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wide-int.cc revision 1.4
      1  1.1  mrg /* Operations with very long integers.
      2  1.4  mrg    Copyright (C) 2012-2018 Free Software Foundation, Inc.
      3  1.1  mrg    Contributed by Kenneth Zadeck <zadeck (at) naturalbridge.com>
      4  1.1  mrg 
      5  1.1  mrg This file is part of GCC.
      6  1.1  mrg 
      7  1.1  mrg GCC is free software; you can redistribute it and/or modify it
      8  1.1  mrg under the terms of the GNU General Public License as published by the
      9  1.1  mrg Free Software Foundation; either version 3, or (at your option) any
     10  1.1  mrg later version.
     11  1.1  mrg 
     12  1.1  mrg GCC is distributed in the hope that it will be useful, but WITHOUT
     13  1.1  mrg ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
     14  1.1  mrg FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
     15  1.1  mrg for more details.
     16  1.1  mrg 
     17  1.1  mrg You should have received a copy of the GNU General Public License
     18  1.1  mrg along with GCC; see the file COPYING3.  If not see
     19  1.1  mrg <http://www.gnu.org/licenses/>.  */
     20  1.1  mrg 
     21  1.1  mrg #include "config.h"
     22  1.1  mrg #include "system.h"
     23  1.1  mrg #include "coretypes.h"
     24  1.1  mrg #include "tm.h"
     25  1.1  mrg #include "tree.h"
     26  1.3  mrg #include "selftest.h"
     27  1.1  mrg 
     28  1.1  mrg 
     29  1.1  mrg #define HOST_BITS_PER_HALF_WIDE_INT 32
     30  1.1  mrg #if HOST_BITS_PER_HALF_WIDE_INT == HOST_BITS_PER_LONG
     31  1.1  mrg # define HOST_HALF_WIDE_INT long
     32  1.1  mrg #elif HOST_BITS_PER_HALF_WIDE_INT == HOST_BITS_PER_INT
     33  1.1  mrg # define HOST_HALF_WIDE_INT int
     34  1.1  mrg #else
     35  1.1  mrg #error Please add support for HOST_HALF_WIDE_INT
     36  1.1  mrg #endif
     37  1.1  mrg 
     38  1.1  mrg #define W_TYPE_SIZE HOST_BITS_PER_WIDE_INT
     39  1.1  mrg /* Do not include longlong.h when compiler is clang-based. See PR61146.  */
     40  1.1  mrg #if GCC_VERSION >= 3000 && (W_TYPE_SIZE == 32 || defined (__SIZEOF_INT128__)) && !defined(__clang__)
     41  1.1  mrg typedef unsigned HOST_HALF_WIDE_INT UHWtype;
     42  1.1  mrg typedef unsigned HOST_WIDE_INT UWtype;
     43  1.1  mrg typedef unsigned int UQItype __attribute__ ((mode (QI)));
     44  1.1  mrg typedef unsigned int USItype __attribute__ ((mode (SI)));
     45  1.1  mrg typedef unsigned int UDItype __attribute__ ((mode (DI)));
     46  1.1  mrg #if W_TYPE_SIZE == 32
     47  1.1  mrg typedef unsigned int UDWtype __attribute__ ((mode (DI)));
     48  1.1  mrg #else
     49  1.1  mrg typedef unsigned int UDWtype __attribute__ ((mode (TI)));
     50  1.1  mrg #endif
     51  1.1  mrg #include "longlong.h"
     52  1.1  mrg #endif
     53  1.1  mrg 
     54  1.1  mrg static const HOST_WIDE_INT zeros[WIDE_INT_MAX_ELTS] = {};
     55  1.1  mrg 
     56  1.1  mrg /*
     57  1.1  mrg  * Internal utilities.
     58  1.1  mrg  */
     59  1.1  mrg 
     60  1.1  mrg /* Quantities to deal with values that hold half of a wide int.  Used
     61  1.1  mrg    in multiply and divide.  */
     62  1.3  mrg #define HALF_INT_MASK ((HOST_WIDE_INT_1 << HOST_BITS_PER_HALF_WIDE_INT) - 1)
     63  1.1  mrg 
     64  1.1  mrg #define BLOCK_OF(TARGET) ((TARGET) / HOST_BITS_PER_WIDE_INT)
     65  1.1  mrg #define BLOCKS_NEEDED(PREC) \
     66  1.1  mrg   (PREC ? (((PREC) + HOST_BITS_PER_WIDE_INT - 1) / HOST_BITS_PER_WIDE_INT) : 1)
     67  1.1  mrg #define SIGN_MASK(X) ((HOST_WIDE_INT) (X) < 0 ? -1 : 0)
     68  1.1  mrg 
     69  1.1  mrg /* Return the value a VAL[I] if I < LEN, otherwise, return 0 or -1
     70  1.1  mrg    based on the top existing bit of VAL. */
     71  1.1  mrg 
     72  1.1  mrg static unsigned HOST_WIDE_INT
     73  1.1  mrg safe_uhwi (const HOST_WIDE_INT *val, unsigned int len, unsigned int i)
     74  1.1  mrg {
     75  1.3  mrg   return i < len ? val[i] : val[len - 1] < 0 ? HOST_WIDE_INT_M1 : 0;
     76  1.1  mrg }
     77  1.1  mrg 
     78  1.1  mrg /* Convert the integer in VAL to canonical form, returning its new length.
     79  1.1  mrg    LEN is the number of blocks currently in VAL and PRECISION is the number
     80  1.1  mrg    of bits in the integer it represents.
     81  1.1  mrg 
     82  1.1  mrg    This function only changes the representation, not the value.  */
     83  1.1  mrg static unsigned int
     84  1.1  mrg canonize (HOST_WIDE_INT *val, unsigned int len, unsigned int precision)
     85  1.1  mrg {
     86  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (precision);
     87  1.1  mrg   HOST_WIDE_INT top;
     88  1.1  mrg   int i;
     89  1.1  mrg 
     90  1.1  mrg   if (len > blocks_needed)
     91  1.1  mrg     len = blocks_needed;
     92  1.1  mrg 
     93  1.1  mrg   if (len == 1)
     94  1.1  mrg     return len;
     95  1.1  mrg 
     96  1.1  mrg   top = val[len - 1];
     97  1.1  mrg   if (len * HOST_BITS_PER_WIDE_INT > precision)
     98  1.1  mrg     val[len - 1] = top = sext_hwi (top, precision % HOST_BITS_PER_WIDE_INT);
     99  1.1  mrg   if (top != 0 && top != (HOST_WIDE_INT)-1)
    100  1.1  mrg     return len;
    101  1.1  mrg 
    102  1.1  mrg   /* At this point we know that the top is either 0 or -1.  Find the
    103  1.1  mrg      first block that is not a copy of this.  */
    104  1.1  mrg   for (i = len - 2; i >= 0; i--)
    105  1.1  mrg     {
    106  1.1  mrg       HOST_WIDE_INT x = val[i];
    107  1.1  mrg       if (x != top)
    108  1.1  mrg 	{
    109  1.1  mrg 	  if (SIGN_MASK (x) == top)
    110  1.1  mrg 	    return i + 1;
    111  1.1  mrg 
    112  1.1  mrg 	  /* We need an extra block because the top bit block i does
    113  1.1  mrg 	     not match the extension.  */
    114  1.1  mrg 	  return i + 2;
    115  1.1  mrg 	}
    116  1.1  mrg     }
    117  1.1  mrg 
    118  1.1  mrg   /* The number is 0 or -1.  */
    119  1.1  mrg   return 1;
    120  1.1  mrg }
    121  1.1  mrg 
    122  1.3  mrg /* VAL[0] is the unsigned result of an operation.  Canonize it by adding
    123  1.3  mrg    another 0 block if needed, and return number of blocks needed.  */
    124  1.3  mrg 
    125  1.3  mrg static inline unsigned int
    126  1.3  mrg canonize_uhwi (HOST_WIDE_INT *val, unsigned int precision)
    127  1.3  mrg {
    128  1.3  mrg   if (val[0] < 0 && precision > HOST_BITS_PER_WIDE_INT)
    129  1.3  mrg     {
    130  1.3  mrg       val[1] = 0;
    131  1.3  mrg       return 2;
    132  1.3  mrg     }
    133  1.3  mrg   return 1;
    134  1.3  mrg }
    135  1.3  mrg 
    136  1.1  mrg /*
    137  1.1  mrg  * Conversion routines in and out of wide_int.
    138  1.1  mrg  */
    139  1.1  mrg 
    140  1.1  mrg /* Copy XLEN elements from XVAL to VAL.  If NEED_CANON, canonize the
    141  1.1  mrg    result for an integer with precision PRECISION.  Return the length
    142  1.1  mrg    of VAL (after any canonization.  */
    143  1.1  mrg unsigned int
    144  1.1  mrg wi::from_array (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
    145  1.1  mrg 		unsigned int xlen, unsigned int precision, bool need_canon)
    146  1.1  mrg {
    147  1.1  mrg   for (unsigned i = 0; i < xlen; i++)
    148  1.1  mrg     val[i] = xval[i];
    149  1.1  mrg   return need_canon ? canonize (val, xlen, precision) : xlen;
    150  1.1  mrg }
    151  1.1  mrg 
    152  1.1  mrg /* Construct a wide int from a buffer of length LEN.  BUFFER will be
    153  1.3  mrg    read according to byte endianness and word endianness of the target.
    154  1.1  mrg    Only the lower BUFFER_LEN bytes of the result are set; the remaining
    155  1.1  mrg    high bytes are cleared.  */
    156  1.1  mrg wide_int
    157  1.1  mrg wi::from_buffer (const unsigned char *buffer, unsigned int buffer_len)
    158  1.1  mrg {
    159  1.1  mrg   unsigned int precision = buffer_len * BITS_PER_UNIT;
    160  1.1  mrg   wide_int result = wide_int::create (precision);
    161  1.1  mrg   unsigned int words = buffer_len / UNITS_PER_WORD;
    162  1.1  mrg 
    163  1.1  mrg   /* We have to clear all the bits ourself, as we merely or in values
    164  1.1  mrg      below.  */
    165  1.1  mrg   unsigned int len = BLOCKS_NEEDED (precision);
    166  1.1  mrg   HOST_WIDE_INT *val = result.write_val ();
    167  1.1  mrg   for (unsigned int i = 0; i < len; ++i)
    168  1.1  mrg     val[i] = 0;
    169  1.1  mrg 
    170  1.1  mrg   for (unsigned int byte = 0; byte < buffer_len; byte++)
    171  1.1  mrg     {
    172  1.1  mrg       unsigned int offset;
    173  1.1  mrg       unsigned int index;
    174  1.1  mrg       unsigned int bitpos = byte * BITS_PER_UNIT;
    175  1.1  mrg       unsigned HOST_WIDE_INT value;
    176  1.1  mrg 
    177  1.1  mrg       if (buffer_len > UNITS_PER_WORD)
    178  1.1  mrg 	{
    179  1.1  mrg 	  unsigned int word = byte / UNITS_PER_WORD;
    180  1.1  mrg 
    181  1.1  mrg 	  if (WORDS_BIG_ENDIAN)
    182  1.1  mrg 	    word = (words - 1) - word;
    183  1.1  mrg 
    184  1.1  mrg 	  offset = word * UNITS_PER_WORD;
    185  1.1  mrg 
    186  1.1  mrg 	  if (BYTES_BIG_ENDIAN)
    187  1.1  mrg 	    offset += (UNITS_PER_WORD - 1) - (byte % UNITS_PER_WORD);
    188  1.1  mrg 	  else
    189  1.1  mrg 	    offset += byte % UNITS_PER_WORD;
    190  1.1  mrg 	}
    191  1.1  mrg       else
    192  1.1  mrg 	offset = BYTES_BIG_ENDIAN ? (buffer_len - 1) - byte : byte;
    193  1.1  mrg 
    194  1.1  mrg       value = (unsigned HOST_WIDE_INT) buffer[offset];
    195  1.1  mrg 
    196  1.1  mrg       index = bitpos / HOST_BITS_PER_WIDE_INT;
    197  1.1  mrg       val[index] |= value << (bitpos % HOST_BITS_PER_WIDE_INT);
    198  1.1  mrg     }
    199  1.1  mrg 
    200  1.1  mrg   result.set_len (canonize (val, len, precision));
    201  1.1  mrg 
    202  1.1  mrg   return result;
    203  1.1  mrg }
    204  1.1  mrg 
    205  1.1  mrg /* Sets RESULT from X, the sign is taken according to SGN.  */
    206  1.1  mrg void
    207  1.1  mrg wi::to_mpz (const wide_int_ref &x, mpz_t result, signop sgn)
    208  1.1  mrg {
    209  1.1  mrg   int len = x.get_len ();
    210  1.1  mrg   const HOST_WIDE_INT *v = x.get_val ();
    211  1.1  mrg   int excess = len * HOST_BITS_PER_WIDE_INT - x.get_precision ();
    212  1.1  mrg 
    213  1.1  mrg   if (wi::neg_p (x, sgn))
    214  1.1  mrg     {
    215  1.1  mrg       /* We use ones complement to avoid -x80..0 edge case that -
    216  1.1  mrg 	 won't work on.  */
    217  1.1  mrg       HOST_WIDE_INT *t = XALLOCAVEC (HOST_WIDE_INT, len);
    218  1.1  mrg       for (int i = 0; i < len; i++)
    219  1.1  mrg 	t[i] = ~v[i];
    220  1.1  mrg       if (excess > 0)
    221  1.1  mrg 	t[len - 1] = (unsigned HOST_WIDE_INT) t[len - 1] << excess >> excess;
    222  1.1  mrg       mpz_import (result, len, -1, sizeof (HOST_WIDE_INT), 0, 0, t);
    223  1.1  mrg       mpz_com (result, result);
    224  1.1  mrg     }
    225  1.1  mrg   else if (excess > 0)
    226  1.1  mrg     {
    227  1.1  mrg       HOST_WIDE_INT *t = XALLOCAVEC (HOST_WIDE_INT, len);
    228  1.1  mrg       for (int i = 0; i < len - 1; i++)
    229  1.1  mrg 	t[i] = v[i];
    230  1.1  mrg       t[len - 1] = (unsigned HOST_WIDE_INT) v[len - 1] << excess >> excess;
    231  1.1  mrg       mpz_import (result, len, -1, sizeof (HOST_WIDE_INT), 0, 0, t);
    232  1.1  mrg     }
    233  1.1  mrg   else
    234  1.1  mrg     mpz_import (result, len, -1, sizeof (HOST_WIDE_INT), 0, 0, v);
    235  1.1  mrg }
    236  1.1  mrg 
    237  1.1  mrg /* Returns X converted to TYPE.  If WRAP is true, then out-of-range
    238  1.1  mrg    values of VAL will be wrapped; otherwise, they will be set to the
    239  1.1  mrg    appropriate minimum or maximum TYPE bound.  */
    240  1.1  mrg wide_int
    241  1.1  mrg wi::from_mpz (const_tree type, mpz_t x, bool wrap)
    242  1.1  mrg {
    243  1.1  mrg   size_t count, numb;
    244  1.1  mrg   unsigned int prec = TYPE_PRECISION (type);
    245  1.1  mrg   wide_int res = wide_int::create (prec);
    246  1.1  mrg 
    247  1.1  mrg   if (!wrap)
    248  1.1  mrg     {
    249  1.1  mrg       mpz_t min, max;
    250  1.1  mrg 
    251  1.1  mrg       mpz_init (min);
    252  1.1  mrg       mpz_init (max);
    253  1.1  mrg       get_type_static_bounds (type, min, max);
    254  1.1  mrg 
    255  1.1  mrg       if (mpz_cmp (x, min) < 0)
    256  1.1  mrg 	mpz_set (x, min);
    257  1.1  mrg       else if (mpz_cmp (x, max) > 0)
    258  1.1  mrg 	mpz_set (x, max);
    259  1.1  mrg 
    260  1.1  mrg       mpz_clear (min);
    261  1.1  mrg       mpz_clear (max);
    262  1.1  mrg     }
    263  1.1  mrg 
    264  1.1  mrg   /* Determine the number of unsigned HOST_WIDE_INTs that are required
    265  1.1  mrg      for representing the absolute value.  The code to calculate count is
    266  1.1  mrg      extracted from the GMP manual, section "Integer Import and Export":
    267  1.1  mrg      http://gmplib.org/manual/Integer-Import-and-Export.html  */
    268  1.1  mrg   numb = CHAR_BIT * sizeof (HOST_WIDE_INT);
    269  1.1  mrg   count = (mpz_sizeinbase (x, 2) + numb - 1) / numb;
    270  1.1  mrg   HOST_WIDE_INT *val = res.write_val ();
    271  1.1  mrg   /* Read the absolute value.
    272  1.1  mrg 
    273  1.1  mrg      Write directly to the wide_int storage if possible, otherwise leave
    274  1.1  mrg      GMP to allocate the memory for us.  It might be slightly more efficient
    275  1.1  mrg      to use mpz_tdiv_r_2exp for the latter case, but the situation is
    276  1.1  mrg      pathological and it seems safer to operate on the original mpz value
    277  1.1  mrg      in all cases.  */
    278  1.1  mrg   void *valres = mpz_export (count <= WIDE_INT_MAX_ELTS ? val : 0,
    279  1.1  mrg 			     &count, -1, sizeof (HOST_WIDE_INT), 0, 0, x);
    280  1.1  mrg   if (count < 1)
    281  1.1  mrg     {
    282  1.1  mrg       val[0] = 0;
    283  1.1  mrg       count = 1;
    284  1.1  mrg     }
    285  1.1  mrg   count = MIN (count, BLOCKS_NEEDED (prec));
    286  1.1  mrg   if (valres != val)
    287  1.1  mrg     {
    288  1.1  mrg       memcpy (val, valres, count * sizeof (HOST_WIDE_INT));
    289  1.1  mrg       free (valres);
    290  1.1  mrg     }
    291  1.1  mrg   /* Zero-extend the absolute value to PREC bits.  */
    292  1.1  mrg   if (count < BLOCKS_NEEDED (prec) && val[count - 1] < 0)
    293  1.1  mrg     val[count++] = 0;
    294  1.1  mrg   else
    295  1.1  mrg     count = canonize (val, count, prec);
    296  1.1  mrg   res.set_len (count);
    297  1.1  mrg 
    298  1.1  mrg   if (mpz_sgn (x) < 0)
    299  1.1  mrg     res = -res;
    300  1.1  mrg 
    301  1.1  mrg   return res;
    302  1.1  mrg }
    303  1.1  mrg 
    304  1.1  mrg /*
    305  1.1  mrg  * Largest and smallest values in a mode.
    306  1.1  mrg  */
    307  1.1  mrg 
    308  1.1  mrg /* Return the largest SGNed number that is representable in PRECISION bits.
