428
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1 /* The "lrecord" structure (header of a compound lisp object).
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2 Copyright (C) 1993, 1994, 1995 Free Software Foundation, Inc.
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3 Copyright (C) 1996, 2001, 2002, 2004, 2005 Ben Wing.
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4
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5 This file is part of XEmacs.
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6
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7 XEmacs is free software; you can redistribute it and/or modify it
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8 under the terms of the GNU General Public License as published by the
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9 Free Software Foundation; either version 2, or (at your option) any
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10 later version.
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11
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12 XEmacs is distributed in the hope that it will be useful, but WITHOUT
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13 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
|
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15 for more details.
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16
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17 You should have received a copy of the GNU General Public License
|
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18 along with XEmacs; see the file COPYING. If not, write to
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19 the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
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20 Boston, MA 02111-1307, USA. */
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21
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22 /* Synched up with: Not in FSF. */
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23
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24 /* This file has been Mule-ized, Ben Wing, 10-13-04. */
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25
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440
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26 #ifndef INCLUDED_lrecord_h_
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27 #define INCLUDED_lrecord_h_
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28
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29 #ifdef NEW_GC
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30 /* The "lrecord" type of Lisp object is used for all object types
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31 other than a few simple ones (like char and int). This allows many
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32 types to be implemented but only a few bits required in a Lisp
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33 object for type information. (The tradeoff is that each object has
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34 its type marked in it, thereby increasing its size.) All lrecords
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35 begin with a `struct lrecord_header', which identifies the lisp
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36 object type, by providing an index into a table of `struct
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37 lrecord_implementation', which describes the behavior of the lisp
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38 object. It also contains some other data bits.
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39
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40 Creating a new lrecord type is fairly easy; just follow the
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41 lead of some existing type (e.g. hash tables). Note that you
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42 do not need to supply all the methods (see below); reasonable
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43 defaults are provided for many of them. Alternatively, if you're
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44 just looking for a way of encapsulating data (which possibly
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45 could contain Lisp_Objects in it), you may well be able to use
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46 the opaque type.
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47 */
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48 #else /* not NEW_GC */
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49 /* The "lrecord" type of Lisp object is used for all object types
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50 other than a few simple ones. This allows many types to be
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51 implemented but only a few bits required in a Lisp object for type
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52 information. (The tradeoff is that each object has its type marked
|
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53 in it, thereby increasing its size.) All lrecords begin with a
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54 `struct lrecord_header', which identifies the lisp object type, by
|
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55 providing an index into a table of `struct lrecord_implementation',
|
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56 which describes the behavior of the lisp object. It also contains
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57 some other data bits.
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58
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59 Lrecords are of two types: straight lrecords, and lcrecords.
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60 Straight lrecords are used for those types of objects that have
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61 their own allocation routines (typically allocated out of 2K chunks
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62 of memory called `frob blocks'). These objects have a `struct
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63 lrecord_header' at the top, containing only the bits needed to find
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64 the lrecord_implementation for the object. There are special
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65 routines in alloc.c to create an object of each such type.
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66
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67 Lcrecords are used for less common sorts of objects that don't do
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68 their own allocation. Each such object is malloc()ed individually,
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69 and the objects are chained together through a `next' pointer.
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70 Lcrecords have a `struct old_lcrecord_header' at the top, which
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71 contains a `struct lrecord_header' and a `next' pointer, and are
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72 allocated using old_alloc_lcrecord_type() or its variants.
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73
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74 Creating a new lcrecord type is fairly easy; just follow the
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75 lead of some existing type (e.g. hash tables). Note that you
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76 do not need to supply all the methods (see below); reasonable
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77 defaults are provided for many of them. Alternatively, if you're
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78 just looking for a way of encapsulating data (which possibly
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79 could contain Lisp_Objects in it), you may well be able to use
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80 the opaque type. --ben
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81 */
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82 #endif /* not NEW_GC */
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83
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84 #ifdef NEW_GC
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85 #define ALLOC_LCRECORD_TYPE alloc_lrecord_type
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86 #define COPY_SIZED_LCRECORD copy_sized_lrecord
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87 #define COPY_LCRECORD copy_lrecord
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88 #define LISPOBJ_STORAGE_SIZE(ptr, size, stats) \
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89 mc_alloced_storage_size (size, stats)
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90 #define ZERO_LCRECORD zero_lrecord
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91 #define LCRECORD_HEADER lrecord_header
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92 #define BASIC_ALLOC_LCRECORD alloc_lrecord
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93 #define FREE_LCRECORD free_lrecord
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94 #else /* not NEW_GC */
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95 #define ALLOC_LCRECORD_TYPE old_alloc_lcrecord_type
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96 #define COPY_SIZED_LCRECORD old_copy_sized_lcrecord
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97 #define COPY_LCRECORD old_copy_lcrecord
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98 #define LISPOBJ_STORAGE_SIZE malloced_storage_size
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99 #define ZERO_LCRECORD old_zero_lcrecord
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100 #define LCRECORD_HEADER old_lcrecord_header
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101 #define BASIC_ALLOC_LCRECORD old_basic_alloc_lcrecord
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102 #define FREE_LCRECORD old_free_lcrecord
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103 #endif /* not NEW_GC */
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104
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1743
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105 BEGIN_C_DECLS
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106
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107 struct lrecord_header
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108 {
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109 /* Index into lrecord_implementations_table[]. Objects that have been
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110 explicitly freed using e.g. free_cons() have lrecord_type_free in this
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111 field. */
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112 unsigned int type :8;
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113
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114 #ifdef NEW_GC
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115 /* 1 if the object is readonly from lisp */
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116 unsigned int lisp_readonly :1;
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117
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118 /* The `free' field is a flag that indicates whether this lrecord
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119 is currently free or not. This is used for error checking and
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120 debugging. */
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121 unsigned int free :1;
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122
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123 /* The `uid' field is just for debugging/printing convenience. Having
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124 this slot doesn't hurt us spacewise, since the bits are unused
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125 anyway. (The bits are used for strings, though.) */
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126 unsigned int uid :22;
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127
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128 #else /* not NEW_GC */
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129 /* If `mark' is 0 after the GC mark phase, the object will be freed
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130 during the GC sweep phase. There are 2 ways that `mark' can be 1:
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131 - by being referenced from other objects during the GC mark phase
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132 - because it is permanently on, for c_readonly objects */
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133 unsigned int mark :1;
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134
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135 /* 1 if the object resides in logically read-only space, and does not
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136 reference other non-c_readonly objects.
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137 Invariant: if (c_readonly == 1), then (mark == 1 && lisp_readonly == 1) */
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138 unsigned int c_readonly :1;
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139
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428
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140 /* 1 if the object is readonly from lisp */
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442
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141 unsigned int lisp_readonly :1;
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142
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143 /* The `uid' field is just for debugging/printing convenience. Having
|
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144 this slot doesn't hurt us spacewise, since the bits are unused
|
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145 anyway. (The bits are used for strings, though.) */
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146 unsigned int uid :21;
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147
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148 #endif /* not NEW_GC */
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428
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149 };
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150
|
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151 struct lrecord_implementation;
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152 int lrecord_type_index (const struct lrecord_implementation *implementation);
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153 extern int lrecord_uid_counter;
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154
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155 #ifdef NEW_GC
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156 #define set_lheader_implementation(header,imp) do { \
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157 struct lrecord_header* SLI_header = (header); \
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158 SLI_header->type = (imp)->lrecord_type_index; \
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159 SLI_header->lisp_readonly = 0; \
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160 SLI_header->free = 0; \
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161 SLI_header->uid = lrecord_uid_counter++; \
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162 } while (0)
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3263
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163 #else /* not NEW_GC */
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164 #define set_lheader_implementation(header,imp) do { \
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165 struct lrecord_header* SLI_header = (header); \
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166 SLI_header->type = (imp)->lrecord_type_index; \
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167 SLI_header->mark = 0; \
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168 SLI_header->c_readonly = 0; \
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169 SLI_header->lisp_readonly = 0; \
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170 SLI_header->uid = lrecord_uid_counter++; \
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428
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171 } while (0)
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172 #endif /* not NEW_GC */
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173
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174 #ifndef NEW_GC
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175 struct old_lcrecord_header
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428
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176 {
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177 struct lrecord_header lheader;
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178
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442
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179 /* The `next' field is normally used to chain all lcrecords together
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180 so that the GC can find (and free) all of them.
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181 `old_basic_alloc_lcrecord' threads lcrecords together.
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182
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183 The `next' field may be used for other purposes as long as some
|
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184 other mechanism is provided for letting the GC do its work.
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185
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186 For example, the event and marker object types allocate members
|
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187 out of memory chunks, and are able to find all unmarked members
|
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188 by sweeping through the elements of the list of chunks. */
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189 struct old_lcrecord_header *next;
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190
|
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191 /* The `uid' field is just for debugging/printing convenience.
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192 Having this slot doesn't hurt us much spacewise, since an
|
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193 lcrecord already has the above slots plus malloc overhead. */
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194 unsigned int uid :31;
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195
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196 /* The `free' field is a flag that indicates whether this lcrecord
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197 is on a "free list". Free lists are used to minimize the number
|
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198 of calls to malloc() when we're repeatedly allocating and freeing
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199 a number of the same sort of lcrecord. Lcrecords on a free list
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200 always get marked in a different fashion, so we can use this flag
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201 as a sanity check to make sure that free lists only have freed
|
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202 lcrecords and there are no freed lcrecords elsewhere. */
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203 unsigned int free :1;
|
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204 };
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205
|
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206 /* Used for lcrecords in an lcrecord-list. */
|
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207 struct free_lcrecord_header
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208 {
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3024
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209 struct old_lcrecord_header lcheader;
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428
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210 Lisp_Object chain;
|
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211 };
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212 #endif /* not NEW_GC */
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213
|
3931
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214 /* DON'T FORGET to update .gdbinit.in if you change this list. */
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442
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215 enum lrecord_type
|
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216 {
|
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217 /* Symbol value magic types come first to make SYMBOL_VALUE_MAGIC_P fast.
