kservice.c 27.6 KB
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/*
 * File      : kservice.c
 * This file is part of RT-Thread RTOS
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 * COPYRIGHT (C) 2006 - 2012, RT-Thread Development Team
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 *
 * The license and distribution terms for this file may be
 * found in the file LICENSE in this distribution or at
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 * http://www.rt-thread.org/license/LICENSE
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 *
 * Change Logs:
 * Date           Author       Notes
 * 2006-03-16     Bernard      the first version
 * 2006-05-25     Bernard      rewrite vsprintf
 * 2006-08-10     Bernard      add rt_show_version
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 * 2010-03-17     Bernard      remove rt_strlcpy function
 *                             fix gcc compiling issue.
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 * 2010-04-15     Bernard      remove weak definition on ICCM16C compiler
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 * 2012-07-18     Arda         add the alignment display for signed integer
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 * 2012-11-23     Bernard      fix IAR compiler error. 
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 * 2012-12-22     Bernard      fix rt_kprintf issue, which found by Grissiom.
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 */

#include <rtthread.h>
#include <rthw.h>

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/* use precision */
#define RT_PRINTF_PRECISION

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/**
 * @addtogroup KernelService
 */
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/*@{*/

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/* global errno in RT-Thread */
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static volatile int _errno;
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#if defined(RT_USING_DEVICE) && defined(RT_USING_CONSOLE)
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static rt_device_t _console_device = RT_NULL;
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#endif
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/*
 * This function will get errno
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 *
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 * @return errno
 */
rt_err_t rt_get_errno(void)
{
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    rt_thread_t tid;
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    if (rt_interrupt_get_nest() != 0)
    {
        /* it's in interrupt context */
        return _errno;
    }
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    tid = rt_thread_self();
    if (tid == RT_NULL)
        return _errno;
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    return tid->error;
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}
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RTM_EXPORT(rt_get_errno);
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/*
 * This function will set errno
 *
 * @param error the errno shall be set
 */
void rt_set_errno(rt_err_t error)
{
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    rt_thread_t tid;
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    if (rt_interrupt_get_nest() != 0)
    {
        /* it's in interrupt context */
        _errno = error;
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        return;
    }
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    tid = rt_thread_self();
    if (tid == RT_NULL)
    {
        _errno = error;
        
        return;
    }
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    tid->error = error;
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}
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RTM_EXPORT(rt_set_errno);
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/**
 * This function returns errno.
 *
 * @return the errno in the system
 */
int *_rt_errno(void)
{
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    rt_thread_t tid;
    
    if (rt_interrupt_get_nest() != 0)
        return (int *)&_errno;
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    tid = rt_thread_self();
    if (tid != RT_NULL)
        return (int *)&(tid->error);
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    return (int *)&_errno;
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}
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RTM_EXPORT(_rt_errno);
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/**
 * This function will set the content of memory to specified value
 *
 * @param s the address of source memory
 * @param c the value shall be set in content
 * @param count the copied length
 *
 * @return the address of source memory
 */
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void *rt_memset(void *s, int c, rt_ubase_t count)
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{
#ifdef RT_TINY_SIZE
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    char *xs = (char *)s;
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    while (count--)
        *xs++ = c;
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    return s;
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#else
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#define LBLOCKSIZE      (sizeof(rt_int32_t))
#define UNALIGNED(X)    ((rt_int32_t)X & (LBLOCKSIZE - 1))
#define TOO_SMALL(LEN)  ((LEN) < LBLOCKSIZE)
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    int i;
    char *m = (char *)s;
    rt_uint32_t buffer;
    rt_uint32_t *aligned_addr;
    rt_uint32_t d = c & 0xff;

    if (!TOO_SMALL(count) && !UNALIGNED(s))
    {
        /* If we get this far, we know that n is large and m is word-aligned. */
        aligned_addr = (rt_uint32_t *)s;

