package com.jengine.kevinchwong;
import java.awt.BasicStroke;
import java.awt.Color;
import java.awt.Font;
import java.awt.Graphics2D;
import java.awt.GraphicsEnvironment;
import java.awt.RenderingHints;
import java.awt.geom.AffineTransform;
import java.awt.geom.Ellipse2D;
import com.threed.jpct.*;
import javax.swing.*;
public class SoftwareRenderTest {
private World world;
private FrameBuffer buffer;
private Object3D box;
private JFrame frame;
public static void main(String[] args) throws Exception {
new SoftwareRenderTest().loop();
}
public SoftwareRenderTest() throws Exception {
frame=new JFrame("Hello world");
frame.setSize(800, 600);
frame.setVisible(true);
frame.setDefaultCloseOperation(JFrame.HIDE_ON_CLOSE);
world = new World();
world.setAmbientLight(0, 255, 0);
TextureManager.getInstance().addTexture("box", new Texture("res/textures/box.jpg"));
box = Primitives.getBox(13f, 2f);
box.setTexture("box");
box.setEnvmapped(Object3D.ENVMAP_ENABLED);
box.build();
world.addObject(box);
world.getCamera().setPosition(50, -50, -5);
world.getCamera().lookAt(box.getTransformedCenter());
}
private void loop() throws Exception {
buffer = new FrameBuffer(800, 600, FrameBuffer.SAMPLINGMODE_NORMAL);
while (frame.isShowing()) {
box.rotateY(0.01f);
buffer.clear(java.awt.Color.BLUE);
world.renderScene(buffer);
world.draw(buffer);
buffer.update();
//GraphicsEnvironment ge = GraphicsEnvironment.getLocalGraphicsEnvironment();
// ge.getAllFonts();
RenderingHints rh =
new RenderingHints(RenderingHints.KEY_ANTIALIASING,
RenderingHints.VALUE_ANTIALIAS_ON);
rh.put(RenderingHints.KEY_RENDERING,
RenderingHints.VALUE_RENDER_QUALITY);
Graphics2D g2d = (Graphics2D) buffer.getGraphics();
g2d.setFont(new Font("Serif", Font.PLAIN, 13));
//g2d.setFont(new Font("Franklin Gothic Medium", Font.PLAIN, 33));
g2d.drawString("??Most relationships seem so transitory", 20, 130);
g2d.drawString("They're all good but not the permanent one", 20, 160);
g2d.drawString("Who doesn't long for someone to hold", 20, 190);
g2d.drawString("Who knows how to love you without being told", 20, 220);
g2d.drawString("Somebody tell me why I'm on my own", 20, 250);
g2d.drawString("If there's a soulmate for everyone", 20, 280);
Ellipse2D e = new Ellipse2D.Double(0, 0, 80, 130);
g2d.setStroke(new BasicStroke(1));
g2d.setColor(Color.gray);
for (double deg = 0; deg < 360; deg += 5) {
AffineTransform at =
AffineTransform.getTranslateInstance(400,300);
at.rotate(Math.toRadians(deg));
g2d.draw(at.createTransformedShape(e));
}
buffer.display(frame.getGraphics());
Thread.sleep(10);
}
buffer.disableRenderer(IRenderer.RENDERER_OPENGL);
buffer.dispose();
frame.dispose();
System.exit(0);
}
}
Friday, January 31, 2014
Software Rendering with JPCT and java2d together
Test for XML Import and MOXy + EclipseLink
package kcwobjectxmljsontest;
import javax.xml.bind.*;
import javax.xml.bind.annotation.*;
import java.io.FileOutputStream;
import java.util.ArrayList;
import java.util.List;
import javax.xml.transform.stream.StreamSource;
/**
*
* @author KCW
*/
public class kcwMOXytest {
@XmlRootElement
@XmlType(propOrder={"street", "city", "zip"})
@XmlAccessorType(XmlAccessType.FIELD)
static public class Address {
String street;
String city;
String zip;
}
@XmlRootElement
@XmlType(propOrder={"name","address"})
@XmlAccessorType(XmlAccessType.FIELD)
static public class Customer {
String name;
@XmlElement
Address address;
}
@XmlRootElement
static public class Customers {
@XmlElement(name="customer")
List<Customer> customers;
}
public static void main(String[] args) throws Exception {
JAXBContext jc = JAXBContext.newInstance(Customers.class);
System.out.println("---------------------");
System.out.println("Convert XML to Object");
System.out.println("---------------------");
Unmarshaller unmarshaller = jc.createUnmarshaller();
StreamSource xml = new StreamSource("data/customers.xml");
// Customers customers = (Customers) unmarshaller.unmarshal(xml);
Customers doc= (Customers) unmarshaller.unmarshal(xml);
// System.out.println("customers.test="+customers.test);
System.out.println("customerlist.customers.="+doc.customers.size());
int i=0;
for(Customer s : doc.customers) {
System.out.println("doc.customers.get("+i+").name="+s.name);