|
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218 #### This should be replaced by a symbol_value_magic_p flag
|
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219 in the Lisp_Symbol lrecord_header. */
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220 lrecord_type_symbol_value_forward, /* 0 */
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221 lrecord_type_symbol_value_varalias,
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222 lrecord_type_symbol_value_lisp_magic,
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223 lrecord_type_symbol_value_buffer_local,
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442
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224 lrecord_type_max_symbol_value_magic = lrecord_type_symbol_value_buffer_local,
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225 lrecord_type_symbol,
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226 lrecord_type_subr,
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227 lrecord_type_cons,
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228 lrecord_type_vector,
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229 lrecord_type_string,
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230 #ifndef NEW_GC
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442
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231 lrecord_type_lcrecord_list,
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232 #endif /* not NEW_GC */
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233 lrecord_type_compiled_function,
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234 lrecord_type_weak_list,
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235 lrecord_type_bit_vector,
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236 lrecord_type_float,
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237 lrecord_type_hash_table,
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238 lrecord_type_lstream,
|
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239 lrecord_type_process,
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240 lrecord_type_charset,
|
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241 lrecord_type_coding_system,
|
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242 lrecord_type_char_table,
|
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243 lrecord_type_char_table_entry,
|
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244 lrecord_type_range_table,
|
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245 lrecord_type_opaque,
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246 lrecord_type_opaque_ptr,
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247 lrecord_type_buffer,
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248 lrecord_type_extent,
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249 lrecord_type_extent_info,
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250 lrecord_type_extent_auxiliary,
|
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251 lrecord_type_marker,
|
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252 lrecord_type_event,
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253 #ifdef EVENT_DATA_AS_OBJECTS /* not defined */
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254 lrecord_type_key_data,
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255 lrecord_type_button_data,
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256 lrecord_type_motion_data,
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257 lrecord_type_process_data,
|
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258 lrecord_type_timeout_data,
|
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259 lrecord_type_eval_data,
|
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260 lrecord_type_misc_user_data,
|
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261 lrecord_type_magic_eval_data,
|
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262 lrecord_type_magic_data,
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1204
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263 #endif /* EVENT_DATA_AS_OBJECTS */
|
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264 lrecord_type_keymap,
|
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265 lrecord_type_command_builder,
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266 lrecord_type_timeout,
|
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267 lrecord_type_specifier,
|
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268 lrecord_type_console,
|
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269 lrecord_type_device,
|
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270 lrecord_type_frame,
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271 lrecord_type_window,
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272 lrecord_type_window_mirror,
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273 lrecord_type_window_configuration,
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274 lrecord_type_gui_item,
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275 lrecord_type_popup_data,
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276 lrecord_type_toolbar_button,
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277 lrecord_type_scrollbar_instance,
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278 lrecord_type_color_instance,
|
|
279 lrecord_type_font_instance,
|
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280 lrecord_type_image_instance,
|
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281 lrecord_type_glyph,
|
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282 lrecord_type_face,
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283 lrecord_type_fc_config,
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3094
|
284 lrecord_type_fc_pattern,
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285 lrecord_type_database,
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286 lrecord_type_tooltalk_message,
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287 lrecord_type_tooltalk_pattern,
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288 lrecord_type_ldap,
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289 lrecord_type_pgconn,
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290 lrecord_type_pgresult,
|
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291 lrecord_type_devmode,
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292 lrecord_type_mswindows_dialog_id,
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293 lrecord_type_case_table,
|
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294 lrecord_type_emacs_ffi,
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295 lrecord_type_emacs_gtk_object,
|
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296 lrecord_type_emacs_gtk_boxed,
|
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297 lrecord_type_weak_box,
|
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298 lrecord_type_ephemeron,
|
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299 lrecord_type_bignum,
|
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300 lrecord_type_ratio,
|
|
301 lrecord_type_bigfloat,
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|
302 #ifndef NEW_GC
|
454
|
303 lrecord_type_free, /* only used for "free" lrecords */
|
|
304 lrecord_type_undefined, /* only used for debugging */
|
3263
|
305 #endif /* not NEW_GC */
|
3092
|
306 #ifdef NEW_GC
|
|
307 lrecord_type_string_indirect_data,
|
|
308 lrecord_type_string_direct_data,
|
|
309 lrecord_type_hash_table_entry,
|
|
310 lrecord_type_syntax_cache,
|
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311 lrecord_type_buffer_text,
|
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312 lrecord_type_compiled_function_args,
|
|
313 lrecord_type_tty_console,
|
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314 lrecord_type_stream_console,
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315 lrecord_type_dynarr,
|
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316 lrecord_type_face_cachel,
|
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317 lrecord_type_face_cachel_dynarr,
|
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318 lrecord_type_glyph_cachel,
|
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319 lrecord_type_glyph_cachel_dynarr,
|
|
320 lrecord_type_x_device,
|
|
321 lrecord_type_gtk_device,
|
|
322 lrecord_type_tty_device,
|
|
323 lrecord_type_mswindows_device,
|
|
324 lrecord_type_msprinter_device,
|
|
325 lrecord_type_x_frame,
|
|
326 lrecord_type_gtk_frame,
|
|
327 lrecord_type_mswindows_frame,
|
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328 lrecord_type_gap_array_marker,
|
|
329 lrecord_type_gap_array,
|
|
330 lrecord_type_extent_list_marker,
|
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331 lrecord_type_extent_list,
|
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332 lrecord_type_stack_of_extents,
|
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333 lrecord_type_tty_color_instance_data,
|
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334 lrecord_type_tty_font_instance_data,
|
|
335 lrecord_type_specifier_caching,
|
|
336 lrecord_type_expose_ignore,
|
|
337 #endif /* NEW_GC */
|
|
338 lrecord_type_last_built_in_type /* must be last */
|
442
|
339 };
|
|
340
|
1632
|
341 extern MODULE_API int lrecord_type_count;
|
428
|
342
|
|
343 struct lrecord_implementation
|
|
344 {
|
2367
|
345 const Ascbyte *name;
|
442
|
346
|
934
|
347 /* information for the dumper: is the object dumpable and should it
|
|
348 be dumped. */
|
|
349 unsigned int dumpable :1;
|
|
350
|
442
|
351 /* `marker' is called at GC time, to make sure that all Lisp_Objects
|
428
|
352 pointed to by this object get properly marked. It should call
|
|
353 the mark_object function on all Lisp_Objects in the object. If
|
|
354 the return value is non-nil, it should be a Lisp_Object to be
|
|
355 marked (don't call the mark_object function explicitly on it,
|
|
356 because the GC routines will do this). Doing it this way reduces
|
|
357 recursion, so the object returned should preferably be the one
|
|
358 with the deepest level of Lisp_Object pointers. This function
|
1204
|
359 can be NULL, meaning no GC marking is necessary.
|
|
360
|
|
361 NOTE NOTE NOTE: This is not used by KKCC (which uses the data
|
|
362 description below instead), unless the data description is missing.
|
|
363 Yes, this currently means there is logic duplication. Eventually the
|
|
364 mark methods will be removed. */
|
428
|
365 Lisp_Object (*marker) (Lisp_Object);
|
442
|
366
|
|
367 /* `printer' converts the object to a printed representation.
|
|
368 This can be NULL; in this case default_object_printer() will be
|
|
369 used instead. */
|
428
|
370 void (*printer) (Lisp_Object, Lisp_Object printcharfun, int escapeflag);
|
442
|
371
|
|
372 /* `finalizer' is called at GC time when the object is about to
|
428
|
373 be freed, and at dump time (FOR_DISKSAVE will be non-zero in this
|
|
374 case). It should perform any necessary cleanup (e.g. freeing
|
442
|
375 malloc()ed memory). This can be NULL, meaning no special
|
428
|
376 finalization is necessary.
|
|
377
|
442
|
378 WARNING: remember that `finalizer' is called at dump time even
|
428
|
379 though the object is not being freed. */
|
|
380 void (*finalizer) (void *header, int for_disksave);
|
442
|
381
|
428
|
382 /* This can be NULL, meaning compare objects with EQ(). */
|
|
383 int (*equal) (Lisp_Object obj1, Lisp_Object obj2, int depth);
|
442
|
384
|
|
385 /* `hash' generates hash values for use with hash tables that have
|
|
386 `equal' as their test function. This can be NULL, meaning use
|
|
387 the Lisp_Object itself as the hash. But, you must still satisfy
|
|
388 the constraint that if two objects are `equal', then they *must*
|
|
389 hash to the same value in order for hash tables to work properly.
|
|
390 This means that `hash' can be NULL only if the `equal' method is
|
|
391 also NULL. */
|
2515
|
392 Hashcode (*hash) (Lisp_Object, int);
|
428
|
393
|
1204
|
394 /* Data layout description for your object. See long comment below. */
|
|
395 const struct memory_description *description;
|
428
|
396
|
442
|
397 /* These functions allow any object type to have builtin property
|
|
398 lists that can be manipulated from the lisp level with
|
|
399 `get', `put', `remprop', and `object-plist'. */
|
428
|
400 Lisp_Object (*getprop) (Lisp_Object obj, Lisp_Object prop);
|
|
401 int (*putprop) (Lisp_Object obj, Lisp_Object prop, Lisp_Object val);
|
|
402 int (*remprop) (Lisp_Object obj, Lisp_Object prop);
|
|
403 Lisp_Object (*plist) (Lisp_Object obj);
|
|
404
|
3263
|
405 #ifdef NEW_GC
|
2720
|
406 /* Only one of `static_size' and `size_in_bytes_method' is non-0. */
|
3263
|
407 #else /* not NEW_GC */
|
442
|
408 /* Only one of `static_size' and `size_in_bytes_method' is non-0.
|
3024
|
409 If both are 0, this type is not instantiable by
|
|
410 old_basic_alloc_lcrecord(). */
|
3263
|
411 #endif /* not NEW_GC */
|
665
|
412 Bytecount static_size;
|
|
413 Bytecount (*size_in_bytes_method) (const void *header);
|
442
|
414
|
|
415 /* The (constant) index into lrecord_implementations_table */
|
|
416 enum lrecord_type lrecord_type_index;
|
|
417
|
3263
|
418 #ifndef NEW_GC
|
428
|
419 /* A "basic" lrecord is any lrecord that's not an lcrecord, i.e.
|
3024
|
420 one that does not have an old_lcrecord_header at the front and which
|
1204
|
421 is (usually) allocated in frob blocks. */
|
442
|
422 unsigned int basic_p :1;
|
3263
|
423 #endif /* not NEW_GC */
|
428
|
424 };
|
|
425
|
617
|
426 /* All the built-in lisp object types are enumerated in `enum lrecord_type'.
|
442
|
427 Additional ones may be defined by a module (none yet). We leave some
|
|
428 room in `lrecord_implementations_table' for such new lisp object types. */
|
|
429 #define MODULE_DEFINABLE_TYPE_COUNT 32
|
|
430
|
1632
|
431 extern MODULE_API const struct lrecord_implementation *
|
|
432 lrecord_implementations_table[lrecord_type_last_built_in_type + MODULE_DEFINABLE_TYPE_COUNT];
