kservice.c 34.6 KB
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/*
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 * Copyright (c) 2006-2021, RT-Thread Development Team
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 *
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 * SPDX-License-Identifier: Apache-2.0
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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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 * 2013-06-24     Bernard      remove rt_kprintf if RT_USING_CONSOLE is not defined.
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 * 2013-09-24     aozima       make sure the device is in STREAM mode when used by rt_kprintf.
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 * 2015-07-06     Bernard      Add rt_assert_handler routine.
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 * 2021-02-28     Meco Man     add RT_KSERVICE_USING_STDLIB
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 */

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

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#ifdef RT_USING_MODULE
#include <dlmodule.h>
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#endif /* RT_USING_MODULE */
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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 __rt_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 gets the global errno for the current thread.
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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 */
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        return __rt_errno;
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    }
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    tid = rt_thread_self();
    if (tid == RT_NULL)
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        return __rt_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 sets the global errno for the current thread.
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 *
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 * @param error is the errno shall be set.
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 */
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 */
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        __rt_errno = error;
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        return;
    }
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    tid = rt_thread_self();
    if (tid == RT_NULL)
    {
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        __rt_errno = error;
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        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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/**
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 * This function returns the address of the current thread errno.
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 *
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 * @return The errno address.
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 */
int *_rt_errno(void)
{
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    rt_thread_t tid;
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    if (rt_interrupt_get_nest() != 0)
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        return (int *)&__rt_errno;
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    tid = rt_thread_self();
    if (tid != RT_NULL)
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        return (int *) & (tid->error);
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    return (int *)&__rt_errno;
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}
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RTM_EXPORT(_rt_errno);
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/**
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 * This function will set the content of memory to specified value.
 *
 * @param  s is the address of source memory, point to the memory block to be filled.
 *
 * @param  c is the value to be set. The value is passed in int form, but the function
 *         uses the unsigned character form of the value when filling the memory block.
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 *
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 * @param  count number of bytes to be set.
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 *
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 * @return The address of source memory.
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 */
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RT_WEAK void *rt_memset(void *s, int c, rt_ubase_t count)
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{
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#ifdef RT_KSERVICE_USING_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(long))
#define UNALIGNED(X)    ((long)X & (LBLOCKSIZE - 1))
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#define TOO_SMALL(LEN)  ((LEN) < LBLOCKSIZE)
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    unsigned int i;
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    char *m = (char *)s;
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    unsigned long buffer;
    unsigned long *aligned_addr;
    unsigned int d = c & 0xff;  /* To avoid sign extension, copy C to an
                                unsigned variable.  */
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    if (!TOO_SMALL(count) && !UNALIGNED(s))
    {
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        /* If we get this far, we know that count is large and s is word-aligned. */
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        aligned_addr = (unsigned long *)s;
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        /* Store d into each char sized location in buffer so that
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         * 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
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#endif /* RT_KSERVICE_USING_TINY_SIZE */
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}
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RTM_EXPORT(rt_memset);
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#ifndef RT_USING_ASM_MEMCPY
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/**
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 * This function will copy memory content from source address to destination address.
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 *
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 * @param  dst is the address of destination memory, points to the copied content.
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 *
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 * @param  src  is the address of source memory, pointing to the data source to be copied.
 *
 * @param  count is the copied length.
 *
 * @return The address of destination memory
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 */
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void *rt_memcpy(void *dst, const void *src, rt_ubase_t count)
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{
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#ifdef RT_KSERVICE_USING_TINY_SIZE
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    char *tmp = (char *)dst, *s = (char *)src;
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    rt_ubase_t len;
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    if (tmp <= s || tmp > (s + count))
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    {
        while (count--)
            *tmp ++ = *s ++;
    }
    else
    {
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        for (len = count; len > 0; len --)
            tmp[len - 1] = s[len - 1];
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    }
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    return dst;
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#else