        /* Store D into each char sized location in BUFFER so that
         * we can set large blocks quickly.
         */
        if (LBLOCKSIZE == 4)
        {
            buffer = (d << 8) | d;
            buffer |= (buffer << 16);
        }
        else
        {
            buffer = 0;
            for (i = 0; i < LBLOCKSIZE; i ++)
                buffer = (buffer << 8) | d;
        }

        while (count >= LBLOCKSIZE * 4)
        {
            *aligned_addr++ = buffer;
            *aligned_addr++ = buffer;
            *aligned_addr++ = buffer;
            *aligned_addr++ = buffer;
            count -= 4 * LBLOCKSIZE;
        }

        while (count >= LBLOCKSIZE)
        {
            *aligned_addr++ = buffer;
            count -= LBLOCKSIZE;
        }

        /* Pick up the remainder with a bytewise loop. */
        m = (char *)aligned_addr;
    }

    while (count--)
    {
        *m++ = (char)d;
    }

    return s;
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#undef LBLOCKSIZE
#undef UNALIGNED
#undef TOO_SMALL
#endif
}
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RTM_EXPORT(rt_memset);
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/**
 * This function will copy memory content from source address to destination
 * address.
 *
 * @param dst the address of destination memory
 * @param src  the address of source memory
 * @param count the copied length
 *
 * @return the address of destination memory
 */
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void *rt_memcpy(void *dst, const void *src, rt_ubase_t count)
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{
#ifdef RT_TINY_SIZE
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    char *tmp = (char *)dst, *s = (char *)src;
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    while (count--)
        *tmp++ = *s++;
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    return dst;
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#else

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#define UNALIGNED(X, Y)                                               \
                        (((rt_int32_t)X & (sizeof(rt_int32_t) - 1)) | \
                         ((rt_int32_t)Y & (sizeof(rt_int32_t) - 1)))
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#define BIGBLOCKSIZE    (sizeof(rt_int32_t) << 2)
#define LITTLEBLOCKSIZE (sizeof(rt_int32_t))
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#define TOO_SMALL(LEN)  ((LEN) < BIGBLOCKSIZE)

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    char *dst_ptr = (char *)dst;
    char *src_ptr = (char *)src;
    rt_int32_t *aligned_dst;
    rt_int32_t *aligned_src;
    int len = count;

    /* If the size is small, or either SRC or DST is unaligned,
    then punt into the byte copy loop.  This should be rare. */
    if (!TOO_SMALL(len) && !UNALIGNED(src_ptr, dst_ptr))
    {
        aligned_dst = (rt_int32_t *)dst_ptr;
        aligned_src = (rt_int32_t *)src_ptr;

        /* Copy 4X long words at a time if possible. */
        while (len >= BIGBLOCKSIZE)
        {
            *aligned_dst++ = *aligned_src++;
            *aligned_dst++ = *aligned_src++;
            *aligned_dst++ = *aligned_src++;
            *aligned_dst++ = *aligned_src++;
            len -= BIGBLOCKSIZE;
        }

        /* Copy one long word at a time if possible. */
        while (len >= LITTLEBLOCKSIZE)
        {
            *aligned_dst++ = *aligned_src++;
            len -= LITTLEBLOCKSIZE;
        }

        /* Pick up any residual with a byte copier. */
        dst_ptr = (char *)aligned_dst;
        src_ptr = (char *)aligned_src;
    }

    while (len--)
        *dst_ptr++ = *src_ptr++;

    return dst;
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#undef UNALIGNED
#undef BIGBLOCKSIZE
#undef LITTLEBLOCKSIZE
#undef TOO_SMALL
#endif
}
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RTM_EXPORT(rt_memcpy);
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/**
 * This function will move memory content from source address to destination
 * address.
 *
 * @param dest the address of destination memory
 * @param src  the address of source memory
 * @param n the copied length
 *
 * @return the address of destination memory
 */
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void *rt_memmove(void *dest, const void *src, rt_ubase_t n)
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{
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    char *tmp = (char *)dest, *s = (char *)src;

    if (s < tmp && tmp < s + n)
    {
        tmp += n;
        s += n;

        while (n--)
            *(--tmp) = *(--s);
    }
    else
    {
        while (n--)
            *tmp++ = *s++;
    }