|
428
|
433
|
|
434 #define XRECORD_LHEADER_IMPLEMENTATION(obj) \
|
442
|
435 LHEADER_IMPLEMENTATION (XRECORD_LHEADER (obj))
|
|
436 #define LHEADER_IMPLEMENTATION(lh) lrecord_implementations_table[(lh)->type]
|
428
|
437
|
3092
|
438 #include "gc.h"
|
|
439
|
|
440 #ifdef NEW_GC
|
|
441 #include "vdb.h"
|
|
442 #endif /* NEW_GC */
|
|
443
|
428
|
444 extern int gc_in_progress;
|
|
445
|
3263
|
446 #ifdef NEW_GC
|
2720
|
447 #include "mc-alloc.h"
|
|
448
|
2994
|
449 #ifdef ALLOC_TYPE_STATS
|
2720
|
450 void init_lrecord_stats (void);
|
|
451 void inc_lrecord_stats (Bytecount size, const struct lrecord_header *h);
|
|
452 void dec_lrecord_stats (Bytecount size_including_overhead,
|
|
453 const struct lrecord_header *h);
|
3092
|
454 int lrecord_stats_heap_size (void);
|
2994
|
455 #endif /* ALLOC_TYPE_STATS */
|
2720
|
456
|
|
457 /* Tell mc-alloc how to call a finalizer. */
|
3092
|
458 #define MC_ALLOC_CALL_FINALIZER(ptr) \
|
|
459 { \
|
|
460 Lisp_Object MCACF_obj = wrap_pointer_1 (ptr); \
|
|
461 struct lrecord_header *MCACF_lheader = XRECORD_LHEADER (MCACF_obj); \
|
|
462 if (XRECORD_LHEADER (MCACF_obj) && LRECORDP (MCACF_obj) \
|
|
463 && !LRECORD_FREE_P (MCACF_lheader) ) \
|
|
464 { \
|
|
465 const struct lrecord_implementation *MCACF_implementation \
|
|
466 = LHEADER_IMPLEMENTATION (MCACF_lheader); \
|
|
467 if (MCACF_implementation && MCACF_implementation->finalizer) \
|
|
468 { \
|
|
469 GC_STAT_FINALIZED; \
|
|
470 MCACF_implementation->finalizer (ptr, 0); \
|
|
471 } \
|
|
472 } \
|
|
473 } while (0)
|
2720
|
474
|
|
475 /* Tell mc-alloc how to call a finalizer for disksave. */
|
|
476 #define MC_ALLOC_CALL_FINALIZER_FOR_DISKSAVE(ptr) \
|
|
477 { \
|
|
478 Lisp_Object MCACF_obj = wrap_pointer_1 (ptr); \
|
|
479 struct lrecord_header *MCACF_lheader = XRECORD_LHEADER (MCACF_obj); \
|
|
480 if (XRECORD_LHEADER (MCACF_obj) && LRECORDP (MCACF_obj) \
|
|
481 && !LRECORD_FREE_P (MCACF_lheader) ) \
|
|
482 { \
|
|
483 const struct lrecord_implementation *MCACF_implementation \
|
|
484 = LHEADER_IMPLEMENTATION (MCACF_lheader); \
|
|
485 if (MCACF_implementation && MCACF_implementation->finalizer) \
|
|
486 MCACF_implementation->finalizer (ptr, 1); \
|
|
487 } \
|
|
488 } while (0)
|
|
489
|
|
490 #define LRECORD_FREE_P(ptr) \
|
|
491 (((struct lrecord_header *) ptr)->free)
|
|
492
|
|
493 #define MARK_LRECORD_AS_FREE(ptr) \
|
|
494 ((void) (((struct lrecord_header *) ptr)->free = 1))
|
|
495
|
|
496 #define MARK_LRECORD_AS_NOT_FREE(ptr) \
|
|
497 ((void) (((struct lrecord_header *) ptr)->free = 0))
|
|
498
|
|
499 #define MARKED_RECORD_P(obj) MARKED_P (obj)
|
|
500 #define MARKED_RECORD_HEADER_P(lheader) MARKED_P (lheader)
|
|
501 #define MARK_RECORD_HEADER(lheader) MARK (lheader)
|
|
502 #define UNMARK_RECORD_HEADER(lheader) UNMARK (lheader)
|
|
503
|
|
504 #define LISP_READONLY_RECORD_HEADER_P(lheader) ((lheader)->lisp_readonly)
|
|
505 #define SET_LISP_READONLY_RECORD_HEADER(lheader) \
|
|
506 ((void) ((lheader)->lisp_readonly = 1))
|
|
507 #define MARK_LRECORD_AS_LISP_READONLY(ptr) \
|
|
508 ((void) (((struct lrecord_header *) ptr)->lisp_readonly = 1))
|
|
509
|
3263
|
510 #else /* not NEW_GC */
|
2720
|
511
|
|
512 #define LRECORD_FREE_P(ptr) \
|
|
513 (((struct lrecord_header *) ptr)->type == lrecord_type_free)
|
|
514
|
|
515 #define MARK_LRECORD_AS_FREE(ptr) \
|
|
516 ((void) (((struct lrecord_header *) ptr)->type = lrecord_type_free))
|
|
517
|
442
|
518 #define MARKED_RECORD_P(obj) (XRECORD_LHEADER (obj)->mark)
|
428
|
519 #define MARKED_RECORD_HEADER_P(lheader) ((lheader)->mark)
|
|
520 #define MARK_RECORD_HEADER(lheader) ((void) ((lheader)->mark = 1))
|
|
521 #define UNMARK_RECORD_HEADER(lheader) ((void) ((lheader)->mark = 0))
|
|
522
|
|
523 #define C_READONLY_RECORD_HEADER_P(lheader) ((lheader)->c_readonly)
|
|
524 #define LISP_READONLY_RECORD_HEADER_P(lheader) ((lheader)->lisp_readonly)
|
442
|
525 #define SET_C_READONLY_RECORD_HEADER(lheader) do { \
|
|
526 struct lrecord_header *SCRRH_lheader = (lheader); \
|
|
527 SCRRH_lheader->c_readonly = 1; \
|
|
528 SCRRH_lheader->lisp_readonly = 1; \
|
|
529 SCRRH_lheader->mark = 1; \
|
|
530 } while (0)
|
428
|
531 #define SET_LISP_READONLY_RECORD_HEADER(lheader) \
|
|
532 ((void) ((lheader)->lisp_readonly = 1))
|
3263
|
533 #endif /* not NEW_GC */
|
1676
|
534
|
|
535 #ifdef USE_KKCC
|
|
536 #define RECORD_DESCRIPTION(lheader) lrecord_memory_descriptions[(lheader)->type]
|
|
537 #else /* not USE_KKCC */
|
442
|
538 #define RECORD_MARKER(lheader) lrecord_markers[(lheader)->type]
|
1676
|
539 #endif /* not USE_KKCC */
|
428
|
540
|
934
|
541 #define RECORD_DUMPABLE(lheader) (lrecord_implementations_table[(lheader)->type])->dumpable
|
1204
|
542
|
|
543 /* Data description stuff
|
934
|
544
|
1204
|
545 Data layout descriptions describe blocks of memory (in particular, Lisp
|
|
546 objects and other objects on the heap, and global objects with pointers
|
|
547 to such heap objects), including their size and a list of the elements
|
|
548 that need relocating, marking or other special handling. They are
|
|
549 currently used in two places: by pdump [the new, portable dumper] and
|
|
550 KKCC [the new garbage collector]. The two subsystems use the
|
|
551 descriptions in different ways, and as a result some of the descriptions
|
|
552 are appropriate only for one or the other, when it is known that only
|
|
553 that subsystem will use the description. (This is particularly the case
|
|
554 with objects that can't be dumped, because pdump needs more info than
|
|
555 KKCC.) However, properly written descriptions are appropriate for both,
|
|
556 and you should strive to write your descriptions that way, since the
|
|
557 dumpable status of an object may change and new uses for the
|
|
558 descriptions may be created. (An example that comes to mind is a
|
|
559 facility for determining the memory usage of XEmacs data structures --
|
|
560 like `buffer-memory-usage', `window-memory-usage', etc. but more
|
|
561 general.)
|
|
562
|
|
563 More specifically:
|
428
|
564
|
1204
|
565 Pdump (the portable dumper) needs to write out all objects in heap
|
|
566 space, and later on (in another invocation of XEmacs) load them back
|
|
567 into the heap, relocating all pointers to the heap objects in the global
|
|
568 data space. ("Heap" means anything malloc()ed, including all Lisp
|
|
569 objects, and "global data" means anything declared globally or
|
|
570 `static'.) Pdump, then, needs to be told about the location of all
|
|
571 global pointers to heap objects, all the description of all such
|
|
572 objects, including their size and any pointers to other heap (aka
|
|
573 "relocatable") objects. (Pdump assumes that the heap may occur in
|
|
574 different places in different invocations -- therefore, it is not enough
|
|
575 simply to write out the entire heap and later reload it at the same
|
|
576 location -- but that global data is always in the same place, and hence
|
|
577 pointers to it do not need to be relocated. This assumption holds true
|
|
578 in general for modern operating systems, but would be broken, for
|
|
579 example, in a system without virtual memory, or when dealing with shared
|
|
580 libraries. Also, unlike unexec, pdump does not usually write out or
|
|
581 restore objects in the global data space, and thus they need to be
|
|
582 initialized every time XEmacs is loaded. This is the purpose of the
|
|
583 reinit_*() functions throughout XEmacs. [It's possible, however, to make
|
|
584 pdump restore global data. This must be done, of course, for heap
|
|
585 pointers, but is also done for other values that are not easy to
|
|
586 recompute -- in particular, values established by the Lisp code loaded
|
|
587 at dump time.]) Note that the data type `Lisp_Object' is basically just
|
|
588 a relocatable pointer disguised as a long, and in general pdump treats
|
|
589 the Lisp_Object values and pointers to Lisp objects (e.g. Lisp_Object
|
|
590 vs. `struct frame *') identically. (NOTE: This equivalence depends
|
|
591 crucially on the current "minimal tagbits" implementation of Lisp_Object
|
|
592 pointers.)
|
428
|
593
|
1204
|
594 Descriptions are used by pdump in three places: (a) descriptions of Lisp
|
|
595 objects, referenced in the DEFINE_*LRECORD_*IMPLEMENTATION*() call; (b)
|
|
596 descriptions of global objects to be dumped, registered by
|
|
597 dump_add_root_block(); (c) descriptions of global pointers to
|
2367
|
598 non-Lisp_Object heap objects, registered by dump_add_root_block_ptr().
|
1204
|
599 The descriptions need to tell pdump which elements of your structure are
|
|
600 Lisp_Objects or structure pointers, plus the descriptions in turn of the
|
|
601 non-Lisp_Object structures pointed to. If these structures are you own
|
|
602 private ones, you will have to write these recursive descriptions
|
|
603 yourself; otherwise, you are reusing a structure already in existence
|
|
604 elsewhere and there is probably already a description for it.
|
|
605
|
|
606 Pdump does not care about Lisp objects that cannot be dumped (the
|
|
607 dumpable flag to DEFINE_*LRECORD_*IMPLEMENTATION*() is 0).
|
|
608
|
|
609 KKCC also uses data layout descriptions, but differently. It cares
|
|
610 about all objects, dumpable or not, but specifically only wants to know
|
|
611 about Lisp_Objects in your object and in structures pointed to. Thus,
|
|
612 it doesn't care about things like pointers to structures ot other blocks
|
|
613 of memory with no Lisp Objects in them, which pdump would care a lot
|
|
614 about.
|
|
615
|
|
616 Technically, then, you could write your description differently
|
|
617 depending on whether your object is dumpable -- the full pdump
|
|
618 description if so, the abbreviated KKCC description if not. In fact,
|
|
619 some descriptions are written this way. This is dangerous, though,
|
|
620 because another use might come along for the data descriptions, that
|
|
621 doesn't care about the dumper flag and makes use of some of the stuff
|
|
622 normally omitted from the "abbreviated" description -- see above.
|
|
623
|
|
624 A memory_description is an array of values. (This is actually
|
771
|
625 misnamed, in that it does not just describe lrecords, but any
|
|
626 blocks of memory.) The first value of each line is a type, the
|
|
627 second the offset in the lrecord structure. The third and
|
|
628 following elements are parameters; their presence, type and number
|
|
629 is type-dependent.
|
|
630
|
1204
|
631 The description ends with an "XD_END" record.
|
771
|
632
|
|
633 The top-level description of an lrecord or lcrecord does not need
|
|
634 to describe every element, just the ones that need to be relocated,
|
|
635 since the size of the lrecord is known. (The same goes for nested
|
|
636 structures, whenever the structure size is given, rather than being
|
|
637 defaulted by specifying 0 for the size.)
|
|
638
|
1204
|
639 A sized_memory_description is a memory_description plus the size of the
|
|
640 block of memory. The size field in a sized_memory_description can be
|
|
641 given as zero, i.e. unspecified, meaning that the last element in the
|
|
642 structure is described in the description and the size of the block can
|
|
643 therefore be computed from it. (This is useful for stretchy arrays.)
|
|
644
|
|
645 memory_descriptions are used to describe lrecords (the size of the
|
|
646 lrecord is elsewhere in its description, attached to its methods, so it
|
|
647 does not need to be given here) and global objects, where the size is an
|
|
648 argument to the call to dump_add_root_block().
|
|
649 sized_memory_descriptions are used for pointers and arrays in
|
2367
|
650 memory_descriptions and for calls to dump_add_root_block_ptr(). (####
|
1204
|
651 It is not obvious why this is so in the latter case. Probably, calls to
|
2367
|
652 dump_add_root_block_ptr() should use plain memory_descriptions and have
|
1204
|
653 the size be an argument to the call.)
|
|
654
|
|
655 NOTE: Anywhere that a sized_memory_description occurs inside of a plain
|
|
656 memory_description, a "description map" can be substituted. Rather than
|
|
657 being an actual description, this describes how to find the description
|
|
658 by looking inside of the object being described. This is a convenient
|
|
659 way to describe Lisp objects with subtypes and corresponding
|
|
660 type-specific data.
|
428
|
661
|
|
662 Some example descriptions :
|
440
|
663
|
814
|
664 struct Lisp_String
|
|
665 {
|
|
666 struct lrecord_header lheader;
|
|
667 Bytecount size;
|
867
|
668 Ibyte *data;
|
814
|
669 Lisp_Object plist;
|
|
670 };
|
|
671
|
1204
|
672 static const struct memory_description cons_description[] = {
|
440
|
673 { XD_LISP_OBJECT, offsetof (Lisp_Cons, car) },
|
|
674 { XD_LISP_OBJECT, offsetof (Lisp_Cons, cdr) },
|
428
|
675 { XD_END }
|
|
676 };
|
|
677
|
440
|
678 Which means "two lisp objects starting at the 'car' and 'cdr' elements"
|
428
|
679
|
1204
|
680 static const struct memory_description string_description[] = {
|
814
|
681 { XD_BYTECOUNT, offsetof (Lisp_String, size) },
|
1204
|
682 { XD_OPAQUE_DATA_PTR, offsetof (Lisp_String, data), XD_INDIRECT (0, 1) },
|
814
|
683 { XD_LISP_OBJECT, offsetof (Lisp_String, plist) },
|
|
684 { XD_END }
|
|
685 };
|
|
686
|
|
687 "A pointer to string data at 'data', the size of the pointed array being
|
|
688 the value of the size variable plus 1, and one lisp object at 'plist'"
|
|
689
|
|
690 If your object has a pointer to an array of Lisp_Objects in it, something
|
|
691 like this:
|
|
692
|
|
693 struct Lisp_Foo
|
|
694 {
|
|
695 ...;
|
|
696 int count;
|
|
697 Lisp_Object *objects;
|
|
698 ...;
|
|
699 }
|
|
700
|
2367
|
701 You'd use XD_BLOCK_PTR, something like:
|
814
|
702
|
1204
|
703 static const struct memory_description foo_description[] = {
|
|
704 ...
|
|
705 { XD_INT, offsetof (Lisp_Foo, count) },
|
2367
|
706 { XD_BLOCK_PTR, offsetof (Lisp_Foo, objects),
|
2551
|
707 XD_INDIRECT (0, 0), { &lisp_object_description } },
|
1204
|
708 ...
