lib_generic/ldiv.c - uboot/qsr1000 - Git at Google

 /* Copyright (C) 1992, 1997 Free Software Foundation, Inc.
    This file is part of the GNU C Library.

    The GNU C Library is free software; you can redistribute it and/or
    modify it under the terms of the GNU Library General Public License as
    published by the Free Software Foundation; either version 2 of the
    License, or (at your option) any later version.

    The GNU C Library is distributed in the hope that it will be useful,
    but WITHOUT ANY WARRANTY; without even the implied warranty of
    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
    Library General Public License for more details.

    You should have received a copy of the GNU Library General Public
    License along with the GNU C Library; see the file COPYING.LIB.  If not,
    write to the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
    Boston, MA 02111-1307, USA.  */

 typedef struct {
 	long    quot;
 	long    rem;
 } ldiv_t;
 /* Return the `ldiv_t' representation of NUMER over DENOM.  */
 ldiv_t
 ldiv (long int numer, long int denom)
 {
   ldiv_t result;

   result.quot = numer / denom;
   result.rem = numer % denom;

   /* The ANSI standard says that |QUOT| <= |NUMER / DENOM|, where
      NUMER / DENOM is to be computed in infinite precision.  In
      other words, we should always truncate the quotient towards
      zero, never -infinity.  Machine division and remainer may
      work either way when one or both of NUMER or DENOM is
      negative.  If only one is negative and QUOT has been
      truncated towards -infinity, REM will have the same sign as
      DENOM and the opposite sign of NUMER; if both are negative
      and QUOT has been truncated towards -infinity, REM will be
      positive (will have the opposite sign of NUMER).  These are
      considered `wrong'.  If both are NUM and DENOM are positive,
      RESULT will always be positive.  This all boils down to: if
      NUMER >= 0, but REM < 0, we got the wrong answer.  In that
      case, to get the right answer, add 1 to QUOT and subtract
      DENOM from REM.  */

   if (numer >= 0 && result.rem < 0)
     {
       ++result.quot;
       result.rem -= denom;
     }

   return result;
 }
	/* Copyright (C) 1992, 1997 Free Software Foundation, Inc.
	This file is part of the GNU C Library.

	The GNU C Library is free software; you can redistribute it and/or
	modify it under the terms of the GNU Library General Public License as
	published by the Free Software Foundation; either version 2 of the
	License, or (at your option) any later version.

	The GNU C Library is distributed in the hope that it will be useful,
	but WITHOUT ANY WARRANTY; without even the implied warranty of
	MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
	Library General Public License for more details.

	You should have received a copy of the GNU Library General Public
	License along with the GNU C Library; see the file COPYING.LIB. If not,
	write to the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
	Boston, MA 02111-1307, USA. */

	typedef struct {
	long quot;
	long rem;
	} ldiv_t;
	/* Return the `ldiv_t' representation of NUMER over DENOM. */
	ldiv_t
	ldiv (long int numer, long int denom)
	{
	ldiv_t result;

	result.quot = numer / denom;
	result.rem = numer % denom;

	/* The ANSI standard says that \|QUOT\| <= \|NUMER / DENOM\|, where
	NUMER / DENOM is to be computed in infinite precision. In
	other words, we should always truncate the quotient towards
	zero, never -infinity. Machine division and remainer may
	work either way when one or both of NUMER or DENOM is
	negative. If only one is negative and QUOT has been
	truncated towards -infinity, REM will have the same sign as
	DENOM and the opposite sign of NUMER; if both are negative
	and QUOT has been truncated towards -infinity, REM will be
	positive (will have the opposite sign of NUMER). These are
	considered `wrong'. If both are NUM and DENOM are positive,
	RESULT will always be positive. This all boils down to: if
	NUMER >= 0, but REM < 0, we got the wrong answer. In that
	case, to get the right answer, add 1 to QUOT and subtract
	DENOM from REM. */

	if (numer >= 0 && result.rem < 0)
	{
	++result.quot;
	result.rem -= denom;
	}

	return result;
	}