    return dest;
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}
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RTM_EXPORT(rt_memmove);
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/**
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 * This function will compare two areas of memory
 *
 * @param cs one area of memory
 * @param ct znother area of memory
 * @param count the size of the area
 *
 * @return the result
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 */
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rt_int32_t rt_memcmp(const void *cs, const void *ct, rt_ubase_t count)
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{
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    const unsigned char *su1, *su2;
    int res = 0;
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    for (su1 = cs, su2 = ct; 0 < count; ++su1, ++su2, count--)
        if ((res = *su1 - *su2) != 0)
            break;
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    return res;
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}
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RTM_EXPORT(rt_memcmp);
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/**
 * This function will return the first occurrence of a string.
 *
 * @param s1 the source string
 * @param s2 the find string
 *
 * @return the first occurrence of a s2 in s1, or RT_NULL if no found.
 */
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char *rt_strstr(const char *s1, const char *s2)
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{
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    int l1, l2;

    l2 = rt_strlen(s2);
    if (!l2)
        return (char *)s1;
    l1 = rt_strlen(s1);
    while (l1 >= l2)
    {
        l1 --;
        if (!rt_memcmp(s1, s2, l2))
            return (char *)s1;
        s1 ++;
    }

    return RT_NULL;
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}
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RTM_EXPORT(rt_strstr);
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/**
 * This function will compare two strings while ignoring differences in case
 *
 * @param a the string to be compared
 * @param b the string to be compared
 *
 * @return the result
 */
rt_uint32_t rt_strcasecmp(const char *a, const char *b)
{
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    int ca, cb;

    do
    {
        ca = *a++ & 0xff;
        cb = *b++ & 0xff;
        if (ca >= 'A' && ca <= 'Z')
            ca += 'a' - 'A';
        if (cb >= 'A' && cb <= 'Z')
            cb += 'a' - 'A';
    }
    while (ca == cb && ca != '\0');

    return ca - cb;
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}
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RTM_EXPORT(rt_strcasecmp);
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/**
 * This function will copy string no more than n bytes.
 *
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 * @param dst the string to copy
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 * @param src the string to be copied
 * @param n the maximum copied length
 *
 * @return the result
 */
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char *rt_strncpy(char *dst, const char *src, rt_ubase_t n)
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{
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    if (n != 0)
    {
        char *d = dst;
        const char *s = src;

        do
        {
            if ((*d++ = *s++) == 0)
            {
                /* NUL pad the remaining n-1 bytes */
                while (--n != 0)
                    *d++ = 0;
                break;
            }
        } while (--n != 0);
    }

    return (dst);
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}
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RTM_EXPORT(rt_strncpy);
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/**
 * This function will compare two strings with specified maximum length
 *
 * @param cs the string to be compared
 * @param ct the string to be compared
 * @param count the maximum compare length
 *
 * @return the result
 */
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rt_ubase_t rt_strncmp(const char *cs, const char *ct, rt_ubase_t count)
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{
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    register signed char __res = 0;
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    while (count)
    {
        if ((__res = *cs - *ct++) != 0 || !*cs++)
            break;
        count --;
    }
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    return __res;
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}
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RTM_EXPORT(rt_strncmp);
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/**
 * This function will compare two strings without specified length
 *
 * @param cs the string to be compared
 * @param ct the string to be compared
 *
 * @return the result
 */
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rt_ubase_t rt_strcmp(const char *cs, const char *ct)
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{
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    while (*cs && *cs == *ct)
        cs++, ct++;
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    return (*cs - *ct);
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}
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RTM_EXPORT(rt_strcmp);
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/**
 * This function will return the length of a string, which terminate will
 * null character.
 *
 * @param s the string
 *
 * @return the length of string
 */
rt_ubase_t rt_strlen(const char *s)
{
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    const char *sc;
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    for (sc = s; *sc != '\0'; ++sc) /* nothing */
        ;
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    return sc - s;
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}
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RTM_EXPORT(rt_strlen);
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#ifdef RT_USING_HEAP
/**
 * This function will duplicate a string.
 *
 * @param s the string to be duplicated
 *
 * @return the duplicated string pointer
 */
char *rt_strdup(const char *s)
{
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    rt_size_t len = rt_strlen(s) + 1;
    char *tmp = (char *)rt_malloc(len);
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    if (!tmp)
        return RT_NULL;
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    rt_memcpy(tmp, s, len);
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    return tmp;
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}
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RTM_EXPORT(rt_strdup);
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#endif

