Auto select lookup tables based on input parameter - c

I am a C newbie, I have stored few look up Tables in the header file that need to be used in my C program.
For example, I'm using
static int LookupTable[ROW_SIZE][COL_SIZE] = FIRST_TABLE;
static int LookupTable[ROW_SIZE][COL_SIZE] = SECOND_TABLE;
static int LookupTable[ROW_SIZE][COL_SIZE] = THIRD_TABLE;
static int LookupTable[ROW_SIZE][COL_SIZE] = FOURTH_TABLE;
I have defined macros for ROW_SIZE and COL_SIZE where the COL_SIZE is fixed and ROW_SIZE is variable.
#define COL_SIZE 2
#define ROW_SIZE 2 //<! 1 x input (where input = {2,3,4,5})
I need to use the lookup tables based on the input value. That is, use:
FIRST_TABLE when input is 2 (so ROW_SIZE = 1 x 2 )
SECOND_TABLE when input is 3 (so ROW_SIZE = 1 x 3)
THIRD_TABLE when input is 4 (so ROW_SIZE = 1 x 4)
FOURTH_TABLE when input is 5 (so ROW_SIZE = 1 x 5)
Currently, I'm manually updating the ROW_SIZE everytime based on the input value and using the respective lookuptable as shown below.
#include<stdio.h>
#define FIRST_TABLE \
{ \
{1,2},\
{3,4}\
}
#define SECOND_TABLE \
{ \
{1,2},\
{11,22},\
{3,4}\
}
#define THIRD_TABLE \
{ \
{1,2},\
{11,22},\
{21,31},\
{3,4}\
}
#define FOURTH_TABLE \
{ \
{1,2},\
{10,20},\
{30,40},\
{50,60},\
{3,4}\
}
#define ROW_SIZE 2 // 2->FIRST_TABLE, 3->SECOND_TABLE, 4-> THIRD_TABLE, 5->FOURTH_TABLE
#define COL_SIZE 2
int main()
{
static int LookupTable[ROW_SIZE][COL_SIZE] = FIRST_TABLE;
//static int LookupTable[ROW_SIZE][COL_SIZE] = SECOND_TABLE;
//static int LookupTable[ROW_SIZE][COL_SIZE] = THIRD_TABLE;
//static int LookupTable[ROW_SIZE][COL_SIZE] = FOURTH_TABLE;
int i,j;
for(i=0;i<ROW_SIZE;i++)
{
for(j=0;j<COL_SIZE;j++)
{
printf("%d\t",LookupTable[i][j]);
}
printf("\n");
}
return 0;
}
Could someone please advise me on how I could define the ROW_SIZE and select the lookuptable automatically when the input value is known. For example, if input = 2, it should automatically choose ROW_SIZE = 2 and select FIRST_TABLE.
Please note that 'input' value is an external parameter coming from different source file.

As is, both of your macros are only definable before run-time. i.e. at compile-time, the value that defines your macro is locked in.
For your macro to produce a variable value, change:
#define ROW_SIZE 250 //<! 25 x parameter (where parameter = {10,15,20,25,...,100})
To:
#define ROW_SIZE(x) 25*(x) //<! 25 x parameter (where parameter = {10,15,20,25,...,100})
Then in the calling code, x should be defined in scope of where the macro is called. In this example, x is created as an int [4] array with automatic scope. It could be a global, or passed as a function argument, as long as it is defined:
int i, x[4]={10,15,20,25};
for(i=0;i<4;i++)
{
//select and use lookup
LookupTable[ROW_SIZE(x[i])][COL_SIZE];// Each iteration is expanded to
// LookupTable[25*x[i]][COL_SIZE];
...
For more information, here is a C macros tutorial.
Edit to address request in comments:
A lookup table is simply an initialized array that contains
precalculated information. They are typically used to avoid performing
complex (and hence time consuming) calculations.
...and more on tables From A tutorial on lookup tables in C.
With that in mind, there is too much I do not know about how you intend to use your lookup tables, but given the description of your needs, which includes tables of differing sizes, and the need to access them dynamically, the following illustrates one method where instead of #defines, the collection of tables is created using arrays of static const int, (varying sizes) and a pointer to an array: int *[], where size == count of tables in collection, can be accessed simply by by normal array indexing.
The following is implemented as described above, and demonstrates a method that can be used to Auto select lookup tables based on input parameter.
// define in header file
//replaces your #define tables
static const int table1[1][2] = {1,2};
static const int table2[2][2] = {{1,2},{3,4}};
static const int table3[3][2] = {{1,2},{11,22},{3,4}};
static const int table4[4][2] = {{1,2},{11,22},{21,31},{3,4}};
static const int table5[5][2] = {{1,2},{10,20},{30,40},{50,60},{3,4}};
#define MAX_TABLES 5
//array of pointers to allow lookup table selection via array indexing.