|
|
709 };
|
|
710
|
|
711 lisp_object_description is declared in alloc.c, like this:
|
|
712
|
|
713 static const struct memory_description lisp_object_description_1[] = {
|
814
|
714 { XD_LISP_OBJECT, 0 },
|
|
715 { XD_END }
|
|
716 };
|
|
717
|
1204
|
718 const struct sized_memory_description lisp_object_description = {
|
814
|
719 sizeof (Lisp_Object),
|
1204
|
720 lisp_object_description_1
|
814
|
721 };
|
|
722
|
2367
|
723 Another example of XD_BLOCK_PTR:
|
428
|
724
|
1204
|
725 typedef struct htentry
|
814
|
726 {
|
|
727 Lisp_Object key;
|
|
728 Lisp_Object value;
|
1204
|
729 } htentry;
|
814
|
730
|
|
731 struct Lisp_Hash_Table
|
|
732 {
|
3017
|
733 struct LCRECORD_HEADER header;
|
814
|
734 Elemcount size;
|
|
735 Elemcount count;
|
|
736 Elemcount rehash_count;
|
|
737 double rehash_size;
|
|
738 double rehash_threshold;
|
|
739 Elemcount golden_ratio;
|
|
740 hash_table_hash_function_t hash_function;
|
|
741 hash_table_test_function_t test_function;
|
1204
|
742 htentry *hentries;
|
814
|
743 enum hash_table_weakness weakness;
|
|
744 Lisp_Object next_weak; // Used to chain together all of the weak
|
|
745 // hash tables. Don't mark through this.
|
|
746 };
|
|
747
|
1204
|
748 static const struct memory_description htentry_description_1[] = {
|
|
749 { XD_LISP_OBJECT, offsetof (htentry, key) },
|
|
750 { XD_LISP_OBJECT, offsetof (htentry, value) },
|
814
|
751 { XD_END }
|
|
752 };
|
|
753
|
1204
|
754 static const struct sized_memory_description htentry_description = {
|
|
755 sizeof (htentry),
|
|
756 htentry_description_1
|
814
|
757 };
|
|
758
|
1204
|
759 const struct memory_description hash_table_description[] = {
|
814
|
760 { XD_ELEMCOUNT, offsetof (Lisp_Hash_Table, size) },
|
2367
|
761 { XD_BLOCK_PTR, offsetof (Lisp_Hash_Table, hentries), XD_INDIRECT (0, 1),
|
2551
|
762 { &htentry_description } },
|
814
|
763 { XD_LO_LINK, offsetof (Lisp_Hash_Table, next_weak) },
|
|
764 { XD_END }
|
|
765 };
|
|
766
|
|
767 Note that we don't need to declare all the elements in the structure, just
|
|
768 the ones that need to be relocated (Lisp_Objects and structures) or that
|
|
769 need to be referenced as counts for relocated objects.
|
|
770
|
1204
|
771 A description map looks like this:
|
|
772
|
|
773 static const struct sized_memory_description specifier_extra_description_map [] = {
|
|
774 { offsetof (Lisp_Specifier, methods) },
|
|
775 { offsetof (struct specifier_methods, extra_description) },
|
|
776 { -1 }
|
|
777 };
|
|
778
|
|
779 const struct memory_description specifier_description[] = {
|
|
780 ...
|
2367
|
781 { XD_BLOCK_ARRAY, offset (Lisp_Specifier, data), 1,
|
2551
|
782 { specifier_extra_description_map } },
|
1204
|
783 ...
|
|
784 { XD_END }
|
|
785 };
|
|
786
|
|
787 This would be appropriate for an object that looks like this:
|
|
788
|
|
789 struct specifier_methods
|
|
790 {
|
|
791 ...
|
|
792 const struct sized_memory_description *extra_description;
|
|
793 ...
|
|
794 };
|
|
795
|
|
796 struct Lisp_Specifier
|
|
797 {
|
3017
|
798 struct LCRECORD_HEADER header;
|
1204
|
799 struct specifier_methods *methods;
|
|
800
|
|
801 ...
|
|
802 // type-specific extra data attached to a specifier
|
|
803 max_align_t data[1];
|
|
804 };
|
|
805
|
|
806 The description map means "retrieve a pointer into the object at offset
|
|
807 `offsetof (Lisp_Specifier, methods)' , then in turn retrieve a pointer
|
|
808 into that object at offset `offsetof (struct specifier_methods,
|
|
809 extra_description)', and that is the sized_memory_description to use."
|
|
810 There can be any number of indirections, which can be either into
|
|
811 straight pointers or Lisp_Objects. The way that description maps are
|
|
812 distinguished from normal sized_memory_descriptions is that in the
|
|
813 former, the memory_description pointer is NULL.
|
|
814
|
|
815 --ben
|
|
816
|
814
|
817
|
|
818 The existing types :
|
|
819
|
|
820
|
428
|
821 XD_LISP_OBJECT
|
1204
|
822
|
|
823 A Lisp object. This is also the type to use for pointers to other lrecords
|
|
824 (e.g. struct frame *).
|
428
|
825
|
440
|
826 XD_LISP_OBJECT_ARRAY
|
1204
|
827
|
771
|
828 An array of Lisp objects or (equivalently) pointers to lrecords.
|
|
829 The parameter (i.e. third element) is the count. This would be declared
|
|
830 as Lisp_Object foo[666]. For something declared as Lisp_Object *foo,
|
2367
|
831 use XD_BLOCK_PTR, whose description parameter is a sized_memory_description
|
771
|
832 consisting of only XD_LISP_OBJECT and XD_END.
|
440
|
833
|
428
|
834 XD_LO_LINK
|
1204
|
835
|
771
|
836 Weak link in a linked list of objects of the same type. This is a
|
|
837 link that does NOT generate a GC reference. Thus the pdumper will
|
|
838 not automatically add the referenced object to the table of all
|
|
839 objects to be dumped, and when storing and loading the dumped data
|
|
840 will automatically prune unreferenced objects in the chain and link
|
|
841 each referenced object to the next referenced object, even if it's
|
|
842 many links away. We also need to special handling of a similar
|
|
843 nature for the root of the chain, which will be a staticpro()ed
|
|
844 object.
|
432
|
845
|
428
|
846 XD_OPAQUE_PTR
|
1204
|
847
|
428
|
848 Pointer to undumpable data. Must be NULL when dumping.
|
|
849
|
2551
|
850 XD_OPAQUE_PTR_CONVERTIBLE
|
|
851
|
|
852 Pointer to data which is not directly dumpable but can be converted
|
|
853 to a dumpable, opaque external representation. The parameter is
|
|
854 a pointer to an opaque_convert_functions struct.
|
|
855
|
|
856 XD_OPAQUE_DATA_CONVERTIBLE
|
|
857
|
|
858 Data which is not directly dumpable but can be converted to a
|
|
859 dumpable, opaque external representation. The parameter is a
|
|
860 pointer to an opaque_convert_functions struct.
|
|
861
|
2367
|
862 XD_BLOCK_PTR
|
1204
|
863
|
771
|
864 Pointer to block of described memory. (This is misnamed: It is NOT
|
|
865 necessarily a pointer to a struct foo.) Parameters are number of
|
1204
|
866 contiguous blocks and sized_memory_description.
|
771
|
867
|
2367
|
868 XD_BLOCK_ARRAY
|
1204
|
869
|
771
|
870 Array of blocks of described memory. Parameters are number of
|
2367
|
871 structures and sized_memory_description. This differs from XD_BLOCK_PTR
|
771
|
872 in that the parameter is declared as struct foo[666] instead of
|
|
873 struct *foo. In other words, the block of memory holding the
|
|
874 structures is within the containing structure, rather than being
|
|
875 elsewhere, with a pointer in the containing structure.
|
428
|
876
|
1204
|
877 NOTE NOTE NOTE: Be sure that you understand the difference between
|
2367
|
878 XD_BLOCK_PTR and XD_BLOCK_ARRAY:
|
1204
|
879 - struct foo bar[666], i.e. 666 inline struct foos
|
2367
|
880 --> XD_BLOCK_ARRAY, argument 666, pointing to a description of
|
1204
|
881 struct foo
|
|
882 - struct foo *bar, i.e. pointer to a block of 666 struct foos
|
2367
|
883 --> XD_BLOCK_PTR, argument 666, pointing to a description of
|
1204
|
884 struct foo
|
|
885 - struct foo *bar[666], i.e. 666 pointers to separate blocks of struct foos
|
2367
|
886 --> XD_BLOCK_ARRAY, argument 666, pointing to a description of
|
1204
|
887 a single pointer to struct foo; the description is a single
|
2367
|
888 XD_BLOCK_PTR, argument 1, which in turn points to a description
|
1204
|
889 of struct foo.
|
|
890
|
2367
|
891 NOTE also that an XD_BLOCK_PTR of 666 foos is equivalent to an
|
|
892 XD_BLOCK_PTR of 1 bar, where the description of `bar' is an
|
|
893 XD_BLOCK_ARRAY of 666 foos.
|
|
894
|
428
|
895 XD_OPAQUE_DATA_PTR
|
1204
|
896
|
428
|
897 Pointer to dumpable opaque data. Parameter is the size of the data.
|
|
898 Pointed data must be relocatable without changes.
|
|
899
|
771
|
900 XD_UNION
|
1204
|
901
|
|
902 Union of two or more different types of data. Parameters are a constant
|
|
903 which determines which type the data is (this is usually an XD_INDIRECT,
|
|
904 referring to one of the fields in the structure), and a "sizing lobby" (a
|
|
905 sized_memory_description, which points to a memory_description and
|
|
906 indicates its size). The size field in the sizing lobby describes the
|
|
907 size of the union field in the object, and the memory_description in it
|
|
908 is referred to as a "union map" and has a special interpretation: The
|
|
909 offset field is replaced by a constant, which is compared to the first
|
|
910 parameter of the XD_UNION descriptor to determine if this description
|
|
911 applies to the union data, and XD_INDIRECT references refer to the
|
|
912 containing object and description. Note that the description applies
|
2367
|
913 "inline" to the union data, like XD_BLOCK_ARRAY and not XD_BLOCK_PTR.
|
1204
|
914 If the union data is a pointer to different types of structures, each
|
2367
|
915 element in the memory_description should be an XD_BLOCK_PTR. See
|
1204
|
916 unicode.c, redisplay.c and objects.c for examples of XD_UNION.
|
|
917
|
|
918 XD_UNION_DYNAMIC_SIZE
|
|
919
|
|
920 Same as XD_UNION except that this is used for objects where the size of
|
|
921 the object containing the union varies depending on the particular value
|
|
922 of the union constant. That is, an object with plain XD_UNION typically
|
|
923 has the union declared as `union foo' or as `void *', where an object
|
|
924 with XD_UNION_DYNAMIC_SIZE typically has the union as the last element,
|
2367
|
925 and declared as something like Rawbyte foo[1]. With plain XD_UNION, the
|
1204
|
926 object is (usually) of fixed size and always contains enough space for
|
|
927 the data associated with all possible union constants, and thus the union
|
|
928 constant can potentially change during the lifetime of the object. With
|
|
929 XD_UNION_DYNAMIC_SIZE, however, the union constant is fixed at the time
|
|
930 of creation of the object, and the size of the object is computed
|
|
931 dynamically at creation time based on the size of the data associated
|
|
932 with the union constant. Currently, the only difference between XD_UNION
|
|
933 and XD_UNION_DYNAMIC_SIZE is how the size of the union data is
|
|
934 calculated, when (a) the structure containing the union has no size
|
|
935 given; (b) the union occurs as the last element in the structure; and (c)
|
|
936 the union has no size given (in the first-level sized_memory_description
|
|
937 pointed to). In this circumstance, the size of XD_UNION comes from the
|
|
938 max size of the data associated with all possible union constants,
|
|
939 whereas the size of XD_UNION_DYNAMIC_SIZE comes from the size of the data
|
|
940 associated with the currently specified (and unchangeable) union
|
|
941 constant.
|
771
|
942
|
2367
|
943 XD_ASCII_STRING
|
1204
|
944
|
2367
|
945 Pointer to a C string, purely ASCII.
|
428
|
946
|
|
947 XD_DOC_STRING
|
1204
|
948
|
2367
|
949 Pointer to a doc string (C string in pure ASCII if positive,
|
|
950 opaque value if negative)
|
428
|
951
|
|
952 XD_INT_RESET
|
1204
|
953
|
428
|
954 An integer which will be reset to a given value in the dump file.
|
|
955
|
1204
|
956 XD_ELEMCOUNT
|
771
|
957
|
665
|
958 Elemcount value. Used for counts.
|
647
|
959
|
665
|
960 XD_BYTECOUNT
|
1204
|
961
|
665
|
962 Bytecount value. Used for counts.
|
647
|
963
|
665
|
964 XD_HASHCODE
|
1204
|
965
|
665
|
966 Hashcode value. Used for the results of hashing functions.
|
428
|
967
|
|
968 XD_INT
|
1204
|
969
|
428
|
970 int value. Used for counts.