/**
 * This function will show the version of rt-thread rtos
 */
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void rt_show_version(void)
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{
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    rt_kprintf("\n \\ | /\n");
    rt_kprintf("- RT -     Thread Operating System\n");
    rt_kprintf(" / | \\     %d.%d.%d build %s\n",
               RT_VERSION, RT_SUBVERSION, RT_REVISION, __DATE__);
    rt_kprintf(" 2006 - 2012 Copyright by rt-thread team\n");
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}
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RTM_EXPORT(rt_show_version);
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/* private function */
#define isdigit(c)  ((unsigned)((c) - '0') < 10)

rt_inline rt_int32_t divide(rt_int32_t *n, rt_int32_t base)
{
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    rt_int32_t res;

    /* optimized for processor which does not support divide instructions. */
    if (base == 10)
    {
        res = ((rt_uint32_t)*n) % 10U;
        *n = ((rt_uint32_t)*n) / 10U;
    }
    else
    {
        res = ((rt_uint32_t)*n) % 16U;
        *n = ((rt_uint32_t)*n) / 16U;
    }

    return res;
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}

rt_inline int skip_atoi(const char **s)
{
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    register int i=0;
    while (isdigit(**s))
        i = i * 10 + *((*s)++) - '0';
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    return i;
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}

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#define ZEROPAD     (1 << 0)    /* pad with zero */
#define SIGN        (1 << 1)    /* unsigned/signed long */
#define PLUS        (1 << 2)    /* show plus */
#define SPACE       (1 << 3)    /* space if plus */
#define LEFT        (1 << 4)    /* left justified */
#define SPECIAL     (1 << 5)    /* 0x */
#define LARGE       (1 << 6)    /* use 'ABCDEF' instead of 'abcdef' */
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#ifdef RT_PRINTF_PRECISION
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static char *print_number(char *buf,
                          char *end,
                          long  num,
                          int   base,
                          int   s,
                          int   precision,
                          int   type)
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#else
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static char *print_number(char *buf,
                          char *end,
                          long  num,
                          int   base,
                          int   s,
                          int   type)
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#endif
{
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    char c, sign;
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#ifdef RT_PRINTF_LONGLONG
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    char tmp[32];
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#else
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    char tmp[16];
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#endif
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    const char *digits;
    static const char small_digits[] = "0123456789abcdef";
    static const char large_digits[] = "0123456789ABCDEF";
    register int i;
    register int size;

    size = s;

    digits = (type & LARGE) ? large_digits : small_digits;
    if (type & LEFT)
        type &= ~ZEROPAD;

    c = (type & ZEROPAD) ? '0' : ' ';

    /* get sign */
    sign = 0;
    if (type & SIGN)
    {
        if (num < 0)
        {
            sign = '-';
            num = -num;
        }
        else if (type & PLUS)
            sign = '+';
        else if (type & SPACE)
            sign = ' ';
    }
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#ifdef RT_PRINTF_SPECIAL
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    if (type & SPECIAL)
    {
        if (base == 16)
            size -= 2;
        else if (base == 8)
            size--;
    }
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#endif

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    i = 0;
    if (num == 0)
        tmp[i++]='0';
    else
    {
        while (num != 0)
            tmp[i++] = digits[divide(&num, base)];
    }
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#ifdef RT_PRINTF_PRECISION
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    if (i > precision)
        precision = i;
    size -= precision;
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#else
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    size -= i;
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#endif

