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调度场算法

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#include <cstring>
#include <cstdio>
 
// 操作符
// 优先级        符号        运算顺序
// 1        !        从右至左
// 2        * / %        从左至右
// 3        + -        从左至右
// 4        =        从右至左
int op_preced(const char c)
{
    switch(c)    {
        case !:
            return 4;
        case *:  case /: case %:
            return 3;
        case +: case -:
            return 2;
        case =:
            return 1;
    }
    return 0;
}
 
unsigned int op_arg_count(const char c)
{
    switch(c)  {
        case *: case /: case %: case +: case -: case =:
            return 2;
        case !:
            return 1;
    default:
         return c - A;
    }
    return 0;
}
 
#define op_left_assoc(c) (c == ‘+‘ || c == ‘-‘ || c == ‘/‘ || c == ‘*‘ || c == ‘%‘)
#define is_operator(c)   (c == ‘+‘ || c == ‘-‘ || c == ‘/‘ || c == ‘*‘ || c == ‘!‘ || c == ‘%‘ || c == ‘=‘)
#define is_function(c)   (c >= ‘A‘ && c <= ‘Z‘)
#define is_ident(c)      ((c >= ‘0‘ && c <= ‘9‘) || (c >= ‘a‘ && c <= ‘z‘))
 
bool shunting_yard(const char *input, char *output)
{
    const char *strpos = input, *strend = input + strlen(input);
    char c, stack[32], sc, *outpos = output;
    unsigned int sl = 0;
    while(strpos < strend)   {
        c = *strpos;
        if(c !=  )    {
            // 如果输入为一个数字,则直接入输出队列
            if(is_ident(c))  {
                *outpos = c; ++outpos;
            }
            // 如果输入为一个函数记号,则压入堆栈
            else if(is_function(c))   {
                stack[sl] = c;
                ++sl;
            }
            // 如果输入为函数分割符(如:逗号)
            else if(c == ,)   {
                bool pe = false;
                while(sl > 0)   {
                    sc = stack[sl - 1];
                    if(sc == ()  {
                        pe = true;
                        break;
                    }
                    else  {
                        // 直到栈顶元素是一个左括号
                        // 从堆栈中弹出元素入输出队列
                        *outpos = sc; ++outpos;
                        sl--;
                    }
                }
                // 如果没有遇到左括号,则有可能是符号放错或者不匹配
                if(!pe)   {
                    printf("Error: separator or parentheses mismatched\n");
                    return false;
                }
            }
            // 如果输入符号为操作符,op1,然后:
            else if(is_operator(c))  {
                while(sl > 0)    {
                    sc = stack[sl - 1];
                    // While there is an operator token, o2, at the top of the stack
                    // op1 is left-associative and its precedence is less than or equal to that of op2,
                    // or op1 is right-associative and its precedence is less than that of op2,
                    if(is_operator(sc) &&
                        ((op_left_assoc(c) && (op_preced(c) <= op_preced(sc))) ||
                           (!op_left_assoc(c) && (op_preced(c) < op_preced(sc)))))   {
                        // Pop o2 off the stack, onto the output queue;
                        *outpos = sc; ++outpos;
                        sl--;
                    }
                    else   {
                        break;
                    }
                }
                // push op1 onto the stack.
                stack[sl] = c;
                ++sl;
            }
            // If the token is a left parenthesis, then push it onto the stack.
            else if(c == ()   {
                stack[sl] = c;
                ++sl;
            }
            // If the token is a right parenthesis:
            else if(c == ))    {
                bool pe = false;
                // Until the token at the top of the stack is a left parenthesis,
                // pop operators off the stack onto the output queue
                while(sl > 0)     {
                    sc = stack[sl - 1];
                    if(sc == ()    {
                        pe = true;
                        break;
                    }
                    else  {
                        *outpos = sc; ++outpos;
                        sl--;
                    }
                }
                // If the stack runs out without finding a left parenthesis, then there are mismatched parentheses.
                if(!pe)  {
                    printf("Error: parentheses mismatched\n");
                    return false;
                }
                // Pop the left parenthesis from the stack, but not onto the output queue.
                sl--;
                // If the token at the top of the stack is a function token, pop it onto the output queue.
                if(sl > 0)   {
                    sc = stack[sl - 1];
                    if(is_function(sc))   {
                        *outpos = sc; ++outpos;
                        sl--;
                    }
                }
            }
            else  {
                printf("Unknown token %c\n", c);
                return false; // Unknown token
            }
        }
        ++strpos;
    }
    // When there are no more tokens to read:
    // While there are still operator tokens in the stack:
    while(sl > 0)  {
        sc = stack[sl - 1];
        if(sc == ( || sc == ))   {
            printf("Error: parentheses mismatched\n");
            return false;
        }
        *outpos = sc; ++outpos;
        --sl;
    }
    *outpos = 0; // Null terminator
    return true;
}
 