System.out.println("doc.customers.get("+i+").address.city="+s.address.city);
System.out.println("doc.customers.get("+i+").address.street="+s.address.street);
System.out.println("doc.customers.get("+i+").address.zip="+s.address.zip);
System.out.println("---------------------");
i++;
}
System.out.println("");
System.out.println("");
System.out.println("---------------------");
System.out.println("Convert Object to XML");
System.out.println("---------------------");
Marshaller marshaller = jc.createMarshaller();
marshaller.setProperty(Marshaller.JAXB_FORMATTED_OUTPUT, true);
marshaller.marshal(doc, System.out);
FileOutputStream fos= new FileOutputStream("data/test-list.xml");
marshaller.marshal(doc, fos);
}
}
//================================================
// Customers.xml
<?xml version="1.0" encoding="UTF-8"?>
<customers>
<customer>
<name>Jane Doe</name>
<address>
<zip>19873</zip>
<street>1 A Street</street>
<city>Any Town</city>
</address>
</customer>
<customer>
<name>Jane Doe 2</name>
<address>
<zip>19872</zip>
<street>2 A Street</street>
<city>Any Town Area</city>
</address>
</customer>
</customers>
Test for XML and perst.jar
package kcwxmltest;
import org.garret.perst.*;
import java.io.*;
public class TestXML {
static class Record extends Persistent {
String strKey;
long intKey;
double realKey;
};
static class Indices extends Persistent {
Index strIndex;
FieldIndex intIndex;
FieldIndex compoundIndex;
}
final static int nRecords = 100000;
final static int pagePoolSize = 32*1024*1024;
static public void main(String[] args) throws Exception {
Storage db = StorageFactory.getInstance().createStorage();
for (int i = 0; i < args.length; i++) {
if ("altbtree".equals(args[i])) {
db.setProperty("perst.alternative.btree", Boolean.TRUE);
}
}
db.open("data/test1.dbs", pagePoolSize);
Indices root = (Indices)db.getRoot();
if (root == null) {
root = new Indices();
root.strIndex = db.createIndex(String.class, true);
root.intIndex = db.createFieldIndex(Record.class, "intKey", true);
root.compoundIndex = db.createFieldIndex(Record.class, new String[]{"strKey", "intKey"}, true);
db.setRoot(root);
}
FieldIndex intIndex = root.intIndex;
FieldIndex compoundIndex = root.compoundIndex;
Index strIndex = root.strIndex;
long start = System.currentTimeMillis();
long key = 1999;
int i;
for (i = 0; i < nRecords; i++) {
Record rec = new Record();
key = (3141592621L*key + 2718281829L) % 1000000007L;
rec.intKey = key;
rec.strKey = Long.toString(key);
rec.realKey = (double)key;
intIndex.put(rec);
strIndex.put(new Key(rec.strKey), rec);
compoundIndex.put(rec);
}
db.commit();
System.out.println("Elapsed time for inserting " + nRecords + " records: "
+ (System.currentTimeMillis() - start) + " milliseconds");
start = System.currentTimeMillis();
Writer writer = new BufferedWriter(new FileWriter("data/test.xml"));
db.exportXML(writer);
writer.close();
System.out.println("Elapsed time for XML export " + (System.currentTimeMillis() - start) + " milliseconds");
db.close();
db.open("data/test2.dbs", pagePoolSize);
start = System.currentTimeMillis();
Reader reader = new BufferedReader(new FileReader("data/test.xml"));
db.importXML(reader);
reader.close();
System.out.println("Elapsed time for XML import " + (System.currentTimeMillis() - start) + " milliseconds");
root = (Indices)db.getRoot();
intIndex = root.intIndex;
strIndex = root.strIndex;
compoundIndex = root.compoundIndex;
start = System.currentTimeMillis();
key = 1999;
for (i = 0; i < nRecords; i++) {
key = (3141592621L*key + 2718281829L) % 1000000007L;
String strKey = Long.toString(key);
Record rec1 = (Record)intIndex.get(new Key(key));
Record rec2 = (Record)strIndex.get(new Key(strKey));
Record rec3 = (Record)compoundIndex.get(new Key(strKey, new Long(key)));
Assert.that(rec1 != null);
Assert.that(rec1 == rec2);
Assert.that(rec1 == rec3);
Assert.that(rec1.intKey == key);
Assert.that(rec1.realKey == (double)key);
Assert.that(strKey.equals(rec1.strKey));
}
System.out.println("Elapsed time for performing " + nRecords*2 + " index searches: "
+ (System.currentTimeMillis() - start) + " milliseconds");
db.close();
}
}
// ==============================================
// Sample data not provided.