    309  1.1  mrg 
    310  1.1  mrg    TODO: There is still code from the double_int era that trys to
    311  1.1  mrg    make up for the fact that double int's could not represent the
    312  1.1  mrg    min and max values of all types.  This code should be removed
    313  1.1  mrg    because the min and max values can always be represented in
    314  1.1  mrg    wide_ints and int-csts.  */
    315  1.1  mrg wide_int
    316  1.1  mrg wi::max_value (unsigned int precision, signop sgn)
    317  1.1  mrg {
    318  1.1  mrg   gcc_checking_assert (precision != 0);
    319  1.1  mrg   if (sgn == UNSIGNED)
    320  1.1  mrg     /* The unsigned max is just all ones.  */
    321  1.1  mrg     return shwi (-1, precision);
    322  1.1  mrg   else
    323  1.1  mrg     /* The signed max is all ones except the top bit.  This must be
    324  1.1  mrg        explicitly represented.  */
    325  1.1  mrg     return mask (precision - 1, false, precision);
    326  1.1  mrg }
    327  1.1  mrg 
    328  1.1  mrg /* Return the largest SGNed number that is representable in PRECISION bits.  */
    329  1.1  mrg wide_int
    330  1.1  mrg wi::min_value (unsigned int precision, signop sgn)
    331  1.1  mrg {
    332  1.1  mrg   gcc_checking_assert (precision != 0);
    333  1.1  mrg   if (sgn == UNSIGNED)
    334  1.1  mrg     return uhwi (0, precision);
    335  1.1  mrg   else
    336  1.1  mrg     /* The signed min is all zeros except the top bit.  This must be
    337  1.1  mrg        explicitly represented.  */
    338  1.1  mrg     return wi::set_bit_in_zero (precision - 1, precision);
    339  1.1  mrg }
    340  1.1  mrg 
    341  1.1  mrg /*
    342  1.1  mrg  * Public utilities.
    343  1.1  mrg  */
    344  1.1  mrg 
    345  1.1  mrg /* Convert the number represented by XVAL, XLEN and XPRECISION, which has
    346  1.1  mrg    signedness SGN, to an integer that has PRECISION bits.  Store the blocks
    347  1.1  mrg    in VAL and return the number of blocks used.
    348  1.1  mrg 
    349  1.1  mrg    This function can handle both extension (PRECISION > XPRECISION)
    350  1.1  mrg    and truncation (PRECISION < XPRECISION).  */
    351  1.1  mrg unsigned int
    352  1.1  mrg wi::force_to_size (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
    353  1.1  mrg 		   unsigned int xlen, unsigned int xprecision,
    354  1.1  mrg 		   unsigned int precision, signop sgn)
    355  1.1  mrg {
    356  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (precision);
    357  1.1  mrg   unsigned int len = blocks_needed < xlen ? blocks_needed : xlen;
    358  1.1  mrg   for (unsigned i = 0; i < len; i++)
    359  1.1  mrg     val[i] = xval[i];
    360  1.1  mrg 
    361  1.1  mrg   if (precision > xprecision)
    362  1.1  mrg     {
    363  1.1  mrg       unsigned int small_xprecision = xprecision % HOST_BITS_PER_WIDE_INT;
    364  1.1  mrg 
    365  1.1  mrg       /* Expanding.  */
    366  1.1  mrg       if (sgn == UNSIGNED)
    367  1.1  mrg 	{
    368  1.1  mrg 	  if (small_xprecision && len == BLOCKS_NEEDED (xprecision))
    369  1.1  mrg 	    val[len - 1] = zext_hwi (val[len - 1], small_xprecision);
    370  1.1  mrg 	  else if (val[len - 1] < 0)
    371  1.1  mrg 	    {
    372  1.1  mrg 	      while (len < BLOCKS_NEEDED (xprecision))
    373  1.1  mrg 		val[len++] = -1;
    374  1.1  mrg 	      if (small_xprecision)
    375  1.1  mrg 		val[len - 1] = zext_hwi (val[len - 1], small_xprecision);
    376  1.1  mrg 	      else
    377  1.1  mrg 		val[len++] = 0;
    378  1.1  mrg 	    }
    379  1.1  mrg 	}
    380  1.1  mrg       else
    381  1.1  mrg 	{
    382  1.1  mrg 	  if (small_xprecision && len == BLOCKS_NEEDED (xprecision))
    383  1.1  mrg 	    val[len - 1] = sext_hwi (val[len - 1], small_xprecision);
    384  1.1  mrg 	}
    385  1.1  mrg     }
    386  1.1  mrg   len = canonize (val, len, precision);
    387  1.1  mrg 
    388  1.1  mrg   return len;
    389  1.1  mrg }
    390  1.1  mrg 
    391  1.1  mrg /* This function hides the fact that we cannot rely on the bits beyond
    392  1.1  mrg    the precision.  This issue comes up in the relational comparisions
    393  1.1  mrg    where we do allow comparisons of values of different precisions.  */
    394  1.1  mrg static inline HOST_WIDE_INT
    395  1.1  mrg selt (const HOST_WIDE_INT *a, unsigned int len,
    396  1.1  mrg       unsigned int blocks_needed, unsigned int small_prec,
    397  1.1  mrg       unsigned int index, signop sgn)
    398  1.1  mrg {
    399  1.1  mrg   HOST_WIDE_INT val;
    400  1.1  mrg   if (index < len)
    401  1.1  mrg     val = a[index];
    402  1.1  mrg   else if (index < blocks_needed || sgn == SIGNED)
    403  1.1  mrg     /* Signed or within the precision.  */
    404  1.1  mrg     val = SIGN_MASK (a[len - 1]);
    405  1.1  mrg   else
    406  1.1  mrg     /* Unsigned extension beyond the precision. */
    407  1.1  mrg     val = 0;
    408  1.1  mrg 
    409  1.1  mrg   if (small_prec && index == blocks_needed - 1)
    410  1.1  mrg     return (sgn == SIGNED
    411  1.1  mrg 	    ? sext_hwi (val, small_prec)
    412  1.1  mrg 	    : zext_hwi (val, small_prec));
    413  1.1  mrg   else
    414  1.1  mrg     return val;
    415  1.1  mrg }
    416  1.1  mrg 
    417  1.1  mrg /* Find the highest bit represented in a wide int.  This will in
    418  1.1  mrg    general have the same value as the sign bit.  */
    419  1.1  mrg static inline HOST_WIDE_INT
    420  1.1  mrg top_bit_of (const HOST_WIDE_INT *a, unsigned int len, unsigned int prec)
    421  1.1  mrg {
    422  1.1  mrg   int excess = len * HOST_BITS_PER_WIDE_INT - prec;
    423  1.1  mrg   unsigned HOST_WIDE_INT val = a[len - 1];
    424  1.1  mrg   if (excess > 0)
    425  1.1  mrg     val <<= excess;
    426  1.1  mrg   return val >> (HOST_BITS_PER_WIDE_INT - 1);
    427  1.1  mrg }
    428  1.1  mrg 
    429  1.1  mrg /*
    430  1.1  mrg  * Comparisons, note that only equality is an operator.  The other
    431  1.1  mrg  * comparisons cannot be operators since they are inherently signed or
    432  1.1  mrg  * unsigned and C++ has no such operators.
    433  1.1  mrg  */
    434  1.1  mrg 
    435  1.1  mrg /* Return true if OP0 == OP1.  */
    436  1.1  mrg bool
    437  1.1  mrg wi::eq_p_large (const HOST_WIDE_INT *op0, unsigned int op0len,
    438  1.1  mrg 		const HOST_WIDE_INT *op1, unsigned int op1len,
    439  1.1  mrg 		unsigned int prec)
    440  1.1  mrg {
    441  1.1  mrg   int l0 = op0len - 1;
    442  1.1  mrg   unsigned int small_prec = prec & (HOST_BITS_PER_WIDE_INT - 1);
    443  1.1  mrg 
    444  1.1  mrg   if (op0len != op1len)
    445  1.1  mrg     return false;
    446  1.1  mrg 
    447  1.1  mrg   if (op0len == BLOCKS_NEEDED (prec) && small_prec)
    448  1.1  mrg     {
    449  1.1  mrg       /* It does not matter if we zext or sext here, we just have to
    450  1.1  mrg 	 do both the same way.  */
    451  1.1  mrg       if (zext_hwi (op0 [l0], small_prec) != zext_hwi (op1 [l0], small_prec))
    452  1.1  mrg 	return false;
    453  1.1  mrg       l0--;
    454  1.1  mrg     }
    455  1.1  mrg 
    456  1.1  mrg   while (l0 >= 0)
    457  1.1  mrg     if (op0[l0] != op1[l0])
    458  1.1  mrg       return false;
    459  1.1  mrg     else
    460  1.1  mrg       l0--;
    461  1.1  mrg 
    462  1.1  mrg   return true;
    463  1.1  mrg }
    464  1.1  mrg 
    465  1.1  mrg /* Return true if OP0 < OP1 using signed comparisons.  */
    466  1.1  mrg bool
    467  1.1  mrg wi::lts_p_large (const HOST_WIDE_INT *op0, unsigned int op0len,
    468  1.1  mrg 		 unsigned int precision,
    469  1.1  mrg 		 const HOST_WIDE_INT *op1, unsigned int op1len)
    470  1.1  mrg {
    471  1.1  mrg   HOST_WIDE_INT s0, s1;
    472  1.1  mrg   unsigned HOST_WIDE_INT u0, u1;
    473  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (precision);
    474  1.1  mrg   unsigned int small_prec = precision & (HOST_BITS_PER_WIDE_INT - 1);
    475  1.1  mrg   int l = MAX (op0len - 1, op1len - 1);
    476  1.1  mrg 
    477  1.1  mrg   /* Only the top block is compared as signed.  The rest are unsigned
    478  1.1  mrg      comparisons.  */
    479  1.1  mrg   s0 = selt (op0, op0len, blocks_needed, small_prec, l, SIGNED);
    480  1.1  mrg   s1 = selt (op1, op1len, blocks_needed, small_prec, l, SIGNED);
    481  1.1  mrg   if (s0 < s1)
    482  1.1  mrg     return true;
    483  1.1  mrg   if (s0 > s1)
    484  1.1  mrg     return false;
    485  1.1  mrg 
    486  1.1  mrg   l--;
    487  1.1  mrg   while (l >= 0)
    488  1.1  mrg     {
    489  1.1  mrg       u0 = selt (op0, op0len, blocks_needed, small_prec, l, SIGNED);
    490  1.1  mrg       u1 = selt (op1, op1len, blocks_needed, small_prec, l, SIGNED);
    491  1.1  mrg 
    492  1.1  mrg       if (u0 < u1)
    493  1.1  mrg 	return true;
    494  1.1  mrg       if (u0 > u1)
    495  1.1  mrg 	return false;
    496  1.1  mrg       l--;
    497  1.1  mrg     }
    498  1.1  mrg 
    499  1.1  mrg   return false;
    500  1.1  mrg }
    501  1.1  mrg 
    502  1.1  mrg /* Returns -1 if OP0 < OP1, 0 if OP0 == OP1 and 1 if OP0 > OP1 using
    503  1.1  mrg    signed compares.  */
    504  1.1  mrg int
    505  1.1  mrg wi::cmps_large (const HOST_WIDE_INT *op0, unsigned int op0len,
    506  1.1  mrg 		unsigned int precision,
    507  1.1  mrg 		const HOST_WIDE_INT *op1, unsigned int op1len)
    508  1.1  mrg {
    509  1.1  mrg   HOST_WIDE_INT s0, s1;
    510  1.1  mrg   unsigned HOST_WIDE_INT u0, u1;
    511  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (precision);
    512  1.1  mrg   unsigned int small_prec = precision & (HOST_BITS_PER_WIDE_INT - 1);
    513  1.1  mrg   int l = MAX (op0len - 1, op1len - 1);
    514  1.1  mrg 
    515  1.1  mrg   /* Only the top block is compared as signed.  The rest are unsigned
    516  1.1  mrg      comparisons.  */
    517  1.1  mrg   s0 = selt (op0, op0len, blocks_needed, small_prec, l, SIGNED);
    518  1.1  mrg   s1 = selt (op1, op1len, blocks_needed, small_prec, l, SIGNED);
    519  1.1  mrg   if (s0 < s1)
    520  1.1  mrg     return -1;
    521  1.1  mrg   if (s0 > s1)
    522  1.1  mrg     return 1;
    523  1.1  mrg 
    524  1.1  mrg   l--;
    525  1.1  mrg   while (l >= 0)
    526  1.1  mrg     {
    527  1.1  mrg       u0 = selt (op0, op0len, blocks_needed, small_prec, l, SIGNED);
    528  1.1  mrg       u1 = selt (op1, op1len, blocks_needed, small_prec, l, SIGNED);
    529  1.1  mrg 
    530  1.1  mrg       if (u0 < u1)
    531  1.1  mrg 	return -1;
    532  1.1  mrg       if (u0 > u1)
    533  1.1  mrg 	return 1;
    534  1.1  mrg       l--;
    535  1.1  mrg     }
    536  1.1  mrg 
    537  1.1  mrg   return 0;
    538  1.1  mrg }
    539  1.1  mrg 
    540  1.1  mrg /* Return true if OP0 < OP1 using unsigned comparisons.  */
    541  1.1  mrg bool
    542  1.1  mrg wi::ltu_p_large (const HOST_WIDE_INT *op0, unsigned int op0len,
    543  1.1  mrg 		 unsigned int precision,
    544  1.1  mrg 		 const HOST_WIDE_INT *op1, unsigned int op1len)
    545  1.1  mrg {
    546  1.1  mrg   unsigned HOST_WIDE_INT x0;
    547  1.1  mrg   unsigned HOST_WIDE_INT x1;
    548  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (precision);
    549  1.1  mrg   unsigned int small_prec = precision & (HOST_BITS_PER_WIDE_INT - 1);
    550  1.1  mrg   int l = MAX (op0len - 1, op1len - 1);
    551  1.1  mrg 
    552  1.1  mrg   while (l >= 0)
    553  1.1  mrg     {
    554  1.1  mrg       x0 = selt (op0, op0len, blocks_needed, small_prec, l, UNSIGNED);
    555  1.1  mrg       x1 = selt (op1, op1len, blocks_needed, small_prec, l, UNSIGNED);
    556  1.1  mrg       if (x0 < x1)
    557  1.1  mrg 	return true;
    558  1.1  mrg       if (x0 > x1)
    559  1.1  mrg 	return false;
    560  1.1  mrg       l--;
    561  1.1  mrg     }
    562  1.1  mrg 
    563  1.1  mrg   return false;
    564  1.1  mrg }
    565  1.1  mrg 
    566  1.1  mrg /* Returns -1 if OP0 < OP1, 0 if OP0 == OP1 and 1 if OP0 > OP1 using
    567  1.1  mrg    unsigned compares.  */
    568  1.1  mrg int
    569  1.1  mrg wi::cmpu_large (const HOST_WIDE_INT *op0, unsigned int op0len,
    570  1.1  mrg 		unsigned int precision,
    571  1.1  mrg 		const HOST_WIDE_INT *op1, unsigned int op1len)
    572  1.1  mrg {
    573  1.1  mrg   unsigned HOST_WIDE_INT x0;
    574  1.1  mrg   unsigned HOST_WIDE_INT x1;
    575  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (precision);
    576  1.1  mrg   unsigned int small_prec = precision & (HOST_BITS_PER_WIDE_INT - 1);
    577  1.1  mrg   int l = MAX (op0len - 1, op1len - 1);
    578  1.1  mrg 
    579  1.1  mrg   while (l >= 0)
    580  1.1  mrg     {
    581  1.1  mrg       x0 = selt (op0, op0len, blocks_needed, small_prec, l, UNSIGNED);
    582  1.1  mrg       x1 = selt (op1, op1len, blocks_needed, small_prec, l, UNSIGNED);
    583  1.1  mrg       if (x0 < x1)
    584  1.1  mrg 	return -1;
    585  1.1  mrg       if (x0 > x1)
    586  1.1  mrg 	return 1;
    587  1.1  mrg       l--;
    588  1.1  mrg     }
    589  1.1  mrg 
    590  1.1  mrg   return 0;
    591  1.1  mrg }
    592  1.1  mrg 
    593  1.1  mrg /*
    594  1.1  mrg  * Extension.
    595  1.1  mrg  */
    596  1.1  mrg 
    597  1.1  mrg /* Sign-extend the number represented by XVAL and XLEN into VAL,
    598  1.1  mrg    starting at OFFSET.  Return the number of blocks in VAL.  Both XVAL
    599  1.1  mrg    and VAL have PRECISION bits.  */
    600  1.1  mrg unsigned int
    601  1.1  mrg wi::sext_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
    602  1.1  mrg 		unsigned int xlen, unsigned int precision, unsigned int offset)
    603  1.1  mrg {
    604  1.1  mrg   unsigned int len = offset / HOST_BITS_PER_WIDE_INT;
    605  1.1  mrg   /* Extending beyond the precision is a no-op.  If we have only stored
    606  1.1  mrg      OFFSET bits or fewer, the rest are already signs.  */
    607  1.1  mrg   if (offset >= precision || len >= xlen)
    608  1.1  mrg     {
    609  1.1  mrg       for (unsigned i = 0; i < xlen; ++i)
    610  1.1  mrg 	val[i] = xval[i];
    611  1.1  mrg       return xlen;
    612  1.1  mrg     }
    613  1.1  mrg   unsigned int suboffset = offset % HOST_BITS_PER_WIDE_INT;
    614  1.1  mrg   for (unsigned int i = 0; i < len; i++)
    615  1.1  mrg     val[i] = xval[i];
    616  1.1  mrg   if (suboffset > 0)
    617  1.1  mrg     {
    618  1.1  mrg       val[len] = sext_hwi (xval[len], suboffset);
    619  1.1  mrg       len += 1;
    620  1.1  mrg     }
    621  1.1  mrg   return canonize (val, len, precision);
    622  1.1  mrg }
    623  1.1  mrg 
    624  1.1  mrg /* Zero-extend the number represented by XVAL and XLEN into VAL,
    625  1.1  mrg    starting at OFFSET.  Return the number of blocks in VAL.  Both XVAL
    626  1.1  mrg    and VAL have PRECISION bits.  */
    627  1.1  mrg unsigned int
    628  1.1  mrg wi::zext_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
    629  1.1  mrg 		unsigned int xlen, unsigned int precision, unsigned int offset)
    630  1.1  mrg {
    631  1.1  mrg   unsigned int len = offset / HOST_BITS_PER_WIDE_INT;
    632  1.1  mrg   /* Extending beyond the precision is a no-op.  If we have only stored
    633  1.1  mrg      OFFSET bits or fewer, and the upper stored bit is zero, then there
    634  1.1  mrg      is nothing to do.  */
    635  1.1  mrg   if (offset >= precision || (len >= xlen && xval[xlen - 1] >= 0))
    636  1.1  mrg     {
    637  1.1  mrg       for (unsigned i = 0; i < xlen; ++i)
    638  1.1  mrg 	val[i] = xval[i];
    639  1.1  mrg       return xlen;
    640  1.1  mrg     }
    641  1.1  mrg   unsigned int suboffset = offset % HOST_BITS_PER_WIDE_INT;
    642  1.1  mrg   for (unsigned int i = 0; i < len; i++)
    643  1.1  mrg     val[i] = i < xlen ? xval[i] : -1;
    644  1.1  mrg   if (suboffset > 0)
    645  1.1  mrg     val[len] = zext_hwi (len < xlen ? xval[len] : -1, suboffset);
    646  1.1  mrg   else
    647  1.1  mrg     val[len] = 0;
    648  1.1  mrg   return canonize (val, len + 1, precision);
    649  1.1  mrg }
    650  1.1  mrg 
    651  1.1  mrg /*
    652  1.1  mrg  * Masking, inserting, shifting, rotating.