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

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    char *dst_ptr = (char *)dst;
    char *src_ptr = (char *)src;
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    long *aligned_dst;
    long *aligned_src;
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    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))
    {
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        aligned_dst = (long *)dst_ptr;
        aligned_src = (long *)src_ptr;
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        /* 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
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#endif /* RT_KSERVICE_USING_TINY_SIZE */
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}
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RTM_EXPORT(rt_memcpy);
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#endif /* RT_USING_ASM_MEMCPY */
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#ifndef RT_KSERVICE_USING_STDLIB
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/**
 * This function will move memory content from source address to destination
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 * address. If the destination memory does not overlap with the source memory,
 * the function is the same as memcpy().
 *
 * @param  dst is the address of destination memory, points to the copied content.
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 *
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 * @param  src is the address of source memory, point to the data source to be copied.
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 *
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 * @param  count is the copied length.
 *
 * @return The address of destination memory.
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 */
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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 is a block of memory.
 *
 * @param  ct is another block of memory.
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 *
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 * @param  count is the size of the area.
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 *
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 * @return Compare the results:
 *         If the result < 0, cs is smaller than ct.
 *         If the result > 0, cs is greater than ct.
 *         If the result = 0, cs is equal to ct.
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 */
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RT_WEAK 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 = (const unsigned char *)cs, su2 = (const unsigned char *)ct; 0 < count; ++su1, ++su2, count--)
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        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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/**
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 * This function will return the first occurrence of a string, without the
 * terminator '\0'.
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 *
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 * @param  s1 is the source string.
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 *
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 * @param  s2 is the find string.
 *
 * @return The first occurrence of a s2 in s1, or RT_NULL if no found.
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 */
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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
 *
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 * @param  a is the string to be compared.
 *
 * @param  b is the string to be compared.
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 *
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 * @return Compare the results:
 *         If the result < 0, a is smaller than a.
 *         If the result > 0, a is greater than a.
 *         If the result = 0, a is equal to a.
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 */
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rt_int32_t rt_strcasecmp(const char *a, const char *b)
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{
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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 points to the address used to store the copied content.
 *
 * @param  src is the string to be copied.
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 *
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 * @param  n is the maximum copied length.
 *
 * @return The address where the copied content is stored.
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 */
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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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/**
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 * This function will compare two strings with specified maximum length.
 *
 * @param  cs is the string to be compared.
 *
 * @param  ct is the string to be compared.
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 *
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 * @param  count is the maximum compare length.
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 *
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 * @return Compare the results:
 *         If the result < 0, cs is smaller than ct.
 *         If the result > 0, cs is greater than ct.
 *         If the result = 0, cs is equal to ct.
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 */
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rt_int32_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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/**
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 * This function will compare two strings without specified length.
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 *
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 * @param  cs is the string to be compared.
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 *
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 * @param  ct is the string to be compared.
 *
 * @return Compare the results:
 *         If the result < 0, cs is smaller than ct.
 *         If the result > 0, cs is greater than ct.
 *         If the result = 0, cs is equal to ct.
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 */
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rt_int32_t rt_strcmp(const char *cs, const char *ct)
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{
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    while (*cs && *cs == *ct)
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    {
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        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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/**
 * The  strnlen()  function  returns the number of characters in the
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 * string pointed to by s, excluding the terminating null byte ('\0'),
 * but at most maxlen.  In doing this, strnlen() looks only at the
 * first maxlen characters in the string pointed to by s and never
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 * beyond s+maxlen.
 *
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 * @param  s is the string.
 *
 * @param  maxlen is the max size.
 *
 * @return The length of string.
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 */
rt_size_t rt_strnlen(const char *s, rt_ubase_t maxlen)
{
    const char *sc;

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    for (sc = s; *sc != '\0' && (rt_ubase_t)(sc - s) < maxlen; ++sc) /* nothing */
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        ;
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    return sc - s;
}
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RTM_EXPORT(rt_strnlen);