Test for the access to DB2
package kcwdb2test;
import com.ibm.as400.access.AS400JDBCConnectionPoolDataSource;
import java.sql.Connection;
import java.sql.PreparedStatement;
import java.sql.ResultSet;
import java.sql.SQLException;
import java.sql.Statement;
public class KcwDB2TestDev {
public static void main(String[] args) {
Connection dbConnection = null;
String cipher="AES";
String cipherdomain="INTRANET";
String host="1.2.3.4";
String dblibrary="WWWDLIB";
String login="not-encoded";
String user="kcw";
String password="12345678";
try {
AS400JDBCConnectionPoolDataSource datasource = new AS400JDBCConnectionPoolDataSource(host, user, password);
datasource.setLibraries(dblibrary);
dbConnection = datasource.getConnection();
// Sample 1
String query = "SELECT DMNDMCDEC,USRFINAMC,USRLANAMC,USREMPIDN,USRUSIDNN FROM ASWDLIB.WWUSR10 where DMNDMCDEC='INTRANET'";
Statement statement = dbConnection.createStatement();
ResultSet resultSet = statement.executeQuery(query);
while(resultSet.next()) {
System.out.println(
resultSet.getString(1) + " " +
resultSet.getString(2) + " " +
resultSet.getString(3) + " " +
resultSet.getInt(4) + " " +
resultSet.getInt(5));
}
statement.close();
// Sample 2
PreparedStatement statement2 = dbConnection.prepareStatement(
"SELECT DMNDMCDEC,USRFINAMC,USRLANAMC,USREMPIDN,USRUSIDNN FROM ASWDLIB.WWUSR10 where DMNDMCDEC=?"
);
statement2.setString(1, "INTRANET");
ResultSet resultSet2 = statement2.executeQuery();
while(resultSet2.next()) {
System.out.println(
resultSet2.getString(1) + " " +
resultSet2.getString(2) + " " +
resultSet2.getString(3) + " " +
resultSet2.getInt(4) + " " +
resultSet2.getInt(5));
}
statement2.close();
dbConnection.close();
} catch (SQLException sqle) {
sqle.printStackTrace();
}
}
}
Leetcode: triangle
public class Solution {
public int minimumTotal(ArrayList<ArrayList<Integer>> triangle) {
int n1=triangle.size();
int n2=triangle.get(n1-1).size();
int[] sum=new int[n1+1];
// Bottom Up
for(int i=n1;i>0;i--)
{
int[] newsum=new int[n1+1];
for(int j=0;j<i;j++)
{
int ans1=sum[j];
int ans2=sum[j+1];
int ans=(ans1<ans2)?ans1:ans2;
newsum[j]=triangle.get(i-1).get(j)+ans;
}
sum=newsum;
}
return sum[0];
// Top down
/*
for(int i=0;i<n1;i++)
{
int[] newsum=new int[n2];
for(int j=0;j<=i;j++)
{
int x=triangle.get(i).get(j);
int ans1=sum[j]+x;
int ans2=Integer.MAX_VALUE;
if(j>0)ans2=sum[j-1]+x;
if(j==0)newsum[j]=ans1;
else if(j==i)newsum[j]=ans2;
else newsum[j]=(ans1<ans2)?ans1:ans2;
}
sum=newsum;
}
int m=Integer.MAX_VALUE;
for(int i=0;i<n2;i++)
if(sum[i]<m)m=sum[i];
return m;
*/
}
}
public int minimumTotal(ArrayList<ArrayList<Integer>> triangle) {
int n1=triangle.size();
int n2=triangle.get(n1-1).size();
int[] sum=new int[n1+1];
// Bottom Up
for(int i=n1;i>0;i--)
{
int[] newsum=new int[n1+1];
for(int j=0;j<i;j++)
{
int ans1=sum[j];
int ans2=sum[j+1];
int ans=(ans1<ans2)?ans1:ans2;
newsum[j]=triangle.get(i-1).get(j)+ans;
}
sum=newsum;
}
return sum[0];
// Top down
/*
for(int i=0;i<n1;i++)
{
int[] newsum=new int[n2];
for(int j=0;j<=i;j++)
{
int x=triangle.get(i).get(j);
int ans1=sum[j]+x;
int ans2=Integer.MAX_VALUE;
if(j>0)ans2=sum[j-1]+x;
if(j==0)newsum[j]=ans1;
else if(j==i)newsum[j]=ans2;
else newsum[j]=(ans1<ans2)?ans1:ans2;