    653  1.1  mrg  */
    654  1.1  mrg 
    655  1.1  mrg /* Insert WIDTH bits from Y into X starting at START.  */
    656  1.1  mrg wide_int
    657  1.1  mrg wi::insert (const wide_int &x, const wide_int &y, unsigned int start,
    658  1.1  mrg 	    unsigned int width)
    659  1.1  mrg {
    660  1.1  mrg   wide_int result;
    661  1.1  mrg   wide_int mask;
    662  1.1  mrg   wide_int tmp;
    663  1.1  mrg 
    664  1.1  mrg   unsigned int precision = x.get_precision ();
    665  1.1  mrg   if (start >= precision)
    666  1.1  mrg     return x;
    667  1.1  mrg 
    668  1.1  mrg   gcc_checking_assert (precision >= width);
    669  1.1  mrg 
    670  1.1  mrg   if (start + width >= precision)
    671  1.1  mrg     width = precision - start;
    672  1.1  mrg 
    673  1.1  mrg   mask = wi::shifted_mask (start, width, false, precision);
    674  1.1  mrg   tmp = wi::lshift (wide_int::from (y, precision, UNSIGNED), start);
    675  1.1  mrg   result = tmp & mask;
    676  1.1  mrg 
    677  1.1  mrg   tmp = wi::bit_and_not (x, mask);
    678  1.1  mrg   result = result | tmp;
    679  1.1  mrg 
    680  1.1  mrg   return result;
    681  1.1  mrg }
    682  1.1  mrg 
    683  1.1  mrg /* Copy the number represented by XVAL and XLEN into VAL, setting bit BIT.
    684  1.1  mrg    Return the number of blocks in VAL.  Both XVAL and VAL have PRECISION
    685  1.1  mrg    bits.  */
    686  1.1  mrg unsigned int
    687  1.1  mrg wi::set_bit_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
    688  1.1  mrg 		   unsigned int xlen, unsigned int precision, unsigned int bit)
    689  1.1  mrg {
    690  1.1  mrg   unsigned int block = bit / HOST_BITS_PER_WIDE_INT;
    691  1.1  mrg   unsigned int subbit = bit % HOST_BITS_PER_WIDE_INT;
    692  1.1  mrg 
    693  1.1  mrg   if (block + 1 >= xlen)
    694  1.1  mrg     {
    695  1.1  mrg       /* The operation either affects the last current block or needs
    696  1.1  mrg 	 a new block.  */
    697  1.1  mrg       unsigned int len = block + 1;
    698  1.1  mrg       for (unsigned int i = 0; i < len; i++)
    699  1.1  mrg 	val[i] = safe_uhwi (xval, xlen, i);
    700  1.3  mrg       val[block] |= HOST_WIDE_INT_1U << subbit;
    701  1.1  mrg 
    702  1.1  mrg       /* If the bit we just set is at the msb of the block, make sure
    703  1.1  mrg 	 that any higher bits are zeros.  */
    704  1.1  mrg       if (bit + 1 < precision && subbit == HOST_BITS_PER_WIDE_INT - 1)
    705  1.1  mrg 	val[len++] = 0;
    706  1.1  mrg       return len;
    707  1.1  mrg     }
    708  1.1  mrg   else
    709  1.1  mrg     {
    710  1.1  mrg       for (unsigned int i = 0; i < xlen; i++)
    711  1.1  mrg 	val[i] = xval[i];
    712  1.3  mrg       val[block] |= HOST_WIDE_INT_1U << subbit;
    713  1.1  mrg       return canonize (val, xlen, precision);
    714  1.1  mrg     }
    715  1.1  mrg }
    716  1.1  mrg 
    717  1.1  mrg /* bswap THIS.  */
    718  1.1  mrg wide_int
    719  1.1  mrg wide_int_storage::bswap () const
    720  1.1  mrg {
    721  1.1  mrg   wide_int result = wide_int::create (precision);
    722  1.1  mrg   unsigned int i, s;
    723  1.1  mrg   unsigned int len = BLOCKS_NEEDED (precision);
    724  1.1  mrg   unsigned int xlen = get_len ();
    725  1.1  mrg   const HOST_WIDE_INT *xval = get_val ();
    726  1.1  mrg   HOST_WIDE_INT *val = result.write_val ();
    727  1.1  mrg 
    728  1.1  mrg   /* This is not a well defined operation if the precision is not a
    729  1.1  mrg      multiple of 8.  */
    730  1.1  mrg   gcc_assert ((precision & 0x7) == 0);
    731  1.1  mrg 
    732  1.1  mrg   for (i = 0; i < len; i++)
    733  1.1  mrg     val[i] = 0;
    734  1.1  mrg 
    735  1.1  mrg   /* Only swap the bytes that are not the padding.  */
    736  1.1  mrg   for (s = 0; s < precision; s += 8)
    737  1.1  mrg     {
    738  1.1  mrg       unsigned int d = precision - s - 8;
    739  1.1  mrg       unsigned HOST_WIDE_INT byte;
    740  1.1  mrg 
    741  1.1  mrg       unsigned int block = s / HOST_BITS_PER_WIDE_INT;
    742  1.1  mrg       unsigned int offset = s & (HOST_BITS_PER_WIDE_INT - 1);
    743  1.1  mrg 
    744  1.1  mrg       byte = (safe_uhwi (xval, xlen, block) >> offset) & 0xff;
    745  1.1  mrg 
    746  1.1  mrg       block = d / HOST_BITS_PER_WIDE_INT;
    747  1.1  mrg       offset = d & (HOST_BITS_PER_WIDE_INT - 1);
    748  1.1  mrg 
    749  1.1  mrg       val[block] |= byte << offset;
    750  1.1  mrg     }
    751  1.1  mrg 
    752  1.1  mrg   result.set_len (canonize (val, len, precision));
    753  1.1  mrg   return result;
    754  1.1  mrg }
    755  1.1  mrg 
    756  1.1  mrg /* Fill VAL with a mask where the lower WIDTH bits are ones and the bits
    757  1.1  mrg    above that up to PREC are zeros.  The result is inverted if NEGATE
    758  1.1  mrg    is true.  Return the number of blocks in VAL.  */
    759  1.1  mrg unsigned int
    760  1.1  mrg wi::mask (HOST_WIDE_INT *val, unsigned int width, bool negate,
    761  1.1  mrg 	  unsigned int prec)
    762  1.1  mrg {
    763  1.1  mrg   if (width >= prec)
    764  1.1  mrg     {
    765  1.1  mrg       val[0] = negate ? 0 : -1;
    766  1.1  mrg       return 1;
    767  1.1  mrg     }
    768  1.1  mrg   else if (width == 0)
    769  1.1  mrg     {
    770  1.1  mrg       val[0] = negate ? -1 : 0;
    771  1.1  mrg       return 1;
    772  1.1  mrg     }
    773  1.1  mrg 
    774  1.1  mrg   unsigned int i = 0;
    775  1.1  mrg   while (i < width / HOST_BITS_PER_WIDE_INT)
    776  1.1  mrg     val[i++] = negate ? 0 : -1;
    777  1.1  mrg 
    778  1.1  mrg   unsigned int shift = width & (HOST_BITS_PER_WIDE_INT - 1);
    779  1.1  mrg   if (shift != 0)
    780  1.1  mrg     {
    781  1.3  mrg       HOST_WIDE_INT last = (HOST_WIDE_INT_1U << shift) - 1;
    782  1.1  mrg       val[i++] = negate ? ~last : last;
    783  1.1  mrg     }
    784  1.1  mrg   else
    785  1.1  mrg     val[i++] = negate ? -1 : 0;
    786  1.1  mrg 
    787  1.1  mrg   return i;
    788  1.1  mrg }
    789  1.1  mrg 
    790  1.1  mrg /* Fill VAL with a mask where the lower START bits are zeros, the next WIDTH
    791  1.1  mrg    bits are ones, and the bits above that up to PREC are zeros.  The result
    792  1.1  mrg    is inverted if NEGATE is true.  Return the number of blocks in VAL.  */
    793  1.1  mrg unsigned int
    794  1.1  mrg wi::shifted_mask (HOST_WIDE_INT *val, unsigned int start, unsigned int width,
    795  1.1  mrg 		  bool negate, unsigned int prec)
    796  1.1  mrg {
    797  1.1  mrg   if (start >= prec || width == 0)
    798  1.1  mrg     {
    799  1.1  mrg       val[0] = negate ? -1 : 0;
    800  1.1  mrg       return 1;
    801  1.1  mrg     }
    802  1.1  mrg 
    803  1.1  mrg   if (width > prec - start)
    804  1.1  mrg     width = prec - start;
    805  1.1  mrg   unsigned int end = start + width;
    806  1.1  mrg 
    807  1.1  mrg   unsigned int i = 0;
    808  1.1  mrg   while (i < start / HOST_BITS_PER_WIDE_INT)
    809  1.1  mrg     val[i++] = negate ? -1 : 0;
    810  1.1  mrg 
    811  1.1  mrg   unsigned int shift = start & (HOST_BITS_PER_WIDE_INT - 1);
    812  1.1  mrg   if (shift)
    813  1.1  mrg     {
    814  1.3  mrg       HOST_WIDE_INT block = (HOST_WIDE_INT_1U << shift) - 1;
    815  1.1  mrg       shift += width;
    816  1.1  mrg       if (shift < HOST_BITS_PER_WIDE_INT)
    817  1.1  mrg 	{
    818  1.1  mrg 	  /* case 000111000 */
    819  1.3  mrg 	  block = (HOST_WIDE_INT_1U << shift) - block - 1;
    820  1.1  mrg 	  val[i++] = negate ? ~block : block;
    821  1.1  mrg 	  return i;
    822  1.1  mrg 	}
    823  1.1  mrg       else
    824  1.1  mrg 	/* ...111000 */
    825  1.1  mrg 	val[i++] = negate ? block : ~block;
    826  1.1  mrg     }
    827  1.1  mrg 
    828  1.1  mrg   while (i < end / HOST_BITS_PER_WIDE_INT)
    829  1.1  mrg     /* 1111111 */
    830  1.1  mrg     val[i++] = negate ? 0 : -1;
    831  1.1  mrg 
    832  1.1  mrg   shift = end & (HOST_BITS_PER_WIDE_INT - 1);
    833  1.1  mrg   if (shift != 0)
    834  1.1  mrg     {
    835  1.1  mrg       /* 000011111 */
    836  1.3  mrg       HOST_WIDE_INT block = (HOST_WIDE_INT_1U << shift) - 1;
    837  1.1  mrg       val[i++] = negate ? ~block : block;
    838  1.1  mrg     }
    839  1.1  mrg   else if (end < prec)
    840  1.1  mrg     val[i++] = negate ? -1 : 0;
    841  1.1  mrg 
    842  1.1  mrg   return i;
    843  1.1  mrg }
    844  1.1  mrg 
    845  1.1  mrg /*
    846  1.1  mrg  * logical operations.
    847  1.1  mrg  */
    848  1.1  mrg 
    849  1.1  mrg /* Set VAL to OP0 & OP1.  Return the number of blocks used.  */
    850  1.1  mrg unsigned int
    851  1.1  mrg wi::and_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *op0,
    852  1.1  mrg 	       unsigned int op0len, const HOST_WIDE_INT *op1,
    853  1.1  mrg 	       unsigned int op1len, unsigned int prec)
    854  1.1  mrg {
    855  1.1  mrg   int l0 = op0len - 1;
    856  1.1  mrg   int l1 = op1len - 1;
    857  1.1  mrg   bool need_canon = true;
    858  1.1  mrg 
    859  1.1  mrg   unsigned int len = MAX (op0len, op1len);
    860  1.1  mrg   if (l0 > l1)
    861  1.1  mrg     {
    862  1.1  mrg       HOST_WIDE_INT op1mask = -top_bit_of (op1, op1len, prec);
    863  1.1  mrg       if (op1mask == 0)
    864  1.1  mrg 	{
    865  1.1  mrg 	  l0 = l1;
    866  1.1  mrg 	  len = l1 + 1;
    867  1.1  mrg 	}
    868  1.1  mrg       else
    869  1.1  mrg 	{
    870  1.1  mrg 	  need_canon = false;
    871  1.1  mrg 	  while (l0 > l1)
    872  1.1  mrg 	    {
    873  1.1  mrg 	      val[l0] = op0[l0];
    874  1.1  mrg 	      l0--;
    875  1.1  mrg 	    }
    876  1.1  mrg 	}
    877  1.1  mrg     }
    878  1.1  mrg   else if (l1 > l0)
    879  1.1  mrg     {
    880  1.1  mrg       HOST_WIDE_INT op0mask = -top_bit_of (op0, op0len, prec);
    881  1.1  mrg       if (op0mask == 0)
    882  1.1  mrg 	len = l0 + 1;
    883  1.1  mrg       else
    884  1.1  mrg 	{
    885  1.1  mrg 	  need_canon = false;
    886  1.1  mrg 	  while (l1 > l0)
    887  1.1  mrg 	    {
    888  1.1  mrg 	      val[l1] = op1[l1];
    889  1.1  mrg 	      l1--;
    890  1.1  mrg 	    }
    891  1.1  mrg 	}
    892  1.1  mrg     }
    893  1.1  mrg 
    894  1.1  mrg   while (l0 >= 0)
    895  1.1  mrg     {
    896  1.1  mrg       val[l0] = op0[l0] & op1[l0];
    897  1.1  mrg       l0--;
    898  1.1  mrg     }
    899  1.1  mrg 
    900  1.1  mrg   if (need_canon)
    901  1.1  mrg     len = canonize (val, len, prec);
    902  1.1  mrg 
    903  1.1  mrg   return len;
    904  1.1  mrg }
    905  1.1  mrg 
    906  1.1  mrg /* Set VAL to OP0 & ~OP1.  Return the number of blocks used.  */
    907  1.1  mrg unsigned int
    908  1.1  mrg wi::and_not_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *op0,
    909  1.1  mrg 		   unsigned int op0len, const HOST_WIDE_INT *op1,
    910  1.1  mrg 		   unsigned int op1len, unsigned int prec)
    911  1.1  mrg {
    912  1.1  mrg   wide_int result;
    913  1.1  mrg   int l0 = op0len - 1;
    914  1.1  mrg   int l1 = op1len - 1;
    915  1.1  mrg   bool need_canon = true;
    916  1.1  mrg 
    917  1.1  mrg   unsigned int len = MAX (op0len, op1len);
    918  1.1  mrg   if (l0 > l1)
    919  1.1  mrg     {
    920  1.1  mrg       HOST_WIDE_INT op1mask = -top_bit_of (op1, op1len, prec);
    921  1.1  mrg       if (op1mask != 0)
    922  1.1  mrg 	{
    923  1.1  mrg 	  l0 = l1;
    924  1.1  mrg 	  len = l1 + 1;
    925  1.1  mrg 	}
    926  1.1  mrg       else
    927  1.1  mrg 	{
    928  1.1  mrg 	  need_canon = false;
    929  1.1  mrg 	  while (l0 > l1)
    930  1.1  mrg 	    {
    931  1.1  mrg 	      val[l0] = op0[l0];
    932  1.1  mrg 	      l0--;
    933  1.1  mrg 	    }
    934  1.1  mrg 	}
    935  1.1  mrg     }
    936  1.1  mrg   else if (l1 > l0)
    937  1.1  mrg     {
    938  1.1  mrg       HOST_WIDE_INT op0mask = -top_bit_of (op0, op0len, prec);
    939  1.1  mrg       if (op0mask == 0)
    940  1.1  mrg 	len = l0 + 1;
    941  1.1  mrg       else
    942  1.1  mrg 	{
    943  1.1  mrg 	  need_canon = false;
    944  1.1  mrg 	  while (l1 > l0)
    945  1.1  mrg 	    {
    946  1.1  mrg 	      val[l1] = ~op1[l1];
    947  1.1  mrg 	      l1--;
    948  1.1  mrg 	    }
    949  1.1  mrg 	}
    950  1.1  mrg     }
    951  1.1  mrg 
    952  1.1  mrg   while (l0 >= 0)
    953  1.1  mrg     {
    954  1.1  mrg       val[l0] = op0[l0] & ~op1[l0];
    955  1.1  mrg       l0--;
    956  1.1  mrg     }
    957  1.1  mrg 
    958  1.1  mrg   if (need_canon)
    959  1.1  mrg     len = canonize (val, len, prec);
    960  1.1  mrg 
    961  1.1  mrg   return len;
    962  1.1  mrg }
    963  1.1  mrg 
    964  1.1  mrg /* Set VAL to OP0 | OP1.  Return the number of blocks used.  */
    965  1.1  mrg unsigned int
    966  1.1  mrg wi::or_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *op0,
    967  1.1  mrg 	      unsigned int op0len, const HOST_WIDE_INT *op1,
    968  1.1  mrg 	      unsigned int op1len, unsigned int prec)
    969  1.1  mrg {
    970  1.1  mrg   wide_int result;
    971  1.1  mrg   int l0 = op0len - 1;
    972  1.1  mrg   int l1 = op1len - 1;
    973  1.1  mrg   bool need_canon = true;
    974  1.1  mrg 
    975  1.1  mrg   unsigned int len = MAX (op0len, op1len);
    976  1.1  mrg   if (l0 > l1)
    977  1.1  mrg     {
    978  1.1  mrg       HOST_WIDE_INT op1mask = -top_bit_of (op1, op1len, prec);
    979  1.1  mrg       if (op1mask != 0)
    980  1.1  mrg 	{
    981  1.1  mrg 	  l0 = l1;
    982  1.1  mrg 	  len = l1 + 1;
    983  1.1  mrg 	}
    984  1.1  mrg       else
    985  1.1  mrg 	{
    986  1.1  mrg 	  need_canon = false;
    987  1.1  mrg 	  while (l0 > l1)
    988  1.1  mrg 	    {
    989  1.1  mrg 	      val[l0] = op0[l0];
    990  1.1  mrg 	      l0--;
    991  1.1  mrg 	    }
    992  1.1  mrg 	}
    993  1.1  mrg     }
    994  1.1  mrg   else if (l1 > l0)
    995  1.1  mrg     {
    996  1.1  mrg       HOST_WIDE_INT op0mask = -top_bit_of (op0, op0len, prec);
    997  1.1  mrg       if (op0mask != 0)
    998  1.1  mrg 	len = l0 + 1;
    999  1.1  mrg       else
   1000  1.1  mrg 	{
   1001  1.1  mrg 	  need_canon = false;
   1002  1.1  mrg 	  while (l1 > l0)
   1003  1.1  mrg 	    {
   1004  1.1  mrg 	      val[l1] = op1[l1];
   1005  1.1  mrg 	      l1--;
   1006  1.1  mrg 	    }
   1007  1.1  mrg 	}
   1008  1.1  mrg     }
   1009  1.1  mrg 