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    if (!(type&(ZEROPAD | LEFT)))
    {
        if ((sign)&&(size>0))
            size--;

        while (size-->0)
        {
            if (buf <= end)
                *buf = ' ';
            ++ buf;
        }
    }

    if (sign)
    {
        if (buf <= end)
        {
            *buf = sign;
            -- size;
        }
        ++ buf;
    }
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#ifdef RT_PRINTF_SPECIAL
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    if (type & SPECIAL)
    {
        if (base==8)
        {
            if (buf <= end)
                *buf = '0';
            ++ buf;
        }
        else if (base == 16)
        {
            if (buf <= end)
                *buf = '0';
            ++ buf;
            if (buf <= end)
            {
                *buf = type & LARGE? 'X' : 'x';
            }
            ++ buf;
        }
    }
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#endif

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    /* no align to the left */
    if (!(type & LEFT))
    {
        while (size-- > 0)
        {
            if (buf <= end)
                *buf = c;
            ++ buf;
        }
    }
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#ifdef RT_PRINTF_PRECISION
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    while (i < precision--)
    {
        if (buf <= end)
            *buf = '0';
        ++ buf;
    }
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#endif

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    /* put number in the temporary buffer */
    while (i-- > 0)
    {
        if (buf <= end)
            *buf = tmp[i];
        ++ buf;
    }

    while (size-- > 0)
    {
        if (buf <= end)
            *buf = ' ';
        ++ buf;
    }

    return buf;
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}

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static rt_int32_t vsnprintf(char       *buf,
                            rt_size_t   size,
                            const char *fmt,
                            va_list     args)
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{
#ifdef RT_PRINTF_LONGLONG
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    unsigned long long num;
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#else
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    rt_uint32_t num;
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#endif
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    int i, len;
    char *str, *end, c;
    const char *s;
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    rt_uint8_t base;            /* the base of number */
    rt_uint8_t flags;           /* flags to print number */
    rt_uint8_t qualifier;       /* 'h', 'l', or 'L' for integer fields */
    rt_int32_t field_width;     /* width of output field */
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#ifdef RT_PRINTF_PRECISION
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    int precision;      /* min. # of digits for integers and max for a string */
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#endif

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    str = buf;
    end = buf + size - 1;

    /* Make sure end is always >= buf */
    if (end < buf)
    {
        end  = ((char *)-1);
        size = end - buf;
    }

    for (; *fmt ; ++fmt)
    {
        if (*fmt != '%')
        {
            if (str <= end)
                *str = *fmt;
            ++ str;
            continue;
        }

        /* process flags */
        flags = 0;

        while (1)
        {
            /* skips the first '%' also */
            ++ fmt;
            if (*fmt == '-') flags |= LEFT;
            else if (*fmt == '+') flags |= PLUS;
            else if (*fmt == ' ') flags |= SPACE;
            else if (*fmt == '#') flags |= SPECIAL;
            else if (*fmt == '0') flags |= ZEROPAD;
            else break;
        }

        /* get field width */
        field_width = -1;
        if (isdigit(*fmt)) field_width = skip_atoi(&fmt);
        else if (*fmt == '*')
        {
            ++ fmt;
            /* it's the next argument */
            field_width = va_arg(args, int);
            if (field_width < 0)
            {
                field_width = -field_width;
                flags |= LEFT;
            }
        }
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#ifdef RT_PRINTF_PRECISION
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        /* get the precision */
        precision = -1;
        if (*fmt == '.')
        {
            ++ fmt;
            if (isdigit(*fmt)) precision = skip_atoi(&fmt);
            else if (*fmt == '*')
            {
                ++ fmt;
                /* it's the next argument */
                precision = va_arg(args, int);
            }
            if (precision < 0) precision = 0;
        }
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#endif
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        /* get the conversion qualifier */
        qualifier = 0;
801
#ifdef RT_PRINTF_LONGLONG
802
        if (*fmt == 'h' || *fmt == 'l' || *fmt == 'L')
803
#else
804
        if (*fmt == 'h' || *fmt == 'l')
805
#endif
806 807 808
        {
            qualifier = *fmt;
            ++ fmt;
809
#ifdef RT_PRINTF_LONGLONG
810 811 812 813 814
            if (qualifier == 'l' && *fmt == 'l')
            {
                qualifier = 'L';
                ++ fmt;
            }
815
#endif
816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850
        }