//( static scope necessary if table is used in more than one .c file )
static int *table[MAX_TABLES] = {(int *)table1, (int *)table2, (int *)table3, (int *)table4, (int *)table5};
// end - define in header file
void access_table(int table);
int main(void)
{
int i;
for(i=0;i<MAX_TABLES;i++)
{
access_table(i);//select lookup tables based on input parameter ( i )
}
getchar();
return 0;
}
void access_table(int index) // view contents of the selected table
{
//by definition all tables have rows equal to table number and columns always == 2
int loops = 2*index+2;
int j;
for(j=0;j<loops;j++)
{
printf("%d ", table[index][j]);
}
printf("\n");
}
Produces the following output:

Related

Macro loops to create a large number of variables at pre-processing

I want to create a large number of declarations of static arrays, each with a different (static) size. I also want to be able to create an instance of all of them, and access them easily just with their ID. Can this be done with macros in C ?
i.e. I want to shorten this code
int array_1[SIZE_1];
int array_2[SIZE_2];
int array_3[SIZE_3];
int array_4[SIZE_4];
int array_5[SIZE_5];
int array_6[SIZE_6];
.
.
.
int array_40[SIZE_40];
and create this code (where the parts between <> are the ones I hope macros can do for me).
int StoreInArray(int array_id, int position, int value)
{
if(position < SIZE_<array_id>)
{
array_<array_id>[position] = value;
return 0;
}
else
{
return 1;
}
}
Of note : memory imprint is important. I really want to have each array be exactly the size that it must be, and no more - unless a cheap solution is offered.
The correct solution is likely to reconsider your overall program design and instead do something like this:
typedef struct
{
int* data;
size_t size;
} array_t;
const array_t array [40] =
{
{ some_array, 3 },
{ some_other_array, 5 },
...
};
A much worse idea is to implement an evil macro. It might look like this:
// NOT RECOMMENDED
#define StoreInArray(id,pos,val) (pos < SIZE_##id ? (array_##id[pos] = val,1) : 0)
Where the parameter id is an integer constant such as 1. Token concatenation then forms SIZE_1, array_1 etc as the macro is expanded.
This is written as a function-like macro only assigning to the array if pos is smaller than the array size. If so, the macro returns 1 otherwise 0. The comma operator is used inside the conditional operator ?: to achieve this.
Example:
#include <stdio.h>
#define SIZE_1 4
#define SIZE_2 2
#define SIZE_3 5
int array_1[SIZE_1];
int array_2[SIZE_2];
int array_3[SIZE_3];
#define StoreInArray(id,pos,val) (pos < SIZE_##id ? (array_##id[pos] = val,1) : 0)
int main(void)
{
if(StoreInArray(1, 3, 123))
{
printf("%d\n", array_1[3]); // prints 123
}
if(StoreInArray(1, 4, 123))
{
printf("%d\n", array_1[3]); // doesn't get executed
}
if(StoreInArray(3, 4, 456))
{
printf("%d\n", array_3[4]); // prints 456
}
}

A homework is about use macro

This questions is about my homework.
This topic is need to use like:
#define GENERIC_MAX(type)\
type type##_max(type x, type y)\
{\
return x > y ? x : y;\
}
The content of the question is to make this code run normally:
#include <stdio.h>
GenerateShowValueFunc(double)
GenerateShowValueFunc(int)
int main()
{
double i = 5.2;
int j = 3;
showValue_double(i);
showValue_int(j);
}
The result of the operation is like this:
i=5.2000
j=3
And this code is my current progress, but there are have problems:
#include <stdio.h>
#define printname(n) printf(#n);
#define GenerateShowValueFunc(type)\
type showValue_##type(type x)\
{\
printname(x);\
printf("=%d\n", x);\
return 0;\
}
GenerateShowValueFunc(double)
GenerateShowValueFunc(int)
int main()
{
double i = 5.2;
int j = 3;
showValue_double(i);
showValue_int(j);
}
I don’t know how to make the output change with the type, and I don’t know how to display the name of the variable. OAO
This original task description:
Please refer to ShowValue.c below:
#include <stdio.h>
GenerateShowValueFunc(double)
GenerateShowValueFunc(int)
int main()
{
double i = 5.2;
int j = 3;
showValue_double(i);
showValue_int(j);
}
Through [GenerateShowValueFunc(double)] and [GenerateShowValueFunc(int)] these two lines macro call, can help us to generated as [showValue_double( double )] and [showValue_int( int )] function, And in main() function called. The execution result of this program is as follows:
i=5.2000
j=3
Please insert the code that defines GenerateShowValueFunc macro into the appropriate place in the ShowValue.c program, so that this program can compile and run smoothly.
A quick & dirty solution would be:
type showValue_##type(type x)\
{\
const char* double_fmt = "=%f\n";\
const char* int_fmt = "=%d\n";\
printname(x);\
printf(type##_fmt, x);\
return 0;\
}
The compiler will optimize out the variable that isn't used, so it won't affect performance. But it might yield warnings "variable not used". You can add null statements like (void)double_fmt; to silence it.
Anyway, this is all very brittle and bug-prone, it was never recommended practice to write macros like these. And it is not how you do generic programming in modern C. You can teach your teacher how, by showing them the following example:
#include <stdio.h>
void double_show (double d)
{
printf("%f\n", d);
}
void int_show (int i)
{
printf("%d\n", i);
}
#define show(x) _Generic((x),\
double: double_show, \
int: int_show) (x) // the x here is the parameter passed to the function
int main()
{
double i = 5.2;
int j = 3;
show(i);
show(j);
}
This uses the modern C11/C17 standard _Generic keyword, which can check for types at compile-time. The macro picks the appropriate function to call and it is type safe. The caller doesn't need to worry which "show" function to call nor that they pass the correct type.