|
|
971
|
|
972 XD_LONG
|
1204
|
973
|
428
|
974 long value. Used for counts.
|
|
975
|
771
|
976 XD_BYTECOUNT
|
1204
|
977
|
771
|
978 bytecount value. Used for counts.
|
|
979
|
428
|
980 XD_END
|
1204
|
981
|
428
|
982 Special type indicating the end of the array.
|
|
983
|
|
984
|
|
985 Special macros:
|
1204
|
986
|
|
987 XD_INDIRECT (line, delta)
|
|
988 Usable where a count, size, offset or union constant is requested. Gives
|
|
989 the value of the element which is at line number 'line' in the
|
|
990 description (count starts at zero) and adds delta to it, which must
|
|
991 (currently) be positive.
|
428
|
992 */
|
|
993
|
1204
|
994 enum memory_description_type
|
647
|
995 {
|
440
|
996 XD_LISP_OBJECT_ARRAY,
|
428
|
997 XD_LISP_OBJECT,
|
3092
|
998 #ifdef NEW_GC
|
|
999 XD_LISP_OBJECT_BLOCK_PTR,
|
|
1000 #endif /* NEW_GC */
|
428
|
1001 XD_LO_LINK,
|
|
1002 XD_OPAQUE_PTR,
|
2551
|
1003 XD_OPAQUE_PTR_CONVERTIBLE,
|
|
1004 XD_OPAQUE_DATA_CONVERTIBLE,
|
|
1005 XD_OPAQUE_DATA_PTR,
|
2367
|
1006 XD_BLOCK_PTR,
|
|
1007 XD_BLOCK_ARRAY,
|
771
|
1008 XD_UNION,
|
1204
|
1009 XD_UNION_DYNAMIC_SIZE,
|
2367
|
1010 XD_ASCII_STRING,
|
428
|
1011 XD_DOC_STRING,
|
|
1012 XD_INT_RESET,
|
665
|
1013 XD_BYTECOUNT,
|
|
1014 XD_ELEMCOUNT,
|
|
1015 XD_HASHCODE,
|
428
|
1016 XD_INT,
|
|
1017 XD_LONG,
|
1204
|
1018 XD_END
|
428
|
1019 };
|
|
1020
|
1204
|
1021 enum data_description_entry_flags
|
647
|
1022 {
|
1204
|
1023 /* If set, KKCC does not process this entry.
|
|
1024
|
|
1025 (1) One obvious use is with things that pdump saves but which do not get
|
|
1026 marked normally -- for example the next and prev fields in a marker. The
|
|
1027 marker chain is weak, with its entries removed when they are finalized.
|
|
1028
|
|
1029 (2) This can be set on structures not containing any Lisp objects, or (more
|
|
1030 usefully) on structures that contain Lisp objects but where the objects
|
|
1031 always occur in another structure as well. For example, the extent lists
|
|
1032 kept by a buffer keep the extents in two lists, one sorted by the start
|
|
1033 of the extent and the other by the end. There's no point in marking
|
|
1034 both, since each contains the same objects as the other; but when dumping
|
|
1035 (if we were to dump such a structure), when computing memory size, etc.,
|
|
1036 it's crucial to tag both sides.
|
|
1037 */
|
|
1038 XD_FLAG_NO_KKCC = 1,
|
|
1039 /* If set, pdump does not process this entry. */
|
|
1040 XD_FLAG_NO_PDUMP = 2,
|
|
1041 /* Indicates that this is a "default" entry in a union map. */
|
|
1042 XD_FLAG_UNION_DEFAULT_ENTRY = 4,
|
3263
|
1043 #ifndef NEW_GC
|
1204
|
1044 /* Indicates that this is a free Lisp object we're marking.
|
|
1045 Only relevant for ERROR_CHECK_GC. This occurs when we're marking
|
|
1046 lcrecord-lists, where the objects have had their type changed to
|
|
1047 lrecord_type_free and also have had their free bit set, but we mark
|
|
1048 them as normal. */
|
1429
|
1049 XD_FLAG_FREE_LISP_OBJECT = 8
|
3263
|
1050 #endif /* not NEW_GC */
|
1204
|
1051 #if 0
|
1429
|
1052 ,
|
1204
|
1053 /* Suggestions for other possible flags: */
|
|
1054
|
|
1055 /* Eliminate XD_UNION_DYNAMIC_SIZE and replace it with a flag, like this. */
|
|
1056 XD_FLAG_UNION_DYNAMIC_SIZE = 16,
|
|
1057 /* Require that everyone who uses a description map has to flag it, so
|
|
1058 that it's easy to tell, when looking through the code, where the
|
|
1059 description maps are and who's using them. This might also become
|
|
1060 necessary if for some reason the format of the description map is
|
|
1061 expanded and we need to stick a pointer in the second slot (although
|
|
1062 we could still ensure that the second slot in the first entry was NULL
|
|
1063 or <0). */
|
1429
|
1064 XD_FLAG_DESCRIPTION_MAP = 32
|
1204
|
1065 #endif
|
428
|
1066 };
|
|
1067
|
2551
|
1068 union memory_contents_description
|
|
1069 {
|
|
1070 /* The first element is used by static initializers only. We always read
|
|
1071 from one of the other two pointers. */
|
|
1072 const void *write_only;
|
|
1073 const struct sized_memory_description *descr;
|
|
1074 const struct opaque_convert_functions *funcs;
|
|
1075 };
|
|
1076
|
1204
|
1077 struct memory_description
|
|
1078 {
|
|
1079 enum memory_description_type type;
|
|
1080 Bytecount offset;
|
|
1081 EMACS_INT data1;
|
2551
|
1082 union memory_contents_description data2;
|
1204
|
1083 /* Indicates which subsystems process this entry, plus (potentially) other
|
|
1084 flags that apply to this entry. */
|
|
1085 int flags;
|
|
1086 };
|
428
|
1087
|
1204
|
1088 struct sized_memory_description
|
|
1089 {
|
|
1090 Bytecount size;
|
|
1091 const struct memory_description *description;
|
|
1092 };
|
|
1093
|
2551
|
1094
|
|
1095 struct opaque_convert_functions
|
|
1096 {
|
|
1097 /* Used by XD_OPAQUE_PTR_CONVERTIBLE and
|
|
1098 XD_OPAQUE_DATA_CONVERTIBLE */
|
|
1099
|
|
1100 /* Converter to external representation, for those objects from
|
|
1101 external libraries that can't be directly dumped as opaque data
|
|
1102 because they contain pointers. This is called at dump time to
|
|
1103 convert to an opaque, pointer-less representation.
|
|
1104
|
|
1105 This function must put a pointer to the opaque result in *data
|
|
1106 and its size in *size. */
|
|
1107 void (*convert)(const void *object, void **data, Bytecount *size);
|
|
1108
|
|
1109 /* Post-conversion cleanup. Optional (null if not provided).
|
|
1110
|
|
1111 When provided it will be called post-dumping to free any storage
|
|
1112 allocated for the conversion results. */
|
|
1113 void (*convert_free)(const void *object, void *data, Bytecount size);
|
|
1114
|
|
1115 /* De-conversion.
|
|
1116
|
|
1117 At reload time, rebuilds the object from the converted form.
|
|
1118 "object" is 0 for the PTR case, return is ignored in the DATA
|
|
1119 case. */
|
|
1120 void *(*deconvert)(void *object, void *data, Bytecount size);
|
|
1121
|
|
1122 };
|
|
1123
|
1204
|
1124 extern const struct sized_memory_description lisp_object_description;
|
|
1125
|
|
1126 #define XD_INDIRECT(val, delta) (-1 - (Bytecount) ((val) | ((delta) << 8)))
|
428
|
1127
|
1204
|
1128 #define XD_IS_INDIRECT(code) ((code) < 0)
|
|
1129 #define XD_INDIRECT_VAL(code) ((-1 - (code)) & 255)
|
|
1130 #define XD_INDIRECT_DELTA(code) ((-1 - (code)) >> 8)
|
|
1131
|
|
1132 #define XD_DYNARR_DESC(base_type, sub_desc) \
|
2551
|
1133 { XD_BLOCK_PTR, offsetof (base_type, base), XD_INDIRECT(1, 0), {sub_desc} },\
|
1204
|
1134 { XD_INT, offsetof (base_type, cur) }, \
|
|
1135 { XD_INT_RESET, offsetof (base_type, max), XD_INDIRECT(1, 0) } \
|
|
1136
|
3092
|
1137 #ifdef NEW_GC
|
|
1138 #define XD_LISP_DYNARR_DESC(base_type, sub_desc) \
|
|
1139 { XD_LISP_OBJECT_BLOCK_PTR, offsetof (base_type, base), \
|
|
1140 XD_INDIRECT(1, 0), {sub_desc} }, \
|
|
1141 { XD_INT, offsetof (base_type, cur) }, \
|
|
1142 { XD_INT_RESET, offsetof (base_type, max), XD_INDIRECT(1, 0) }
|
|
1143 #endif /* not NEW_GC */
|
|
1144
|
428
|
1145 /* DEFINE_LRECORD_IMPLEMENTATION is for objects with constant size.