}
sum=newsum;
}
int m=Integer.MAX_VALUE;
for(int i=0;i<n2;i++)
if(sum[i]<m)m=sum[i];
return m;
*/
}
}
Thursday, January 30, 2014
LeetCode : Search insert position
It is easy to do by O(N)...
But this solution is by O(logN)
public class Solution {
public int searchInsert(int[] A, int target) {
int f=0;
int l=A.length;
int m;
while(true)
{
m=(f+l)/2;
if(m>0&&m<A.length)
{ if(target>A[m-1]&&target<=A[m]) return m;}
else if(m==0)
{
if(target<=A[m]) return m;
}
else
{ if(target>A[m-1]) return m;}
if(target>A[m])
f=m+1;
else if(target<A[m])
l=m;
}
}
}
But this solution is by O(logN)
public class Solution {
public int searchInsert(int[] A, int target) {
int f=0;
int l=A.length;
int m;
while(true)
{
m=(f+l)/2;
if(m>0&&m<A.length)
{ if(target>A[m-1]&&target<=A[m]) return m;}
else if(m==0)
{
if(target<=A[m]) return m;
}
else
{ if(target>A[m-1]) return m;}
if(target>A[m])
f=m+1;
else if(target<A[m])
l=m;
}
}
}
Tuesday, January 28, 2014
Leet Code: search in rotated sorted array with duplicate...
Search in Rotated Sorted Array II
What if duplicates are allowed?
Would this affect the run-time complexity? How and why?
Write a function to determine if a given target is in the array.
This one is not difficult to find the trick,
but if you think in a wrong way, you will use a lot of effort to ignore duplicate items..
* If you just think on the index, you don't need recursive...
* In each loop, change l and f in order to find a right region to go on searching...
public class Solution {
public boolean search(int[] A, int target) {
int f=0;
int l=A.length-1;
while(l>=f)
{
int m=(f+l)/2;
if(A[m]==target)
return true;
if(A[f]<A[m])
{
if(target>=A[f]&&target<=A[m])
l=m-1;
else
f=m;
}
else if(A[f]>A[m])
{
if(target>=A[m]&&target<=A[l])
f=m+1;
else
l=m;
}
else
f++; // Trick: A[f]==A[m])
}
return false;
}
}
LeetCode : Combination
public class Solution {
public void reorg(int [] p, int x, int k)
{
int c=p[x]+1;
for(int i=x+1;i<k;i++,c++)
p[i]=c;
return;
}
public ArrayList<ArrayList<Integer>> combine(int n, int k) {
int p[]=new int[k];
p[0]=1;
reorg(p,0,k);
int bound=n-k+2;
ArrayList<ArrayList<Integer>> all=new ArrayList<ArrayList<Integer>>();
int kk=k-1;
while(p[0]<bound&&kk>=0)
{
ArrayList<Integer> al=new ArrayList<Integer>();
for(int i=0;i<k;i++)
al.add(i,p[i]);
all.add(al);
kk=k-1;
boolean reorgflag=false;
while(kk>=0)
{
p[kk]++;
if(reorgflag){
reorg(p,kk,k);
reorgflag=false;
}
if(p[kk]>n-k+1+kk)
{
kk--;
reorgflag=true;
}
else break;
}
}
return all;
}
}
public void reorg(int [] p, int x, int k)
{
int c=p[x]+1;
for(int i=x+1;i<k;i++,c++)
p[i]=c;
return;
}
public ArrayList<ArrayList<Integer>> combine(int n, int k) {
int p[]=new int[k];
p[0]=1;
reorg(p,0,k);
int bound=n-k+2;
ArrayList<ArrayList<Integer>> all=new ArrayList<ArrayList<Integer>>();
int kk=k-1;
while(p[0]<bound&&kk>=0)
{
ArrayList<Integer> al=new ArrayList<Integer>();
for(int i=0;i<k;i++)
al.add(i,p[i]);
all.add(al);
kk=k-1;
boolean reorgflag=false;
while(kk>=0)
{
p[kk]++;
if(reorgflag){
reorg(p,kk,k);
reorgflag=false;
}
if(p[kk]>n-k+1+kk)
{
kk--;
reorgflag=true;
}
else break;
}
}
return all;
}
}
Monday, January 27, 2014
LeetCode : Binary Tree Maximum Path Sum
Given a binary tree, find the maximum path sum.