   1010  1.1  mrg   while (l0 >= 0)
   1011  1.1  mrg     {
   1012  1.1  mrg       val[l0] = op0[l0] | op1[l0];
   1013  1.1  mrg       l0--;
   1014  1.1  mrg     }
   1015  1.1  mrg 
   1016  1.1  mrg   if (need_canon)
   1017  1.1  mrg     len = canonize (val, len, prec);
   1018  1.1  mrg 
   1019  1.1  mrg   return len;
   1020  1.1  mrg }
   1021  1.1  mrg 
   1022  1.1  mrg /* Set VAL to OP0 | ~OP1.  Return the number of blocks used.  */
   1023  1.1  mrg unsigned int
   1024  1.1  mrg wi::or_not_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *op0,
   1025  1.1  mrg 		  unsigned int op0len, const HOST_WIDE_INT *op1,
   1026  1.1  mrg 		  unsigned int op1len, unsigned int prec)
   1027  1.1  mrg {
   1028  1.1  mrg   wide_int result;
   1029  1.1  mrg   int l0 = op0len - 1;
   1030  1.1  mrg   int l1 = op1len - 1;
   1031  1.1  mrg   bool need_canon = true;
   1032  1.1  mrg 
   1033  1.1  mrg   unsigned int len = MAX (op0len, op1len);
   1034  1.1  mrg   if (l0 > l1)
   1035  1.1  mrg     {
   1036  1.1  mrg       HOST_WIDE_INT op1mask = -top_bit_of (op1, op1len, prec);
   1037  1.1  mrg       if (op1mask == 0)
   1038  1.1  mrg 	{
   1039  1.1  mrg 	  l0 = l1;
   1040  1.1  mrg 	  len = l1 + 1;
   1041  1.1  mrg 	}
   1042  1.1  mrg       else
   1043  1.1  mrg 	{
   1044  1.1  mrg 	  need_canon = false;
   1045  1.1  mrg 	  while (l0 > l1)
   1046  1.1  mrg 	    {
   1047  1.1  mrg 	      val[l0] = op0[l0];
   1048  1.1  mrg 	      l0--;
   1049  1.1  mrg 	    }
   1050  1.1  mrg 	}
   1051  1.1  mrg     }
   1052  1.1  mrg   else if (l1 > l0)
   1053  1.1  mrg     {
   1054  1.1  mrg       HOST_WIDE_INT op0mask = -top_bit_of (op0, op0len, prec);
   1055  1.1  mrg       if (op0mask != 0)
   1056  1.1  mrg 	len = l0 + 1;
   1057  1.1  mrg       else
   1058  1.1  mrg 	{
   1059  1.1  mrg 	  need_canon = false;
   1060  1.1  mrg 	  while (l1 > l0)
   1061  1.1  mrg 	    {
   1062  1.1  mrg 	      val[l1] = ~op1[l1];
   1063  1.1  mrg 	      l1--;
   1064  1.1  mrg 	    }
   1065  1.1  mrg 	}
   1066  1.1  mrg     }
   1067  1.1  mrg 
   1068  1.1  mrg   while (l0 >= 0)
   1069  1.1  mrg     {
   1070  1.1  mrg       val[l0] = op0[l0] | ~op1[l0];
   1071  1.1  mrg       l0--;
   1072  1.1  mrg     }
   1073  1.1  mrg 
   1074  1.1  mrg   if (need_canon)
   1075  1.1  mrg     len = canonize (val, len, prec);
   1076  1.1  mrg 
   1077  1.1  mrg   return len;
   1078  1.1  mrg }
   1079  1.1  mrg 
   1080  1.1  mrg /* Set VAL to OP0 ^ OP1.  Return the number of blocks used.  */
   1081  1.1  mrg unsigned int
   1082  1.1  mrg wi::xor_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *op0,
   1083  1.1  mrg 	       unsigned int op0len, const HOST_WIDE_INT *op1,
   1084  1.1  mrg 	       unsigned int op1len, unsigned int prec)
   1085  1.1  mrg {
   1086  1.1  mrg   wide_int result;
   1087  1.1  mrg   int l0 = op0len - 1;
   1088  1.1  mrg   int l1 = op1len - 1;
   1089  1.1  mrg 
   1090  1.1  mrg   unsigned int len = MAX (op0len, op1len);
   1091  1.1  mrg   if (l0 > l1)
   1092  1.1  mrg     {
   1093  1.1  mrg       HOST_WIDE_INT op1mask = -top_bit_of (op1, op1len, prec);
   1094  1.1  mrg       while (l0 > l1)
   1095  1.1  mrg 	{
   1096  1.1  mrg 	  val[l0] = op0[l0] ^ op1mask;
   1097  1.1  mrg 	  l0--;
   1098  1.1  mrg 	}
   1099  1.1  mrg     }
   1100  1.1  mrg 
   1101  1.1  mrg   if (l1 > l0)
   1102  1.1  mrg     {
   1103  1.1  mrg       HOST_WIDE_INT op0mask = -top_bit_of (op0, op0len, prec);
   1104  1.1  mrg       while (l1 > l0)
   1105  1.1  mrg 	{
   1106  1.1  mrg 	  val[l1] = op0mask ^ op1[l1];
   1107  1.1  mrg 	  l1--;
   1108  1.1  mrg 	}
   1109  1.1  mrg     }
   1110  1.1  mrg 
   1111  1.1  mrg   while (l0 >= 0)
   1112  1.1  mrg     {
   1113  1.1  mrg       val[l0] = op0[l0] ^ op1[l0];
   1114  1.1  mrg       l0--;
   1115  1.1  mrg     }
   1116  1.1  mrg 
   1117  1.1  mrg   return canonize (val, len, prec);
   1118  1.1  mrg }
   1119  1.1  mrg 
   1120  1.1  mrg /*
   1121  1.1  mrg  * math
   1122  1.1  mrg  */
   1123  1.1  mrg 
   1124  1.1  mrg /* Set VAL to OP0 + OP1.  If OVERFLOW is nonnull, record in *OVERFLOW
   1125  1.1  mrg    whether the result overflows when OP0 and OP1 are treated as having
   1126  1.1  mrg    signedness SGN.  Return the number of blocks in VAL.  */
   1127  1.1  mrg unsigned int
   1128  1.1  mrg wi::add_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *op0,
   1129  1.1  mrg 	       unsigned int op0len, const HOST_WIDE_INT *op1,
   1130  1.1  mrg 	       unsigned int op1len, unsigned int prec,
   1131  1.1  mrg 	       signop sgn, bool *overflow)
   1132  1.1  mrg {
   1133  1.1  mrg   unsigned HOST_WIDE_INT o0 = 0;
   1134  1.1  mrg   unsigned HOST_WIDE_INT o1 = 0;
   1135  1.1  mrg   unsigned HOST_WIDE_INT x = 0;
   1136  1.1  mrg   unsigned HOST_WIDE_INT carry = 0;
   1137  1.1  mrg   unsigned HOST_WIDE_INT old_carry = 0;
   1138  1.1  mrg   unsigned HOST_WIDE_INT mask0, mask1;
   1139  1.1  mrg   unsigned int i;
   1140  1.1  mrg 
   1141  1.1  mrg   unsigned int len = MAX (op0len, op1len);
   1142  1.1  mrg   mask0 = -top_bit_of (op0, op0len, prec);
   1143  1.1  mrg   mask1 = -top_bit_of (op1, op1len, prec);
   1144  1.1  mrg   /* Add all of the explicitly defined elements.  */
   1145  1.1  mrg 
   1146  1.1  mrg   for (i = 0; i < len; i++)
   1147  1.1  mrg     {
   1148  1.1  mrg       o0 = i < op0len ? (unsigned HOST_WIDE_INT) op0[i] : mask0;
   1149  1.1  mrg       o1 = i < op1len ? (unsigned HOST_WIDE_INT) op1[i] : mask1;
   1150  1.1  mrg       x = o0 + o1 + carry;
   1151  1.1  mrg       val[i] = x;
   1152  1.1  mrg       old_carry = carry;
   1153  1.1  mrg       carry = carry == 0 ? x < o0 : x <= o0;
   1154  1.1  mrg     }
   1155  1.1  mrg 
   1156  1.1  mrg   if (len * HOST_BITS_PER_WIDE_INT < prec)
   1157  1.1  mrg     {
   1158  1.1  mrg       val[len] = mask0 + mask1 + carry;
   1159  1.1  mrg       len++;
   1160  1.1  mrg       if (overflow)
   1161  1.4  mrg 	*overflow = (sgn == UNSIGNED && carry);
   1162  1.1  mrg     }
   1163  1.1  mrg   else if (overflow)
   1164  1.1  mrg     {
   1165  1.1  mrg       unsigned int shift = -prec % HOST_BITS_PER_WIDE_INT;
   1166  1.1  mrg       if (sgn == SIGNED)
   1167  1.1  mrg 	{
   1168  1.1  mrg 	  unsigned HOST_WIDE_INT x = (val[len - 1] ^ o0) & (val[len - 1] ^ o1);
   1169  1.1  mrg 	  *overflow = (HOST_WIDE_INT) (x << shift) < 0;
   1170  1.1  mrg 	}
   1171  1.1  mrg       else
   1172  1.1  mrg 	{
   1173  1.1  mrg 	  /* Put the MSB of X and O0 and in the top of the HWI.  */
   1174  1.1  mrg 	  x <<= shift;
   1175  1.1  mrg 	  o0 <<= shift;
   1176  1.1  mrg 	  if (old_carry)
   1177  1.1  mrg 	    *overflow = (x <= o0);
   1178  1.1  mrg 	  else
   1179  1.1  mrg 	    *overflow = (x < o0);
   1180  1.1  mrg 	}
   1181  1.1  mrg     }
   1182  1.1  mrg 
   1183  1.1  mrg   return canonize (val, len, prec);
   1184  1.1  mrg }
   1185  1.1  mrg 
   1186  1.1  mrg /* Subroutines of the multiplication and division operations.  Unpack
   1187  1.1  mrg    the first IN_LEN HOST_WIDE_INTs in INPUT into 2 * IN_LEN
   1188  1.1  mrg    HOST_HALF_WIDE_INTs of RESULT.  The rest of RESULT is filled by
   1189  1.1  mrg    uncompressing the top bit of INPUT[IN_LEN - 1].  */
   1190  1.1  mrg static void
   1191  1.1  mrg wi_unpack (unsigned HOST_HALF_WIDE_INT *result, const HOST_WIDE_INT *input,
   1192  1.1  mrg 	   unsigned int in_len, unsigned int out_len,
   1193  1.1  mrg 	   unsigned int prec, signop sgn)
   1194  1.1  mrg {
   1195  1.1  mrg   unsigned int i;
   1196  1.1  mrg   unsigned int j = 0;
   1197  1.1  mrg   unsigned int small_prec = prec & (HOST_BITS_PER_WIDE_INT - 1);
   1198  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (prec);
   1199  1.1  mrg   HOST_WIDE_INT mask;
   1200  1.1  mrg 
   1201  1.1  mrg   if (sgn == SIGNED)
   1202  1.1  mrg     {
   1203  1.1  mrg       mask = -top_bit_of ((const HOST_WIDE_INT *) input, in_len, prec);
   1204  1.1  mrg       mask &= HALF_INT_MASK;
   1205  1.1  mrg     }
   1206  1.1  mrg   else
   1207  1.1  mrg     mask = 0;
   1208  1.1  mrg 
   1209  1.1  mrg   for (i = 0; i < blocks_needed - 1; i++)
   1210  1.1  mrg     {
   1211  1.1  mrg       HOST_WIDE_INT x = safe_uhwi (input, in_len, i);
   1212  1.1  mrg       result[j++] = x;
   1213  1.1  mrg       result[j++] = x >> HOST_BITS_PER_HALF_WIDE_INT;
   1214  1.1  mrg     }
   1215  1.1  mrg 
   1216  1.1  mrg   HOST_WIDE_INT x = safe_uhwi (input, in_len, i);
   1217  1.1  mrg   if (small_prec)
   1218  1.1  mrg     {
   1219  1.1  mrg       if (sgn == SIGNED)
   1220  1.1  mrg 	x = sext_hwi (x, small_prec);
   1221  1.1  mrg       else
   1222  1.1  mrg 	x = zext_hwi (x, small_prec);
   1223  1.1  mrg     }
   1224  1.1  mrg   result[j++] = x;
   1225  1.1  mrg   result[j++] = x >> HOST_BITS_PER_HALF_WIDE_INT;
   1226  1.1  mrg 
   1227  1.1  mrg   /* Smear the sign bit.  */
   1228  1.1  mrg   while (j < out_len)
   1229  1.1  mrg     result[j++] = mask;
   1230  1.1  mrg }
   1231  1.1  mrg 
   1232  1.1  mrg /* The inverse of wi_unpack.  IN_LEN is the number of input
   1233  1.1  mrg    blocks and PRECISION is the precision of the result.  Return the
   1234  1.1  mrg    number of blocks in the canonicalized result.  */
   1235  1.1  mrg static unsigned int
   1236  1.1  mrg wi_pack (HOST_WIDE_INT *result,
   1237  1.1  mrg 	 const unsigned HOST_HALF_WIDE_INT *input,
   1238  1.1  mrg 	 unsigned int in_len, unsigned int precision)
   1239  1.1  mrg {
   1240  1.1  mrg   unsigned int i = 0;
   1241  1.1  mrg   unsigned int j = 0;
   1242  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (precision);
   1243  1.1  mrg 
   1244  1.1  mrg   while (i + 1 < in_len)
   1245  1.1  mrg     {
   1246  1.1  mrg       result[j++] = ((unsigned HOST_WIDE_INT) input[i]
   1247  1.1  mrg 		     | ((unsigned HOST_WIDE_INT) input[i + 1]
   1248  1.1  mrg 			<< HOST_BITS_PER_HALF_WIDE_INT));
   1249  1.1  mrg       i += 2;
   1250  1.1  mrg     }
   1251  1.1  mrg 
   1252  1.1  mrg   /* Handle the case where in_len is odd.   For this we zero extend.  */
   1253  1.1  mrg   if (in_len & 1)
   1254  1.1  mrg     result[j++] = (unsigned HOST_WIDE_INT) input[i];
   1255  1.1  mrg   else if (j < blocks_needed)
   1256  1.1  mrg     result[j++] = 0;
   1257  1.1  mrg   return canonize (result, j, precision);
   1258  1.1  mrg }
   1259  1.1  mrg 
   1260  1.1  mrg /* Multiply Op1 by Op2.  If HIGH is set, only the upper half of the
   1261  1.1  mrg    result is returned.
   1262  1.1  mrg 
   1263  1.1  mrg    If HIGH is not set, throw away the upper half after the check is
   1264  1.1  mrg    made to see if it overflows.  Unfortunately there is no better way
   1265  1.1  mrg    to check for overflow than to do this.  If OVERFLOW is nonnull,
   1266  1.1  mrg    record in *OVERFLOW whether the result overflowed.  SGN controls
   1267  1.1  mrg    the signedness and is used to check overflow or if HIGH is set.  */
   1268  1.1  mrg unsigned int
   1269  1.1  mrg wi::mul_internal (HOST_WIDE_INT *val, const HOST_WIDE_INT *op1val,
   1270  1.1  mrg 		  unsigned int op1len, const HOST_WIDE_INT *op2val,
   1271  1.1  mrg 		  unsigned int op2len, unsigned int prec, signop sgn,
   1272  1.1  mrg 		  bool *overflow, bool high)
   1273  1.1  mrg {
   1274  1.1  mrg   unsigned HOST_WIDE_INT o0, o1, k, t;
   1275  1.1  mrg   unsigned int i;
   1276  1.1  mrg   unsigned int j;
   1277  1.1  mrg   unsigned int blocks_needed = BLOCKS_NEEDED (prec);
   1278  1.1  mrg   unsigned int half_blocks_needed = blocks_needed * 2;
   1279  1.1  mrg   /* The sizes here are scaled to support a 2x largest mode by 2x
   1280  1.1  mrg      largest mode yielding a 4x largest mode result.  This is what is
   1281  1.1  mrg      needed by vpn.  */
   1282  1.1  mrg 
   1283  1.1  mrg   unsigned HOST_HALF_WIDE_INT
   1284  1.1  mrg     u[4 * MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_HALF_WIDE_INT];
   1285  1.1  mrg   unsigned HOST_HALF_WIDE_INT
   1286  1.1  mrg     v[4 * MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_HALF_WIDE_INT];
   1287  1.1  mrg   /* The '2' in 'R' is because we are internally doing a full
   1288  1.1  mrg      multiply.  */
   1289  1.1  mrg   unsigned HOST_HALF_WIDE_INT
   1290  1.1  mrg     r[2 * 4 * MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_HALF_WIDE_INT];
   1291  1.1  mrg   HOST_WIDE_INT mask = ((HOST_WIDE_INT)1 << HOST_BITS_PER_HALF_WIDE_INT) - 1;
   1292  1.1  mrg 
   1293  1.1  mrg   /* If the top level routine did not really pass in an overflow, then
   1294  1.1  mrg      just make sure that we never attempt to set it.  */
   1295  1.1  mrg   bool needs_overflow = (overflow != 0);
   1296  1.1  mrg   if (needs_overflow)
   1297  1.1  mrg     *overflow = false;
   1298  1.1  mrg 
   1299  1.1  mrg   wide_int_ref op1 = wi::storage_ref (op1val, op1len, prec);
   1300  1.1  mrg   wide_int_ref op2 = wi::storage_ref (op2val, op2len, prec);
   1301  1.1  mrg 
   1302  1.1  mrg   /* This is a surprisingly common case, so do it first.  */
   1303  1.1  mrg   if (op1 == 0 || op2 == 0)
   1304  1.1  mrg     {
   1305  1.1  mrg       val[0] = 0;
   1306  1.1  mrg       return 1;
   1307  1.1  mrg     }
   1308  1.1  mrg 
   1309  1.1  mrg #ifdef umul_ppmm
   1310  1.1  mrg   if (sgn == UNSIGNED)
   1311  1.1  mrg     {
   1312  1.1  mrg       /* If the inputs are single HWIs and the output has room for at
   1313  1.1  mrg 	 least two HWIs, we can use umul_ppmm directly.  */
   1314  1.1  mrg       if (prec >= HOST_BITS_PER_WIDE_INT * 2
   1315  1.1  mrg 	  && wi::fits_uhwi_p (op1)
   1316  1.1  mrg 	  && wi::fits_uhwi_p (op2))
   1317  1.1  mrg 	{
   1318  1.1  mrg 	  /* This case never overflows.  */
   1319  1.1  mrg 	  if (high)
   1320  1.1  mrg 	    {
   1321  1.1  mrg 	      val[0] = 0;
   1322  1.1  mrg 	      return 1;
   1323  1.1  mrg 	    }
   1324  1.1  mrg 	  umul_ppmm (val[1], val[0], op1.ulow (), op2.ulow ());
   1325  1.1  mrg 	  if (val[1] < 0 && prec > HOST_BITS_PER_WIDE_INT * 2)
   1326  1.1  mrg 	    {
   1327  1.1  mrg 	      val[2] = 0;
   1328  1.1  mrg 	      return 3;
   1329  1.1  mrg 	    }
   1330  1.1  mrg 	  return 1 + (val[1] != 0 || val[0] < 0);
   1331  1.1  mrg 	}
   1332  1.1  mrg       /* Likewise if the output is a full single HWI, except that the
   1333  1.1  mrg 	 upper HWI of the result is only used for determining overflow.