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/**
 * This function will return the length of a string, which terminate will
 * null character.
 *
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 * @param  s is the string
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 *
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 * @return The length of string.
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 */
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rt_size_t rt_strlen(const char *s)
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{
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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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#endif /* RT_KSERVICE_USING_STDLIB */
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#ifdef RT_USING_HEAP
/**
 * This function will duplicate a string.
 *
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 * @param  s is the string to be duplicated.
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 *
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 * @return The string address of the copy.
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 */
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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#ifdef __ARMCC_VERSION
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char *strdup(const char *s) __attribute__((alias("rt_strdup")));
#endif
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#endif /* RT_USING_HEAP */
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/**
 * 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__);
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    rt_kprintf(" 2006 - 2021 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 */
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#define _ISDIGIT(c)  ((unsigned)((c) - '0') < 10)
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#ifdef RT_PRINTF_LONGLONG
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/**
 * This function will duplicate a string.
 *
 * @param  s the string to be duplicated
 *
 * @return the duplicated string pointer
 */
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rt_inline int divide(long long *n, int base)
{
    int res;

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

    return res;
}
#else
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rt_inline int divide(long *n, int base)
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{
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    int res;
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    /* optimized for processor which does not support divide instructions. */
    if (base == 10)
    {
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        res = (int)(((unsigned long)*n) % 10U);
        *n = (long)(((unsigned long)*n) / 10U);
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    }
    else
    {
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        res = (int)(((unsigned long)*n) % 16U);
        *n = (long)(((unsigned long)*n) / 16U);
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    }

    return res;
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}
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#endif /* RT_PRINTF_LONGLONG */
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rt_inline int skip_atoi(const char **s)
{
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    register int i = 0;
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    while (_ISDIGIT(**s))
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        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,
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#ifdef RT_PRINTF_LONGLONG
                          long long  num,
#else
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                          long  num,
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#endif /* RT_PRINTF_LONGLONG */
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                          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,
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#ifdef RT_PRINTF_LONGLONG
                          long long  num,
#else
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                          long  num,
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#endif /* RT_PRINTF_LONGLONG */
673 674 675
                          int   base,
                          int   s,
                          int   type)
676
#endif /* RT_PRINTF_PRECISION */
677
{
678
    char c, sign;
679
#ifdef RT_PRINTF_LONGLONG
680
    char tmp[32];
681
#else
682
    char tmp[16];
683
#endif /* RT_PRINTF_LONGLONG */
684
    int precision_bak = precision;
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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--;
    }
722
#endif /* RT_PRINTF_SPECIAL */
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    i = 0;
    if (num == 0)
726
        tmp[i++] = '0';
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    else
    {
        while (num != 0)
            tmp[i++] = digits[divide(&num, base)];
    }
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#ifdef RT_PRINTF_PRECISION
734 735 736
    if (i > precision)
        precision = i;
    size -= precision;
737
#else
738
    size -= i;
739
#endif /* RT_PRINTF_PRECISION */
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741
    if (!(type & (ZEROPAD | LEFT)))
742
    {
743
        if ((sign) && (size > 0))
744 745
            size--;

746
        while (size-- > 0)
747
        {
748
            if (buf < end)
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                *buf = ' ';
            ++ buf;
        }
    }

    if (sign)
    {
756
        if (buf < end)
757 758 759
        {
            *buf = sign;
        }
760
        -- size;
761 762
        ++ buf;
    }
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#ifdef RT_PRINTF_SPECIAL
765 766
    if (type & SPECIAL)
    {
767
        if (base == 8)
768
        {
769
            if (buf < end)
770 771 772 773 774
                *buf = '0';
            ++ buf;
        }
        else if (base == 16)
        {
775
            if (buf < end)
776 777
                *buf = '0';
            ++ buf;
778
            if (buf < end)
779
            {
780
                *buf = type & LARGE ? 'X' : 'x';
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            }
            ++ buf;
        }
    }
785
#endif /* RT_PRINTF_SPECIAL */
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787 788 789 790 791
    /* no align to the left */
    if (!(type & LEFT))
    {
        while (size-- > 0)
        {
792
            if (buf < end)
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                *buf = c;
            ++ buf;
        }
    }
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#ifdef RT_PRINTF_PRECISION
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    while (i < precision--)
    {
801
        if (buf < end)
802 803 804
            *buf = '0';
        ++ buf;
    }
805
#endif /* RT_PRINTF_PRECISION */
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807
    /* put number in the temporary buffer */
808
    while (i-- > 0 && (precision_bak != 0))
809
    {
810
        if (buf < end)
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            *buf = tmp[i];
        ++ buf;
    }