Without changing the shown C-code (i.e. only doing macros), which I consider a requirement, the following code has the required output:
#include <stdio.h>
#define showValue_double(input) \
showValueFunc_double(#input"=%.4f\n" , input)
#define showValue_int(input) \
showValueFunc_int(#input"=%d\n" , input)
#define GenerateShowValueFunc(type) \
void showValueFunc_##type(const char format[], type input)\
{\
printf(format, input); \
}
/* ... macro magic above; */
/* unchangeable code below ... */
GenerateShowValueFunc(double)
GenerateShowValueFunc(int)
int main()
{
double i = 5.2;
int j = 3;
showValue_double(i);
showValue_int(j);
}
Output:
i=5.2000
j=3
Note that I created something of a lookup-table for type-specific format specifiers. I.e. for each type to be supported you need to add a macro #define showValue_ .... This is also needed to get the name of the variable into the output.
This uses the fact that two "strings" are concatenated by C compilers, i.e. "A""B" is the same as "AB". Where "A" is the result of #input.
The rest, i.e. the required function definition is very similar to the teacher-provided example, using the ## operator.
Note, this is if the variable name has to correctly be mentioned in the output.
With out the i = things would be easier and would more elegantly use the generated functions WITHOUT having the called showValue_double(i); be explicit macros. I.e. the functions generated are 1:1 what is called from main(). I think that might be what is really asked. Let me know if you want that version.

Point to a function with an already - provided arguments [duplicate]

I would like this to work, but it does not:
#include <stdio.h>
typedef struct closure_s {
void (*incrementer) ();
void (*emitter) ();
} closure;
closure emit(int in) {
void incrementer() {
in++;
}
void emitter() {
printf("%d\n", in);
}
return (closure) {
incrementer,
emitter
};
}
main() {
closure test[] = {
emit(10),
emit(20)
};
test[0] . incrementer();
test[1] . incrementer();
test[0] . emitter();
test[1] . emitter();
}
It actually does compile and does work for 1 instance ... but the second one fails. Any idea how to get closures in C?
It would be truly awesome!
Using FFCALL,
#include <callback.h>
#include <stdio.h>
static void incrementer_(int *in) {
++*in;
}
static void emitter_(int *in) {
printf("%d\n", *in);
}
int main() {
int in1 = 10, in2 = 20;
int (*incrementer1)() = alloc_callback(&incrementer_, &in1);
int (*emitter1)() = alloc_callback(&emitter_, &in1);
int (*incrementer2)() = alloc_callback(&incrementer_, &in2);
int (*emitter2)() = alloc_callback(&emitter_, &in2);
incrementer1();
incrementer2();
emitter1();
emitter2();
free_callback(incrementer1);
free_callback(incrementer2);
free_callback(emitter1);
free_callback(emitter2);
}
But usually in C you end up passing extra arguments around to fake closures.
Apple has a non-standard extension to C called blocks, which do work much like closures.
The ANSI C has not a support for closure, as well as nested functions. Workaround for it is usage simple "struct".
Simple example closure for sum two numbers.
// Structure for keep pointer for function and first parameter
typedef struct _closure{
int x;
char* (*call)(struct _closure *str, int y);
} closure;
// An function return a result call a closure as string
char *
sumY(closure *_closure, int y) {
char *msg = calloc(20, sizeof(char));
int sum = _closure->x + y;
sprintf(msg, "%d + %d = %d", _closure->x, y, sum);
return msg;
}
// An function return a closure for sum two numbers
closure *
sumX(int x) {
closure *func = (closure*)malloc(sizeof(closure));
func->x = x;
func->call = sumY;
return func;
}
Usage:
int main (int argv, char **argc)
{
closure *sumBy10 = sumX(10);
puts(sumBy10->call(sumBy10, 1));
puts(sumBy10->call(sumBy10, 3));
puts(sumBy10->call(sumBy10, 2));
puts(sumBy10->call(sumBy10, 4));
puts(sumBy10->call(sumBy10, 5));
}
Result:
10 + 1 = 11
10 + 3 = 13
10 + 2 = 12
10 + 4 = 14
10 + 5 = 15
On C++11 it will be achived by use lambda expression.
#include <iostream>
int main (int argv, char **argc)
{
int x = 10;
auto sumBy10 = [x] (int y) {
std::cout << x << " + " << y << " = " << x + y << std::endl;
};
sumBy10(1);
sumBy10(2);
sumBy10(3);
sumBy10(4);
sumBy10(5);
}
A result, after compilation with a flag -std=c++11.
10 + 1 = 11
10 + 2 = 12
10 + 3 = 13
10 + 4 = 14
10 + 5 = 15
A Working Definition of a Closure with a JavaScript Example
A closure is a kind of object that contains a pointer or reference of some kind to a function to be executed along with the an instance of the data needed by the function.
An example in JavaScript from https://developer.mozilla.org/en-US/docs/Web/JavaScript/Closures is
function makeAdder(x) {
return function(y) { // create the adder function and return it along with
return x + y; // the captured data needed to generate its return value
};
}
which could then be used like:
var add5 = makeAdder(5); // create an adder function which adds 5 to its argument
console.log(add5(2)); // displays a value of 2 + 5 or 7
Some of the Obstacles to Overcome with C
The C programming language is a statically typed language, unlike JavaScript, nor does it have garbage collection, and some other features that make it easy to do closures in JavaScript or other languages with intrinsic support for closures.