   1334  1.1  mrg 	 (We handle this case inline when overflow isn't needed.)  */
   1335  1.1  mrg       else if (prec == HOST_BITS_PER_WIDE_INT)
   1336  1.1  mrg 	{
   1337  1.1  mrg 	  unsigned HOST_WIDE_INT upper;
   1338  1.1  mrg 	  umul_ppmm (upper, val[0], op1.ulow (), op2.ulow ());
   1339  1.1  mrg 	  if (needs_overflow)
   1340  1.1  mrg 	    *overflow = (upper != 0);
   1341  1.1  mrg 	  if (high)
   1342  1.1  mrg 	    val[0] = upper;
   1343  1.1  mrg 	  return 1;
   1344  1.1  mrg 	}
   1345  1.1  mrg     }
   1346  1.1  mrg #endif
   1347  1.1  mrg 
   1348  1.1  mrg   /* Handle multiplications by 1.  */
   1349  1.1  mrg   if (op1 == 1)
   1350  1.1  mrg     {
   1351  1.1  mrg       if (high)
   1352  1.1  mrg 	{
   1353  1.1  mrg 	  val[0] = wi::neg_p (op2, sgn) ? -1 : 0;
   1354  1.1  mrg 	  return 1;
   1355  1.1  mrg 	}
   1356  1.1  mrg       for (i = 0; i < op2len; i++)
   1357  1.1  mrg 	val[i] = op2val[i];
   1358  1.1  mrg       return op2len;
   1359  1.1  mrg     }
   1360  1.1  mrg   if (op2 == 1)
   1361  1.1  mrg     {
   1362  1.1  mrg       if (high)
   1363  1.1  mrg 	{
   1364  1.1  mrg 	  val[0] = wi::neg_p (op1, sgn) ? -1 : 0;
   1365  1.1  mrg 	  return 1;
   1366  1.1  mrg 	}
   1367  1.1  mrg       for (i = 0; i < op1len; i++)
   1368  1.1  mrg 	val[i] = op1val[i];
   1369  1.1  mrg       return op1len;
   1370  1.1  mrg     }
   1371  1.1  mrg 
   1372  1.1  mrg   /* If we need to check for overflow, we can only do half wide
   1373  1.1  mrg      multiplies quickly because we need to look at the top bits to
   1374  1.1  mrg      check for the overflow.  */
   1375  1.1  mrg   if ((high || needs_overflow)
   1376  1.1  mrg       && (prec <= HOST_BITS_PER_HALF_WIDE_INT))
   1377  1.1  mrg     {
   1378  1.1  mrg       unsigned HOST_WIDE_INT r;
   1379  1.1  mrg 
   1380  1.1  mrg       if (sgn == SIGNED)
   1381  1.1  mrg 	{
   1382  1.1  mrg 	  o0 = op1.to_shwi ();
   1383  1.1  mrg 	  o1 = op2.to_shwi ();
   1384  1.1  mrg 	}
   1385  1.1  mrg       else
   1386  1.1  mrg 	{
   1387  1.1  mrg 	  o0 = op1.to_uhwi ();
   1388  1.1  mrg 	  o1 = op2.to_uhwi ();
   1389  1.1  mrg 	}
   1390  1.1  mrg 
   1391  1.1  mrg       r = o0 * o1;
   1392  1.1  mrg       if (needs_overflow)
   1393  1.1  mrg 	{
   1394  1.1  mrg 	  if (sgn == SIGNED)
   1395  1.1  mrg 	    {
   1396  1.1  mrg 	      if ((HOST_WIDE_INT) r != sext_hwi (r, prec))
   1397  1.1  mrg 		*overflow = true;
   1398  1.1  mrg 	    }
   1399  1.1  mrg 	  else
   1400  1.1  mrg 	    {
   1401  1.1  mrg 	      if ((r >> prec) != 0)
   1402  1.1  mrg 		*overflow = true;
   1403  1.1  mrg 	    }
   1404  1.1  mrg 	}
   1405  1.1  mrg       val[0] = high ? r >> prec : r;
   1406  1.1  mrg       return 1;
   1407  1.1  mrg     }
   1408  1.1  mrg 
   1409  1.1  mrg   /* We do unsigned mul and then correct it.  */
   1410  1.1  mrg   wi_unpack (u, op1val, op1len, half_blocks_needed, prec, SIGNED);
   1411  1.1  mrg   wi_unpack (v, op2val, op2len, half_blocks_needed, prec, SIGNED);
   1412  1.1  mrg 
   1413  1.1  mrg   /* The 2 is for a full mult.  */
   1414  1.1  mrg   memset (r, 0, half_blocks_needed * 2
   1415  1.1  mrg 	  * HOST_BITS_PER_HALF_WIDE_INT / CHAR_BIT);
   1416  1.1  mrg 
   1417  1.1  mrg   for (j = 0; j < half_blocks_needed; j++)
   1418  1.1  mrg     {
   1419  1.1  mrg       k = 0;
   1420  1.1  mrg       for (i = 0; i < half_blocks_needed; i++)
   1421  1.1  mrg 	{
   1422  1.1  mrg 	  t = ((unsigned HOST_WIDE_INT)u[i] * (unsigned HOST_WIDE_INT)v[j]
   1423  1.1  mrg 	       + r[i + j] + k);
   1424  1.1  mrg 	  r[i + j] = t & HALF_INT_MASK;
   1425  1.1  mrg 	  k = t >> HOST_BITS_PER_HALF_WIDE_INT;
   1426  1.1  mrg 	}
   1427  1.1  mrg       r[j + half_blocks_needed] = k;
   1428  1.1  mrg     }
   1429  1.1  mrg 
   1430  1.1  mrg   /* We did unsigned math above.  For signed we must adjust the
   1431  1.1  mrg      product (assuming we need to see that).  */
   1432  1.1  mrg   if (sgn == SIGNED && (high || needs_overflow))
   1433  1.1  mrg     {
   1434  1.1  mrg       unsigned HOST_WIDE_INT b;
   1435  1.1  mrg       if (wi::neg_p (op1))
   1436  1.1  mrg 	{
   1437  1.1  mrg 	  b = 0;
   1438  1.1  mrg 	  for (i = 0; i < half_blocks_needed; i++)
   1439  1.1  mrg 	    {
   1440  1.1  mrg 	      t = (unsigned HOST_WIDE_INT)r[i + half_blocks_needed]
   1441  1.1  mrg 		- (unsigned HOST_WIDE_INT)v[i] - b;
   1442  1.1  mrg 	      r[i + half_blocks_needed] = t & HALF_INT_MASK;
   1443  1.1  mrg 	      b = t >> (HOST_BITS_PER_WIDE_INT - 1);
   1444  1.1  mrg 	    }
   1445  1.1  mrg 	}
   1446  1.1  mrg       if (wi::neg_p (op2))
   1447  1.1  mrg 	{
   1448  1.1  mrg 	  b = 0;
   1449  1.1  mrg 	  for (i = 0; i < half_blocks_needed; i++)
   1450  1.1  mrg 	    {
   1451  1.1  mrg 	      t = (unsigned HOST_WIDE_INT)r[i + half_blocks_needed]
   1452  1.1  mrg 		- (unsigned HOST_WIDE_INT)u[i] - b;
   1453  1.1  mrg 	      r[i + half_blocks_needed] = t & HALF_INT_MASK;
   1454  1.1  mrg 	      b = t >> (HOST_BITS_PER_WIDE_INT - 1);
   1455  1.1  mrg 	    }
   1456  1.1  mrg 	}
   1457  1.1  mrg     }
   1458  1.1  mrg 
   1459  1.1  mrg   if (needs_overflow)
   1460  1.1  mrg     {
   1461  1.1  mrg       HOST_WIDE_INT top;
   1462  1.1  mrg 
   1463  1.1  mrg       /* For unsigned, overflow is true if any of the top bits are set.
   1464  1.1  mrg 	 For signed, overflow is true if any of the top bits are not equal
   1465  1.1  mrg 	 to the sign bit.  */
   1466  1.1  mrg       if (sgn == UNSIGNED)
   1467  1.1  mrg 	top = 0;
   1468  1.1  mrg       else
   1469  1.1  mrg 	{
   1470  1.1  mrg 	  top = r[(half_blocks_needed) - 1];
   1471  1.1  mrg 	  top = SIGN_MASK (top << (HOST_BITS_PER_WIDE_INT / 2));
   1472  1.1  mrg 	  top &= mask;
   1473  1.1  mrg 	}
   1474  1.1  mrg 
   1475  1.1  mrg       for (i = half_blocks_needed; i < half_blocks_needed * 2; i++)
   1476  1.1  mrg 	if (((HOST_WIDE_INT)(r[i] & mask)) != top)
   1477  1.1  mrg 	  *overflow = true;
   1478  1.1  mrg     }
   1479  1.1  mrg 
   1480  1.1  mrg   int r_offset = high ? half_blocks_needed : 0;
   1481  1.1  mrg   return wi_pack (val, &r[r_offset], half_blocks_needed, prec);
   1482  1.1  mrg }
   1483  1.1  mrg 
   1484  1.1  mrg /* Compute the population count of X.  */
   1485  1.1  mrg int
   1486  1.1  mrg wi::popcount (const wide_int_ref &x)
   1487  1.1  mrg {
   1488  1.1  mrg   unsigned int i;
   1489  1.1  mrg   int count;
   1490  1.1  mrg 
   1491  1.1  mrg   /* The high order block is special if it is the last block and the
   1492  1.1  mrg      precision is not an even multiple of HOST_BITS_PER_WIDE_INT.  We
   1493  1.1  mrg      have to clear out any ones above the precision before doing
   1494  1.1  mrg      popcount on this block.  */
   1495  1.1  mrg   count = x.precision - x.len * HOST_BITS_PER_WIDE_INT;
   1496  1.1  mrg   unsigned int stop = x.len;
   1497  1.1  mrg   if (count < 0)
   1498  1.1  mrg     {
   1499  1.1  mrg       count = popcount_hwi (x.uhigh () << -count);
   1500  1.1  mrg       stop -= 1;
   1501  1.1  mrg     }
   1502  1.1  mrg   else
   1503  1.1  mrg     {
   1504  1.1  mrg       if (x.sign_mask () >= 0)
   1505  1.1  mrg 	count = 0;
   1506  1.1  mrg     }
   1507  1.1  mrg 
   1508  1.1  mrg   for (i = 0; i < stop; ++i)
   1509  1.1  mrg     count += popcount_hwi (x.val[i]);
   1510  1.1  mrg 
   1511  1.1  mrg   return count;
   1512  1.1  mrg }
   1513  1.1  mrg 
   1514  1.1  mrg /* Set VAL to OP0 - OP1.  If OVERFLOW is nonnull, record in *OVERFLOW
   1515  1.1  mrg    whether the result overflows when OP0 and OP1 are treated as having
   1516  1.1  mrg    signedness SGN.  Return the number of blocks in VAL.  */
   1517  1.1  mrg unsigned int
   1518  1.1  mrg wi::sub_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *op0,
   1519  1.1  mrg 	       unsigned int op0len, const HOST_WIDE_INT *op1,
   1520  1.1  mrg 	       unsigned int op1len, unsigned int prec,
   1521  1.1  mrg 	       signop sgn, bool *overflow)
   1522  1.1  mrg {
   1523  1.1  mrg   unsigned HOST_WIDE_INT o0 = 0;
   1524  1.1  mrg   unsigned HOST_WIDE_INT o1 = 0;
   1525  1.1  mrg   unsigned HOST_WIDE_INT x = 0;
   1526  1.1  mrg   /* We implement subtraction as an in place negate and add.  Negation
   1527  1.1  mrg      is just inversion and add 1, so we can do the add of 1 by just
   1528  1.1  mrg      starting the borrow in of the first element at 1.  */
   1529  1.1  mrg   unsigned HOST_WIDE_INT borrow = 0;
   1530  1.1  mrg   unsigned HOST_WIDE_INT old_borrow = 0;
   1531  1.1  mrg 
   1532  1.1  mrg   unsigned HOST_WIDE_INT mask0, mask1;
   1533  1.1  mrg   unsigned int i;
   1534  1.1  mrg 
   1535  1.1  mrg   unsigned int len = MAX (op0len, op1len);
   1536  1.1  mrg   mask0 = -top_bit_of (op0, op0len, prec);
   1537  1.1  mrg   mask1 = -top_bit_of (op1, op1len, prec);
   1538  1.1  mrg 
   1539  1.1  mrg   /* Subtract all of the explicitly defined elements.  */
   1540  1.1  mrg   for (i = 0; i < len; i++)
   1541  1.1  mrg     {
   1542  1.1  mrg       o0 = i < op0len ? (unsigned HOST_WIDE_INT)op0[i] : mask0;
   1543  1.1  mrg       o1 = i < op1len ? (unsigned HOST_WIDE_INT)op1[i] : mask1;
   1544  1.1  mrg       x = o0 - o1 - borrow;
   1545  1.1  mrg       val[i] = x;
   1546  1.1  mrg       old_borrow = borrow;
   1547  1.1  mrg       borrow = borrow == 0 ? o0 < o1 : o0 <= o1;
   1548  1.1  mrg     }
   1549  1.1  mrg 
   1550  1.1  mrg   if (len * HOST_BITS_PER_WIDE_INT < prec)
   1551  1.1  mrg     {
   1552  1.1  mrg       val[len] = mask0 - mask1 - borrow;
   1553  1.1  mrg       len++;
   1554  1.1  mrg       if (overflow)
   1555  1.4  mrg 	*overflow = (sgn == UNSIGNED && borrow);
   1556  1.1  mrg     }
   1557  1.1  mrg   else if (overflow)
   1558  1.1  mrg     {
   1559  1.1  mrg       unsigned int shift = -prec % HOST_BITS_PER_WIDE_INT;
   1560  1.1  mrg       if (sgn == SIGNED)
   1561  1.1  mrg 	{
   1562  1.1  mrg 	  unsigned HOST_WIDE_INT x = (o0 ^ o1) & (val[len - 1] ^ o0);
   1563  1.1  mrg 	  *overflow = (HOST_WIDE_INT) (x << shift) < 0;
   1564  1.1  mrg 	}
   1565  1.1  mrg       else
   1566  1.1  mrg 	{
   1567  1.1  mrg 	  /* Put the MSB of X and O0 and in the top of the HWI.  */
   1568  1.1  mrg 	  x <<= shift;
   1569  1.1  mrg 	  o0 <<= shift;
   1570  1.1  mrg 	  if (old_borrow)
   1571  1.1  mrg 	    *overflow = (x >= o0);
   1572  1.1  mrg 	  else
   1573  1.1  mrg 	    *overflow = (x > o0);
   1574  1.1  mrg 	}
   1575  1.1  mrg     }
   1576  1.1  mrg 
   1577  1.1  mrg   return canonize (val, len, prec);
   1578  1.1  mrg }
   1579  1.1  mrg 
   1580  1.1  mrg 
   1581  1.1  mrg /*
   1582  1.1  mrg  * Division and Mod
   1583  1.1  mrg  */
   1584  1.1  mrg 
   1585  1.1  mrg /* Compute B_QUOTIENT and B_REMAINDER from B_DIVIDEND/B_DIVISOR.  The
   1586  1.1  mrg    algorithm is a small modification of the algorithm in Hacker's
   1587  1.1  mrg    Delight by Warren, which itself is a small modification of Knuth's
   1588  1.1  mrg    algorithm.  M is the number of significant elements of U however
   1589  1.1  mrg    there needs to be at least one extra element of B_DIVIDEND
   1590  1.1  mrg    allocated, N is the number of elements of B_DIVISOR.  */
   1591  1.1  mrg static void
   1592  1.1  mrg divmod_internal_2 (unsigned HOST_HALF_WIDE_INT *b_quotient,
   1593  1.1  mrg 		   unsigned HOST_HALF_WIDE_INT *b_remainder,
   1594  1.1  mrg 		   unsigned HOST_HALF_WIDE_INT *b_dividend,
   1595  1.1  mrg 		   unsigned HOST_HALF_WIDE_INT *b_divisor,
   1596  1.1  mrg 		   int m, int n)
   1597  1.1  mrg {
   1598  1.1  mrg   /* The "digits" are a HOST_HALF_WIDE_INT which the size of half of a
   1599  1.1  mrg      HOST_WIDE_INT and stored in the lower bits of each word.  This
   1600  1.1  mrg      algorithm should work properly on both 32 and 64 bit
   1601  1.1  mrg      machines.  */
   1602  1.1  mrg   unsigned HOST_WIDE_INT b
   1603  1.1  mrg     = (unsigned HOST_WIDE_INT)1 << HOST_BITS_PER_HALF_WIDE_INT;
   1604  1.1  mrg   unsigned HOST_WIDE_INT qhat;   /* Estimate of quotient digit.  */
   1605  1.1  mrg   unsigned HOST_WIDE_INT rhat;   /* A remainder.  */
   1606  1.1  mrg   unsigned HOST_WIDE_INT p;      /* Product of two digits.  */
   1607  1.1  mrg   HOST_WIDE_INT t, k;
   1608  1.1  mrg   int i, j, s;
   1609  1.1  mrg 
   1610  1.1  mrg   /* Single digit divisor.  */
   1611  1.1  mrg   if (n == 1)
   1612  1.1  mrg     {
   1613  1.1  mrg       k = 0;
   1614  1.1  mrg       for (j = m - 1; j >= 0; j--)