The path may start and end at any node in the tree.
**通常找max的題目, 元素中有負值的話,計算cost時,千萬不要把負值的部份也加進去。因為答案是可以選擇性不包括負值部份。
/**
* Definition for binary tree
* public class TreeNode {
* int val;
* TreeNode left;
* TreeNode right;
* TreeNode(int x) { val = x; }
* }
*/
public class Solution {
public int calcmaxbranch(TreeNode root,HashMap<TreeNode,Integer> maxbranch)
{
if(root==null)return 0;
int llen=calcmaxbranch(root.left,maxbranch);
int rlen=calcmaxbranch(root.right,maxbranch);
int ext=(llen>rlen)?llen:rlen;
int mylen=root.val+(ext>0)?ext:0;
maxbranch.put(root,mylen);
return mylen;
}
public int findMaxPathSum(TreeNode root,HashMap<TreeNode,Integer> maxbranch)
{
if(root==null)return 0;
int sum2=Integer.MIN_VALUE;
int sum3=Integer.MIN_VALUE;
int sum11=0;
if(root.left!=null)
{
sum11=maxbranch.get(root.left);
sum2=findMaxPathSum(root.left,maxbranch);
}
int sum12=0;
if(root.right!=null)
{
sum12=maxbranch.get(root.right);
sum3=findMaxPathSum(root.right,maxbranch);
}
int sum1=root.val;
if(sum11>0)sum1+=sum11;
if(sum12>0)sum1+=sum12;
int max=sum1;
if(sum2>max)max=sum2;
if(sum3>max)max=sum3;
return max;
}
public int maxPathSum(TreeNode root) {
HashMap<TreeNode,Integer> maxbranch=new HashMap<TreeNode,Integer>();
calcmaxbranch(root,maxbranch);
int res=findMaxPathSum(root,maxbranch);
return res;
}
}
Saturday, January 25, 2014
LeetCode: Single Number 2
Given an array of integers, every element appears three times except for one. Find that single one.
