我正在使用以下抛出IllegalArgumentException的代码:
// Copyright (c) 2003-2014, Jodd Team (jodd.org). All Rights Reserved.
package jodd.util;
import java.util.Comparator;
/**
* Compares two strings in natural, alphabetical, way.
*/
public class NaturalOrderComparator<T> implements Comparator<T> {
protected final boolean ignoreCase;
public NaturalOrderComparator() {
ignoreCase = false;
}
public NaturalOrderComparator(boolean ignoreCase) {
this.ignoreCase = ignoreCase;
}
/**
* Compare digits at certain position in two strings.
* The longest run of digits wins. That aside, the greatest
* value wins.
*/
protected int compareDigits(String str1, int ndx1, String str2, int ndx2) {
int bias = 0;
while (true) {
char char1 = charAt(str1, ndx1);
char char2 = charAt(str2, ndx2);
boolean isDigitChar1 = CharUtil.isDigit(char1);
boolean isDigitChar2 = CharUtil.isDigit(char2);
if (!isDigitChar1 && !isDigitChar2) {
return bias;
}
if (!isDigitChar1) {
return -1;
}
if (!isDigitChar2) {
return 1;
}
if (char1 < char2) {
if (bias == 0) {
bias = -1;
}
} else if (char1 > char2) {
if (bias == 0) {
bias = 1;
}
} else if (char1 == 0 && char2 == 0) {
return bias;
}
ndx1++;
ndx2++;
}
}
public int compare(T o1, T o2) {
String str1 = o1.toString();
String str2 = o2.toString();
int ndx1 = 0, ndx2 = 0;
int zeroCount1, zeroCount2;
char char1, char2;
int result;
while (true) {
// only count the number of zeroes leading the last number compared
zeroCount1 = zeroCount2 = 0;
char1 = charAt(str1, ndx1);
char2 = charAt(str2, ndx2);
// skip over leading spaces or zeros in both strings
while (Character.isSpaceChar(char1) || char1 == '0') {
if (char1 == '0') {
zeroCount1++;
} else {
zeroCount1 = 0; // counts only last 0 prefixes, space char interrupts the array of 0s
}
ndx1++;
char1 = charAt(str1, ndx1);
}
while (Character.isSpaceChar(char2) || char2 == '0') {
if (char2 == '0') {
zeroCount2++;
} else {
zeroCount2 = 0;
}
ndx2++;
char2 = charAt(str2, ndx2);
}
// process digits
boolean isDigitChar1 = CharUtil.isDigit(char1);
boolean isDigitChar2 = CharUtil.isDigit(char2);
if (isDigitChar1 && isDigitChar2) {
result = compareDigits(str1, ndx1, str2, ndx2);
if (result != 0) {
// not equals, return
return result;
}
// equal numbers
if (zeroCount1 != zeroCount2) {
return zeroCount1 - zeroCount2;
}
}
if (char1 == 0 && char2 == 0) {
// the end; the strings are the same, maybe compare ascii?
return zeroCount1 - zeroCount2;
}
// check when one of the numbers is just zeros
if (isDigitChar1 || isDigitChar2) {
if (zeroCount1 != zeroCount2) {
return zeroCount2 - zeroCount1;
}
}
// checks when both numbers are zero
if (zeroCount1 != zeroCount2) {
return zeroCount1 - zeroCount2;
}
// compare chars
if (ignoreCase) {
char1 = Character.toLowerCase(char1);
char2 = Character.toLowerCase(char2);
}
if (char1 < char2) {
return -1;
}
if (char1 > char2) {
return 1;
}
ndx1++;
ndx2++;
}
}
/**
* Safe charAt.
*/
private static char charAt(String s, int i) {
if (i >= s.length()) {
return 0;
}
return s.charAt(i);
}
}
抛出异常:
java.lang.IllegalArgumentException: Comparison method violates its general contract!
at java.util.TimSort.mergeLo(TimSort.java:747)
at java.util.TimSort.mergeAt(TimSort.java:483)
at java.util.TimSort.mergeCollapse(TimSort.java:410)
at java.util.TimSort.sort(TimSort.java:214)
at java.util.TimSort.sort(TimSort.java:173)
at java.util.Arrays.sort(Arrays.java:659)
at java.util.Collections.sort(Collections.java:217)
这由以下函数调用:
@Override
public int compare(final T o1, final T o2) {
int result;
final MyObject obj1 = (MyObject) o1;
final MyObject obj2 = (MyObject) o2;
return result = compareStringId(obj1.getStringId(),obj2.getStringId());
}
private int compareStringId(final String Id1, final String Id2) {
return super.compare((T) Id1, (T) Id2);
}
它在我们的本地机器上工作正常,但它在生产上失败,我们无法连接到该机器以找出原因。你能帮忙吗
答案 0 :(得分:2)
问题在于Comparator的执行不正确。根据Java文档,Comparator必须是自反性和传递性的。在这种情况下,不保证转变。以前的Java 8不是一个大问题,即排序实现(MergeSort)不会抛出异常。 Java8将默认排序实现更改为TimSort,它对具有无效契约的比较器更加敏感,因此可能会抛出异常。
但是,这对解决您的问题没有多大帮助。如何检查同一班级here的最新版本。它已升级为支持比较器合同,而且它在某些边缘情况下效果更好,更不用说对重音的初始支持了。