    while (size-- > 0)
    {
817
        if (buf < end)
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            *buf = ' ';
        ++ buf;
    }

    return buf;
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}

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/**
 * This function will fill a formatted string to buffer.
 *
 * @param  buf is the buffer to save formatted string.
 *
 * @param  size is the size of buffer.
 *
 * @param  fmt is the format parameters.
 *
 * @param  args is a list of variable parameters.
 *
 * @return The number of characters actually written to buffer.
 */
838 839 840 841
rt_int32_t rt_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;
845
#else
846
    rt_uint32_t num;
847
#endif /* RT_PRINTF_LONGLONG */
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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
858
    int precision;      /* min. # of digits for integers and max for a string */
859
#endif /* RT_PRINTF_PRECISION */
860

861
    str = buf;
862
    end = buf + size;
863 864 865 866

    /* Make sure end is always >= buf */
    if (end < buf)
    {
867
        end  = ((char *) - 1);
868 869 870 871 872 873 874
        size = end - buf;
    }

    for (; *fmt ; ++fmt)
    {
        if (*fmt != '%')
        {
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            if (str < end)
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                *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;
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        if (_ISDIGIT(*fmt)) field_width = skip_atoi(&fmt);
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        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;
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            if (_ISDIGIT(*fmt)) precision = skip_atoi(&fmt);
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            else if (*fmt == '*')
            {
                ++ fmt;
                /* it's the next argument */
                precision = va_arg(args, int);
            }
            if (precision < 0) precision = 0;
        }
926
#endif /* RT_PRINTF_PRECISION */
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        /* get the conversion qualifier */
        qualifier = 0;
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#ifdef RT_PRINTF_LONGLONG
930
        if (*fmt == 'h' || *fmt == 'l' || *fmt == 'L')
931
#else
932
        if (*fmt == 'h' || *fmt == 'l')
933
#endif /* RT_PRINTF_LONGLONG */
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        {
            qualifier = *fmt;
            ++ fmt;
937
#ifdef RT_PRINTF_LONGLONG
938 939 940 941 942
            if (qualifier == 'l' && *fmt == 'l')
            {
                qualifier = 'L';
                ++ fmt;
            }
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#endif /* RT_PRINTF_LONGLONG */
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        }

        /* the default base */
        base = 10;

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

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

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

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

978
            for (len = 0; (len != field_width) && (s[len] != '\0'); len++);
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#ifdef RT_PRINTF_PRECISION
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            if (precision > 0 && len > precision) len = precision;
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#endif /* RT_PRINTF_PRECISION */
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983 984 985 986
            if (!(flags & LEFT))
            {
                while (len < field_width--)
                {
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                    if (str < end) *str = ' ';
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                    ++ str;
                }
            }

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

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

        case 'p':
            if (field_width == -1)
            {
                field_width = sizeof(void *) << 1;
                flags |= ZEROPAD;
            }
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#ifdef RT_PRINTF_PRECISION
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            str = print_number(str, end,
                               (long)va_arg(args, void *),
                               16, field_width, precision, flags);
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#else
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            str = print_number(str, end,
                               (long)va_arg(args, void *),
                               16, field_width, flags);
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#endif /* RT_PRINTF_PRECISION */
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            continue;

        case '%':
1024
            if (str < end) *str = '%';
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            ++ str;
            continue;

1028
        /* integer number formats - set up the flags and "break" */
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        case 'o':
            base = 8;
            break;

