我目前正在努力解析类似于版本的String。
到目前为止v(\\d+)_(\\d+)(?:_(\\d+))?,我的正则表达式应该与以下格式的String匹配:v Version _ InterimVersion _ PatchVersion。我的目标是,最后一个匹配组(_ PatchVersion)是可选的。
我的问题是可选部分。字符串v1_00会给我3的a matcher.groupCount值。我本来希望groupCount为2。所以我猜我的正则表达式是错误的,或者是我在理解上有困难matcher.groupCount。
public static void main(final String[] args) {
final String versionString = "v1_00";
final String regex = "v(\\d+)_(\\d+)(?:_(\\d+))?";
final Matcher matcher = Pattern.compile(regex).matcher(apiVersionString);
if (matcher.matches()) {
final int version = Integer.parseInt(matcher.group(1));
final int interimVersion = Integer.parseInt(matcher.group(2));
int patchVersion = 0;
if (matcher.groupCount() == 3) {
patchVersion = Integer.parseInt(matcher.group(3));
}
// ...
}
}
正则表达式中的组数与捕获组数相同。如果你有3套转义括号在你的模式,会出现matcher.group(1),matcher.group(2)和matcher.group(3)。
如果组3不匹配,则其值为null。检查组3的空值:
if (matcher.group(3) != null) {
patchVersion = Integer.parseInt(matcher.group(3));
}
参见Java在线演示:
final String versionString = "v1_00";
final String regex = "v(\\d+)_(\\d+)(?:_(\\d+))?";
final Matcher matcher = Pattern.compile(regex).matcher(versionString);
if (matcher.matches()) {
final int version = Integer.parseInt(matcher.group(1));
final int interimVersion = Integer.parseInt(matcher.group(2));
int patchVersion = 0;
if (matcher.group(3) != null) {
patchVersion = Integer.parseInt(matcher.group(3));
}
System.out.println(version + " > " + interimVersion + " > " + patchVersion);
}
结果:1 > 0 > 0。
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