   1615  1.1  mrg 	{
   1616  1.1  mrg 	  b_quotient[j] = (k * b + b_dividend[j])/b_divisor[0];
   1617  1.1  mrg 	  k = ((k * b + b_dividend[j])
   1618  1.1  mrg 	       - ((unsigned HOST_WIDE_INT)b_quotient[j]
   1619  1.1  mrg 		  * (unsigned HOST_WIDE_INT)b_divisor[0]));
   1620  1.1  mrg 	}
   1621  1.1  mrg       b_remainder[0] = k;
   1622  1.1  mrg       return;
   1623  1.1  mrg     }
   1624  1.1  mrg 
   1625  1.1  mrg   s = clz_hwi (b_divisor[n-1]) - HOST_BITS_PER_HALF_WIDE_INT; /* CHECK clz */
   1626  1.1  mrg 
   1627  1.1  mrg   if (s)
   1628  1.1  mrg     {
   1629  1.1  mrg       /* Normalize B_DIVIDEND and B_DIVISOR.  Unlike the published
   1630  1.1  mrg 	 algorithm, we can overwrite b_dividend and b_divisor, so we do
   1631  1.1  mrg 	 that.  */
   1632  1.1  mrg       for (i = n - 1; i > 0; i--)
   1633  1.1  mrg 	b_divisor[i] = (b_divisor[i] << s)
   1634  1.1  mrg 	  | (b_divisor[i-1] >> (HOST_BITS_PER_HALF_WIDE_INT - s));
   1635  1.1  mrg       b_divisor[0] = b_divisor[0] << s;
   1636  1.1  mrg 
   1637  1.1  mrg       b_dividend[m] = b_dividend[m-1] >> (HOST_BITS_PER_HALF_WIDE_INT - s);
   1638  1.1  mrg       for (i = m - 1; i > 0; i--)
   1639  1.1  mrg 	b_dividend[i] = (b_dividend[i] << s)
   1640  1.1  mrg 	  | (b_dividend[i-1] >> (HOST_BITS_PER_HALF_WIDE_INT - s));
   1641  1.1  mrg       b_dividend[0] = b_dividend[0] << s;
   1642  1.1  mrg     }
   1643  1.1  mrg 
   1644  1.1  mrg   /* Main loop.  */
   1645  1.1  mrg   for (j = m - n; j >= 0; j--)
   1646  1.1  mrg     {
   1647  1.1  mrg       qhat = (b_dividend[j+n] * b + b_dividend[j+n-1]) / b_divisor[n-1];
   1648  1.1  mrg       rhat = (b_dividend[j+n] * b + b_dividend[j+n-1]) - qhat * b_divisor[n-1];
   1649  1.1  mrg     again:
   1650  1.1  mrg       if (qhat >= b || qhat * b_divisor[n-2] > b * rhat + b_dividend[j+n-2])
   1651  1.1  mrg 	{
   1652  1.1  mrg 	  qhat -= 1;
   1653  1.1  mrg 	  rhat += b_divisor[n-1];
   1654  1.1  mrg 	  if (rhat < b)
   1655  1.1  mrg 	    goto again;
   1656  1.1  mrg 	}
   1657  1.1  mrg 
   1658  1.1  mrg       /* Multiply and subtract.  */
   1659  1.1  mrg       k = 0;
   1660  1.1  mrg       for (i = 0; i < n; i++)
   1661  1.1  mrg 	{
   1662  1.1  mrg 	  p = qhat * b_divisor[i];
   1663  1.1  mrg 	  t = b_dividend[i+j] - k - (p & HALF_INT_MASK);
   1664  1.1  mrg 	  b_dividend[i + j] = t;
   1665  1.1  mrg 	  k = ((p >> HOST_BITS_PER_HALF_WIDE_INT)
   1666  1.1  mrg 	       - (t >> HOST_BITS_PER_HALF_WIDE_INT));
   1667  1.1  mrg 	}
   1668  1.1  mrg       t = b_dividend[j+n] - k;
   1669  1.1  mrg       b_dividend[j+n] = t;
   1670  1.1  mrg 
   1671  1.1  mrg       b_quotient[j] = qhat;
   1672  1.1  mrg       if (t < 0)
   1673  1.1  mrg 	{
   1674  1.1  mrg 	  b_quotient[j] -= 1;
   1675  1.1  mrg 	  k = 0;
   1676  1.1  mrg 	  for (i = 0; i < n; i++)
   1677  1.1  mrg 	    {
   1678  1.1  mrg 	      t = (HOST_WIDE_INT)b_dividend[i+j] + b_divisor[i] + k;
   1679  1.1  mrg 	      b_dividend[i+j] = t;
   1680  1.1  mrg 	      k = t >> HOST_BITS_PER_HALF_WIDE_INT;
   1681  1.1  mrg 	    }
   1682  1.1  mrg 	  b_dividend[j+n] += k;
   1683  1.1  mrg 	}
   1684  1.1  mrg     }
   1685  1.1  mrg   if (s)
   1686  1.1  mrg     for (i = 0; i < n; i++)
   1687  1.1  mrg       b_remainder[i] = (b_dividend[i] >> s)
   1688  1.1  mrg 	| (b_dividend[i+1] << (HOST_BITS_PER_HALF_WIDE_INT - s));
   1689  1.1  mrg   else
   1690  1.1  mrg     for (i = 0; i < n; i++)
   1691  1.1  mrg       b_remainder[i] = b_dividend[i];
   1692  1.1  mrg }
   1693  1.1  mrg 
   1694  1.1  mrg 
   1695  1.1  mrg /* Divide DIVIDEND by DIVISOR, which have signedness SGN, and truncate
   1696  1.1  mrg    the result.  If QUOTIENT is nonnull, store the value of the quotient
   1697  1.1  mrg    there and return the number of blocks in it.  The return value is
   1698  1.1  mrg    not defined otherwise.  If REMAINDER is nonnull, store the value
   1699  1.1  mrg    of the remainder there and store the number of blocks in
   1700  1.1  mrg    *REMAINDER_LEN.  If OFLOW is not null, store in *OFLOW whether
   1701  1.1  mrg    the division overflowed.  */
   1702  1.1  mrg unsigned int
   1703  1.1  mrg wi::divmod_internal (HOST_WIDE_INT *quotient, unsigned int *remainder_len,
   1704  1.1  mrg 		     HOST_WIDE_INT *remainder,
   1705  1.1  mrg 		     const HOST_WIDE_INT *dividend_val,
   1706  1.1  mrg 		     unsigned int dividend_len, unsigned int dividend_prec,
   1707  1.1  mrg 		     const HOST_WIDE_INT *divisor_val, unsigned int divisor_len,
   1708  1.1  mrg 		     unsigned int divisor_prec, signop sgn,
   1709  1.1  mrg 		     bool *oflow)
   1710  1.1  mrg {
   1711  1.1  mrg   unsigned int dividend_blocks_needed = 2 * BLOCKS_NEEDED (dividend_prec);
   1712  1.1  mrg   unsigned int divisor_blocks_needed = 2 * BLOCKS_NEEDED (divisor_prec);
   1713  1.1  mrg   unsigned HOST_HALF_WIDE_INT
   1714  1.1  mrg     b_quotient[4 * MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_HALF_WIDE_INT];
   1715  1.1  mrg   unsigned HOST_HALF_WIDE_INT
   1716  1.1  mrg     b_remainder[4 * MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_HALF_WIDE_INT];
   1717  1.1  mrg   unsigned HOST_HALF_WIDE_INT
   1718  1.1  mrg     b_dividend[(4 * MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_HALF_WIDE_INT) + 1];
   1719  1.1  mrg   unsigned HOST_HALF_WIDE_INT
   1720  1.1  mrg     b_divisor[4 * MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_HALF_WIDE_INT];
   1721  1.1  mrg   unsigned int m, n;
   1722  1.1  mrg   bool dividend_neg = false;
   1723  1.1  mrg   bool divisor_neg = false;
   1724  1.1  mrg   bool overflow = false;
   1725  1.1  mrg   wide_int neg_dividend, neg_divisor;
   1726  1.1  mrg 
   1727  1.1  mrg   wide_int_ref dividend = wi::storage_ref (dividend_val, dividend_len,
   1728  1.1  mrg 					   dividend_prec);
   1729  1.1  mrg   wide_int_ref divisor = wi::storage_ref (divisor_val, divisor_len,
   1730  1.1  mrg 					  divisor_prec);
   1731  1.1  mrg   if (divisor == 0)
   1732  1.1  mrg     overflow = true;
   1733  1.1  mrg 
   1734  1.1  mrg   /* The smallest signed number / -1 causes overflow.  The dividend_len
   1735  1.1  mrg      check is for speed rather than correctness.  */
   1736  1.1  mrg   if (sgn == SIGNED
   1737  1.1  mrg       && dividend_len == BLOCKS_NEEDED (dividend_prec)
   1738  1.1  mrg       && divisor == -1
   1739  1.1  mrg       && wi::only_sign_bit_p (dividend))
   1740  1.1  mrg     overflow = true;
   1741  1.1  mrg 
   1742  1.1  mrg   /* Handle the overflow cases.  Viewed as unsigned value, the quotient of
   1743  1.1  mrg      (signed min / -1) has the same representation as the orignal dividend.
   1744  1.1  mrg      We have traditionally made division by zero act as division by one,
   1745  1.1  mrg      so there too we use the original dividend.  */
   1746  1.1  mrg   if (overflow)
   1747  1.1  mrg     {
   1748  1.1  mrg       if (remainder)
   1749  1.1  mrg 	{
   1750  1.1  mrg 	  *remainder_len = 1;
   1751  1.1  mrg 	  remainder[0] = 0;
   1752  1.1  mrg 	}
   1753  1.1  mrg       if (oflow != 0)
   1754  1.1  mrg 	*oflow = true;
   1755  1.1  mrg       if (quotient)
   1756  1.1  mrg 	for (unsigned int i = 0; i < dividend_len; ++i)
   1757  1.1  mrg 	  quotient[i] = dividend_val[i];
   1758  1.1  mrg       return dividend_len;
   1759  1.1  mrg     }
   1760  1.1  mrg 
   1761  1.1  mrg   if (oflow)
   1762  1.1  mrg     *oflow = false;
   1763  1.1  mrg 
   1764  1.1  mrg   /* Do it on the host if you can.  */
   1765  1.1  mrg   if (sgn == SIGNED
   1766  1.1  mrg       && wi::fits_shwi_p (dividend)
   1767  1.1  mrg       && wi::fits_shwi_p (divisor))
   1768  1.1  mrg     {
   1769  1.1  mrg       HOST_WIDE_INT o0 = dividend.to_shwi ();
   1770  1.1  mrg       HOST_WIDE_INT o1 = divisor.to_shwi ();
   1771  1.1  mrg 
   1772  1.1  mrg       if (o0 == HOST_WIDE_INT_MIN && o1 == -1)
   1773  1.1  mrg 	{
   1774  1.1  mrg 	  gcc_checking_assert (dividend_prec > HOST_BITS_PER_WIDE_INT);
   1775  1.1  mrg 	  if (quotient)
   1776  1.1  mrg 	    {
   1777  1.1  mrg 	      quotient[0] = HOST_WIDE_INT_MIN;
   1778  1.1  mrg 	      quotient[1] = 0;
   1779  1.1  mrg 	    }
   1780  1.1  mrg 	  if (remainder)
   1781  1.1  mrg 	    {
   1782  1.1  mrg 	      remainder[0] = 0;
   1783  1.1  mrg 	      *remainder_len = 1;
   1784  1.1  mrg 	    }
   1785  1.1  mrg 	  return 2;
   1786  1.1  mrg 	}
   1787  1.1  mrg       else
   1788  1.1  mrg 	{
   1789  1.1  mrg 	  if (quotient)
   1790  1.1  mrg 	    quotient[0] = o0 / o1;
   1791  1.1  mrg 	  if (remainder)
   1792  1.1  mrg 	    {
   1793  1.1  mrg 	      remainder[0] = o0 % o1;
   1794  1.1  mrg 	      *remainder_len = 1;
   1795  1.1  mrg 	    }
   1796  1.1  mrg 	  return 1;
   1797  1.1  mrg 	}
   1798  1.1  mrg     }
   1799  1.1  mrg 
   1800  1.1  mrg   if (sgn == UNSIGNED
   1801  1.1  mrg       && wi::fits_uhwi_p (dividend)
   1802  1.1  mrg       && wi::fits_uhwi_p (divisor))
   1803  1.1  mrg     {
   1804  1.1  mrg       unsigned HOST_WIDE_INT o0 = dividend.to_uhwi ();
   1805  1.1  mrg       unsigned HOST_WIDE_INT o1 = divisor.to_uhwi ();
   1806  1.1  mrg       unsigned int quotient_len = 1;
   1807  1.1  mrg 
   1808  1.1  mrg       if (quotient)
   1809  1.1  mrg 	{
   1810  1.1  mrg 	  quotient[0] = o0 / o1;
   1811  1.3  mrg 	  quotient_len = canonize_uhwi (quotient, dividend_prec);
   1812  1.1  mrg 	}
   1813  1.1  mrg       if (remainder)
   1814  1.1  mrg 	{
   1815  1.1  mrg 	  remainder[0] = o0 % o1;
   1816  1.3  mrg 	  *remainder_len = canonize_uhwi (remainder, dividend_prec);
   1817  1.1  mrg 	}
   1818  1.1  mrg       return quotient_len;
   1819  1.1  mrg     }
   1820  1.1  mrg 
   1821  1.1  mrg   /* Make the divisor and dividend positive and remember what we
   1822  1.1  mrg      did.  */
   1823  1.1  mrg   if (sgn == SIGNED)
   1824  1.1  mrg     {
   1825  1.1  mrg       if (wi::neg_p (dividend))
   1826  1.1  mrg 	{
   1827  1.1  mrg 	  neg_dividend = -dividend;
   1828  1.1  mrg 	  dividend = neg_dividend;
   1829  1.1  mrg 	  dividend_neg = true;
   1830  1.1  mrg 	}
   1831  1.1  mrg       if (wi::neg_p (divisor))
   1832  1.1  mrg 	{
   1833  1.1  mrg 	  neg_divisor = -divisor;
   1834  1.1  mrg 	  divisor = neg_divisor;
   1835  1.1  mrg 	  divisor_neg = true;
   1836  1.1  mrg 	}
   1837  1.1  mrg     }
   1838  1.1  mrg 
   1839  1.1  mrg   wi_unpack (b_dividend, dividend.get_val (), dividend.get_len (),
   1840  1.1  mrg 	     dividend_blocks_needed, dividend_prec, sgn);
   1841  1.1  mrg   wi_unpack (b_divisor, divisor.get_val (), divisor.get_len (),
   1842  1.1  mrg 	     divisor_blocks_needed, divisor_prec, sgn);
   1843  1.1  mrg 
   1844  1.1  mrg   m = dividend_blocks_needed;
   1845  1.1  mrg   b_dividend[m] = 0;
   1846  1.1  mrg   while (m > 1 && b_dividend[m - 1] == 0)
   1847  1.1  mrg     m--;
   1848  1.1  mrg 
   1849  1.1  mrg   n = divisor_blocks_needed;
   1850  1.1  mrg   while (n > 1 && b_divisor[n - 1] == 0)
   1851  1.1  mrg     n--;
   1852  1.1  mrg 
   1853  1.1  mrg   memset (b_quotient, 0, sizeof (b_quotient));
   1854  1.1  mrg 
   1855  1.1  mrg   divmod_internal_2 (b_quotient, b_remainder, b_dividend, b_divisor, m, n);
   1856  1.1  mrg 
   1857  1.1  mrg   unsigned int quotient_len = 0;
   1858  1.1  mrg   if (quotient)
   1859  1.1  mrg     {
   1860  1.1  mrg       quotient_len = wi_pack (quotient, b_quotient, m, dividend_prec);
   1861  1.1  mrg       /* The quotient is neg if exactly one of the divisor or dividend is
   1862  1.1  mrg 	 neg.  */
   1863  1.1  mrg       if (dividend_neg != divisor_neg)
   1864  1.1  mrg 	quotient_len = wi::sub_large (quotient, zeros, 1, quotient,
   1865  1.1  mrg 				      quotient_len, dividend_prec,
   1866  1.1  mrg 				      UNSIGNED, 0);
   1867  1.1  mrg     }
   1868  1.1  mrg 
   1869  1.1  mrg   if (remainder)
   1870  1.1  mrg     {
   1871  1.1  mrg       *remainder_len = wi_pack (remainder, b_remainder, n, dividend_prec);
   1872  1.1  mrg       /* The remainder is always the same sign as the dividend.  */
   1873  1.1  mrg       if (dividend_neg)
   1874  1.1  mrg 	*remainder_len = wi::sub_large (remainder, zeros, 1, remainder,
   1875  1.1  mrg 					*remainder_len, dividend_prec,
   1876  1.1  mrg 					UNSIGNED, 0);
   1877  1.1  mrg     }
   1878  1.1  mrg 
   1879  1.1  mrg   return quotient_len;
   1880  1.1  mrg }
   1881  1.1  mrg 
   1882  1.1  mrg /*
   1883  1.1  mrg  * Shifting, rotating and extraction.