        /* the default base */
        base = 10;

        switch (*fmt)
        {
        case 'c':
            if (!(flags & LEFT))
            {
                while (--field_width > 0)
                {
                    if (str <= end) *str = ' ';
                    ++ str;
                }
            }

            /* get character */
            c = (rt_uint8_t)va_arg(args, int);
            if (str <= end) *str = c;
            ++ str;

            /* put width */
            while (--field_width > 0)
            {
                if (str <= end) *str = ' ';
                ++ str;
            }
            continue;

        case 's':
            s = va_arg(args, char *);
            if (!s) s = "(NULL)";

            len = rt_strlen(s);
851
#ifdef RT_PRINTF_PRECISION
852
            if (precision > 0 && len > precision) len = precision;
853 854
#endif

855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883
            if (!(flags & LEFT))
            {
                while (len < field_width--)
                {
                    if (str <= end) *str = ' ';
                    ++ str;
                }
            }

            for (i = 0; i < len; ++i)
            {
                if (str <= end) *str = *s;
                ++ str;
                ++ s;
            }

            while (len < field_width--)
            {
                if (str <= end) *str = ' ';
                ++ str;
            }
            continue;

        case 'p':
            if (field_width == -1)
            {
                field_width = sizeof(void *) << 1;
                flags |= ZEROPAD;
            }
884
#ifdef RT_PRINTF_PRECISION
885 886 887
            str = print_number(str, end,
                               (long)va_arg(args, void *),
                               16, field_width, precision, flags);
888
#else
889 890 891
            str = print_number(str, end,
                               (long)va_arg(args, void *),
                               16, field_width, flags);
892
#endif
893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931
            continue;

        case '%':
            if (str <= end) *str = '%';
            ++ str;
            continue;

            /* integer number formats - set up the flags and "break" */
        case 'o':
            base = 8;
            break;

        case 'X':
            flags |= LARGE;
        case 'x':
            base = 16;
            break;

        case 'd':
        case 'i':
            flags |= SIGN;
        case 'u':
            break;

        default:
            if (str <= end) *str = '%';
            ++ str;

            if (*fmt)
            {
                if (str <= end) *str = *fmt;
                ++ str;
            }
            else
            {
                -- fmt;
            }
            continue;
        }
932 933

#ifdef RT_PRINTF_LONGLONG
934 935
        if (qualifier == 'L') num = va_arg(args, long long);
        else if (qualifier == 'l')
936
#else
937
        if (qualifier == 'l')
938
#endif
939 940 941 942 943 944 945 946 947 948 949 950 951 952
        {
            num = va_arg(args, rt_uint32_t);
            if (flags & SIGN) num = (rt_int32_t)num;
        }
        else if (qualifier == 'h')
        {
            num = (rt_uint16_t)va_arg(args, rt_int32_t);
            if (flags & SIGN) num = (rt_int16_t)num;
        }
        else
        {
            num = va_arg(args, rt_uint32_t);
            if (flags & SIGN) num = (rt_int32_t)num;
        }
953
#ifdef RT_PRINTF_PRECISION
954
        str = print_number(str, end, num, base, field_width, precision, flags);
955
#else
956
        str = print_number(str, end, num, base, field_width, flags);
957
#endif
958
    }
959

960 961
    if (str <= end) *str = '\0';
    else *end = '\0';
962

963 964 965 966
    /* the trailing null byte doesn't count towards the total
    * ++str;
    */
    return str - buf;
967 968 969 970 971 972 973 974 975 976 977
}

/**
 * This function will fill a formatted string to buffer
 *
 * @param buf the buffer to save formatted string
 * @param size the size of buffer
 * @param fmt the format
 */
rt_int32_t rt_snprintf(char *buf, rt_size_t size, const char *fmt, ...)
{
978 979
    rt_int32_t n;
    va_list args;
980

981 982 983
    va_start(args, fmt);
    n = vsnprintf(buf, size, fmt, args);
    va_end(args);
984