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

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

        default:
1046
            if (str < end) *str = '%';
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            ++ str;

            if (*fmt)
            {
1051
                if (str < end) *str = *fmt;
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                ++ str;
            }
            else
            {
                -- fmt;
            }
            continue;
        }
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#ifdef RT_PRINTF_LONGLONG
1062 1063
        if (qualifier == 'L') num = va_arg(args, long long);
        else if (qualifier == 'l')
1064
#else
1065
        if (qualifier == 'l')
1066
#endif /* RT_PRINTF_LONGLONG */
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        {
            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;
        }
1081
#ifdef RT_PRINTF_PRECISION
1082
        str = print_number(str, end, num, base, field_width, precision, flags);
1083
#else
1084
        str = print_number(str, end, num, base, field_width, flags);
1085
#endif /* RT_PRINTF_PRECISION */
1086
    }
1087

1088 1089 1090 1091 1092 1093 1094 1095
    if (size > 0)
    {
        if (str < end) *str = '\0';
        else
        {
            end[-1] = '\0';
        }
    }
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1097 1098 1099 1100
    /* the trailing null byte doesn't count towards the total
    * ++str;
    */
    return str - buf;
1101
}
1102
RTM_EXPORT(rt_vsnprintf);
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/**
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 * This function will fill a formatted string to buffer.
1106
 *
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 * @param  buf is the buffer to save formatted string.
 *
 * @param  size is the size of buffer.
 *
 * @param  fmt is the format parameters.
 *
 * @return The number of characters actually written to buffer.
1114 1115 1116
 */
rt_int32_t rt_snprintf(char *buf, rt_size_t size, const char *fmt, ...)
{
1117 1118
    rt_int32_t n;
    va_list args;
1119

1120
    va_start(args, fmt);
1121
    n = rt_vsnprintf(buf, size, fmt, args);
1122
    va_end(args);
1123

1124
    return n;
1125
}
1126
RTM_EXPORT(rt_snprintf);
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/**
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 * This function will fill a formatted string to buffer.
 *
 * @param  buf is the buffer to save formatted string.
 *
 * @param  format is the format parameters.
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 *
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 * @param  arg_ptr is a list of variable parameters.
 *
 * @return The number of characters actually written to buffer.
1138 1139 1140
 */
rt_int32_t rt_vsprintf(char *buf, const char *format, va_list arg_ptr)
{
1141
    return rt_vsnprintf(buf, (rt_size_t) - 1, format, arg_ptr);
1142
}
1143
RTM_EXPORT(rt_vsprintf);
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/**
 * This function will fill a formatted string to buffer
 *
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 * @param  buf the buffer to save formatted string.
 *
 * @param  format is the format parameters.
 *
 * @return The number of characters actually written to buffer.
1153
 */
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rt_int32_t rt_sprintf(char *buf, const char *format, ...)
1155
{
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    rt_int32_t n;
    va_list arg_ptr;
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1159
    va_start(arg_ptr, format);
1160
    n = rt_vsprintf(buf, format, arg_ptr);
1161
    va_end(arg_ptr);
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1163
    return n;
1164
}
1165
RTM_EXPORT(rt_sprintf);
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#ifdef RT_USING_CONSOLE

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#ifdef RT_USING_DEVICE
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/**
 * This function returns the device using in console.
 *
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 * @return Returns the console device pointer or RT_NULL.
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 */
rt_device_t rt_console_get_device(void)
{
1177
    return _console_device;
1178
}
1179
RTM_EXPORT(rt_console_get_device);
1180

1181
/**
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 * This function will set a device as console device.
1183
 * After set a device to console, all output of rt_kprintf will be
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 * redirected to this new device.
1185
 *
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 * @param  name is the name of new console device.
1187
 *
1188
 * @return the old console device handler on successful, or RT_NULL on failure.
1189
 */
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rt_device_t rt_console_set_device(const char *name)
1191
{
1192
    rt_device_t new_device, old_device;
1193 1194