   1884  1.1  mrg  */
   1885  1.1  mrg 
   1886  1.1  mrg /* Left shift XVAL by SHIFT and store the result in VAL.  Return the
   1887  1.1  mrg    number of blocks in VAL.  Both XVAL and VAL have PRECISION bits.  */
   1888  1.1  mrg unsigned int
   1889  1.1  mrg wi::lshift_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
   1890  1.1  mrg 		  unsigned int xlen, unsigned int precision,
   1891  1.1  mrg 		  unsigned int shift)
   1892  1.1  mrg {
   1893  1.1  mrg   /* Split the shift into a whole-block shift and a subblock shift.  */
   1894  1.1  mrg   unsigned int skip = shift / HOST_BITS_PER_WIDE_INT;
   1895  1.1  mrg   unsigned int small_shift = shift % HOST_BITS_PER_WIDE_INT;
   1896  1.1  mrg 
   1897  1.1  mrg   /* The whole-block shift fills with zeros.  */
   1898  1.1  mrg   unsigned int len = BLOCKS_NEEDED (precision);
   1899  1.1  mrg   for (unsigned int i = 0; i < skip; ++i)
   1900  1.1  mrg     val[i] = 0;
   1901  1.1  mrg 
   1902  1.1  mrg   /* It's easier to handle the simple block case specially.  */
   1903  1.1  mrg   if (small_shift == 0)
   1904  1.1  mrg     for (unsigned int i = skip; i < len; ++i)
   1905  1.1  mrg       val[i] = safe_uhwi (xval, xlen, i - skip);
   1906  1.1  mrg   else
   1907  1.1  mrg     {
   1908  1.1  mrg       /* The first unfilled output block is a left shift of the first
   1909  1.1  mrg 	 block in XVAL.  The other output blocks contain bits from two
   1910  1.1  mrg 	 consecutive input blocks.  */
   1911  1.1  mrg       unsigned HOST_WIDE_INT carry = 0;
   1912  1.1  mrg       for (unsigned int i = skip; i < len; ++i)
   1913  1.1  mrg 	{
   1914  1.1  mrg 	  unsigned HOST_WIDE_INT x = safe_uhwi (xval, xlen, i - skip);
   1915  1.1  mrg 	  val[i] = (x << small_shift) | carry;
   1916  1.1  mrg 	  carry = x >> (-small_shift % HOST_BITS_PER_WIDE_INT);
   1917  1.1  mrg 	}
   1918  1.1  mrg     }
   1919  1.1  mrg   return canonize (val, len, precision);
   1920  1.1  mrg }
   1921  1.1  mrg 
   1922  1.1  mrg /* Right shift XVAL by SHIFT and store the result in VAL.  Return the
   1923  1.1  mrg    number of blocks in VAL.  The input has XPRECISION bits and the
   1924  1.1  mrg    output has XPRECISION - SHIFT bits.  */
   1925  1.1  mrg static unsigned int
   1926  1.1  mrg rshift_large_common (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
   1927  1.1  mrg 		     unsigned int xlen, unsigned int xprecision,
   1928  1.1  mrg 		     unsigned int shift)
   1929  1.1  mrg {
   1930  1.1  mrg   /* Split the shift into a whole-block shift and a subblock shift.  */
   1931  1.1  mrg   unsigned int skip = shift / HOST_BITS_PER_WIDE_INT;
   1932  1.1  mrg   unsigned int small_shift = shift % HOST_BITS_PER_WIDE_INT;
   1933  1.1  mrg 
   1934  1.1  mrg   /* Work out how many blocks are needed to store the significant bits
   1935  1.1  mrg      (excluding the upper zeros or signs).  */
   1936  1.1  mrg   unsigned int len = BLOCKS_NEEDED (xprecision - shift);
   1937  1.1  mrg 
   1938  1.1  mrg   /* It's easier to handle the simple block case specially.  */
   1939  1.1  mrg   if (small_shift == 0)
   1940  1.1  mrg     for (unsigned int i = 0; i < len; ++i)
   1941  1.1  mrg       val[i] = safe_uhwi (xval, xlen, i + skip);
   1942  1.1  mrg   else
   1943  1.1  mrg     {
   1944  1.1  mrg       /* Each output block but the last is a combination of two input blocks.
   1945  1.1  mrg 	 The last block is a right shift of the last block in XVAL.  */
   1946  1.1  mrg       unsigned HOST_WIDE_INT curr = safe_uhwi (xval, xlen, skip);
   1947  1.1  mrg       for (unsigned int i = 0; i < len; ++i)
   1948  1.1  mrg 	{
   1949  1.1  mrg 	  val[i] = curr >> small_shift;
   1950  1.1  mrg 	  curr = safe_uhwi (xval, xlen, i + skip + 1);
   1951  1.1  mrg 	  val[i] |= curr << (-small_shift % HOST_BITS_PER_WIDE_INT);
   1952  1.1  mrg 	}
   1953  1.1  mrg     }
   1954  1.1  mrg   return len;
   1955  1.1  mrg }
   1956  1.1  mrg 
   1957  1.1  mrg /* Logically right shift XVAL by SHIFT and store the result in VAL.
   1958  1.1  mrg    Return the number of blocks in VAL.  XVAL has XPRECISION bits and
   1959  1.1  mrg    VAL has PRECISION bits.  */
   1960  1.1  mrg unsigned int
   1961  1.1  mrg wi::lrshift_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
   1962  1.1  mrg 		   unsigned int xlen, unsigned int xprecision,
   1963  1.1  mrg 		   unsigned int precision, unsigned int shift)
   1964  1.1  mrg {
   1965  1.1  mrg   unsigned int len = rshift_large_common (val, xval, xlen, xprecision, shift);
   1966  1.1  mrg 
   1967  1.1  mrg   /* The value we just created has precision XPRECISION - SHIFT.
   1968  1.1  mrg      Zero-extend it to wider precisions.  */
   1969  1.1  mrg   if (precision > xprecision - shift)
   1970  1.1  mrg     {
   1971  1.1  mrg       unsigned int small_prec = (xprecision - shift) % HOST_BITS_PER_WIDE_INT;
   1972  1.1  mrg       if (small_prec)
   1973  1.1  mrg 	val[len - 1] = zext_hwi (val[len - 1], small_prec);
   1974  1.1  mrg       else if (val[len - 1] < 0)
   1975  1.1  mrg 	{
   1976  1.1  mrg 	  /* Add a new block with a zero. */
   1977  1.1  mrg 	  val[len++] = 0;
   1978  1.1  mrg 	  return len;
   1979  1.1  mrg 	}
   1980  1.1  mrg     }
   1981  1.1  mrg   return canonize (val, len, precision);
   1982  1.1  mrg }
   1983  1.1  mrg 
   1984  1.1  mrg /* Arithmetically right shift XVAL by SHIFT and store the result in VAL.
   1985  1.1  mrg    Return the number of blocks in VAL.  XVAL has XPRECISION bits and
   1986  1.1  mrg    VAL has PRECISION bits.  */
   1987  1.1  mrg unsigned int
   1988  1.1  mrg wi::arshift_large (HOST_WIDE_INT *val, const HOST_WIDE_INT *xval,
   1989  1.1  mrg 		   unsigned int xlen, unsigned int xprecision,
   1990  1.1  mrg 		   unsigned int precision, unsigned int shift)
   1991  1.1  mrg {
   1992  1.1  mrg   unsigned int len = rshift_large_common (val, xval, xlen, xprecision, shift);
   1993  1.1  mrg 
   1994  1.1  mrg   /* The value we just created has precision XPRECISION - SHIFT.
   1995  1.1  mrg      Sign-extend it to wider types.  */
   1996  1.1  mrg   if (precision > xprecision - shift)
   1997  1.1  mrg     {
   1998  1.1  mrg       unsigned int small_prec = (xprecision - shift) % HOST_BITS_PER_WIDE_INT;
   1999  1.1  mrg       if (small_prec)
   2000  1.1  mrg 	val[len - 1] = sext_hwi (val[len - 1], small_prec);
   2001  1.1  mrg     }
   2002  1.1  mrg   return canonize (val, len, precision);
   2003  1.1  mrg }
   2004  1.1  mrg 
   2005  1.1  mrg /* Return the number of leading (upper) zeros in X.  */
   2006  1.1  mrg int
   2007  1.1  mrg wi::clz (const wide_int_ref &x)
   2008  1.1  mrg {
   2009  1.1  mrg   /* Calculate how many bits there above the highest represented block.  */
   2010  1.1  mrg   int count = x.precision - x.len * HOST_BITS_PER_WIDE_INT;
   2011  1.1  mrg 
   2012  1.1  mrg   unsigned HOST_WIDE_INT high = x.uhigh ();
   2013  1.1  mrg   if (count < 0)
   2014  1.1  mrg     /* The upper -COUNT bits of HIGH are not part of the value.
   2015  1.1  mrg        Clear them out.  */
   2016  1.1  mrg     high = (high << -count) >> -count;
   2017  1.1  mrg   else if (x.sign_mask () < 0)
   2018  1.1  mrg     /* The upper bit is set, so there are no leading zeros.  */
   2019  1.1  mrg     return 0;
   2020  1.1  mrg 
   2021  1.1  mrg   /* We don't need to look below HIGH.  Either HIGH is nonzero,
   2022  1.1  mrg      or the top bit of the block below is nonzero; clz_hwi is
   2023  1.1  mrg      HOST_BITS_PER_WIDE_INT in the latter case.  */
   2024  1.1  mrg   return count + clz_hwi (high);
   2025  1.1  mrg }
   2026  1.1  mrg 
   2027  1.1  mrg /* Return the number of redundant sign bits in X.  (That is, the number
   2028  1.1  mrg    of bits immediately below the sign bit that have the same value as
   2029  1.1  mrg    the sign bit.)  */
   2030  1.1  mrg int
   2031  1.1  mrg wi::clrsb (const wide_int_ref &x)
   2032  1.1  mrg {
   2033  1.1  mrg   /* Calculate how many bits there above the highest represented block.  */
   2034  1.1  mrg   int count = x.precision - x.len * HOST_BITS_PER_WIDE_INT;
   2035  1.1  mrg 
   2036  1.1  mrg   unsigned HOST_WIDE_INT high = x.uhigh ();
   2037  1.1  mrg   unsigned HOST_WIDE_INT mask = -1;
   2038  1.1  mrg   if (count < 0)
   2039  1.1  mrg     {
   2040  1.1  mrg       /* The upper -COUNT bits of HIGH are not part of the value.
   2041  1.1  mrg 	 Clear them from both MASK and HIGH.  */
   2042  1.1  mrg       mask >>= -count;
   2043  1.1  mrg       high &= mask;
   2044  1.1  mrg     }
   2045  1.1  mrg 
   2046  1.1  mrg   /* If the top bit is 1, count the number of leading 1s.  If the top
   2047  1.1  mrg      bit is zero, count the number of leading zeros.  */
   2048  1.1  mrg   if (high > mask / 2)
   2049  1.1  mrg     high ^= mask;
   2050  1.1  mrg 
   2051  1.1  mrg   /* There are no sign bits below the top block, so we don't need to look
   2052  1.1  mrg      beyond HIGH.  Note that clz_hwi is HOST_BITS_PER_WIDE_INT when
   2053  1.1  mrg      HIGH is 0.  */
   2054  1.1  mrg   return count + clz_hwi (high) - 1;
   2055  1.1  mrg }
   2056  1.1  mrg 
   2057  1.1  mrg /* Return the number of trailing (lower) zeros in X.  */
   2058  1.1  mrg int
   2059  1.1  mrg wi::ctz (const wide_int_ref &x)
   2060  1.1  mrg {
   2061  1.1  mrg   if (x.len == 1 && x.ulow () == 0)
   2062  1.1  mrg     return x.precision;
   2063  1.1  mrg 
   2064  1.1  mrg   /* Having dealt with the zero case, there must be a block with a
   2065  1.1  mrg      nonzero bit.  We don't care about the bits above the first 1.  */
   2066  1.1  mrg   unsigned int i = 0;
   2067  1.1  mrg   while (x.val[i] == 0)
   2068  1.1  mrg     ++i;
   2069  1.1  mrg   return i * HOST_BITS_PER_WIDE_INT + ctz_hwi (x.val[i]);
   2070  1.1  mrg }
   2071  1.1  mrg 
   2072  1.1  mrg /* If X is an exact power of 2, return the base-2 logarithm, otherwise
   2073  1.1  mrg    return -1.  */
   2074  1.1  mrg int
   2075  1.1  mrg wi::exact_log2 (const wide_int_ref &x)
   2076  1.1  mrg {
   2077  1.1  mrg   /* Reject cases where there are implicit -1 blocks above HIGH.  */
   2078  1.1  mrg   if (x.len * HOST_BITS_PER_WIDE_INT < x.precision && x.sign_mask () < 0)
   2079  1.1  mrg     return -1;
   2080  1.1  mrg 
   2081  1.1  mrg   /* Set CRUX to the index of the entry that should be nonzero.
   2082  1.1  mrg      If the top block is zero then the next lowest block (if any)
   2083  1.1  mrg      must have the high bit set.  */
   2084  1.1  mrg   unsigned int crux = x.len - 1;
   2085  1.1  mrg   if (crux > 0 && x.val[crux] == 0)
   2086  1.1  mrg     crux -= 1;
   2087  1.1  mrg 
   2088  1.1  mrg   /* Check that all lower blocks are zero.  */
   2089  1.1  mrg   for (unsigned int i = 0; i < crux; ++i)
   2090  1.1  mrg     if (x.val[i] != 0)
   2091  1.1  mrg       return -1;
   2092  1.1  mrg 
   2093  1.1  mrg   /* Get a zero-extended form of block CRUX.  */
   2094  1.1  mrg   unsigned HOST_WIDE_INT hwi = x.val[crux];
   2095  1.1  mrg   if ((crux + 1) * HOST_BITS_PER_WIDE_INT > x.precision)
   2096  1.1  mrg     hwi = zext_hwi (hwi, x.precision % HOST_BITS_PER_WIDE_INT);
   2097  1.1  mrg 
   2098  1.1  mrg   /* Now it's down to whether HWI is a power of 2.  */
   2099  1.1  mrg   int res = ::exact_log2 (hwi);
   2100  1.1  mrg   if (res >= 0)
   2101  1.1  mrg     res += crux * HOST_BITS_PER_WIDE_INT;
   2102  1.1  mrg   return res;
   2103  1.1  mrg }
   2104  1.1  mrg 
   2105  1.1  mrg /* Return the base-2 logarithm of X, rounding down.  Return -1 if X is 0.  */
   2106  1.1  mrg int
   2107  1.1  mrg wi::floor_log2 (const wide_int_ref &x)
   2108  1.1  mrg {
   2109  1.1  mrg   return x.precision - 1 - clz (x);
   2110  1.1  mrg }
   2111  1.1  mrg 
   2112  1.1  mrg /* Return the index of the first (lowest) set bit in X, counting from 1.
   2113  1.1  mrg    Return 0 if X is 0.  */
   2114  1.1  mrg int
   2115  1.1  mrg wi::ffs (const wide_int_ref &x)
   2116  1.1  mrg {
   2117  1.1  mrg   return eq_p (x, 0) ? 0 : ctz (x) + 1;
   2118  1.1  mrg }
   2119  1.1  mrg 
   2120  1.1  mrg /* Return true if sign-extending X to have precision PRECISION would give
   2121  1.1  mrg    the minimum signed value at that precision.  */
   2122  1.1  mrg bool
   2123  1.1  mrg wi::only_sign_bit_p (const wide_int_ref &x, unsigned int precision)
   2124  1.1  mrg {
   2125  1.1  mrg   return ctz (x) + 1 == int (precision);
   2126  1.1  mrg }
   2127  1.1  mrg 
   2128  1.1  mrg /* Return true if X represents the minimum signed value.  */
   2129  1.1  mrg bool
   2130  1.1  mrg wi::only_sign_bit_p (const wide_int_ref &x)
   2131  1.1  mrg {
   2132  1.1  mrg   return only_sign_bit_p (x, x.precision);
   2133  1.1  mrg }
   2134  1.1  mrg 
   2135  1.4  mrg /* Return VAL if VAL has no bits set outside MASK.  Otherwise round VAL
   2136  1.4  mrg    down to the previous value that has no bits set outside MASK.
   2137  1.4  mrg    This rounding wraps for signed values if VAL is negative and
   2138  1.4  mrg    the top bit of MASK is clear.
   2139  1.4  mrg 
   2140  1.4  mrg    For example, round_down_for_mask (6, 0xf1) would give 1 and
   2141  1.4  mrg    round_down_for_mask (24, 0xf1) would give 17.  */
   2142  1.4  mrg 
   2143  1.4  mrg wide_int
   2144  1.4  mrg wi::round_down_for_mask (const wide_int &val, const wide_int &mask)
   2145  1.4  mrg {
   2146  1.4  mrg   /* Get the bits in VAL that are outside the mask.  */
   2147  1.4  mrg   wide_int extra_bits = wi::bit_and_not (val, mask);
   2148  1.4  mrg   if (extra_bits == 0)
   2149  1.4  mrg     return val;
   2150  1.4  mrg 
   2151  1.4  mrg   /* Get a mask that includes the top bit in EXTRA_BITS and is all 1s
   2152  1.4  mrg      below that bit.  */
   2153  1.4  mrg   unsigned int precision = val.get_precision ();
   2154  1.4  mrg   wide_int lower_mask = wi::mask (precision - wi::clz (extra_bits),
   2155  1.4  mrg 				  false, precision);
   2156  1.4  mrg 
   2157  1.4  mrg   /* Clear the bits that aren't in MASK, but ensure that all bits
   2158  1.4  mrg      in MASK below the top cleared bit are set.  */
   2159  1.4  mrg   return (val & mask) | (mask & lower_mask);
   2160  1.4  mrg }
   2161  1.4  mrg 
   2162  1.4  mrg /* Return VAL if VAL has no bits set outside MASK.  Otherwise round VAL
   2163  1.4  mrg    up to the next value that has no bits set outside MASK.  The rounding
   2164  1.4  mrg    wraps if there are no suitable values greater than VAL.
   2165  1.4  mrg 
   2166  1.4  mrg    For example, round_up_for_mask (6, 0xf1) would give 16 and
   2167  1.4  mrg    round_up_for_mask (24, 0xf1) would give 32.  */
   2168  1.4  mrg 
   2169  1.4  mrg wide_int
   2170  1.4  mrg wi::round_up_for_mask (const wide_int &val, const wide_int &mask)
   2171  1.4  mrg {
   2172  1.4  mrg   /* Get the bits in VAL that are outside the mask.  */
   2173  1.4  mrg   wide_int extra_bits = wi::bit_and_not (val, mask);
   2174  1.4  mrg   if (extra_bits == 0)
   2175  1.4  mrg     return val;
   2176  1.4  mrg 
   2177  1.4  mrg   /* Get a mask that is all 1s above the top bit in EXTRA_BITS.  */
   2178  1.4  mrg   unsigned int precision = val.get_precision ();
   2179  1.4  mrg   wide_int upper_mask = wi::mask (precision - wi::clz (extra_bits),
   2180  1.4  mrg 				  true, precision);
   2181  1.4  mrg 
   2182  1.4  mrg   /* Get the bits of the mask that are above the top bit in EXTRA_BITS.  */
   2183  1.4  mrg   upper_mask &= mask;
   2184  1.4  mrg 
   2185  1.4  mrg   /* Conceptually we need to:
   2186  1.4  mrg 
   2187  1.4  mrg      - clear bits of VAL outside UPPER_MASK
   2188  1.4  mrg      - add the lowest bit in UPPER_MASK to VAL (or add 0 if UPPER_MASK is 0)
   2189  1.4  mrg      - propagate the carry through the bits of VAL in UPPER_MASK
   2190  1.4  mrg 
   2191  1.4  mrg      If (~VAL & UPPER_MASK) is nonzero, the carry eventually
   2192  1.4  mrg      reaches that bit and the process leaves all lower bits clear.
   2193  1.4  mrg      If (~VAL & UPPER_MASK) is zero then the result is also zero.  */
   2194  1.4  mrg   wide_int tmp = wi::bit_and_not (upper_mask, val);
   2195  1.4  mrg 
   2196  1.4  mrg   return (val | tmp) & -tmp;
   2197  1.4  mrg }
   2198  1.4  mrg 
   2199  1.1  mrg /*
   2200  1.1  mrg  * Private utilities.