Note:
Your algorithm should have a linear runtime complexity. Could you implement it without using extra memory?public class Solution {
public int singleNumber(int[] A) {
int N=64;
int countbit[]=new int[N];
int countbitN[]=new int[N];
int res=0;
int resN=0;
for(int i=0;i<A.length;i++)
{
int n=A[i];
if(n>=0)
for(int j=0;j<N;j++)
countbit[j]+=((n&(1<<j))>0)?1:0;
else
for(int j=0;j<N;j++)
countbitN[j]+=((-(1+n)&(1<<j))>0)?1:0;
}
for(int j=0;j<64;j++)
{
if(countbit[j]%3>0)res|=(1<<j);
if(countbitN[j]%3>0)resN|=(1<<j);
}
return (resN>0)?-(resN+1):res;
}
}
LeetCode : anagrams
public class Solution {
public String hashcoding(String s){
int count[]=new int[26];
StringBuffer sb=new StringBuffer("H");
for(int i=0;i<s.length();i++)
count[s.charAt(i)-'a']++;
for(int i=0;i<26;i++)
if(count[i]>0)sb.append(""+(i+(int)'a')+count[i]);
return sb.toString();
}
public ArrayList<String> anagrams(String[] strs) {
HashMap<String,ArrayList<String>> hm= new HashMap<String,ArrayList<String>>();
ArrayList<String> rl=new ArrayList<String>();
int ecount=0;
for(int i=0;i<strs.length;i++)
{
String hc=hashcoding(strs[i]);
ArrayList<String> al=hm.get(hc);
if(al==null)al=new ArrayList<String>();
al.add(new String(strs[i]));
if(hm.get(hc)==null)hm.put(hc,al);
}
for(ArrayList<String> al:hm.values())
{
if(al.size()>1)rl.addAll(al);
}
return rl;
}
}
public String hashcoding(String s){
int count[]=new int[26];
StringBuffer sb=new StringBuffer("H");
for(int i=0;i<s.length();i++)
count[s.charAt(i)-'a']++;
for(int i=0;i<26;i++)
if(count[i]>0)sb.append(""+(i+(int)'a')+count[i]);
return sb.toString();
}
public ArrayList<String> anagrams(String[] strs) {
HashMap<String,ArrayList<String>> hm= new HashMap<String,ArrayList<String>>();
ArrayList<String> rl=new ArrayList<String>();
int ecount=0;
for(int i=0;i<strs.length;i++)
{
String hc=hashcoding(strs[i]);
ArrayList<String> al=hm.get(hc);
if(al==null)al=new ArrayList<String>();
al.add(new String(strs[i]));
if(hm.get(hc)==null)hm.put(hc,al);
}
for(ArrayList<String> al:hm.values())
{
if(al.size()>1)rl.addAll(al);
}
return rl;
}
}
LeetCode:palindrome
Determine whether an integer is a palindrome. Do this without extra space.
public class Solution {
public boolean isPalindrome(int x) {
if(x<0) return false;
if(x<10) return true;
int l=(int)Math.log10(x)+1;
for(int i=l/2;i>=1;i--)
{
int r100=(int)Math.pow(10,i);
int l100=(int)Math.pow(10,l-i);
int rc=x%r100;
int lc=x/l100;
int rcl=(int)Math.log10(rc)+1;
int lcl=(int)Math.log10(lc)+1;
if(lcl>1)
{
if((rc<10)&&(lc%((int)Math.pow(10,lcl))==0))
if(rc%10==lc/(int)Math.pow(10,lcl))
{
if(l-rc-lc==0)
return true;
else
return isPalindrome((x/r100)%10);
}
}
else if(lcl==1&&rc==lc)
if(l-rc-lc==0)
return true;
else
return isPalindrome((x/r100)%10);
}
return false;
}
}
public class Solution {
public boolean isPalindrome(int x) {
if(x<0) return false;
if(x<10) return true;
int l=(int)Math.log10(x)+1;
for(int i=l/2;i>=1;i--)
{
int r100=(int)Math.pow(10,i);
int l100=(int)Math.pow(10,l-i);
int rc=x%r100;
int lc=x/l100;
int rcl=(int)Math.log10(rc)+1;
int lcl=(int)Math.log10(lc)+1;
if(lcl>1)
{
if((rc<10)&&(lc%((int)Math.pow(10,lcl))==0))
if(rc%10==lc/(int)Math.pow(10,lcl))
{
if(l-rc-lc==0)
return true;
else
return isPalindrome((x/r100)%10);
}
}
else if(lcl==1&&rc==lc)
if(l-rc-lc==0)
return true;
else
return isPalindrome((x/r100)%10);
}
return false;
}
}
Thursday, January 23, 2014
LeetCode : regular expression
'.' Matches any single character.
'*' Matches zero or more of the preceding element.
The matching should cover the entire input string (not partial).
The function prototype should be:
bool isMatch(const char *s, const char *p)
Some examples:
isMatch("aa","a") → false
isMatch("aa","aa") → true
isMatch("aaa","aa") → false
isMatch("aa", "a*") → true
isMatch("aa", ".*") → true
isMatch("ab", ".*") → true
isMatch("aab", "c*a*b") → true
public class Solution {
public boolean isMatch(String s, String p) {
// p=.* s=c ==> recursive
// p=. s=c ==> p++, s++
// p=x* s=c => p+=2
// s=x => s++
// p=x s=c => not
// s=x => p++, s++
int sl=s.length();
int pl=p.length();
char p1,p2;
char s1;
if(sl==0)
{
if(pl==0)return true; // "":"" => T
if(pl>1)
{
p1=p.charAt(0);
p2=p.charAt(1); // "":"a*" => T
if(pl==2) // "":".*" => T
{
return (p2=='*'&&(p1=='.'||(p1>='a'&&p1<='z')||(p1>='A'&&p1<='Z')));
}
else if((p1>='a'&&p1<='z')||(p1>='A'&&p1<='Z')||p1=='.')