|
|
1146 DEFINE_LRECORD_SEQUENCE_IMPLEMENTATION is for objects whose size varies.
|
|
1147 */
|
|
1148
|
800
|
1149 #if defined (ERROR_CHECK_TYPES)
|
|
1150 # define DECLARE_ERROR_CHECK_TYPES(c_name, structtype)
|
428
|
1151 #else
|
800
|
1152 # define DECLARE_ERROR_CHECK_TYPES(c_name, structtype)
|
428
|
1153 #endif
|
|
1154
|
934
|
1155
|
|
1156 #define DEFINE_BASIC_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,structtype) \
|
|
1157 DEFINE_BASIC_LRECORD_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,0,0,0,0,structtype)
|
|
1158
|
|
1159 #define DEFINE_BASIC_LRECORD_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,structtype) \
|
|
1160 MAKE_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,sizeof(structtype),0,1,structtype)
|
|
1161
|
|
1162 #define DEFINE_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,structtype) \
|
|
1163 DEFINE_LRECORD_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,0,0,0,0,structtype)
|
|
1164
|
|
1165 #define DEFINE_LRECORD_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,structtype) \
|
|
1166 MAKE_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,sizeof (structtype),0,0,structtype)
|
|
1167
|
|
1168 #define DEFINE_LRECORD_SEQUENCE_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,sizer,structtype) \
|
|
1169 DEFINE_LRECORD_SEQUENCE_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,0,0,0,0,sizer,structtype)
|
|
1170
|
|
1171 #define DEFINE_BASIC_LRECORD_SEQUENCE_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,sizer,structtype) \
|
|
1172 MAKE_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,0,0,0,0,0,sizer,1,structtype)
|
|
1173
|
|
1174 #define DEFINE_LRECORD_SEQUENCE_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,sizer,structtype) \
|
|
1175 MAKE_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,0,sizer,0,structtype)
|
|
1176
|
3263
|
1177 #ifdef NEW_GC
|
2720
|
1178 #define MAKE_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,size,sizer,basic_p,structtype) \
|
|
1179 DECLARE_ERROR_CHECK_TYPES(c_name, structtype) \
|
|
1180 const struct lrecord_implementation lrecord_##c_name = \
|
|
1181 { name, dumpable, marker, printer, nuker, equal, hash, desc, \
|
|
1182 getprop, putprop, remprop, plist, size, sizer, \
|
|
1183 lrecord_type_##c_name }
|
3263
|
1184 #else /* not NEW_GC */
|
934
|
1185 #define MAKE_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,size,sizer,basic_p,structtype) \
|
1204
|
1186 DECLARE_ERROR_CHECK_TYPES(c_name, structtype) \
|
934
|
1187 const struct lrecord_implementation lrecord_##c_name = \
|
|
1188 { name, dumpable, marker, printer, nuker, equal, hash, desc, \
|
|
1189 getprop, putprop, remprop, plist, size, sizer, \
|
|
1190 lrecord_type_##c_name, basic_p }
|
3263
|
1191 #endif /* not NEW_GC */
|
934
|
1192
|
|
1193 #define DEFINE_EXTERNAL_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,structtype) \
|
|
1194 DEFINE_EXTERNAL_LRECORD_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,0,0,0,0,structtype)
|
|
1195
|
|
1196 #define DEFINE_EXTERNAL_LRECORD_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,structtype) \
|
|
1197 MAKE_EXTERNAL_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,sizeof (structtype),0,0,structtype)
|
|
1198
|
|
1199 #define DEFINE_EXTERNAL_LRECORD_SEQUENCE_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,sizer,structtype) \
|
|
1200 DEFINE_EXTERNAL_LRECORD_SEQUENCE_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,0,0,0,0,sizer,structtype)
|
|
1201
|
|
1202 #define DEFINE_EXTERNAL_LRECORD_SEQUENCE_IMPLEMENTATION_WITH_PROPS(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,sizer,structtype) \
|
|
1203 MAKE_EXTERNAL_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,0,sizer,0,structtype)
|
|
1204
|
3263
|
1205 #ifdef NEW_GC
|
2720
|
1206 #define MAKE_EXTERNAL_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,size,sizer,basic_p,structtype) \
|
|
1207 DECLARE_ERROR_CHECK_TYPES(c_name, structtype) \
|
|
1208 int lrecord_type_##c_name; \
|
|
1209 struct lrecord_implementation lrecord_##c_name = \
|
|
1210 { name, dumpable, marker, printer, nuker, equal, hash, desc, \
|
|
1211 getprop, putprop, remprop, plist, size, sizer, \
|
|
1212 lrecord_type_last_built_in_type }
|
3263
|
1213 #else /* not NEW_GC */
|
934
|
1214 #define MAKE_EXTERNAL_LRECORD_IMPLEMENTATION(name,c_name,dumpable,marker,printer,nuker,equal,hash,desc,getprop,putprop,remprop,plist,size,sizer,basic_p,structtype) \
|
1204
|
1215 DECLARE_ERROR_CHECK_TYPES(c_name, structtype) \
|
934
|
1216 int lrecord_type_##c_name; \
|
|
1217 struct lrecord_implementation lrecord_##c_name = \
|
|
1218 { name, dumpable, marker, printer, nuker, equal, hash, desc, \
|
|
1219 getprop, putprop, remprop, plist, size, sizer, \
|
|
1220 lrecord_type_last_built_in_type, basic_p }
|
3263
|
1221 #endif /* not NEW_GC */
|
934
|
1222
|
1676
|
1223 #ifdef USE_KKCC
|
|
1224 extern MODULE_API const struct memory_description *lrecord_memory_descriptions[];
|
|
1225
|
|
1226 #define INIT_LRECORD_IMPLEMENTATION(type) do { \
|
|
1227 lrecord_implementations_table[lrecord_type_##type] = &lrecord_##type; \
|
|
1228 lrecord_memory_descriptions[lrecord_type_##type] = \
|
|
1229 lrecord_implementations_table[lrecord_type_##type]->description; \
|
|
1230 } while (0)
|
|
1231 #else /* not USE_KKCC */
|
1632
|
1232 extern MODULE_API Lisp_Object (*lrecord_markers[]) (Lisp_Object);
|
442
|
1233
|
|
1234 #define INIT_LRECORD_IMPLEMENTATION(type) do { \
|
|
1235 lrecord_implementations_table[lrecord_type_##type] = &lrecord_##type; \
|
|
1236 lrecord_markers[lrecord_type_##type] = \
|
|
1237 lrecord_implementations_table[lrecord_type_##type]->marker; \
|
|
1238 } while (0)
|
1676
|
1239 #endif /* not USE_KKCC */
|
428
|
1240
|
444
|
1241 #define INIT_EXTERNAL_LRECORD_IMPLEMENTATION(type) do { \
|
|
1242 lrecord_type_##type = lrecord_type_count++; \
|
|
1243 lrecord_##type.lrecord_type_index = lrecord_type_##type; \
|
|
1244 INIT_LRECORD_IMPLEMENTATION(type); \
|
|
1245 } while (0)
|
|
1246
|
996
|
1247 #ifdef HAVE_SHLIB
|
|
1248 /* Allow undefining types in order to support module unloading. */
|
|
1249
|
1676
|
1250 #ifdef USE_KKCC
|
|
1251 #define UNDEF_LRECORD_IMPLEMENTATION(type) do { \
|
|
1252 lrecord_implementations_table[lrecord_type_##type] = NULL; \
|
|
1253 lrecord_memory_descriptions[lrecord_type_##type] = NULL; \
|
|
1254 } while (0)
|
|
1255 #else /* not USE_KKCC */
|
996
|
1256 #define UNDEF_LRECORD_IMPLEMENTATION(type) do { \
|
|
1257 lrecord_implementations_table[lrecord_type_##type] = NULL; \
|
|
1258 lrecord_markers[lrecord_type_##type] = NULL; \
|
|
1259 } while (0)
|
1676
|
1260 #endif /* not USE_KKCC */
|
996
|
1261
|
|
1262 #define UNDEF_EXTERNAL_LRECORD_IMPLEMENTATION(type) do { \
|
|
1263 if (lrecord_##type.lrecord_type_index == lrecord_type_count - 1) { \
|
|
1264 /* This is the most recently defined type. Clean up nicely. */ \
|
|
1265 lrecord_type_##type = lrecord_type_count--; \
|
|
1266 } /* Else we can't help leaving a hole with this implementation. */ \
|
|
1267 UNDEF_LRECORD_IMPLEMENTATION(type); \
|
|
1268 } while (0)
|
|
1269
|
|
1270 #endif /* HAVE_SHLIB */
|
|
1271
|
428
|
1272 #define LRECORDP(a) (XTYPE (a) == Lisp_Type_Record)
|
|
1273 #define XRECORD_LHEADER(a) ((struct lrecord_header *) XPNTR (a))
|
|
1274
|
|
1275 #define RECORD_TYPEP(x, ty) \
|
647
|
1276 (LRECORDP (x) && (XRECORD_LHEADER (x)->type == (unsigned int) (ty)))
|
442
|
1277
|
|
1278 /* Steps to create a new object:
|
|
1279
|
|
1280 1. Declare the struct for your object in a header file somewhere.
|
|
1281 Remember that it must begin with
|
|
1282
|
3017
|
1283 struct LCRECORD_HEADER header;
|
442
|
1284
|
793
|
1285 2. Put the "standard junk" (DECLARE_RECORD()/XFOO/etc.) below the
|
617
|
1286 struct definition -- see below.
|
442
|
1287
|
|
1288 3. Add this header file to inline.c.
|
|
1289
|
|
1290 4. Create the methods for your object. Note that technically you don't
|
|
1291 need any, but you will almost always want at least a mark method.
|
|
1292
|
1204
|
1293 4. Create the data layout description for your object. See
|
|
1294 toolbar_button_description below; the comment above in `struct lrecord',
|
|
1295 describing the purpose of the descriptions; and comments elsewhere in
|
|
1296 this file describing the exact syntax of the description structures.
|
|
1297
|
|
1298 6. Define your object with DEFINE_LRECORD_IMPLEMENTATION() or some
|
442
|
1299 variant.
|
|
1300
|
1204
|
1301 7. Include the header file in the .c file where you defined the object.
|
442
|
1302
|
1204
|
1303 8. Put a call to INIT_LRECORD_IMPLEMENTATION() for the object in the
|
442
|
1304 .c file's syms_of_foo() function.
|
|
1305
|
1204
|
1306 9. Add a type enum for the object to enum lrecord_type, earlier in this
|
442
|
1307 file.
|
|
1308
|
1204
|
1309 --ben
|
|
1310
|
442
|
1311 An example:
|
428
|
1312
|
442
|
1313 ------------------------------ in toolbar.h -----------------------------
|
|
1314
|
|
1315 struct toolbar_button
|
|
1316 {
|
3017
|
1317 struct LCRECORD_HEADER header;
|
442
|
1318
|
|
1319 Lisp_Object next;
|
|
1320 Lisp_Object frame;
|
|
1321
|
|
1322 Lisp_Object up_glyph;
|
|
1323 Lisp_Object down_glyph;
|
|
1324 Lisp_Object disabled_glyph;
|
|
1325
|
|
1326 Lisp_Object cap_up_glyph;
|
|
1327 Lisp_Object cap_down_glyph;
|
|
1328 Lisp_Object cap_disabled_glyph;
|
|
1329
|
|
1330 Lisp_Object callback;
|
|
1331 Lisp_Object enabled_p;
|
|
1332 Lisp_Object help_string;
|
|
1333
|
|
1334 char enabled;
|
|
1335 char down;
|
|
1336 char pushright;
|
|
1337 char blank;
|
|
1338
|
|
1339 int x, y;
|
|
1340 int width, height;
|
|
1341 int dirty;
|
|
1342 int vertical;
|
|
1343 int border_width;
|
|
1344 };
|
428
|
1345
|
617
|
1346 [[ the standard junk: ]]
|
|
1347
|
442
|
1348 DECLARE_LRECORD (toolbar_button, struct toolbar_button);
|
|
1349 #define XTOOLBAR_BUTTON(x) XRECORD (x, toolbar_button, struct toolbar_button)
|
617
|
1350 #define wrap_toolbar_button(p) wrap_record (p, toolbar_button)
|
442
|
1351 #define TOOLBAR_BUTTONP(x) RECORDP (x, toolbar_button)
|
|
1352 #define CHECK_TOOLBAR_BUTTON(x) CHECK_RECORD (x, toolbar_button)
|
|
1353 #define CONCHECK_TOOLBAR_BUTTON(x) CONCHECK_RECORD (x, toolbar_button)
|
|
1354
|
|
1355 ------------------------------ in toolbar.c -----------------------------
|
|
1356
|
|
1357 #include "toolbar.h"
|
|
1358
|
|
1359 ...
|
|
1360
|
1204
|
1361 static const struct memory_description toolbar_button_description [] = {
|
|
1362 { XD_LISP_OBJECT, offsetof (struct toolbar_button, next) },
|
|
1363 { XD_LISP_OBJECT, offsetof (struct toolbar_button, frame) },
|
|
1364 { XD_LISP_OBJECT, offsetof (struct toolbar_button, up_glyph) },
|
|
1365 { XD_LISP_OBJECT, offsetof (struct toolbar_button, down_glyph) },
|
|
1366 { XD_LISP_OBJECT, offsetof (struct toolbar_button, disabled_glyph) },
|
|
1367 { XD_LISP_OBJECT, offsetof (struct toolbar_button, cap_up_glyph) },
|
|
1368 { XD_LISP_OBJECT, offsetof (struct toolbar_button, cap_down_glyph) },
|
|
1369 { XD_LISP_OBJECT, offsetof (struct toolbar_button, cap_disabled_glyph) },
|
|
1370 { XD_LISP_OBJECT, offsetof (struct toolbar_button, callback) },
|
|
1371 { XD_LISP_OBJECT, offsetof (struct toolbar_button, enabled_p) },
|
|
1372 { XD_LISP_OBJECT, offsetof (struct toolbar_button, help_string) },
|
|
1373 { XD_END }
|
|
1374 };
|
|
1375
|
442
|
1376 static Lisp_Object
|
|
1377 mark_toolbar_button (Lisp_Object obj)
|
1204
|
1378 \{
|
442
|
1379 struct toolbar_button *data = XTOOLBAR_BUTTON (obj);
|
|
1380 mark_object (data->next);
|
|
1381 mark_object (data->frame);
|
|
1382 mark_object (data->up_glyph);
|
|
1383 mark_object (data->down_glyph);
|
|
1384 mark_object (data->disabled_glyph);
|
|
1385 mark_object (data->cap_up_glyph);
|
|
1386 mark_object (data->cap_down_glyph);
|
|
1387 mark_object (data->cap_disabled_glyph);
|
|
1388 mark_object (data->callback);
|
|
1389 mark_object (data->enabled_p);
|
|
1390 return data->help_string;
|
|
1391 }
|
|
1392
|
617
|
1393 [[ If your object should never escape to Lisp, declare its print method
|
|
1394 as internal_object_printer instead of 0. ]]
|
|
1395
|
442
|
1396 DEFINE_LRECORD_IMPLEMENTATION ("toolbar-button", toolbar_button,
|
1204
|
1397 0, mark_toolbar_button, 0, 0, 0, 0,
|
|
1398 toolbar_button_description,
|
|
1399 struct toolbar_button);
|
442
|
1400
|
|
1401 ...