bool execution_order(const char *input) {
    printf("order: (arguments in reverse order)\n");
    const char *strpos = input, *strend = input + strlen(input);
    char c, res[4];
    unsigned int sl = 0, sc, stack[32], rn = 0;
    // While there are input tokens left
    while(strpos < strend)  {
        // Read the next token from input.
        c = *strpos;
        // If the token is a value or identifier
        if(is_ident(c))    {
            // Push it onto the stack.
            stack[sl] = c;
            ++sl;
        }
        // Otherwise, the token is an operator  (operator here includes both operators, and functions).
        else if(is_operator(c) || is_function(c))    {
            sprintf(res, "_%02d", rn);
            printf("%s = ", res);
            ++rn;
            // It is known a priori that the operator takes n arguments.
            unsigned int nargs = op_arg_count(c);
            // If there are fewer than n values on the stack
            if(sl < nargs) {
                // (Error) The user has not input sufficient values in the expression.
                return false;
            }
            // Else, Pop the top n values from the stack.
            // Evaluate the operator, with the values as arguments.
            if(is_function(c)) {
                printf("%c(", c);
                while(nargs > 0)    {
                    sc = stack[sl - 1];
                    sl--;
                    if(nargs > 1)    {
                        printf("%s, ", &sc);
                    }
                    else {
                        printf("%s)\n", &sc);
                    }
                    --nargs;
                }
            }
            else    {
                if(nargs == 1) {
                    sc = stack[sl - 1];
                    sl--;
                    printf("%c %s;\n", c, &sc);
                }
                else    {
                    sc = stack[sl - 1];
                    sl--;
                    printf("%s %c ", &sc, c);
                    sc = stack[sl - 1];
                    sl--;
                    printf("%s;\n",&sc);
                }
            }
            // Push the returned results, if any, back onto the stack.
            stack[sl] = *(unsigned int*)res;
            ++sl;
        }
        ++strpos;
    }
    // If there is only one value in the stack
    // That value is the result of the calculation.
    if(sl == 1) {
        sc = stack[sl - 1];
        sl--;
        printf("%s is a result\n", &sc);
        return true;
    }
    // If there are more values in the stack
    // (Error) The user input has too many values.
    return false;
}
 
int main() {
    // functions: A() B(a) C(a, b), D(a, b, c) ...
    // identifiers: 0 1 2 3 ... and a b c d e ...
    // operators: = - + / * % !
    const char *input = "a = D(f - b * c + d, !e, g)";
    char output[128];
    printf("input: %s\n", input);
    if(shunting_yard(input, output))    {
        printf("output: %s\n", output);
        if(!execution_order(output))
            printf("\nInvalid input\n");
    }
    return 0;
}
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调度场算法,码迷,mamicode.com

调度场算法

标签:des   com   class   blog   http   div   code   img   style   java   javascript   

原文地址:http://www.cnblogs.com/roadonit/p/3695146.html

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