{
if(p2=='*')
return isMatch(s,new String(p.substring(2))); // "":"a*??" => recursive
else
return false; // "":"a" => F
}
}
return false;
}
if(sl>0&&pl==0) return false; // "a...":"" => F
p1=p.charAt(0);
s1=s.charAt(0);
if(pl==1)
{
if(p1=='.'||((p1==s1)&&((p1>='a'&&p1<='z')||(p1>='A'&&p1<='Z'))))
return isMatch(new String(s.substring(1)),""); //"abc...":"?" => recursive
else
return false;
}
p2=p.charAt(1);
if((p1>='a'&&p1<='z')||(p1>='A'&&p1<='Z'))
{
if(p2=='*') // "abc...":"b*abc..." => test many cases
{
if(isMatch(s,new String(p.substring(2))))
return true;
else
for(int i=0;(i<sl)&&s.charAt(i)==p1;i++)
if(isMatch(new String(s.substring(i+1)),new String(p.substring(2))))
return true;;
return false; // "abc...":"a*cd.." =>F
}
else
{
if(p1==s1) // "a...":"a..." =>recursive
return isMatch(new String(s.substring(1)),new String(p.substring(1)));
else
return false; // "a...":"b..." =>F
}
}
else if(p1=='.')
{
if(p2=='*')
{
if(pl==2)
return true; // "????":".*" => T
else if(isMatch(s,new String(p.substring(2)))) // "a???":".*a???" => recursive
return true;
else
for(int i=0;i<sl;i++) // "aaab??":".*b" =>test many cases
if(isMatch(new String(s.substring(i+1)),new String(p.substring(2))))
return true;
return false;
}
else
{ // "ab???":".b???" => recursive
return isMatch(new String(s.substring(1)),new String(p.substring(1)));
}
}
return false;
}
}
Wednesday, January 22, 2014
LeetCode : Subset I
Given a set of distinct integers, S, return all possible subsets.
Note:
- Elements in a subset must be in non-descending order.
- The solution set must not contain duplicate subsets.
Input:[4,1,0]
Expected:[[],[0],[1],[4],[0,1],[0,4],[1,4],[0,1,4]]
public class Solution {
// we do it recursively
public void pickSS(ArrayList<ArrayList<Integer>> list, int[] remain)
{
if(remain==null)return;
int rl=remain.length;
if(rl==0) return;
// seperate the list f + remain2
int f=remain[0];
int[] remain2=new int[rl-1];
for(int i=0;i<rl-1;i++){
remain2[i]=remain[i+1];
}
ArrayList<ArrayList<Integer>> templist = new ArrayList<ArrayList<Integer>>();
// templist is addition list
for(ArrayList<Integer> al:list)
{
ArrayList<Integer> nl=new ArrayList<Integer>(); //new list
int all=al.size();
if(all==0)
{
nl.add(0,f);
templist.add(nl); // empty list + one element f
}
else
{
for(int i=0;i<all;i++)
nl.add(i,(Integer)al.get(i));
nl.add(all,f);
templist.add(nl); // joining a list + one element f.
}
}
// result list = original list + temp list
for(ArrayList<Integer> al:templist)
{
list.add(al);
}
// call next level
pickSS(list,remain2);
}
public ArrayList<ArrayList<Integer>> subsets(int[] S) {
ArrayList<ArrayList<Integer>> res=new ArrayList<ArrayList<Integer>>();
res.add(new ArrayList<Integer>());
//sort S
for(int i=0;i<S.length;i++)
{
for(int j=i+1;j<S.length;j++)
{
if(S[j]<S[i])
{
int t=S[i];
S[i]=S[j];
S[j]=t;
}
}
}
pickSS(res, S);
return res;
}
}
Tuesday, January 21, 2014
LeetCode : Sort a linked list with insertion sort.
/**
* Definition for singly-linked list.
