问题
I have a List of Strings. EXAMPLE_1, EXAMPLE_2, EXAMPLE_3 ... EXAMPLE_99 What is the best algorithm for sorting here?
Is it possible with a Collator? This is my current procedure, but I guess there could be a better way:
public class Example implements Comparable<Example> {
private final String id;
public getId() {
return id;
}
private Integer getIdNo() {
try {
return Integer.parseInt(getId().replaceAll("[\\D]", ""));
} catch (NumberFormatException e) {
return null;
}
}
@Override
public int compareTo(Example o) {
if ((getIdNo() == null && getIdNo() != null) || (getProductFeatureId_sizeNo() < o.getProductFeatureId_sizeNo())) {
return -1;
} else if (o.getIdNo() == null || getIdNo() > o.getIdNo()) {
return 1;
}
return 0;
}
}
回答1:
This is better alternative - AlphanumComparator.java
Copying the code for ready reference -
public class AlphanumComparator implements Comparator
{
private final boolean isDigit(char ch)
{
return ch >= 48 && ch <= 57;
}
/** Length of string is passed in for improved efficiency (only need to calculate it once) **/
private final String getChunk(String s, int slength, int marker)
{
StringBuilder chunk = new StringBuilder();
char c = s.charAt(marker);
chunk.append(c);
marker++;
if (isDigit(c))
{
while (marker < slength)
{
c = s.charAt(marker);
if (!isDigit(c))
break;
chunk.append(c);
marker++;
}
} else
{
while (marker < slength)
{
c = s.charAt(marker);
if (isDigit(c))
break;
chunk.append(c);
marker++;
}
}
return chunk.toString();
}
public int compare(Object o1, Object o2)
{
if (!(o1 instanceof String) || !(o2 instanceof String))
{
return 0;
}
String s1 = (String)o1;
String s2 = (String)o2;
int thisMarker = 0;
int thatMarker = 0;
int s1Length = s1.length();
int s2Length = s2.length();
while (thisMarker < s1Length && thatMarker < s2Length)
{
String thisChunk = getChunk(s1, s1Length, thisMarker);
thisMarker += thisChunk.length();
String thatChunk = getChunk(s2, s2Length, thatMarker);
thatMarker += thatChunk.length();
// If both chunks contain numeric characters, sort them numerically
int result = 0;
if (isDigit(thisChunk.charAt(0)) && isDigit(thatChunk.charAt(0)))
{
// Simple chunk comparison by length.
int thisChunkLength = thisChunk.length();
result = thisChunkLength - thatChunk.length();
// If equal, the first different number counts
if (result == 0)
{
for (int i = 0; i < thisChunkLength; i++)
{
result = thisChunk.charAt(i) - thatChunk.charAt(i);
if (result != 0)
{
return result;
}
}
}
} else
{
result = thisChunk.compareTo(thatChunk);
}
if (result != 0)
return result;
}
return s1Length - s2Length;
}
}
Note: you should generify this class if you're using java 1.5+
回答2:
private Integer getIdNo() {
try {
return Integer.parseInt(getId().replaceAll("[\\D]", ""));
} catch (NumberFormatException e) {
return 0;
}
}
@Override
public int compareTo(Example o) {
if(o == null) {
return 1;
}
return getIdNo().compareTo(o.getIdNo());
}
回答3:
To build on @Jeshuruns answer, you could skip all the number parsing like this:
@Override
public int compareTo(Example o) {
if (o == null) {
return 1;
}
if (getId().length() != o.getId().length() {
return (getId().length() - o.getId().length());
} else {
return getId().compareTo(o.getId());
}
}
回答4:
You can Write something like this.
public class Sorter implements Comparator<String>
{
public int compareTo(String str1,String str2)
{
if( str1 == null )
{
return -1;
}
if( str2 == null )
{
return 1;
}
int val1 = Integer.parseInt(this.split("_")[1]);
int val2 = Integer.parseInt(str.split("_")[1]);
if(val1<val2)
{
return -1;
}
else if(val1 > val2)
{
return 1;
}
else
{
return 0;
}
}
}
来源:https://stackoverflow.com/questions/11257531/java-sort-algorithm-string-with-number