    /* save old device */
1195
    old_device = _console_device;
1196 1197

    /* find new console device */
1198
    new_device = rt_device_find(name);
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    /* check whether it's a same device */
    if (new_device == old_device) return RT_NULL;
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1203
    if (new_device != RT_NULL)
1204 1205 1206 1207 1208 1209 1210 1211
    {
        if (_console_device != RT_NULL)
        {
            /* close old console device */
            rt_device_close(_console_device);
        }

        /* set new console device */
1212 1213
        rt_device_open(new_device, RT_DEVICE_OFLAG_RDWR | RT_DEVICE_FLAG_STREAM);
        _console_device = new_device;
1214 1215
    }

1216
    return old_device;
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}
1218
RTM_EXPORT(rt_console_set_device);
1219
#endif /* RT_USING_DEVICE */
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RT_WEAK void rt_hw_console_output(const char *str)
1222
{
1223
    /* empty console output */
1224
}
1225
RTM_EXPORT(rt_hw_console_output);
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/**
 * This function will put string to the console.
 *
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 * @param str is the string output to the console.
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 */
void rt_kputs(const char *str)
{
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    if (!str) return;

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#ifdef RT_USING_DEVICE
    if (_console_device == RT_NULL)
    {
        rt_hw_console_output(str);
    }
    else
    {
        rt_device_write(_console_device, 0, str, rt_strlen(str));
    }
#else
    rt_hw_console_output(str);
1247
#endif /* RT_USING_DEVICE */
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}

1250
/**
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 * This function will print a formatted string on system console.
1252
 *
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 * @param fmt is the format parameters.
1254
 */
1255
RT_WEAK void rt_kprintf(const char *fmt, ...)
1256
{
1257 1258 1259 1260 1261 1262 1263 1264 1265 1266
    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. */
1267
    length = rt_vsnprintf(rt_log_buf, sizeof(rt_log_buf) - 1, fmt, args);
1268 1269
    if (length > RT_CONSOLEBUF_SIZE - 1)
        length = RT_CONSOLEBUF_SIZE - 1;
1270
#ifdef RT_USING_DEVICE
1271 1272 1273 1274 1275 1276 1277 1278
    if (_console_device == RT_NULL)
    {
        rt_hw_console_output(rt_log_buf);
    }
    else
    {
        rt_device_write(_console_device, 0, rt_log_buf, length);
    }
1279
#else
1280
    rt_hw_console_output(rt_log_buf);
1281
#endif /* RT_USING_DEVICE */
1282
    va_end(args);
1283
}
1284
RTM_EXPORT(rt_kprintf);
1285
#endif /* RT_USING_CONSOLE */
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#ifdef RT_USING_HEAP
/**
 * This function allocates a memory block, which address is aligned to the
 * specified alignment size.
 *
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 * @param  size is the allocated memory block size.
1293
 *
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 * @param  align is the alignment size.
 *
 * @return The memory block address was returned successfully, otherwise it was
 *         returned empty RT_NULL.
1298
 */
1299
RT_WEAK void *rt_malloc_align(rt_size_t size, rt_size_t align)
1300
{
1301
    void *ptr;
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    void *align_ptr;
    int uintptr_size;
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    rt_size_t align_size;

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    /* sizeof pointer */
    uintptr_size = sizeof(void*);
    uintptr_size -= 1;

    /* align the alignment size to uintptr size byte */
    align = ((align + uintptr_size) & ~uintptr_size);
1312 1313

    /* get total aligned size */
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    align_size = ((size + uintptr_size) & ~uintptr_size) + align;
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    /* allocate memory block from heap */
    ptr = rt_malloc(align_size);
    if (ptr != RT_NULL)
    {
1319
        /* the allocated memory block is aligned */
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        if (((rt_ubase_t)ptr & (align - 1)) == 0)
1321
        {
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            align_ptr = (void *)((rt_ubase_t)ptr + align);
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        }
        else
        {
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            align_ptr = (void *)(((rt_ubase_t)ptr + (align - 1)) & ~(align - 1));
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        }