|
|
1402
|
|
1403 void
|
|
1404 syms_of_toolbar (void)
|
|
1405 {
|
|
1406 INIT_LRECORD_IMPLEMENTATION (toolbar_button);
|
|
1407
|
|
1408 ...;
|
|
1409 }
|
|
1410
|
|
1411 ------------------------------ in inline.c -----------------------------
|
|
1412
|
|
1413 #ifdef HAVE_TOOLBARS
|
|
1414 #include "toolbar.h"
|
|
1415 #endif
|
|
1416
|
|
1417 ------------------------------ in lrecord.h -----------------------------
|
|
1418
|
|
1419 enum lrecord_type
|
|
1420 {
|
|
1421 ...
|
|
1422 lrecord_type_toolbar_button,
|
|
1423 ...
|
|
1424 };
|
|
1425
|
1204
|
1426
|
|
1427 --ben
|
|
1428
|
442
|
1429 */
|
|
1430
|
|
1431 /*
|
|
1432
|
|
1433 Note: Object types defined in external dynamically-loaded modules (not
|
|
1434 part of the XEmacs main source code) should use DECLARE_EXTERNAL_LRECORD
|
|
1435 and DEFINE_EXTERNAL_LRECORD_IMPLEMENTATION rather than DECLARE_LRECORD
|
3029
|
1436 and DEFINE_LRECORD_IMPLEMENTATION. The EXTERNAL versions declare and
|
|
1437 allocate an enumerator for the type being defined.
|
442
|
1438
|
|
1439 */
|
|
1440
|
428
|
1441
|
800
|
1442 #ifdef ERROR_CHECK_TYPES
|
428
|
1443
|
788
|
1444 # define DECLARE_LRECORD(c_name, structtype) \
|
|
1445 extern const struct lrecord_implementation lrecord_##c_name; \
|
826
|
1446 DECLARE_INLINE_HEADER ( \
|
|
1447 structtype * \
|
2367
|
1448 error_check_##c_name (Lisp_Object obj, const Ascbyte *file, int line) \
|
826
|
1449 ) \
|
788
|
1450 { \
|
|
1451 assert_at_line (RECORD_TYPEP (obj, lrecord_type_##c_name), file, line); \
|
|
1452 return (structtype *) XPNTR (obj); \
|
|
1453 } \
|
428
|
1454 extern Lisp_Object Q##c_name##p
|
|
1455
|
1632
|
1456 # define DECLARE_MODULE_API_LRECORD(c_name, structtype) \
|
|
1457 extern MODULE_API const struct lrecord_implementation lrecord_##c_name; \
|
|
1458 DECLARE_INLINE_HEADER ( \
|
|
1459 structtype * \
|
2367
|
1460 error_check_##c_name (Lisp_Object obj, const Ascbyte *file, int line) \
|
1632
|
1461 ) \
|
|
1462 { \
|
|
1463 assert_at_line (RECORD_TYPEP (obj, lrecord_type_##c_name), file, line); \
|
|
1464 return (structtype *) XPNTR (obj); \
|
|
1465 } \
|
|
1466 extern MODULE_API Lisp_Object Q##c_name##p
|
|
1467
|
788
|
1468 # define DECLARE_EXTERNAL_LRECORD(c_name, structtype) \
|
|
1469 extern int lrecord_type_##c_name; \
|
|
1470 extern struct lrecord_implementation lrecord_##c_name; \
|
826
|
1471 DECLARE_INLINE_HEADER ( \
|
|
1472 structtype * \
|
2367
|
1473 error_check_##c_name (Lisp_Object obj, const Ascbyte *file, int line) \
|
826
|
1474 ) \
|
788
|
1475 { \
|
|
1476 assert_at_line (RECORD_TYPEP (obj, lrecord_type_##c_name), file, line); \
|
|
1477 return (structtype *) XPNTR (obj); \
|
|
1478 } \
|
444
|
1479 extern Lisp_Object Q##c_name##p
|
442
|
1480
|
788
|
1481 # define DECLARE_NONRECORD(c_name, type_enum, structtype) \
|
826
|
1482 DECLARE_INLINE_HEADER ( \
|
|
1483 structtype * \
|
2367
|
1484 error_check_##c_name (Lisp_Object obj, const Ascbyte *file, int line) \
|
826
|
1485 ) \
|
788
|
1486 { \
|
|
1487 assert_at_line (XTYPE (obj) == type_enum, file, line); \
|
|
1488 return (structtype *) XPNTR (obj); \
|
|
1489 } \
|
428
|
1490 extern Lisp_Object Q##c_name##p
|
|
1491
|
788
|
1492 # define XRECORD(x, c_name, structtype) \
|
|
1493 error_check_##c_name (x, __FILE__, __LINE__)
|
|
1494 # define XNONRECORD(x, c_name, type_enum, structtype) \
|
|
1495 error_check_##c_name (x, __FILE__, __LINE__)
|
428
|
1496
|
826
|
1497 DECLARE_INLINE_HEADER (
|
|
1498 Lisp_Object
|
2367
|
1499 wrap_record_1 (const void *ptr, enum lrecord_type ty, const Ascbyte *file,
|
800
|
1500 int line)
|
826
|
1501 )
|
617
|
1502 {
|
793
|
1503 Lisp_Object obj = wrap_pointer_1 (ptr);
|
|
1504
|
788
|
1505 assert_at_line (RECORD_TYPEP (obj, ty), file, line);
|
617
|
1506 return obj;
|
|
1507 }
|
|
1508
|
788
|
1509 #define wrap_record(ptr, ty) \
|
|
1510 wrap_record_1 (ptr, lrecord_type_##ty, __FILE__, __LINE__)
|
617
|
1511
|
800
|
1512 #else /* not ERROR_CHECK_TYPES */
|
428
|
1513
|
|
1514 # define DECLARE_LRECORD(c_name, structtype) \
|
|
1515 extern Lisp_Object Q##c_name##p; \
|
442
|
1516 extern const struct lrecord_implementation lrecord_##c_name
|
1638
|
1517 # define DECLARE_MODULE_API_LRECORD(c_name, structtype) \
|
|
1518 extern MODULE_API Lisp_Object Q##c_name##p; \
|
|
1519 extern MODULE_API const struct lrecord_implementation lrecord_##c_name
|
442
|
1520 # define DECLARE_EXTERNAL_LRECORD(c_name, structtype) \
|
|
1521 extern Lisp_Object Q##c_name##p; \
|
647
|
1522 extern int lrecord_type_##c_name; \
|
444
|
1523 extern struct lrecord_implementation lrecord_##c_name
|
428
|
1524 # define DECLARE_NONRECORD(c_name, type_enum, structtype) \
|
|
1525 extern Lisp_Object Q##c_name##p
|
|
1526 # define XRECORD(x, c_name, structtype) ((structtype *) XPNTR (x))
|
|
1527 # define XNONRECORD(x, c_name, type_enum, structtype) \
|
|
1528 ((structtype *) XPNTR (x))
|
617
|
1529 /* wrap_pointer_1 is so named as a suggestion not to use it unless you
|
|
1530 know what you're doing. */
|
|
1531 #define wrap_record(ptr, ty) wrap_pointer_1 (ptr)
|
428
|
1532
|
800
|
1533 #endif /* not ERROR_CHECK_TYPES */
|
428
|
1534
|
442
|
1535 #define RECORDP(x, c_name) RECORD_TYPEP (x, lrecord_type_##c_name)
|
428
|
1536
|
|
1537 /* Note: we now have two different kinds of type-checking macros.
|
|
1538 The "old" kind has now been renamed CONCHECK_foo. The reason for
|
|
1539 this is that the CONCHECK_foo macros signal a continuable error,
|
|
1540 allowing the user (through debug-on-error) to substitute a different
|
|
1541 value and return from the signal, which causes the lvalue argument
|
|
1542 to get changed. Quite a lot of code would crash if that happened,
|
|
1543 because it did things like
|
|
1544
|
|
1545 foo = XCAR (list);
|
|
1546 CHECK_STRING (foo);
|
|
1547
|
|
1548 and later on did XSTRING (XCAR (list)), assuming that the type
|
|
1549 is correct (when it might be wrong, if the user substituted a
|
|
1550 correct value in the debugger).
|
|
1551
|
|
1552 To get around this, I made all the CHECK_foo macros signal a
|
|
1553 non-continuable error. Places where a continuable error is OK
|
|
1554 (generally only when called directly on the argument of a Lisp
|
|
1555 primitive) should be changed to use CONCHECK().
|
|
1556
|
|
1557 FSF Emacs does not have this problem because RMS took the cheesy
|
|
1558 way out and disabled returning from a signal entirely. */
|
|
1559
|
|
1560 #define CONCHECK_RECORD(x, c_name) do { \
|
442
|
1561 if (!RECORD_TYPEP (x, lrecord_type_##c_name)) \
|
428
|
1562 x = wrong_type_argument (Q##c_name##p, x); \
|
|
1563 } while (0)
|
|
1564 #define CONCHECK_NONRECORD(x, lisp_enum, predicate) do {\
|
|
1565 if (XTYPE (x) != lisp_enum) \
|
|
1566 x = wrong_type_argument (predicate, x); \
|
|
1567 } while (0)
|
|
1568 #define CHECK_RECORD(x, c_name) do { \
|
442
|
1569 if (!RECORD_TYPEP (x, lrecord_type_##c_name)) \
|
428
|
1570 dead_wrong_type_argument (Q##c_name##p, x); \
|
|
1571 } while (0)
|
|
1572 #define CHECK_NONRECORD(x, lisp_enum, predicate) do { \
|
|
1573 if (XTYPE (x) != lisp_enum) \
|
|
1574 dead_wrong_type_argument (predicate, x); \
|
|
1575 } while (0)
|
|
1576
|
3263
|
1577 #ifndef NEW_GC
|
1204
|
1578 /*-------------------------- lcrecord-list -----------------------------*/
|
|
1579
|
|
1580 struct lcrecord_list
|
|
1581 {
|
3024
|
1582 struct LCRECORD_HEADER header;
|
1204
|
1583 Lisp_Object free;
|
|
1584 Elemcount size;
|
|
1585 const struct lrecord_implementation *implementation;
|
|
1586 };
|
|
1587
|
|
1588 DECLARE_LRECORD (lcrecord_list, struct lcrecord_list);
|
|
1589 #define XLCRECORD_LIST(x) XRECORD (x, lcrecord_list, struct lcrecord_list)
|
|
1590 #define wrap_lcrecord_list(p) wrap_record (p, lcrecord_list)
|
|
1591 #define LCRECORD_LISTP(x) RECORDP (x, lcrecord_list)
|
|
1592 /* #define CHECK_LCRECORD_LIST(x) CHECK_RECORD (x, lcrecord_list)
|
|
1593 Lcrecord lists should never escape to the Lisp level, so
|
|
1594 functions should not be doing this. */
|
|
1595
|
826
|
1596 /* Various ways of allocating lcrecords. All bytes (except lcrecord
|
1204
|
1597 header) are zeroed in returned structure.
|
|
1598
|
|
1599 See above for a discussion of the difference between plain lrecords and
|
|
1600 lrecords. lcrecords themselves are divided into three types: (1)
|
|
1601 auto-managed, (2) hand-managed, and (3) unmanaged. "Managed" refers to
|
|
1602 using a special object called an lcrecord-list to keep track of freed
|
3024
|
1603 lcrecords, which can freed with FREE_LCRECORD() or the like and later be
|
1204
|
1604 recycled when a new lcrecord is required, rather than requiring new
|
|
1605 malloc(). Thus, allocation of lcrecords can be very
|
|
1606 cheap. (Technically, the lcrecord-list manager could divide up large
|
|
1607 chunks of memory and allocate out of that, mimicking what happens with
|
|
1608 lrecords. At that point, however, we'd want to rethink the whole
|
|
1609 division between lrecords and lcrecords.)
|
|
1610
|
|
1611 NOTE: There is a fundamental limitation of lcrecord-lists, which is that
|
|
1612 they only handle blocks of a particular, fixed size. Thus, objects that
|
|
1613 can be of varying sizes need to do various tricks. These considerations
|
|
1614 in particular dictate the various types of management:
|
|
1615
|
|
1616 -- "Auto-managed" means that you just go ahead and allocate the lcrecord
|
3024
|
1617 whenever you want, using old_alloc_lcrecord_type(), and the appropriate
|
1204
|
1618 lcrecord-list manager is automatically created. To free, you just call
|
3024
|
1619 "FREE_LCRECORD()" and the appropriate lcrecord-list manager is
|
1204
|
1620 automatically located and called. The limitation here of course is that
|
|
1621 all your objects are of the same size. (#### Eventually we should have a
|
|
1622 more sophisticated system that tracks the sizes seen and creates one
|
|
1623 lcrecord list per size, indexed in a hash table. Usually there are only
|
|
1624 a limited number of sizes, so this works well.)
