second is not the ascii digit or ascii letter.
*/
char ch = 0;
if (((regex.value.length == 1 &&
".$|()[{^?*+\\".indexOf(ch = regex.charAt(0)) == -1) ||
(regex.length() == 2 &&
regex.charAt(0) == '\\' &&
(((ch = regex.charAt(1))-'0')|('9'-ch)) < 0 &&
((ch-'a')|('z'-ch)) < 0 &&
((ch-'A')|('Z'-ch)) < 0)) &&
(ch < Character.MIN_HIGH_SURROGATE ||
ch > Character.MAX_LOW_SURROGATE))
{
int off = 0;
int next = 0;
boolean limited = limit > 0;
ArrayList<String> list = new ArrayList<>();
while ((next = indexOf(ch, off)) != -1) {
if (!limited || list.size() < limit - 1) {
list.add(substring(off, next));
off = next + 1;
} else { // last one
//assert (list.size() == limit - 1);
list.add(substring(off, value.length));
off = value.length;
break;
}
}
// If no match was found, return this
if (off == 0)
return new String[]{this};
// Add remaining segment
if (!limited || list.size() < limit)
list.add(substring(off, value.length));
// Construct result
int resultSize = list.size();
if (limit == 0)
while (resultSize > 0 && list.get(resultSize - 1).length() == 0)
resultSize--;
String[] result = new String[resultSize];
return list.subList(0, resultSize).toArray(result);
}
return Pattern.compile(regex).split(this, limit);
}最后,在优快云更中文博客还是不太professional,近期着手开个人英文博客,一来锻炼英文写作能力,二来做一个很好的reference。 好好高技术
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