去哪儿客户端9.7
第一题
解析url,在参数中找出key为hybridId对应的value
public static void main(String[] args) {
String url = "qunarphone://react/open?hybridId=gl_home_rn&pageName=Home&initProps=%7B%22param%22%3A%7B%22bd_source%22%3A%22Platform_City%22%2C%22distId%22%3A299782%7D%7D";
String query = url.substring(url.indexOf("?")+1);
String[] querys = query.split("&");
String res = "unknown";
for (int i=0; i<querys.length; i++){
String key = querys[i].substring(0, querys[i].indexOf("="));
if (key.equals("hybridId")){
res = querys[i].substring(querys[i].indexOf("=")+1);
}
}
System.out.println(res);
}第二题
布局问题
我的思路是每3(M)个中,小于等于6的直接输出,余下的所有布局输出长度为:剩余总长除以剩下的布局个数。
写的代码有些繁琐。。没想到更好的方法
public static void main(String[] args) {
String[] texts = new String[]{"北京到上海的火车票", "上海到北京的飞机票", "北京周边游玩", "上海迪士尼乐园"};
int N = 3;
int M = 20;
String res = "";
for (int i=0; i<texts.length; i+=3){
if (i!=0) res+=";";
int l1 = texts[i].length(), l2 = 0, l3 = 0;
if (i+1< texts.length) l2 = texts[i+1].length();
if (i+2< texts.length) l3 = texts[i+2].length();
if (l1+l2+l3<=M){
if (i+2<texts.length){
// System.out.print(texts[i]+" ");
res+=texts[i]+" ";
// System.out.print(texts[i+1]+" ");
res+=texts[i+1]+" ";
// System.out.print(texts[i+2]);
res+=texts[i+2];
}else {
// System.out.print(texts[i]);
res+=texts[i];
if (i+1< texts.length) res+=" " + texts[i+1];
if (i+2< texts.length) res+=" " + texts[2+1];
}
}else {
int sum = 20;
int cut = 3;
if (l1<=6){ sum -= l1; cut--;}
if (l2<=6){ sum -= l2; cut--;}
if (l3<=6){ sum -= l3; cut--;}
int avg = sum/cut;
int num = sum%cut;
for (int j=0; j<3; j++){
if (i+j< texts.length && texts[i+j].length()>6){
if (num>0){
// System.out.print(texts[i+j].substring(0, avg+1));
res+=texts[i+j].substring(0, avg+1);
if (i+j+1<texts.length && j<2) res+=" ";
}else {
// System.out.print(texts[i+j].substring(0,avg));
res+=texts[i+j].substring(0,avg);
if (i+j+1<texts.length && j<2) res+=" ";
}
}else if (i+j< texts.length && texts[i+j].length()<=6){
// System.out.print(texts[i+j]);
res+=texts[i+j];
if (i+j+1<texts.length && j<2) res+=" ";
}
}
}
}
System.out.println(res);
}第三题 最长公共子串
动态规划
public static void main(String[] args) {
String strA = "abd";
String strB = "abcd";
// if (strA == null || strB == null){
// return;
// }
int len1 = strA.length();
int len2 = strB.length();
int max = 0;
int index = 0;
int[][] dp = new int[len1+1][len2+1];
for (int i=0; i<len1; i++){
for (int j=0; j<len2; j++){
if (strA.charAt(i) == strB.charAt(j)){
dp[i+1][j+1] = dp[i][j]+1;
}
if (max < dp[i+1][j+1]){
max = dp[i+1][j+1];
index = i+1;
}
}
}
System.out.println(strA.substring(index-max, index));
}顺便复习一下公共子序列
public int longestCommonSubsequence(String text1, String text2) {
int length1 = text1.length();
int length2 = text2.length();
int[][] dp = new int[length1+1][length2+1];
for (int i=1; i<=length1; i++){
for (int j=1; j<=length2; j++){
if (text1.charAt(i-1) == text2.charAt(j-1)){
dp[i][j] = dp[i-1][j-1] + 1;
}else {
dp[i][j] = Math.max(dp[i-1][j], dp[i][j-1]);
}
}
}
return dp[length1][length2];
}
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