* public class ListNode {
* int val;
* ListNode next;
* ListNode(int x) {
* val = x;
* next = null;
* }
* }
*/
public class Solution {
public ListNode insert(ListNode head,ListNode x)
{
ListNode pp=null;
if(head==null)return x;
for(ListNode p=head;p!=null;p=p.next)
{
if(x.val<p.val)
{
if(pp!=null)
{
pp.next=x;
x.next=p;
return head;
}
else
{
x.next=head;
return x;
}
}
pp=p;
}
pp.next=x; // dont
x.next=null;
return head;
}
public ListNode insertionSortList(ListNode head) {
ListNode ph,qh,qq;
if(head==null)return head;
if(head.next==null)return head;
ph=head;
qh=head.next;
head.next=null;
while(qh!=null)
{
qq=qh.next; // we must use qq to save qh.next
// in case qh will change their structure
// after insert()
ph=insert(ph,qh);
qh=qq;
}
return ph;
}
}
* Definition for singly-linked list.
* public class ListNode {
* int val;
* ListNode next;
* ListNode(int x) {
* val = x;
* next = null;
* }
* }
*/
public class Solution {
public ListNode insert(ListNode head,ListNode x)
{
ListNode pp=null;
if(head==null)return x;
for(ListNode p=head;p!=null;p=p.next)
{
if(x.val<p.val)
{
if(pp!=null)
{
pp.next=x;
x.next=p;
return head;
}
else
{
x.next=head;
return x;
}
}
pp=p;
}
pp.next=x; // dont
x.next=null;
return head;
}
public ListNode insertionSortList(ListNode head) {
ListNode ph,qh,qq;
if(head==null)return head;
if(head.next==null)return head;
ph=head;
qh=head.next;
head.next=null;
while(qh!=null)
{
qq=qh.next; // we must use qq to save qh.next
// in case qh will change their structure
// after insert()
ph=insert(ph,qh);
qh=qq;
}
return ph;
}
}
Thursday, January 16, 2014
LeetCode : Sort a linked list
Sort a linked list in O(n log n) time using constant space complexity.
public ListNode merge(ListNode sA,ListNode sB)
{
if(sA==null)return sB;
if(sB==null)return sA;
ListNode hA=sA;
ListNode hB=sB;
ListNode x=null;
ListNode hR=null;
ListNode lR=null;
while(!(hA==null&&hB==null))
{
if(hB==null)
{
x=hA;
hA=hA.next;
}
else if(hA==null)
{
x=hB;
hB=hB.next;
}
else if(hA.val<hB.val) // Beware hA or hB is null
{
x=hA;
hA=hA.next;
}
else
{
x=hB;
hB=hB.next;
}
x.next=null;
if(lR==null)
hR=x;
else
lR.next=x;
lR=x;
}
return hR;
}
public ListNode sortList(ListNode head) {
if(head==null)return null;
if(head.next==null)return head;
ListNode q1=head,p1=head,p2=head;
// Seperate the link list in O(n);
while(true)
{
if(p2.next==null)break;
p2=p2.next;
q1=p1;
p1=p1.next;
if(p2.next==null)break;
p2=p2.next;
}
q1.next=null;
if(p1==head)p1=null;
return merge(sortList(head),sortList(p1));
}
public ListNode merge(ListNode sA,ListNode sB)
{
if(sA==null)return sB;
if(sB==null)return sA;
ListNode hA=sA;
ListNode hB=sB;
ListNode x=null;
ListNode hR=null;
ListNode lR=null;
while(!(hA==null&&hB==null))
{
if(hB==null)
{
x=hA;
hA=hA.next;
}
else if(hA==null)
{
x=hB;
hB=hB.next;
}
else if(hA.val<hB.val) // Beware hA or hB is null
{
x=hA;
hA=hA.next;
}
else
{
x=hB;
hB=hB.next;
}
x.next=null;
if(lR==null)
hR=x;
else
lR.next=x;
lR=x;
}
return hR;
}
public ListNode sortList(ListNode head) {
if(head==null)return null;
if(head.next==null)return head;
ListNode q1=head,p1=head,p2=head;
// Seperate the link list in O(n);
while(true)
{
if(p2.next==null)break;
p2=p2.next;
q1=p1;
p1=p1.next;
if(p2.next==null)break;
p2=p2.next;
}
q1.next=null;
if(p1==head)p1=null;
return merge(sortList(head),sortList(p1));
}
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