HDU 5083 Instruction(字符串处理)
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Problem Description
Nowadays, Jim Green has produced a kind of computer called JG. In his computer, the instruction is represented by binary code. However when we code in this computer, we use some mnemonic symbols. For example, ADD R1, R2 means to add
the number in register R1 and R2, then store the result to R1. But this instruction cannot be execute directly by computer, before this instruction is executed, it must be changed to binary code which can be executed by computer. Each instruction corresponds
to a 16-bit binary code. The higher 6 bits indicates the operation code, the middle 5 bits indicates the destination operator, and the lower 5 bits indicates the source operator. You can see Form 1 for more details.
In JG system there are 6 instructions which are listed in Form 2.
Operation code is generated according to Form 3.
Destination operator code and source operator code is the register code of the register which is related to.
There are 31 registers in total. Their names are R1,R2,R3…,R30,R31. The register code of Ri is the last 5 bits of the number of i in the binary system. For eaxample the register code of R1 is 00001, the register code of R2 is 00010, the register code of R7 is 00111, the register code of R10 is 01010, the register code of R31 is 11111.
So we can transfer an instruction into a 16-bit binary code easyly. For example, if we want to transfer the instruction ADD R1,R2, we know the operation is ADD whose operation code is 000001, destination operator code is 00001 which is the register code of R1, and source operator code is 00010 which is the register code of R2. So we joint them to get the 16-bit binary code which is 0000010000100010.
However for the instruction SET Ra, there is no source register, so we fill the lower 5 bits with five 0s. For example, the 16-bit binary code of SET R10 is 0001100101000000
You are expected to write a program to transfer an instruction into a 16-bit binary code or vice-versa.
In JG system there are 6 instructions which are listed in Form 2.
Operation code is generated according to Form 3.
Destination operator code and source operator code is the register code of the register which is related to.
There are 31 registers in total. Their names are R1,R2,R3…,R30,R31. The register code of Ri is the last 5 bits of the number of i in the binary system. For eaxample the register code of R1 is 00001, the register code of R2 is 00010, the register code of R7 is 00111, the register code of R10 is 01010, the register code of R31 is 11111.
So we can transfer an instruction into a 16-bit binary code easyly. For example, if we want to transfer the instruction ADD R1,R2, we know the operation is ADD whose operation code is 000001, destination operator code is 00001 which is the register code of R1, and source operator code is 00010 which is the register code of R2. So we joint them to get the 16-bit binary code which is 0000010000100010.
However for the instruction SET Ra, there is no source register, so we fill the lower 5 bits with five 0s. For example, the 16-bit binary code of SET R10 is 0001100101000000
You are expected to write a program to transfer an instruction into a 16-bit binary code or vice-versa.
Input
Multi test cases (about 50000), every case contains two lines.
First line contains a type sign, ‘0’ or ‘1’.
‘1’ means you should transfer an instruction into a 16-bit binary code;
‘0’ means you should transfer a 16-bit binary code into an instruction.
For the second line.
If the type sign is ‘1’, an instruction will appear in the standard form which will be given in technical specification;
Otherwise, a 16-bit binary code will appear instead.
Please process to the end of file.
[Technical Specification]
The standard form of instructions is
ADD Ra,Rb
SUB Ra,Rb
DIV Ra,Rb
MUL Ra,Rb
MOVE Ra,Rb
SET Ra
which are also listed in the Form 2.
There is exactly one space after operation, and exactly one comma between Ra and Rb other than the instruction SET Ra. No other character will appear in the instruction.
First line contains a type sign, ‘0’ or ‘1’.
‘1’ means you should transfer an instruction into a 16-bit binary code;
‘0’ means you should transfer a 16-bit binary code into an instruction.
For the second line.
If the type sign is ‘1’, an instruction will appear in the standard form which will be given in technical specification;
Otherwise, a 16-bit binary code will appear instead.
Please process to the end of file.
[Technical Specification]
The standard form of instructions is
ADD Ra,Rb
SUB Ra,Rb
DIV Ra,Rb
MUL Ra,Rb
MOVE Ra,Rb
SET Ra
which are also listed in the Form 2.