985
    return n;
986
}
987
RTM_EXPORT(rt_snprintf);
988 989 990 991 992

/**
 * This function will fill a formatted string to buffer
 *
 * @param buf the buffer to save formatted string
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 * @param arg_ptr the arg_ptr
994 995 996 997
 * @param format the format
 */
rt_int32_t rt_vsprintf(char *buf, const char *format, va_list arg_ptr)
{
998
    return vsnprintf(buf, (rt_size_t) -1, format, arg_ptr);
999
}
1000
RTM_EXPORT(rt_vsprintf);
1001 1002 1003 1004 1005 1006 1007

/**
 * This function will fill a formatted string to buffer
 *
 * @param buf the buffer to save formatted string
 * @param format the format
 */
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rt_int32_t rt_sprintf(char *buf, const char *format, ...)
1009
{
1010 1011
    rt_int32_t n;
    va_list arg_ptr;
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1013 1014 1015
    va_start(arg_ptr, format);
    n = rt_vsprintf(buf ,format, arg_ptr);
    va_end(arg_ptr);
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1017
    return n;
1018
}
1019
RTM_EXPORT(rt_sprintf);
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1021 1022
#ifdef RT_USING_CONSOLE

1023
#ifdef RT_USING_DEVICE
1024 1025 1026 1027 1028 1029 1030
/**
 * This function returns the device using in console.
 *
 * @return the device using in console or RT_NULL
 */
rt_device_t rt_console_get_device(void)
{
1031
    return _console_device;
1032
}
1033
RTM_EXPORT(rt_console_get_device);
1034

1035
/**
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 * This function will set a device as console device.
1037
 * After set a device to console, all output of rt_kprintf will be
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 * redirected to this new device.
1039
 *
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 * @param name the name of new console device
1041
 *
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 * @return the old console device handler
1043
 */
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rt_device_t rt_console_set_device(const char *name)
1045
{
1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066
    rt_device_t new, old;

    /* save old device */
    old = _console_device;

    /* find new console device */
    new = rt_device_find(name);
    if (new != RT_NULL)
    {
        if (_console_device != RT_NULL)
        {
            /* close old console device */
            rt_device_close(_console_device);
        }

        /* set new console device */
        _console_device = new;
        rt_device_open(_console_device, RT_DEVICE_OFLAG_RDWR);
    }

    return old;
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}
1068
RTM_EXPORT(rt_console_set_device);
1069
#endif
1070

1071
#if defined(__GNUC__) || defined(__ADSPBLACKFIN__)
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void rt_hw_console_output(const char *str) __attribute__((weak));
void rt_hw_console_output(const char *str)
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#elif defined(__CC_ARM)
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__weak void rt_hw_console_output(const char *str)
1076
#elif defined(__IAR_SYSTEMS_ICC__)
1077 1078 1079
    #if __VER__ > 540
    __weak
    #endif
1080
void rt_hw_console_output(const char *str)
1081
#else
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void rt_hw_console_output(const char *str)
1083 1084
#endif
{
1085
    /* empty console output */
1086
}
1087
RTM_EXPORT(rt_hw_console_output);
1088 1089 1090 1091 1092 1093 1094 1095

/**
 * This function will print a formatted string on system console
 *
 * @param fmt the format
 */
void rt_kprintf(const char *fmt, ...)
{
1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108
    va_list args;
    rt_size_t length;
    static char rt_log_buf[RT_CONSOLEBUF_SIZE];

    va_start(args, fmt);
    /* the return value of vsnprintf is the number of bytes that would be
     * written to buffer had if the size of the buffer been sufficiently
     * large excluding the terminating null byte. If the output string
     * would be larger than the rt_log_buf, we have to adjust the output
     * length. */
    length = vsnprintf(rt_log_buf, sizeof(rt_log_buf) - 1, fmt, args);
    if (length > RT_CONSOLEBUF_SIZE - 1)
        length = RT_CONSOLEBUF_SIZE - 1;
1109
#ifdef RT_USING_DEVICE
1110 1111 1112 1113 1114 1115 1116 1117
    if (_console_device == RT_NULL)
    {
        rt_hw_console_output(rt_log_buf);
    }
    else
    {
        rt_device_write(_console_device, 0, rt_log_buf, length);
    }
1118
#else
1119
    rt_hw_console_output(rt_log_buf);
1120
#endif
1121
    va_end(args);
1122
}
1123
RTM_EXPORT(rt_kprintf);
1124 1125 1126 1127
#else
void rt_kprintf(const char *fmt, ...)
{
}
1128 1129
RTM_EXPORT(rt_kprintf);