One large obstacle for closures in Standard C is the lack of language support for the kind of construct in the JavaScript example in which the closure includes not only the function but also a copy of data that is captured when the closure is created, a way of saving state which can then be used when the closure is executed along with any additional arguments provided at the time the closure function is invoked.
However C does have some basic building blocks which can provide the tools for creating a kind of closure. Some of the difficulties are (1) memory management is the duty of the programmer, no garbage collection, (2) functions and data are separated, no classes or class type mechanics, (3) statically typed so no run time discovery of data types or data sizes, and (4) poor language facilities for capturing state data at the time the closure is created.
One thing that makes something of a closure facility possible with C is the void * pointer and using unsigned char as a kind of general purpose memory type which is then transformed into other types through casting.
An update with new approach
My original posted answer seems to have been helpful enough that people have upvoted it however it had a constraint or two that I didn't like.
Getting a notification of a recent upvote, I took a look at some of the other posted answers and realized that I could provide a second approach that would overcome the problem that bothered me.
A new approach that removes a problem of the original approach
The original approach required function arguments to be passed on the stack. This new approach eliminates that requirement. It also seems much cleaner. I'm keeping the original approach below.
The new approach uses a single struct, ClosureStruct, along with two functions to build the closure, makeClosure() and pushClosureArg().
This new approach also uses the variable argument functionality of stdarg.h to process the captured arguments in the closure data.
Using the following in a C source code file requires the following includes:
#include <stdio.h>
#include <stdlib.h>
#include <memory.h>
#include <stdarg.h>
typedef struct {
void (*p)(); // pointer to the function of this closure
size_t sargs; // size of the memory area allocated for closure data
size_t cargs; // current memory area in use for closure data
unsigned char * args; // pointer to the allocated closure data area
} ClosureStruct;
void * makeClosure(void (*p)(), size_t sargs)
{
// allocate the space for the closure management data and the closure data itself.
// we do this with a single call to calloc() so that we have only one pointer to
// manage.
ClosureStruct* cp = calloc(1, sizeof(ClosureStruct) + sargs);
if (cp) {
cp->p = p; // save a pointer to the function
cp->sargs = sargs; // save the total size of the memory allocated for closure data
cp->cargs = 0; // initialize the amount of memory used
cp->args = (unsigned char *)(cp + 1); // closure data is after closure management block
}
return cp;
}
void * pushClosureArg(void* cp, size_t sarg, void* arg)
{
if (cp) {
ClosureStruct* p = cp;
if (p->cargs + sarg <= p->sargs) {
// there is room in the closure area for this argument so make a copy
// of the argument and remember our new end of memory.
memcpy(p->args + p->cargs, arg, sarg);
p->cargs += sarg;
}
}
return cp;
}
This code is then used similar to the following:
// example functions that we will use with closures
// funcadd() is a function that accepts a closure with two int arguments
// along with three additional int arguments.
// it is similar to the following function declaration:
// void funcadd(int x1, int x2, int a, int b, int c);
//
void funcadd(ClosureStruct* cp, int a, int b, int c)
{
// using the variable argument functionality we will set our
// variable argument list address to the closure argument memory area
// and then start pulling off the arguments that are provided by the closure.
va_list jj;
va_start(jj, cp->args); // get the address of the first argument
int x1 = va_arg(jj, int); // get the first argument of the closure
int x2 = va_arg(jj, int);
printf("funcadd() = %d\n", a + b + c + x1 + x2);
}
int zFunc(ClosureStruct* cp, int j, int k)
{
va_list jj;
va_start(jj, cp->args); // get the address of the first argument
int i = va_arg(jj, int);
printf("zFunc() i = %d, j = %d, k = %d\n", i, j, k);
return i + j + k;
}
typedef struct { char xx[24]; } thing1;
int z2func( ClosureStruct* cp, int i)
{
va_list jj;
va_start(jj, cp->args); // get the address of the first argument
thing1 a = va_arg(jj, thing1);
printf("z2func() i = %d, %s\n", i, a.xx);
return 0;
}
int mainxx(void)
{
ClosureStruct* p;
int x;
thing1 xpxp = { "1234567890123" };
p = makeClosure(funcadd, 256);
x = 4; pushClosureArg(p, sizeof(int), &x);
x = 10; pushClosureArg(p, sizeof(int), &x);
p->p(p, 1, 2, 3);
free(p);
p = makeClosure(z2func, sizeof(thing1));
pushClosureArg(p, sizeof(thing1), &xpxp);
p->p(p, 45);
free(p);
p = makeClosure(zFunc, sizeof(int));
x = 5; pushClosureArg(p, sizeof(int), &x);
p->p(p, 12, 7);
return 0;
}
The output from the above usage is:
funcadd() = 20
z2func() i = 45, 1234567890123
zFunc() i = 5, j = 12, k = 7
However there is an issue with the above implementation, you have no way of getting the return value of a function that returns a value. In other words, the function zFunc() used in a closure above returns an int value which is ignored. If you try to capture the return value with something like int k = pint->p(pint, 12, 7); you will get an error message because the function pointer argument of ClosureStruct is void (*p)(); rather than int (*p)();.
