USACO Section 1.5 Prime Palindromes

直接用最笨的方法。。。
ANALYSIS里有讲，其实只算一半长度就行
代码相当的难看。。。
  1 /*
  2 ID:linyvxi1
  3 PROB:pprime
  4 LANG:C++
  5 */
  6 #include <stdio.h>
  7 #include <math.h>
  8 void do_1();
  9 void do_2();
 10 void do_3();
 11 void do_4();
 12 void do_5();
 13 void do_6();
 14 void do_7();
 15 void do_8();
 16 inline bool prime(int n)
 17 {
 18     int i;
 19     for(i=2;i<=(int)sqrt(n)+1;i++){
 20         if(n%i==0)
 21             return false;
 22     }
 23     return true;
 24 }
 25 int left,right,min_len,max_len;
 26 void get_len()
 27 {
 28     min_len=0;
 29     max_len=0;
 30     int temp1=left;
 31     int temp2=right;
 32     while(left){
 33         min_len++;
 34         left/=10;
 35     }
 36     while(right){
 37         max_len++;
 38         right/=10;
 39     }
 40     left=temp1;
 41     right=temp2;
 42 }
 43 void do_1(){
 44     int cur_len=1;
 45     int num1;
 46     int palindromes;
 47     for(num1=1;num1<=9;num1++){
 48         palindromes=num1;
 49         if(palindromes<left||!(prime(palindromes)))
 50             continue;
 51         if(palindromes>right)
 52             return;
 53         printf("%d\n",palindromes);
 54     }
 55     if(cur_len<max_len)
 56         do_2();
 57 }
 58 void do_2()
 59 {
 60     int cur_len=2;
 61     int num1;
 62     int palindromes;
 63     for(num1=1;num1<=9;num1+=2){
 64         palindromes=11*num1;
 65         if(palindromes<left||!(prime(palindromes)))
 66             continue;
 67         if(palindromes>right)
 68             return;
 69         printf("%d\n",palindromes);
 70     }
 71     if(cur_len<max_len)
 72         do_3();
 73 }
 74 void do_3()
 75 {
 76     int cur_len=3;
 77     int num1,num2;
 78     int palindromes;
 79     for(num1=1;num1<=9;num1+=2){
 80         for(num2=0;num2<=9;num2++){
 81             palindromes=101*num1+10*num2;
 82         if(palindromes<left||!(prime(palindromes)))
 83             continue;
 84         if(palindromes>right)
 85             return;
 86         printf("%d\n",palindromes);
 87         }
 88     }
 89     if(cur_len<max_len)
 90         do_4();
 91 }
 92 void do_4()
 93 {
 94     int cur_len=4;
 95     int num1,num2;
 96     int palindromes;
 97     for(num1=1;num1<=9;num1+=2){
 98         for(num2=0;num2<=9;num2++){
 99             palindromes=num1*1001*110*num2;
100         if(palindromes<left||!(prime(palindromes)))
101             continue;
102         if(palindromes>right)
103             return;
104         printf("%d\n",palindromes);
105         }
106     }
107     if(cur_len<max_len)
108         do_5();
109 }
110 void do_5()
111 {
112     int cur_len=5;
113     int num1,num2,num3;
114     int palindromes;
115     for(num1=1;num1<=9;num1+=2){
116         for(num2=0;num2<=9;num2++){
117             for(num3=0;num3<=9;num3++){
118                 palindromes=10001*num1+1010*num2+num3*100;
119                 if(palindromes<left||!prime(palindromes))
120                     continue;
121                 if(palindromes>right)
122                     return;
123                 printf("%d\n",palindromes);
124             }
125         }
126     }
127     if(cur_len<max_len)
128         do_6();
129 }
130 void do_6(){
131     int cur_len=6;
132     int num1,num2,num3;
133     int palindromes;
134     for(num1=1;num1<=9;num1++){
135         for(num2=0;num2<=9;num2++){
136             for(num3=0;num3<=9;num3++){
137                 palindromes=100001*num1+10010*num2+1100*num3;
138             if(palindromes<left||!prime(palindromes))
139                 continue;
140             if(palindromes>right)
141                 return;
142             printf("%d\n",palindromes);
143             }
144         }
145     }
146     if(cur_len<max_len)
147         do_7();
148 }
149 void do_7()
150 {
151     int cur_len=7;
152     int num1,num2,num3,num4;
153     int palindromes;
154     for(num1=1;num1<=9;num1+=2){
155         for(num2=0;num2<=9;num2++){
156             for(num3=0;num3<=9;num3++){
157                 for(num4=0;num4<=9;num4++){
158                     palindromes=1000001*num1+100010*num2+10100*num3+1000*num4;
159                     if(palindromes<left||!prime(palindromes))
160                         continue;
161                     if(palindromes>right)
162                         return;
163                     printf("%d\n",palindromes);
164                 }
165             }
166         }
167     }
168     if(cur_len<max_len)
169         do_8();
170 }
171 
172 void do_8()
173 {
174     int cur_len=8;
175     int num1,num2,num3,num4;
176     int palindromes;
177     for(num1=1;num1<=9;num1+=2){
178         for(num2=0;num2<=9;num2++){
179             for(num3=0;num3<=9;num3++){
180                 for(num4=0;num4<=9;num4++){
181                     palindromes=10000001*num1+1000010*num2+100100*num3+11000*num4;
182                     if(palindromes<left||!prime(palindromes))
183                         continue;
184                     if(palindromes>right)
185                         return;
186                     printf("%d\n",palindromes);
187                 }
188             }
189         }
190     }
191 }
192 
193                 
194         
195 int main()
196 {
197     freopen("pprime.in","r",stdin);
198     freopen("pprime.out","w",stdout);
199     scanf("%d%d",&left,&right);
200     get_len();
201     switch(min_len){
202         case 1:
203             do_1();
204             break;
205         case 2:
206             do_2();
207             break;
208         case 3:
209             do_3();
210             break;
211         case 4:
212             do_4();
213             break;
214         case 5:
215             do_5();
216             break;
217         case 6:
218             do_6();
219             break;
220         case 7:
221             do_7();
222             break;
223         case 8:
224             do_8();
225             break;
226     }
227 }