There is exactly one space after operation, and exactly one comma between Ra and Rb other than the instruction SET Ra. No other character will appear in the instruction.
Output
For type ‘0’,if the 16-bit binary code cannot be transferred into a instruction according to the description output “Error!” (without quote), otherwise transfer the 16-bit binary code into instruction and output the instruction in
the standard form in a single line.
For type ‘1’, transfer the instruction into 16-bit binary code and output it in a single line.
For type ‘1’, transfer the instruction into 16-bit binary code and output it in a single line.
Sample Input
1 ADD R1,R2 0 0000010000100010 0 1111111111111111
Sample Output
0000010000100010 ADD R1,R2 Error!
题意:就是有6个操作,分别有相应的二进制编码表示,看上面的表,然后仅仅有1~31的数进行加减乘除,1用00001表示,31用11111表示
这里要你翻译编码的意思;比如例子1:
1
ADD R1,R2
1代表你要把Add换成000001 然后后面R1 1的编码 00001,R2的编码00010合起来就是 0000010000100010
第二组例子就是相反的意思
不得不说的是 一定要注意 SET 操作
好了,详细解释在代码中:
#include<iostream> #include<cstdio> #include<cstring> #include<algorithm> #define L(x) (x<<1) #define R(x) (x<<1|1) #define MID(x,y) ((x+y)>>1) using namespace std; #define N 1005 char op[10][10]={"ADD","SUB","DIV","MUL","MOVE","SET"}; char opp[10][10]={"000001","000010","000011","000100","000101","000110"}; char e[33][10]={"00000","00001","00010","00011","00100", //请注意这个表非常好,就是假设相应00011,那么就是下标3 "00101","00110","00111","01000","01001", "01010","01011","01100","01101","01110", "01111","10000","10001","10010","10011", "10100","10101","10110","10111","11000", "11001","11010","11011","11100","11101", "11110","11111"}; char a[N],b[N],c[N]; int fdd(char *a) //把Ra中的a取出来的函数 { int i,temp=0; int len=strlen(a); for(i=1;i<len;i++) temp=temp*10+a[i]-‘0‘; return temp; } void solve() { int i,j,pos; for(i=0;i<6;i++) if(strcmp(a,opp[i])==0) break; pos=i; if(i==6) //推断操作数是否合格 { printf("Error!\n"); return ; } if(i==5) //假设是SET相应的000110 就单独处理 { if(strcmp(c,e[0])!=0||strcmp(b,e[0])==0) //必须满足c串相应的是0而且b串相应的数!=0,否者Error { printf("Error!\n"); return ; } for(i=1;i<32;i++) if(strcmp(b,e[i])==0) break; printf("SET R%d\n",i); return ; } for(i=1;i<32;i++) if(strcmp(b,e[i])==0) break; j=i; for(i=1;i<32;i++) if(strcmp(c,e[i])==0) break; if(i>=32||j>=32) //推断b,c串是否是e数组里的,换而言之是否合格(大于31就是不合格的) { printf("Error!\n"); return ; } printf("%s R%d,R%d\n",op[pos],j,i); } int main() { int i,j,x; while(~scanf("%d",&x)) { if(x==1) { scanf("%s%s",a,b); if(strcmp(a,op[5])==0) //假设是SET单独处理 { int pos=fdd(b); printf("%s%s00000\n",opp[5],e[pos]); continue; } int len=strlen(b); //分成3段 a b c 分别代表 哪一种操作,Ra Rb for(i=0;i<len;i++) if(b[i]==‘,‘) break; b[i]=‘\0‘; j=0; i++; for(i;i<len;i) c[j++]=b[i++]; c[j]=‘\0‘; for(i=0;i<6;i++) if(strcmp(a,op[i])==0) break; printf("%s",opp[i]); int pos; pos=fdd(b); printf("%s",e[pos]); pos=fdd(c); printf("%s\n",e[pos]); } else { scanf("%s",a); j=0; for(i=6;i<=10;i++) b[j++]=a[i]; j=0; for(i;i<=15;i++) c[j++]=a[i]; a[6]=‘\0‘; b[5]=‘\0‘; c[5]=‘\0‘; solve(); } } return 0; }
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