To work around this restraint, we will add two C Preprocessor macros to help us create individual versions of the ClosureStruct struct that specify a function return type other than void.
#define NAME_CLOSURE(t) ClosureStruct_ ## t
#define DEF_CLOSURE(t) \
typedef struct { \
t (*p)(); \
size_t sargs; \
size_t cargs; \
unsigned char* args; \
} NAME_CLOSURE(t);
We then redefine the two functions, zFunc() and z2func(), as follows using the macros.
DEF_CLOSURE(int) // define closure struct that returns an int
int zFunc(NAME_CLOSURE(int)* cp, int j, int k)
{
va_list jj;
va_start(jj, cp->args); // get the address of the first argument
int i = va_arg(jj, int);
printf("zFunc() i = %d, j = %d, k = %d\n", i, j, k);
return i + j + k;
}
typedef struct { char xx[24]; } thing1;
int z2func( NAME_CLOSURE(int) * cp, int i)
{
va_list jj;
va_start(jj, cp->args); // get the address of the first argument
thing1 a = va_arg(jj, thing1);
printf("z2func() i = %d, %s\n", i, a.xx);
return 0;
}
And we use this as follows:
int mainxx(void)
{
ClosureStruct* p;
NAME_CLOSURE(int) *pint;
int x;
thing1 xpxp = { "1234567890123" };
p = makeClosure(funcadd, 256);
x = 4; pushClosureArg(p, sizeof(int), &x);
x = 10; pushClosureArg(p, sizeof(int), &x);
p->p(p, 1, 2, 3);
free(p);
pint = makeClosure(z2func, sizeof(thing1));
pushClosureArg(pint, sizeof(thing1), &xpxp);
int k = pint->p(pint, 45);
free(pint);
pint = makeClosure(zFunc, sizeof(int));
x = 5; pushClosureArg(pint, sizeof(int), &x);
k = pint->p(pint, 12, 7);
return 0;
}
First Implementation With Standard C and a Bit of Stretching Here and There
NOTE: The following example depends on a stack based argument passing convention as is used with most x86 32 bit compilers. Most compilers also allow for a calling convention to be specified other than stack based argument passing such as the __fastcall modifier of Visual Studio. The default for x64 and 64 bit Visual Studio is to use the __fastcall convention by default so that function arguments are passed in registers and not on the stack. See Overview of x64 Calling Conventions in the Microsoft MSDN as well as How to set function arguments in assembly during runtime in a 64bit application on Windows? as well as the various answers and comments in How are variable arguments implemented in gcc? .
One thing that we can do is to solve this problem of providing some kind of closure facility for C is to simplify the problem. Better to provide an 80% solution that is useful for a majority of applications than no solution at all.
One such simplification is to only support functions that do not return a value, in other words functions declared as void func_name(). We are also going to give up compile time type checking of the function argument list since this approach builds the function argument list at run time. Neither one of these things that we are giving up are trivial so the question is whether the value of this approach to closures in C outweighs what we are giving up.
First of all lets define our closure data area. The closure data area represents the memory area we are going to use to contain the information we need for a closure. The minimum amount of data I can think of is a pointer to the function to execute and a copy of the data to be provided to the function as arguments.
In this case we are going to provide any captured state data needed by the function as an argument to the function.
We also want to have some basic safe guards in place so that we will fail reasonably safely. Unfortunately the safety rails are a bit weak with some of the work arounds we are using to implement a form of closures.
The Source Code
The following source code was developed using Visual Studio 2017 Community Edition in a .c C source file.
The data area is a struct that contains some management data, a pointer to the function, and an open ended data area.
typedef struct {
size_t nBytes; // current number of bytes of data
size_t nSize; // maximum size of the data area
void(*pf)(); // pointer to the function to invoke
unsigned char args[1]; // beginning of the data area for function arguments
} ClosureStruct;
Next we create a function that will initialize a closure data area.
ClosureStruct * beginClosure(void(*pf)(), int nSize, void *pArea)
{
ClosureStruct *p = pArea;
if (p) {
p->nBytes = 0; // number of bytes of the data area in use
p->nSize = nSize - sizeof(ClosureStruct); // max size of the data area
p->pf = pf; // pointer to the function to invoke
}
return p;
}
This function is designed to accept a pointer to a data area which gives flexibility as to how the user of the function wants to manage memory. They can either use some memory on the stack or static memory or they can use heap memory via the malloc() function.
unsigned char closure_area[512];
ClosureStruct *p = beginClosure (xFunc, 512, closure_area);
or
ClosureStruct *p = beginClosure (xFunc, 512, malloc(512));
// do things with the closure
free (p); // free the malloced memory.
Next we provide a function that allows us to add data and arguments to our closure. The purpose of this function is to build up the closure data so that when closure function is invoked, the closure function will be provided any data it needs to do its job.
ClosureStruct * pushDataClosure(ClosureStruct *p, size_t size, ...)
{
if (p && p->nBytes + size < p->nSize) {
va_list jj;
va_start(jj, size); // get the address of the first argument
memcpy(p->args + p->nBytes, jj, size); // copy the specified size to the closure memory area.
p->nBytes += size; // keep up with how many total bytes we have copied
va_end(jj);
}
return p;
}
And to make this a bit simpler to use lets provide a wrapping macro which is generally handy but does have limitations since it is C Processor text manipulation.