1130
#endif
1131

1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143
#ifdef RT_USING_HEAP
/**
 * This function allocates a memory block, which address is aligned to the
 * specified alignment size.
 *
 * @param size the allocated memory block size
 * @param align the alignment size
 *
 * @return the allocated memory block on successful, otherwise returns RT_NULL
 */
void* rt_malloc_align(rt_size_t size, rt_size_t align)
{
1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173
    void *align_ptr;
    void *ptr;
    rt_size_t align_size;

    /* align the alignment size to 4 byte */
    align = ((align + 0x03) & ~0x03);

    /* get total aligned size */
    align_size = ((size + 0x03) & ~0x03) + align;
    /* allocate memory block from heap */
    ptr = rt_malloc(align_size);
    if (ptr != RT_NULL)
    {
         /* the allocated memory block is aligned */
        if (((rt_uint32_t)ptr & (align - 1)) == 0)
        {
            align_ptr = (void *)((rt_uint32_t)ptr + align);
        }
        else
        {
            align_ptr = (void *)(((rt_uint32_t)ptr + (align - 1)) & ~(align - 1));
        }

        /* set the pointer before alignment pointer to the real pointer */
        *((rt_uint32_t *)((rt_uint32_t)align_ptr - sizeof(void *))) = (rt_uint32_t)ptr;

        ptr = align_ptr;
    }

    return ptr;
1174
}
1175
RTM_EXPORT(rt_malloc_align);
1176 1177

/**
1178 1179
 * This function release the memory block, which is allocated by
 * rt_malloc_align function and address is aligned.
1180 1181 1182
 *
 * @param ptr the memory block pointer
 */
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void rt_free_align(void *ptr)
1184
{
1185
    void *real_ptr;
1186

1187 1188
    real_ptr = (void *)*(rt_uint32_t *)((rt_uint32_t)ptr - sizeof(void *));
    rt_free(real_ptr);
1189
}
1190
RTM_EXPORT(rt_free_align);
1191 1192
#endif

1193 1194
#if !defined (RT_USING_NEWLIB) && defined (RT_USING_MINILIBC) && defined (__GNUC__)
#include <sys/types.h>
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void *memcpy(void *dest, const void *src, size_t n) __attribute__((weak, alias("rt_memcpy")));
void *memset(void *s, int c, size_t n) __attribute__((weak, alias("rt_memset")));
void *memmove(void *dest, const void *src, size_t n) __attribute__((weak, alias("rt_memmove")));
1198 1199 1200
int   memcmp(const void *s1, const void *s2, size_t n) __attribute__((weak, alias("rt_memcmp")));

size_t strlen(const char *s) __attribute__((weak, alias("rt_strlen")));
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char *strstr(const char *s1,const char *s2) __attribute__((weak, alias("rt_strstr")));
1202 1203
int strcasecmp(const char *a, const char *b) __attribute__((weak, alias("rt_strcasecmp")));
char *strncpy(char *dest, const char *src, size_t n) __attribute__((weak, alias("rt_strncpy")));
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int strncmp(const char *cs, const char *ct, size_t count) __attribute__((weak, alias("rt_strncmp")));
1205
#ifdef RT_USING_HEAP
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char *strdup(const char *s) __attribute__((weak, alias("rt_strdup")));
1207
#endif
1208

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int sprintf(char *buf, const char *format, ...) __attribute__((weak, alias("rt_sprintf")));
1210 1211 1212
int snprintf(char *buf, rt_size_t size, const char *fmt, ...) __attribute__((weak, alias("rt_snprintf")));
int vsprintf(char *buf, const char *format, va_list arg_ptr) __attribute__((weak, alias("rt_vsprintf")));

1213 1214 1215
#endif

/*@}*/