   2201  1.1  mrg  */
   2202  1.1  mrg 
   2203  1.1  mrg void gt_ggc_mx (widest_int *) { }
   2204  1.1  mrg void gt_pch_nx (widest_int *, void (*) (void *, void *), void *) { }
   2205  1.1  mrg void gt_pch_nx (widest_int *) { }
   2206  1.1  mrg 
   2207  1.1  mrg template void wide_int::dump () const;
   2208  1.1  mrg template void generic_wide_int <wide_int_ref_storage <false> >::dump () const;
   2209  1.1  mrg template void generic_wide_int <wide_int_ref_storage <true> >::dump () const;
   2210  1.1  mrg template void offset_int::dump () const;
   2211  1.1  mrg template void widest_int::dump () const;
   2212  1.3  mrg 
   2213  1.4  mrg /* We could add all the above ::dump variants here, but wide_int and
   2214  1.4  mrg    widest_int should handle the common cases.  Besides, you can always
   2215  1.4  mrg    call the dump method directly.  */
   2216  1.4  mrg 
   2217  1.4  mrg DEBUG_FUNCTION void
   2218  1.4  mrg debug (const wide_int &ref)
   2219  1.4  mrg {
   2220  1.4  mrg   ref.dump ();
   2221  1.4  mrg }
   2222  1.4  mrg 
   2223  1.4  mrg DEBUG_FUNCTION void
   2224  1.4  mrg debug (const wide_int *ptr)
   2225  1.4  mrg {
   2226  1.4  mrg   if (ptr)
   2227  1.4  mrg     debug (*ptr);
   2228  1.4  mrg   else
   2229  1.4  mrg     fprintf (stderr, "<nil>\n");
   2230  1.4  mrg }
   2231  1.4  mrg 
   2232  1.4  mrg DEBUG_FUNCTION void
   2233  1.4  mrg debug (const widest_int &ref)
   2234  1.4  mrg {
   2235  1.4  mrg   ref.dump ();
   2236  1.4  mrg }
   2237  1.4  mrg 
   2238  1.4  mrg DEBUG_FUNCTION void
   2239  1.4  mrg debug (const widest_int *ptr)
   2240  1.4  mrg {
   2241  1.4  mrg   if (ptr)
   2242  1.4  mrg     debug (*ptr);
   2243  1.4  mrg   else
   2244  1.4  mrg     fprintf (stderr, "<nil>\n");
   2245  1.4  mrg }
   2246  1.3  mrg 
   2247  1.3  mrg #if CHECKING_P
   2248  1.3  mrg 
   2249  1.3  mrg namespace selftest {
   2250  1.3  mrg 
   2251  1.3  mrg /* Selftests for wide ints.  We run these multiple times, once per type.  */
   2252  1.3  mrg 
   2253  1.3  mrg /* Helper function for building a test value.  */
   2254  1.3  mrg 
   2255  1.3  mrg template <class VALUE_TYPE>
   2256  1.3  mrg static VALUE_TYPE
   2257  1.3  mrg from_int (int i);
   2258  1.3  mrg 
   2259  1.3  mrg /* Specializations of the fixture for each wide-int type.  */
   2260  1.3  mrg 
   2261  1.3  mrg /* Specialization for VALUE_TYPE == wide_int.  */
   2262  1.3  mrg 
   2263  1.3  mrg template <>
   2264  1.3  mrg wide_int
   2265  1.3  mrg from_int (int i)
   2266  1.3  mrg {
   2267  1.3  mrg   return wi::shwi (i, 32);
   2268  1.3  mrg }
   2269  1.3  mrg 
   2270  1.3  mrg /* Specialization for VALUE_TYPE == offset_int.  */
   2271  1.3  mrg 
   2272  1.3  mrg template <>
   2273  1.3  mrg offset_int
   2274  1.3  mrg from_int (int i)
   2275  1.3  mrg {
   2276  1.3  mrg   return offset_int (i);
   2277  1.3  mrg }
   2278  1.3  mrg 
   2279  1.3  mrg /* Specialization for VALUE_TYPE == widest_int.  */
   2280  1.3  mrg 
   2281  1.3  mrg template <>
   2282  1.3  mrg widest_int
   2283  1.3  mrg from_int (int i)
   2284  1.3  mrg {
   2285  1.3  mrg   return widest_int (i);
   2286  1.3  mrg }
   2287  1.3  mrg 
   2288  1.3  mrg /* Verify that print_dec (WI, ..., SGN) gives the expected string
   2289  1.3  mrg    representation (using base 10).  */
   2290  1.3  mrg 
   2291  1.3  mrg static void
   2292  1.3  mrg assert_deceq (const char *expected, const wide_int_ref &wi, signop sgn)
   2293  1.3  mrg {
   2294  1.3  mrg   char buf[WIDE_INT_PRINT_BUFFER_SIZE];
   2295  1.3  mrg   print_dec (wi, buf, sgn);
   2296  1.3  mrg   ASSERT_STREQ (expected, buf);
   2297  1.3  mrg }
   2298  1.3  mrg 
   2299  1.3  mrg /* Likewise for base 16.  */
   2300  1.3  mrg 
   2301  1.3  mrg static void
   2302  1.3  mrg assert_hexeq (const char *expected, const wide_int_ref &wi)
   2303  1.3  mrg {
   2304  1.3  mrg   char buf[WIDE_INT_PRINT_BUFFER_SIZE];
   2305  1.3  mrg   print_hex (wi, buf);
   2306  1.3  mrg   ASSERT_STREQ (expected, buf);
   2307  1.3  mrg }
   2308  1.3  mrg 
   2309  1.3  mrg /* Test cases.  */
   2310  1.3  mrg 
   2311  1.3  mrg /* Verify that print_dec and print_hex work for VALUE_TYPE.  */
   2312  1.3  mrg 
   2313  1.3  mrg template <class VALUE_TYPE>
   2314  1.3  mrg static void
   2315  1.3  mrg test_printing ()
   2316  1.3  mrg {
   2317  1.3  mrg   VALUE_TYPE a = from_int<VALUE_TYPE> (42);
   2318  1.3  mrg   assert_deceq ("42", a, SIGNED);
   2319  1.3  mrg   assert_hexeq ("0x2a", a);
   2320  1.4  mrg   assert_hexeq ("0x1fffffffffffffffff", wi::shwi (-1, 69));
   2321  1.4  mrg   assert_hexeq ("0xffffffffffffffff", wi::mask (64, false, 69));
   2322  1.4  mrg   assert_hexeq ("0xffffffffffffffff", wi::mask <widest_int> (64, false));
   2323  1.4  mrg   if (WIDE_INT_MAX_PRECISION > 128)
   2324  1.4  mrg     {
   2325  1.4  mrg       assert_hexeq ("0x20000000000000000fffffffffffffffe",
   2326  1.4  mrg 		    wi::lshift (1, 129) + wi::lshift (1, 64) - 2);
   2327  1.4  mrg       assert_hexeq ("0x200000000000004000123456789abcdef",
   2328  1.4  mrg 		    wi::lshift (1, 129) + wi::lshift (1, 74)
   2329  1.4  mrg 		    + wi::lshift (0x1234567, 32) + 0x89abcdef);
   2330  1.4  mrg     }
   2331  1.3  mrg }
   2332  1.3  mrg 
   2333  1.3  mrg /* Verify that various operations work correctly for VALUE_TYPE,
   2334  1.3  mrg    unary and binary, using both function syntax, and
   2335  1.3  mrg    overloaded-operators.  */
   2336  1.3  mrg 
   2337  1.3  mrg template <class VALUE_TYPE>
   2338  1.3  mrg static void
   2339  1.3  mrg test_ops ()
   2340  1.3  mrg {
   2341  1.3  mrg   VALUE_TYPE a = from_int<VALUE_TYPE> (7);
   2342  1.3  mrg   VALUE_TYPE b = from_int<VALUE_TYPE> (3);
   2343  1.3  mrg 
   2344  1.3  mrg   /* Using functions.  */
   2345  1.3  mrg   assert_deceq ("-7", wi::neg (a), SIGNED);
   2346  1.3  mrg   assert_deceq ("10", wi::add (a, b), SIGNED);
   2347  1.3  mrg   assert_deceq ("4", wi::sub (a, b), SIGNED);
   2348  1.3  mrg   assert_deceq ("-4", wi::sub (b, a), SIGNED);
   2349  1.3  mrg   assert_deceq ("21", wi::mul (a, b), SIGNED);
   2350  1.3  mrg 
   2351  1.3  mrg   /* Using operators.  */
   2352  1.3  mrg   assert_deceq ("-7", -a, SIGNED);
   2353  1.3  mrg   assert_deceq ("10", a + b, SIGNED);
   2354  1.3  mrg   assert_deceq ("4", a - b, SIGNED);
   2355  1.3  mrg   assert_deceq ("-4", b - a, SIGNED);
   2356  1.3  mrg   assert_deceq ("21", a * b, SIGNED);
   2357  1.3  mrg }
   2358  1.3  mrg 
   2359  1.3  mrg /* Verify that various comparisons work correctly for VALUE_TYPE.  */
   2360  1.3  mrg 
   2361  1.3  mrg template <class VALUE_TYPE>
   2362  1.3  mrg static void
   2363  1.3  mrg test_comparisons ()
   2364  1.3  mrg {
   2365  1.3  mrg   VALUE_TYPE a = from_int<VALUE_TYPE> (7);
   2366  1.3  mrg   VALUE_TYPE b = from_int<VALUE_TYPE> (3);
   2367  1.3  mrg 
   2368  1.3  mrg   /* == */
   2369  1.3  mrg   ASSERT_TRUE (wi::eq_p (a, a));
   2370  1.3  mrg   ASSERT_FALSE (wi::eq_p (a, b));
   2371  1.3  mrg 
   2372  1.3  mrg   /* != */
   2373  1.3  mrg   ASSERT_TRUE (wi::ne_p (a, b));
   2374  1.3  mrg   ASSERT_FALSE (wi::ne_p (a, a));
   2375  1.3  mrg 
   2376  1.3  mrg   /* < */
   2377  1.3  mrg   ASSERT_FALSE (wi::lts_p (a, a));
   2378  1.3  mrg   ASSERT_FALSE (wi::lts_p (a, b));
   2379  1.3  mrg   ASSERT_TRUE (wi::lts_p (b, a));
   2380  1.3  mrg 
   2381  1.3  mrg   /* <= */
   2382  1.3  mrg   ASSERT_TRUE (wi::les_p (a, a));
   2383  1.3  mrg   ASSERT_FALSE (wi::les_p (a, b));
   2384  1.3  mrg   ASSERT_TRUE (wi::les_p (b, a));
   2385  1.3  mrg 
   2386  1.3  mrg   /* > */
   2387  1.3  mrg   ASSERT_FALSE (wi::gts_p (a, a));
   2388  1.3  mrg   ASSERT_TRUE (wi::gts_p (a, b));
   2389  1.3  mrg   ASSERT_FALSE (wi::gts_p (b, a));
   2390  1.3  mrg 
   2391  1.3  mrg   /* >= */
   2392  1.3  mrg   ASSERT_TRUE (wi::ges_p (a, a));
   2393  1.3  mrg   ASSERT_TRUE (wi::ges_p (a, b));
   2394  1.3  mrg   ASSERT_FALSE (wi::ges_p (b, a));
   2395  1.3  mrg 
   2396  1.3  mrg   /* comparison */
   2397  1.3  mrg   ASSERT_EQ (-1, wi::cmps (b, a));
   2398  1.3  mrg   ASSERT_EQ (0, wi::cmps (a, a));
   2399  1.3  mrg   ASSERT_EQ (1, wi::cmps (a, b));
   2400  1.3  mrg }
   2401  1.3  mrg 
   2402  1.3  mrg /* Run all of the selftests, using the given VALUE_TYPE.  */
   2403  1.3  mrg 
   2404  1.3  mrg template <class VALUE_TYPE>
   2405  1.3  mrg static void run_all_wide_int_tests ()
   2406  1.3  mrg {
   2407  1.3  mrg   test_printing <VALUE_TYPE> ();
   2408  1.3  mrg   test_ops <VALUE_TYPE> ();
   2409  1.3  mrg   test_comparisons <VALUE_TYPE> ();
   2410  1.3  mrg }
   2411  1.3  mrg 
   2412  1.4  mrg /* Test overflow conditions.  */
   2413  1.4  mrg 
   2414  1.4  mrg static void
   2415  1.4  mrg test_overflow ()
   2416  1.4  mrg {
   2417  1.4  mrg   static int precs[] = { 31, 32, 33, 63, 64, 65, 127, 128 };
   2418  1.4  mrg   static int offsets[] = { 16, 1, 0 };
   2419  1.4  mrg   for (unsigned int i = 0; i < ARRAY_SIZE (precs); ++i)
   2420  1.4  mrg     for (unsigned int j = 0; j < ARRAY_SIZE (offsets); ++j)
   2421  1.4  mrg       {
   2422  1.4  mrg 	int prec = precs[i];
   2423  1.4  mrg 	int offset = offsets[j];
   2424  1.4  mrg 	bool overflow;
   2425  1.4  mrg 	wide_int sum, diff;
   2426  1.4  mrg 
   2427  1.4  mrg 	sum = wi::add (wi::max_value (prec, UNSIGNED) - offset, 1,
   2428  1.4  mrg 		       UNSIGNED, &overflow);
   2429  1.4  mrg 	ASSERT_EQ (sum, -offset);
   2430  1.4  mrg 	ASSERT_EQ (overflow, offset == 0);
   2431  1.4  mrg 
   2432  1.4  mrg 	sum = wi::add (1, wi::max_value (prec, UNSIGNED) - offset,
   2433  1.4  mrg 		       UNSIGNED, &overflow);
   2434  1.4  mrg 	ASSERT_EQ (sum, -offset);
   2435  1.4  mrg 	ASSERT_EQ (overflow, offset == 0);
   2436  1.4  mrg 
   2437  1.4  mrg 	diff = wi::sub (wi::max_value (prec, UNSIGNED) - offset,
   2438  1.4  mrg 			wi::max_value (prec, UNSIGNED),
   2439  1.4  mrg 			UNSIGNED, &overflow);
   2440  1.4  mrg 	ASSERT_EQ (diff, -offset);
   2441  1.4  mrg 	ASSERT_EQ (overflow, offset != 0);
   2442  1.4  mrg 
   2443  1.4  mrg 	diff = wi::sub (wi::max_value (prec, UNSIGNED) - offset,
   2444  1.4  mrg 			wi::max_value (prec, UNSIGNED) - 1,
   2445  1.4  mrg 			UNSIGNED, &overflow);
   2446  1.4  mrg 	ASSERT_EQ (diff, 1 - offset);
   2447  1.4  mrg 	ASSERT_EQ (overflow, offset > 1);
   2448  1.4  mrg     }
   2449  1.4  mrg }
   2450  1.4  mrg 
   2451  1.4  mrg /* Test the round_{down,up}_for_mask functions.  */
   2452  1.4  mrg 
   2453  1.4  mrg static void
   2454  1.4  mrg test_round_for_mask ()
   2455  1.4  mrg {
   2456  1.4  mrg   unsigned int prec = 18;
   2457  1.4  mrg   ASSERT_EQ (17, wi::round_down_for_mask (wi::shwi (17, prec),
   2458  1.4  mrg 					  wi::shwi (0xf1, prec)));
   2459  1.4  mrg   ASSERT_EQ (17, wi::round_up_for_mask (wi::shwi (17, prec),
   2460  1.4  mrg 					wi::shwi (0xf1, prec)));
   2461  1.4  mrg 
   2462  1.4  mrg   ASSERT_EQ (1, wi::round_down_for_mask (wi::shwi (6, prec),
   2463  1.4  mrg 					 wi::shwi (0xf1, prec)));
   2464  1.4  mrg   ASSERT_EQ (16, wi::round_up_for_mask (wi::shwi (6, prec),
   2465  1.4  mrg 					wi::shwi (0xf1, prec)));
   2466  1.4  mrg 
   2467  1.4  mrg   ASSERT_EQ (17, wi::round_down_for_mask (wi::shwi (24, prec),
   2468  1.4  mrg 					  wi::shwi (0xf1, prec)));
   2469  1.4  mrg   ASSERT_EQ (32, wi::round_up_for_mask (wi::shwi (24, prec),
   2470  1.4  mrg 					wi::shwi (0xf1, prec)));
   2471  1.4  mrg 
   2472  1.4  mrg   ASSERT_EQ (0x011, wi::round_down_for_mask (wi::shwi (0x22, prec),
   2473  1.4  mrg 					     wi::shwi (0x111, prec)));
   2474  1.4  mrg   ASSERT_EQ (0x100, wi::round_up_for_mask (wi::shwi (0x22, prec),
   2475  1.4  mrg 					   wi::shwi (0x111, prec)));
   2476  1.4  mrg 
   2477  1.4  mrg   ASSERT_EQ (100, wi::round_down_for_mask (wi::shwi (101, prec),
   2478  1.4  mrg 					   wi::shwi (0xfc, prec)));
   2479  1.4  mrg   ASSERT_EQ (104, wi::round_up_for_mask (wi::shwi (101, prec),
   2480  1.4  mrg 					 wi::shwi (0xfc, prec)));
   2481  1.4  mrg 
   2482  1.4  mrg   ASSERT_EQ (0x2bc, wi::round_down_for_mask (wi::shwi (0x2c2, prec),
   2483  1.4  mrg 					     wi::shwi (0xabc, prec)));
   2484  1.4  mrg   ASSERT_EQ (0x800, wi::round_up_for_mask (wi::shwi (0x2c2, prec),
   2485  1.4  mrg 					   wi::shwi (0xabc, prec)));
   2486  1.4  mrg 
   2487  1.4  mrg   ASSERT_EQ (0xabc, wi::round_down_for_mask (wi::shwi (0xabd, prec),
   2488  1.4  mrg 					     wi::shwi (0xabc, prec)));
   2489  1.4  mrg   ASSERT_EQ (0, wi::round_up_for_mask (wi::shwi (0xabd, prec),
   2490  1.4  mrg 				       wi::shwi (0xabc, prec)));
   2491  1.4  mrg 
   2492  1.4  mrg   ASSERT_EQ (0xabc, wi::round_down_for_mask (wi::shwi (0x1000, prec),
   2493  1.4  mrg 					     wi::shwi (0xabc, prec)));
   2494  1.4  mrg   ASSERT_EQ (0, wi::round_up_for_mask (wi::shwi (0x1000, prec),
   2495  1.4  mrg 				       wi::shwi (0xabc, prec)));
   2496  1.4  mrg }
   2497  1.4  mrg 
   2498  1.3  mrg /* Run all of the selftests within this file, for all value types.  */
   2499  1.3  mrg 
   2500  1.3  mrg void
   2501  1.3  mrg wide_int_cc_tests ()
   2502  1.3  mrg {
   2503  1.4  mrg   run_all_wide_int_tests <wide_int> ();
   2504  1.4  mrg   run_all_wide_int_tests <offset_int> ();
   2505  1.4  mrg   run_all_wide_int_tests <widest_int> ();
   2506  1.4  mrg   test_overflow ();
   2507  1.4  mrg   test_round_for_mask ();
   2508  1.3  mrg }
   2509  1.3  mrg 
   2510  1.3  mrg } // namespace selftest
   2511  1.3  mrg #endif /* CHECKING_P */
   2512