#define PUSHDATA(cs,d) pushDataClosure((cs),sizeof(d),(d))
so we could then use something like the following source code:
unsigned char closurearea[256];
int iValue = 34;
ClosureStruct *dd = PUSHDATA(beginClosure(z2func, 256, closurearea), iValue);
dd = PUSHDATA(dd, 68);
execClosure(dd);
Invoking the Closure: The execClosure() Function
The last piece to this is the execClosure() function to execute the closure function with its data. What we are doing in this function is to copy the argument list supplied in the closure data structure onto the stack as we invoke the function.
What we do is cast the args area of the closure data to a pointer to a struct containing an unsigned char array and then dereference the pointer so that the C compiler will put a copy of the arguments onto the stack before it calls the function in the closure.
To make it easier to create the execClosure() function, we will create a macro that makes it easy to create the various sizes of structs we need.
// helper macro to reduce type and reduce chance of typing errors.
#define CLOSEURESIZE(p,n) if ((p)->nBytes < (n)) { \
struct {\
unsigned char x[n];\
} *px = (void *)p->args;\
p->pf(*px);\
}
Then we use this macro to create a series of tests to determine how to call the closure function. The sizes chosen here may need tweaking for particular applications. These sizes are arbitrary and since the closure data will rarely be of the same size, this is not efficiently using stack space. And there is the possibility that there may be more closure data than we have allowed for.
// execute a closure by calling the function through the function pointer
// provided along with the created list of arguments.
ClosureStruct * execClosure(ClosureStruct *p)
{
if (p) {
// the following structs are used to allocate a specified size of
// memory on the stack which is then filled with a copy of the
// function argument list provided in the closure data.
CLOSEURESIZE(p,64)
else CLOSEURESIZE(p, 128)
else CLOSEURESIZE(p, 256)
else CLOSEURESIZE(p, 512)
else CLOSEURESIZE(p, 1024)
else CLOSEURESIZE(p, 1536)
else CLOSEURESIZE(p, 2048)
}
return p;
}
We return the pointer to the closure in order to make it easily available.
An Example Using the Library Developed
We can use the above as follows. First a couple of example functions that don't really do much.
int zFunc(int i, int j, int k)
{
printf("zFunc i = %d, j = %d, k = %d\n", i, j, k);
return i + j + k;
}
typedef struct { char xx[24]; } thing1;
int z2func(thing1 a, int i)
{
printf("i = %d, %s\n", i, a.xx);
return 0;
}
Next we build our closures and execute them.
{
unsigned char closurearea[256];
thing1 xpxp = { "1234567890123" };
thing1 *ypyp = &xpxp;
int iValue = 45;
ClosureStruct *dd = PUSHDATA(beginClosure(z2func, 256, malloc(256)), xpxp);
free(execClosure(PUSHDATA(dd, iValue)));
dd = PUSHDATA(beginClosure(z2func, 256, closurearea), *ypyp);
dd = PUSHDATA(dd, 68);
execClosure(dd);
dd = PUSHDATA(beginClosure(zFunc, 256, closurearea), iValue);
dd = PUSHDATA(dd, 145);
dd = PUSHDATA(dd, 185);
execClosure(dd);
}
Which gives an output of
i = 45, 1234567890123
i = 68, 1234567890123
zFunc i = 45, j = 145, k = 185
Well What About Currying?
Next we could make a modification to our closure struct to allow us to do currying of functions.
typedef struct {
size_t nBytes; // current number of bytes of data
size_t nSize; // maximum size of the data area
size_t nCurry; // last saved nBytes for curry and additional arguments
void(*pf)(); // pointer to the function to invoke
unsigned char args[1]; // beginning of the data area for function arguments
} ClosureStruct;
with the supporting functions for currying and resetting of a curry point being
ClosureStruct *curryClosure(ClosureStruct *p)
{
p->nCurry = p->nBytes;
return p;
}
ClosureStruct *resetCurryClosure(ClosureStruct *p)
{
p->nBytes = p->nCurry;
return p;
}
The source code for testing this could be:
{
unsigned char closurearea[256];
thing1 xpxp = { "1234567890123" };
thing1 *ypyp = &xpxp;
int iValue = 45;
ClosureStruct *dd = PUSHDATA(beginClosure(z2func, 256, malloc(256)), xpxp);
free(execClosure(PUSHDATA(dd, iValue)));
dd = PUSHDATA(beginClosure(z2func, 256, closurearea), *ypyp);
dd = PUSHDATA(dd, 68);
execClosure(dd);
dd = PUSHDATA(beginClosure(zFunc, 256, closurearea), iValue);
dd = PUSHDATA(dd, 145);
dd = curryClosure(dd);
dd = resetCurryClosure(execClosure(PUSHDATA(dd, 185)));
dd = resetCurryClosure(execClosure(PUSHDATA(dd, 295)));
}
with the output of
i = 45, 1234567890123
i = 68, 1234567890123
zFunc i = 45, j = 145, k = 185
zFunc i = 45, j = 145, k = 295
GCC and clang have the blocks extension, which is essentially closures in C.
GCC supports inner functions, but not closures. C++0x will have closures. No version of C that I'm aware of, and certainly no standard version, provides that level of awesome.