        /* set the pointer before alignment pointer to the real pointer */
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        *((rt_ubase_t *)((rt_ubase_t)align_ptr - sizeof(void *))) = (rt_ubase_t)ptr;
1331 1332 1333 1334 1335

        ptr = align_ptr;
    }

    return ptr;
1336
}
1337
RTM_EXPORT(rt_malloc_align);
1338 1339

/**
1340 1341
 * This function release the memory block, which is allocated by
 * rt_malloc_align function and address is aligned.
1342
 *
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 * @param ptr is the memory block pointer.
1344
 */
1345
RT_WEAK void rt_free_align(void *ptr)
1346
{
1347
    void *real_ptr;
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    real_ptr = (void *) * (rt_ubase_t *)((rt_ubase_t)ptr - sizeof(void *));
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    rt_free(real_ptr);
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}
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RTM_EXPORT(rt_free_align);
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#endif /* RT_USING_HEAP */
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#ifndef RT_USING_CPU_FFS
const rt_uint8_t __lowest_bit_bitmap[] =
{
    /* 00 */ 0, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 10 */ 4, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 20 */ 5, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 30 */ 4, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 40 */ 6, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 50 */ 4, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 60 */ 5, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 70 */ 4, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 80 */ 7, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* 90 */ 4, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* A0 */ 5, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* B0 */ 4, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* C0 */ 6, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* D0 */ 4, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* E0 */ 5, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0,
    /* F0 */ 4, 0, 1, 0, 2, 0, 1, 0, 3, 0, 1, 0, 2, 0, 1, 0
};

/**
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 * This function finds the first bit set (beginning with the least significant bit)
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 * in value and return the index of that bit.
 *
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 * Bits are numbered starting at 1 (the least significant bit).  A return value of
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 * zero from any of these functions means that the argument was zero.
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 *
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 * @return Return the index of the first bit set. If value is 0, then this function
 *         shall return 0.
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 */
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int __rt_ffs(int value)
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{
    if (value == 0) return 0;

    if (value & 0xff)
        return __lowest_bit_bitmap[value & 0xff] + 1;

    if (value & 0xff00)
        return __lowest_bit_bitmap[(value & 0xff00) >> 8] + 9;
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    if (value & 0xff0000)
        return __lowest_bit_bitmap[(value & 0xff0000) >> 16] + 17;
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    return __lowest_bit_bitmap[(value & 0xff000000) >> 24] + 25;
}
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#endif /* RT_USING_CPU_FFS */
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#ifdef RT_DEBUG
/* RT_ASSERT(EX)'s hook */
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void (*rt_assert_hook)(const char *ex, const char *func, rt_size_t line);
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/**
 * This function will set a hook function to RT_ASSERT(EX). It will run when the expression is false.
 *
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 * @param hook is the hook function.
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 */
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void rt_assert_set_hook(void (*hook)(const char *ex, const char *func, rt_size_t line))
{
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    rt_assert_hook = hook;
}
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/**
 * The RT_ASSERT function.
 *
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 * @param ex is the assertion condition string.
 *
 * @param func is the function name when assertion.
 *
 * @param line is the file line number when assertion.
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 */
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void rt_assert_handler(const char *ex_string, const char *func, rt_size_t line)
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{
    volatile char dummy = 0;

    if (rt_assert_hook == RT_NULL)
    {
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        if (dlmodule_self())
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        {
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            /* close assertion module */
            dlmodule_exit(-1);
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        }
        else
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#endif /*RT_USING_MODULE*/
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        {
            rt_kprintf("(%s) assertion failed at function:%s, line number:%d \n", ex_string, func, line);
            while (dummy == 0);
        }
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    }
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    else
    {
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        rt_assert_hook(ex_string, func, line);
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    }
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}
RTM_EXPORT(rt_assert_handler);
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#endif /* RT_DEBUG */

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/**@}*/