Python函数使用C语言模仿的实例
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首先得说明一点,C 语言不是函数式编程语言,要想进行完全的函数式编程,还得先写个虚拟机,然后再写个解释器才行(相当于 CPython )。
下面我们提供一个例子,说明 C 语言函数可以“适度地模仿” Python 函数。
我们有如下的 Python 程序:
def line_conf(a, b): def line(x): return a*x + b return line line1 = line_conf(1, 1) line2 = line_conf(4, 5) print(line1(5), line2(5))
我们在C程序中适度地模拟其中的line_conf函数:
/* MIT License Copyright (c) 2017 Yuandong-Chen Permission is hereby granted, free of charge, to any person obtaining a copy of this software and associated documentation files (the "Software"), to deal in the Software without restriction, including without limitation the rights to use, copy, modify, merge, publish, distribute, sublicense, and/or sell copies of the Software, and to permit persons to whom the Software is furnished to do so, subject to the following conditions: The above copyright notice and this permission notice shall be included in all copies or substantial portions of the Software. THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE. */ /////////////////////////////////////////////////////////////////////////////// // Note: The C program is almost equivalent to the Python program as follows: // def line_conf(a, b): // def line(x): // return a*x + b // return line // // line1 = line_conf(1, 1) // line2 = line_conf(4, 5) // print(line1(5), line2(5)) #include <stdio.h> #include <stdlib.h> #include <unistd.h> #include <stdarg.h> typedef int Func(); Func *line_conf(int x, int y,...) { va_list ap; va_start(ap, y); asm volatile( "push %%eax\n\t" "subl $40, %%esp\n\t" "movl 8(%%ebp), %%eax\n\t" "movl %%eax, -36(%%ebp)\n\t" "movl 12(%%ebp), %%eax\n\t" "movl %%eax, -40(%%ebp)\n\t" "addl $40, %%esp\n\t" "pop %%eax\n\t" :::"memory" ); if(va_arg(ap,int) == 1){ LINE: asm volatile( "push %%ebp\n\t" "movl %%esp, %%ebp\n\t" "movl 8(%%ebp), %%eax\n\t" "imul -36(%%ebp), %%eax\n\t" "addl -40(%%ebp), %%eax\n\t" "movl %%ebp, %%esp\n\t" "pop %%ebp\n\t" "ret\n\t" :::"memory","%eax" ); } END: va_end(ap); return (Func *)(&&LINE); } int main(int argc, const char *argv[]){ printf("====TEST START====\n"); printf("34*234+6 ?= %d\n",line_conf(34,6)(234)); printf("1*3+2 ?= %d; 324*65+3 ?= %d; 13*66+2 ?= %d\n",line_conf(1,2)(3),line_conf(324,3)(65),line_conf(13,2)(66)); int fd = line_conf(1,6)(4); Func *fun = line_conf(3,3); int a = 1; // Limited point printf("3*3+3 ?= %d; 1*4+6 ?= %d\n",fun(3),fd); printf("====TEST END====\n"); return 0; } // Compile it by the following command: // gcc -m32 -O0 -fno-stack-protector CFunctional.c; ./a.out // The terminal output should looks like: // ====TEST START==== // 34*234+6 ?= 7962 // 1*3+2 ?= 5; 324*65+3 ?= 21063; 13*66+2 ?= 860 // 3*3+3 ?= 12; 1*4+6 ?= 10 // ====TEST END==== //Note: The limitation happens between line 86 and line 88, we cannot insert any function here // whose stack is larger than 40 bytes.(Why is 40? check the inline assembler language)
结果在MacOSX和Ubuntu上(i386)都能通过简单的测试。但是可以看到,仅仅是简单的模拟,我们也得用到大量(按比例)的汇编,可读性很差,而且模拟程度非常有限,代码长度也更长。相反,对于这类一般功能的函数,Python可以很容易地模拟C语言的函数,而且模拟程度很高。
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