Phoenix, which is part of Boost, provides closures in C++.
On this page you can find a description on how to do closures in C:
http://brodowsky.it-sky.net/2014/06/20/closures-in-c-and-scala/
The idea is that a struct is needed and that struct contains the function pointer, but gets provided to the function as first argument. Apart from the fact that it requires a lot of boiler plate code and the memory management is off course an issue, this works and provides the power and possibilities of other languages' closures.
You can achieve this with -fblocks flag, but it does not look so nice like in JS or TS:
#include <stdio.h>
#include <stdlib.h>
#include <Block.h>
#define NEW(T) ({ \
T* __ret = (T*)calloc(1, sizeof(T)); \
__ret; \
})
typedef struct data_t {
int value;
} data_t;
typedef struct object_t {
int (^get)(void);
void (^set)(int);
void (^free)(void);
} object_t;
object_t const* object_create(void) {
data_t* priv = NEW(data_t);
object_t* pub = NEW(object_t);
priv->value = 123;
pub->get = Block_copy(^{
return priv->value;
});
pub->set = Block_copy(^(int value){
priv->value = value;
});
pub->free = Block_copy(^{
free(priv);
free(pub);
});
return pub;
}
int main() {
object_t const* obj = object_create();
printf("before: %d\n", obj->get());
obj->set(321);
printf("after: %d\n", obj->get());
obj->free();
return 0;
}
clang main.c -o main.o -fblocks -fsanitize=address; ./main.o
before: 123
after: 321
The idiomatic way of doing it in is C is passing a function pointer and a void pointer to the context.
However, some time ago I came up with a different approach. Surprisingly, there is a family of builtin types in C that carries both a data and the code itself. Those are pointers to a function pointer.
The trick is use this single object to pass both the code by dereferencing a function pointer. And next passing the very same double function pointer as the context as a first argument. It looks a bit convoluted by actually it results in very flexible and readable machanism for closures.
See the code:
#include <stdio.h>
#include <stdlib.h>
#include <math.h>
// typedefing functions makes usually makes code more readable
typedef double double_fun_t(void*, double);
struct exponential {
// closure must be placed as the first member to allow safe casting
// between a pointer to `closure` and `struct exponential`
double_fun_t *closure;
double temperature;
};
double exponential(void *ctx_, double x) {
struct exponential *ctx = ctx_;
return exp(x / ctx->temperature);
}
// the "constructor" of the closure for exponential
double_fun_t **make_exponential(double temperature) {
struct exponential *e = malloc(sizeof *e);
e->closure = exponential;
e->temperature = temperature;
return &e->closure;
}
// now simple closure with no context, a pure x -> x*x mapping
double square(void *_unused, double x){
(void)_unused;
return x*x;
}
// use compound literal to transform a function to a closure
double_fun_t **square_closure = & (double_fun_t*) { square };
// the worker that process closures, note that `double_fun_t` is not used
// because `double(**)(void*,double)` is builtin type
double somme(double* liste, int length, double (**fun)(void*,double)){
double poids = 0;
for(int i=0;i<length;++i)
// calling a closure, note that `fun` is used for both obtaing
// the function pointer and for passing the context
poids = poids + (*fun)(fun, liste[i]);
return poids;
}
int main(void) {
double list[3] = { 1, 2, 3 };
printf("%g\n", somme(list, 3, square_closure));
// a dynamic closure
double_fun_t **exponential = make_exponential(42);
printf("%g\n", somme(list, 3, exponential));
free(exponential);
return 0;
}
The advantage of this approach is that the closure exports a pure interface for calling double->double functions. There is no need to introduce any boxing structures used by all clients of the closure. The only requirement is the "calling convention" which is very natural and does not require sharing any code.
Answer
#include <stdio.h>
#include <stdlib.h>
/*
File Conventions
----------------
alignment: similar statements only
int a = 10;
int* omg = {120, 5};
functions: dofunction(a, b, c);
macros: _do_macro(a, b, c);
variables: int dovariable=10;
*/
////Macros
#define _assert(got, expected, teardownmacro) \
do { \
if((got)!=(expected)) { \
fprintf(stderr, "line %i: ", __LINE__); \
fprintf(stderr, "%i != %i\n", (got), (expected)); \
teardownmacro; \
return EXIT_FAILURE; \
} \
} while(0);
////Internal Helpers
static void istarted() {
fprintf(stderr, "Start tests\n");
}
static void iended() {
fprintf(stderr, "End tests\n");
}
////Tests
int main(void)
{
///Environment
int localvar = 0;
int* localptr = NULL;
///Closures
#define _setup_test(mvar, msize) \
do { \
localptr=calloc((msize), sizeof(int)); \
localvar=(mvar); \
} while(0);
#define _teardown_test() \
do { \
free(localptr); \
localptr=NULL; \
} while(0);
///Tests
istarted();
_setup_test(10, 2);
_assert(localvar, 10, _teardown_test());
_teardown_test();
_setup_test(100, 5);
_assert(localvar, 100, _teardown_test());
_teardown_test();
iended();
return EXIT_SUCCESS;
}
Context
I was curious about how others accomplished this in C. I wasn't totally surprised when I didn't see this answer. Warning: This answer is not for beginners.
