8月24日shopee笔试编程题讨论
第1题 给一个整数 ,然后1为a,b,c 2为e,f,g,以此类推,要求打印出所有可能情况,按字典序
比如输入12 输出
ad
ae
af
bd
be
bf
cd
ce
cf
ad
ae
af
bd
be
bf
cd
ce
cf
用递归解决(毕竟本身就必须要指数级复杂,应该没有比递归更舒服的了)
public class Main {
public static void main(String[] args) {
Scanner sc = new Scanner(System.in);
String n = sc.nextLine();
int x=0;
String d="";
if(n.length()>0)print(n,d,x);
}
public static void print(String n,String d,int x){
if(x==n.length()){
System.out.println(d);
return;
}
char c=n.charAt(x);
char add='a';
String newd=d;
int offset= (int)(c-'1');
if(offset==8){
add+=8*3;
newd=d+String.valueOf(add);
print(n,newd,x+1);
add+=1;
newd=d+String.valueOf(add);
print(n,newd,x+1);
}else{
add+=offset*3;
newd=d+String.valueOf(add);
print(n,newd,x+1);
add+=1;
newd=d+String.valueOf(add);
print(n,newd,x+1);
add+=1;
newd=d+String.valueOf(add);
print(n,newd,x+1);
}
return;
}
} 第2题 跟爬楼梯类似,整数背包,数n 有20 10 5 4 2 1来减求次数最少,-》用打表大法加递归
public class Main {
public static void main(String[] args) {
Scanner sc = new Scanner(System.in);
int n = sc.nextInt();
int ans = 0;
HashMap<Integer,Integer> ***=new HashMap<Integer,Integer>();
ans=gotnum(n,***);
System.out.println(ans);
}
public static int gotnum(int n,HashMap<Integer,Integer> c){
int min=99999999;
if(n==0)return 0;
if(c.containsKey(n))return c.get(n);
if(n>=20){
min=Math.min(min,gotnum(n-20,c));
}
if(n>=10){
min=Math.min(min,gotnum(n-10,c));
}
if(n>=5){
min=Math.min(min,gotnum(n-5,c));
}
if(n>=4){
min=Math.min(min,gotnum(n-4,c));
}
if(n>=2){
min=Math.min(min,gotnum(n-2,c));
}
if(n>=1){
min=Math.min(min,gotnum(n-1,c));
}
c.put(n,min+1);
return min+1;
}
} 第3题 计算器,只有加减乘除括号,数字在0-9,就逆波兰表达式就行
1+2*3-(5-4)+6/3
public class Main {
public static void main(String[] args) {
Scanner sc = new Scanner(System.in);
String n = sc.nextLine();
int ans = 0, x=0,y=0;
char d;
Stack<Character> cal=new Stack<Character>();
Stack<Integer> num=new Stack<Integer>();
for(int i = 0; i < n.length(); i++){
if(n.charAt(i)==')'){
while(cal.peek()!='('){
d=cal.pop();
x=num.pop();
y=num.pop();
if(d=='+'){
num.push(x+y);
}
if(d=='-'){
num.push(y-x);
}
if(d=='*'){
num.push(x*y);
}
if(d=='/'){
num.push(y/x);
}
}
cal.pop();
continue;
}
if(n.charAt(i)=='('){cal.push('(');continue;}
if(n.charAt(i)=='+'||n.charAt(i)=='-'){
while(!cal.empty()&&cal.peek()!='('){
d=cal.pop();
x=num.pop();
y=num.pop();
if(d=='+'){
num.push(x+y);
}
if(d=='-'){
num.push(y-x);
}
if(d=='*'){
num.push(x*y);
}
if(d=='/'){
num.push(y/x);
}
}
cal.push(n.charAt(i));
continue;
}
if(n.charAt(i)=='*'||n.charAt(i)=='/'){
cal.push(n.charAt(i));
continue;
}
if(n.charAt(i)>='0'&&n.charAt(i)<='9'){
num.push((int)(n.charAt(i)-48));
continue;
}
System.out.println("ERROR");
return;
}
while(!cal.empty()){
d=cal.pop();
x=num.pop();
y=num.pop();
if(d=='+'){
num.push(x+y);
}
if(d=='-'){
num.push(y-x);
}
if(d=='*'){
num.push(x*y);
}
if(d=='/'){
num.push(y/x);
}
}
ans=num.pop();
System.out.println(ans);
}
}
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