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This is my code:

#include <stdio.h>
#include <stdlib.h>
#include <unistd.h>
#include <string.h>

#include <curl/curl.h>
#include <curl/types.h>
#include <curl/easy.h>
char test[];
size_t  write_data(char *ptr, size_t size, size_t nmemb, FILE *stream)
{
  char buf[size*nmemb+1];
  char * pbuf = &buf[0];
  memset(buf, '\0', size*nmemb+1);
  size_t i = 0;
  for(;  i < nmemb ; i++){
    strncpy(pbuf,ptr,size);
    pbuf += size;
    ptr += size;
  }

  printf("%s",buf);
  test=new test[size*nmemb+1];
  return size * nmemb;
}

int main()
{
    CURL *curl_handle;
    curl_handle = curl_easy_init();

    curl_easy_setopt(curl_handle,   CURLOPT_URL, "http://www.google.com");
    curl_easy_setopt(curl_handle,   CURLOPT_NOPROGRESS  ,1);
    curl_easy_setopt(curl_handle,   CURLOPT_WRITEFUNCTION,&write_data);
    curl_easy_perform(curl_handle);
    curl_easy_cleanup(curl_handle);
    return 0;
}

Why I am getting this error:

../src/get_webpage.cpp:9: error: storage size of ‘test’ isn't known
../src/get_webpage.cpp: In function ‘size_t write_data(char*, size_t, size_t, FILE*)’:
../src/get_webpage.cpp:23: error: expected type-specifier before ‘test’
../src/get_webpage.cpp:23: error: expected ‘;’ before ‘test’
share|improve this question
    
Wrong question: it's not about dynamic memory allocation –  pmod Aug 27 '10 at 8:40
    
1. This not C code as your suggests, it's more similar to C++. 2. Using global variables is considered as bad practice. –  zr. Aug 27 '10 at 9:05
    
Also, if you really want your program to be C and not C++, rename it such that it has just .c as an extension. Here your compiler is taking it as C++. –  Jens Gustedt Aug 27 '10 at 9:47

3 Answers 3

Change char test[]; to char *test;

share|improve this answer
    
it works ....how can i access the test value in main function if i return the test it says error??? –  lal Aug 27 '10 at 8:40
    
#Ial test is global and you can access it like you would do with any local variable. But the catch is the callback has to be hit for test to contain data. This may need more code to be added. –  Praveen S Aug 27 '10 at 8:48

test=new test[size*nmemb+1];

This is C++ code, not C. Change it to

test = malloc(size*nmemb+1);

Also it is recommended to free it somewhere. Maybe at the end of main or before allocating it.

free(test);

Good luck.

share|improve this answer
char buf[size*nmemb+1];

Is C99 not C89. For greater nmemb -> stackoverflow, better here also use a dyn. allocation

char *buf = calloc(1,size*nmemb+1), *pbuf = buf;
size_t i = 0;
if( !buf )
  { error-handling needed }
...
free(buf);
share|improve this answer

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