I live a lot more in the Unix style of thinking: lots of my personal programs and libraries are small and do one thing very well. Macros as "closures" are much safer in this context. I believe all the organization and specified conventions for readability is super important, so the code is readable by us later, and a macro looks like a macro and a function looks like a function. To clarify, not literally these personal conventions, just having some, that are specified and followed to distinguish different language constructs (macros and functions). We all should be doing that anyway.
Don't do afraid of macros. When it makes sense: use them. The advanced part is the when. My example is one example of the whens. They are ridiculously powerful and not that scary.
Rambling
I sometimes use a proper closure/lambda in other languages to execute a set of expressions over and over within a function. It's a little context aware private helper function. Regardless of its proper definition, that's something a closure can do. It helps me write less code. Another benefit of this is you don't need to reference a struct to know how to use it or understand what it's doing. The other answers do not have this benefit, and, if it wasn't obvious I hold readability very highly. I strive for simple legible solutions. This one time I wrote an iOS app and it was wonderful and as simple as I could get it. Then I wrote the same "app" in bash in like 5 lines of code and cursed.
Also embedded systems.

Passing an array from a method in file 1 to a method in file 2 without using a extra parameter in a method

I am getting all Zeroes in global_array_of_file2.Idea is to get the updated values from file1.c
========================file1.c===========================
#include <stdio.h>
#include <string.h>
int global_array_of_file1[10];
void func1(int a1,int b)
{
int array1_of_func1[10] = {0};
int a;
array1_of_func1[5] = 23;
array1_of_func1[6] = 34;
memcpy(global_array_of_file1,array1_of_func1,10*sizeof(int));
for (a = 0; a < 9; a++)
{
printf("from func_1 : global_array = %d \n " , global_array_of_file1[a]);
}
}
void init_pointer(int *tmp)
{
tmp = global_array_of_file1;
}
~
==========================file2.c======================
#include<stdio.h>
#include "file1.h"
int global_array_of_file2[10] = {0};
int main()
{
int i;
init_pointer(global_array_of_file2);
func1(3,4);
for(i = 0; i < 9 ; i++)
{
printf("global_array_of_file2 = %d \n" , global_array_of_file2[i]);
}
return 0;
}
========================file1.h===========================
void init_pointer(int *tmp);
void func1(int a,int b);
There are two issues here:
First issue is:
the code for init_pointer does nothing:
void init_pointer(int *tmp)
{
tmp = global_array_of_file1;
}
as tmp variable is a copy of the input variable (called by value), it does nothing.
To have it work correctly it should be something like this:
void init_pointer(int **tmp)
{
*tmp = global_array_of_file1;
}
However, as the global_array_of_file2 is declared as array, it is actually a static pointer which cannot be changed, so you cannot modify its value using statement like **tmp= global_array_of_file1.
Therefor to make it work, you should call memcpy within the init pointer method:
like this:
void init_pointer(int *tmp)
{
memcpy( tmp, global_array_of_file1, 10 * sizeof(int) );
}
The second issue, is that the code at main, first call the init_pointer (which does nothing), then it calls 'func1' which initialize the array. the order shall be the opposite. first call func1 to set the array with the appropriate values, then call the init_array method to copy this information to global array 2.
so instead of
init_pointer(global_array_of_file2);
func1(3,4);
it shall be
func1(3,4);
init_pointer(global_array_of_file2);
This is all if you want to have a copy of the global_array_file1 at file2.
If you want, you can have the same array shared between files, to do so:
at file1.h declare the array as extern:
extern int global_array_of_file1[10];
Then you can simply use it at file2.c which include file1.h
Ok I think this can be fixed easily by doing the below :
declare extern int global_array_of_file1[10] in file1.c
define int global_array_of_file1[10] = {0}; in file2.c
I then dont even need to initialize the pointer from file2.c ( no need to call init_pointer) and extra RAM too will be saved :) !
The memcpy is wrong. You just copy 10 bytes.
An int is usually 4 Bytes long (32 bit), thus you only copy parts of the array, namely the first ten bytes, thus you copy just the ints with index 0,1,2 and half of 4.
You need to copy 10 * sizeof(int)

In C, how to find an offset of element in array

#define ID_A 5
#define ID_B 7
#define ID_C 9
const int id_arr={ ID_A, ID_B, ID_C, };
I know if I need to know the offset of ID_C in id_arr,
I can use a simple function like
int get_offset(id){
for(i=0;i<id_arr_num;++i){
if(id==id_arr[i]) return i;
}
}
But arr is const,
so I can know offset of ID_C will be 2 before runtime,
is any way to use macro or other way to know the offset before c runtime?
Rather than using ID's directly, use indexes that themselves are offsets:
enum {
IDX_A,
IDX_B,
IDX_C,
IDX_COUNT
};
const int id_arr={ 5, 7, 9 };
/* Error checking to make sure enum and array have same number of elements (from assert.h) */
static_assert((sizeof id_arr / sizeof *id_arr) == IDX_COUNT, "Enum/array mismatch");
Usage is simple:
id = id_arr[IDX_A];
Avoid using macros for that.
And you forgot to define id_arr_num.
No, there is no way of knowing this index before runtime, and avoid using global values as much as possible.
This function will give you the index of the variable you're looking for:
int get_offset(id, arr, size){
for(i = 0;i < size;++i)
if(id == arr[i]) return i;
}

Resources