|
826
|
1625
|
1204
|
1626 -- "Hand-managed" exists because we haven't yet written the more
|
|
1627 sophisticated scheme for auto-handling different-sized lcrecords, as
|
|
1628 described in the end of the last paragraph. In this model, you go ahead
|
|
1629 and create the lcrecord-list objects yourself for the sizes you will
|
|
1630 need, using make_lcrecord_list(). Then, create lcrecords using
|
|
1631 alloc_managed_lcrecord(), passing in the lcrecord-list you created, and
|
|
1632 free them with free_managed_lcrecord().
|
|
1633
|
|
1634 -- "Unmanaged" means you simply allocate lcrecords, period. No
|
|
1635 lcrecord-lists, no way to free them. This may be suitable when the
|
|
1636 lcrecords are variable-sized and (a) you're too lazy to write the code
|
|
1637 to hand-manage them, or (b) the objects you create are always or almost
|
|
1638 always Lisp-visible, and thus there's no point in freeing them (and it
|
|
1639 wouldn't be safe to do so). You just create them with
|
3024
|
1640 BASIC_ALLOC_LCRECORD(), and that's it.
|
1204
|
1641
|
|
1642 --ben
|
|
1643
|
|
1644 Here is an in-depth look at the steps required to create a allocate an
|
|
1645 lcrecord using the hand-managed style. Since this is the most
|
|
1646 complicated, you will learn a lot about the other styles as well. In
|
|
1647 addition, there is useful general information about what freeing an
|
|
1648 lcrecord really entails, and what are the precautions:
|
|
1649
|
|
1650 1) Create an lcrecord-list object using make_lcrecord_list(). This is
|
|
1651 often done at initialization. Remember to staticpro_nodump() this
|
|
1652 object! The arguments to make_lcrecord_list() are the same as would be
|
3024
|
1653 passed to BASIC_ALLOC_LCRECORD().
|
428
|
1654
|
3024
|
1655 2) Instead of calling BASIC_ALLOC_LCRECORD(), call alloc_managed_lcrecord()
|
1204
|
1656 and pass the lcrecord-list earlier created.
|
|
1657
|
|
1658 3) When done with the lcrecord, call free_managed_lcrecord(). The
|
|
1659 standard freeing caveats apply: ** make sure there are no pointers to
|
|
1660 the object anywhere! **
|
|
1661
|
|
1662 4) Calling free_managed_lcrecord() is just like kissing the
|
|
1663 lcrecord goodbye as if it were garbage-collected. This means:
|
|
1664 -- the contents of the freed lcrecord are undefined, and the
|
|
1665 contents of something produced by alloc_managed_lcrecord()
|
3024
|
1666 are undefined, just like for BASIC_ALLOC_LCRECORD().
|
1204
|
1667 -- the mark method for the lcrecord's type will *NEVER* be called
|
|
1668 on freed lcrecords.
|
|
1669 -- the finalize method for the lcrecord's type will be called
|
|
1670 at the time that free_managed_lcrecord() is called.
|
|
1671 */
|
|
1672
|
|
1673 /* UNMANAGED MODEL: */
|
3024
|
1674 void *old_basic_alloc_lcrecord (Bytecount size,
|
|
1675 const struct lrecord_implementation *);
|
1204
|
1676
|
|
1677 /* HAND-MANAGED MODEL: */
|
|
1678 Lisp_Object make_lcrecord_list (Elemcount size,
|
|
1679 const struct lrecord_implementation
|
|
1680 *implementation);
|
|
1681 Lisp_Object alloc_managed_lcrecord (Lisp_Object lcrecord_list);
|
|
1682 void free_managed_lcrecord (Lisp_Object lcrecord_list, Lisp_Object lcrecord);
|
|
1683
|
|
1684 /* AUTO-MANAGED MODEL: */
|
1632
|
1685 MODULE_API void *
|
|
1686 alloc_automanaged_lcrecord (Bytecount size,
|
|
1687 const struct lrecord_implementation *);
|
3017
|
1688
|
3024
|
1689 #define old_alloc_lcrecord_type(type, lrecord_implementation) \
|
771
|
1690 ((type *) alloc_automanaged_lcrecord (sizeof (type), lrecord_implementation))
|
2720
|
1691
|
3024
|
1692 void old_free_lcrecord (Lisp_Object rec);
|
771
|
1693
|
428
|
1694
|
|
1695 /* Copy the data from one lcrecord structure into another, but don't
|
|
1696 overwrite the header information. */
|
|
1697
|
3024
|
1698 #define old_copy_sized_lcrecord(dst, src, size) \
|
|
1699 memcpy ((Rawbyte *) (dst) + sizeof (struct old_lcrecord_header), \
|
|
1700 (Rawbyte *) (src) + sizeof (struct old_lcrecord_header), \
|
|
1701 (size) - sizeof (struct old_lcrecord_header))
|
771
|
1702
|
3024
|
1703 #define old_copy_lcrecord(dst, src) \
|
|
1704 old_copy_sized_lcrecord (dst, src, sizeof (*(dst)))
|
428
|
1705
|
3024
|
1706 #define old_zero_sized_lcrecord(lcr, size) \
|
|
1707 memset ((Rawbyte *) (lcr) + sizeof (struct old_lcrecord_header), 0, \
|
|
1708 (size) - sizeof (struct old_lcrecord_header))
|
771
|
1709
|
3024
|
1710 #define old_zero_lcrecord(lcr) old_zero_sized_lcrecord (lcr, sizeof (*(lcr)))
|
1204
|
1711
|
3263
|
1712 #else /* NEW_GC */
|
2720
|
1713
|
|
1714 /* How to allocate a lrecord:
|
|
1715
|
|
1716 - If the size of the lrecord is fix, say it equals its size of its
|
|
1717 struct, then use alloc_lrecord_type.
|
|
1718
|
|
1719 - If the size varies, i.e. it is not equal to the size of its
|
|
1720 struct, use alloc_lrecord and specify the amount of storage you
|
|
1721 need for the object.
|
|
1722
|
|
1723 - Some lrecords, which are used totally internally, use the
|
|
1724 noseeum-* functions for the reason of debugging.
|
|
1725
|
|
1726 - To free a Lisp_Object manually, use free_lrecord. */
|
|
1727
|
|
1728 void *alloc_lrecord (Bytecount size,
|
|
1729 const struct lrecord_implementation *);
|
|
1730
|
3092
|
1731 void *alloc_lrecord_array (Bytecount size, int elemcount,
|
|
1732 const struct lrecord_implementation *);
|
|
1733
|
2720
|
1734 #define alloc_lrecord_type(type, lrecord_implementation) \
|
|
1735 ((type *) alloc_lrecord (sizeof (type), lrecord_implementation))
|
|
1736
|
|
1737 void *noseeum_alloc_lrecord (Bytecount size,
|
|
1738 const struct lrecord_implementation *);
|
|
1739
|
|
1740 #define noseeum_alloc_lrecord_type(type, lrecord_implementation) \
|
|
1741 ((type *) noseeum_alloc_lrecord (sizeof (type), lrecord_implementation))
|
|
1742
|
|
1743 void free_lrecord (Lisp_Object rec);
|
|
1744
|
|
1745
|
|
1746 /* Copy the data from one lrecord structure into another, but don't
|
|
1747 overwrite the header information. */
|
|
1748
|
|
1749 #define copy_sized_lrecord(dst, src, size) \
|
|
1750 memcpy ((char *) (dst) + sizeof (struct lrecord_header), \
|
|
1751 (char *) (src) + sizeof (struct lrecord_header), \
|
|
1752 (size) - sizeof (struct lrecord_header))
|
|
1753
|
|
1754 #define copy_lrecord(dst, src) copy_sized_lrecord (dst, src, sizeof (*(dst)))
|
|
1755
|
3263
|
1756 #endif /* NEW_GC */
|
3017
|
1757
|
2720
|
1758 #define zero_sized_lrecord(lcr, size) \
|
|
1759 memset ((char *) (lcr) + sizeof (struct lrecord_header), 0, \
|
|
1760 (size) - sizeof (struct lrecord_header))
|
|
1761
|
|
1762 #define zero_lrecord(lcr) zero_sized_lrecord (lcr, sizeof (*(lcr)))
|
|
1763
|
1204
|
1764 DECLARE_INLINE_HEADER (
|
|
1765 Bytecount
|
|
1766 detagged_lisp_object_size (const struct lrecord_header *h)
|
|
1767 )
|
|
1768 {
|
|
1769 const struct lrecord_implementation *imp = LHEADER_IMPLEMENTATION (h);
|
|
1770
|
|
1771 return (imp->size_in_bytes_method ?
|
|
1772 imp->size_in_bytes_method (h) :
|
|
1773 imp->static_size);
|
|
1774 }
|
|
1775
|
|
1776 DECLARE_INLINE_HEADER (
|
|
1777 Bytecount
|
|
1778 lisp_object_size (Lisp_Object o)
|
|
1779 )
|
|
1780 {
|
|
1781 return detagged_lisp_object_size (XRECORD_LHEADER (o));
|
|
1782 }
|
|
1783
|
|
1784
|
|
1785 /************************************************************************/
|
|
1786 /* Dumping */
|
|
1787 /************************************************************************/
|
|
1788
|
2367
|
1789 /* dump_add_root_block_ptr (&var, &desc) dumps the structure pointed to by
|
1204
|
1790 `var'. This is for a single relocatable pointer located in the data
|
2367
|
1791 segment (i.e. the block pointed to is in the heap).
|
|
1792
|
|
1793 If the structure pointed to is not a `struct' but an array, you should
|
|
1794 set the size field of the sized_memory_description to 0, and use
|
|
1795 XD_BLOCK_ARRAY in the inner memory_description.
|
|
1796
|
|
1797 NOTE that a "root struct pointer" could also be described using
|
|
1798 dump_add_root_block(), with SIZE == sizeof (void *), and a description
|
|
1799 containing a single XD_BLOCK_PTR entry, offset 0, size 1, with a
|
|
1800 structure description the same as the value passed to
|
|
1801 dump_add_root_block_ptr(). That would require an extra level of
|
|
1802 description, though, as compared to using dump_add_root_block_ptr(),
|
|
1803 and thus this function is generally more convenient.
|
|
1804 */
|
1204
|
1805 #ifdef PDUMP
|
2367
|
1806 void dump_add_root_block_ptr (void *, const struct sized_memory_description *);
|
1204
|
1807 #else
|
2367
|
1808 #define dump_add_root_block_ptr(varaddr, descaddr) DO_NOTHING
|
1204
|
1809 #endif
|
|
1810
|
|
1811 /* dump_add_opaque (&var, size) dumps the opaque static structure `var'.
|
|
1812 This is for a static block of memory (in the data segment, not the
|
|
1813 heap), with no relocatable pointers in it. */
|
|
1814 #ifdef PDUMP
|
|
1815 #define dump_add_opaque(varaddr,size) dump_add_root_block (varaddr, size, NULL)
|
|
1816 #else
|
|
1817 #define dump_add_opaque(varaddr,size) DO_NOTHING
|
|
1818 #endif
|
|
1819
|
|
1820 /* dump_add_root_block (ptr, size, desc) dumps the static structure
|
|
1821 located at `var' of size SIZE and described by DESC. This is for a
|
|
1822 static block of memory (in the data segment, not the heap), with
|
|
1823 relocatable pointers in it. */
|
|
1824 #ifdef PDUMP
|
|
1825 void dump_add_root_block (const void *ptraddress, Bytecount size,
|
|
1826 const struct memory_description *desc);
|
|
1827 #else
|
2367
|
1828 #define dump_add_root_block(ptraddress, size, desc) DO_NOTHING
|
1204
|
1829 #endif
|
|
1830
|
|
1831 /* Call dump_add_opaque_int (&int_var) to dump `int_var', of type `int'. */
|
|
1832 #ifdef PDUMP
|
|
1833 #define dump_add_opaque_int(int_varaddr) do { \
|
|
1834 int *dao_ = (int_varaddr); /* type check */ \
|
|
1835 dump_add_opaque (dao_, sizeof (*dao_)); \
|
|
1836 } while (0)
|
|
1837 #else
|
|
1838 #define dump_add_opaque_int(int_varaddr) DO_NOTHING
|
|
1839 #endif
|
|
1840
|
|
1841 /* Call dump_add_opaque_fixnum (&fixnum_var) to dump `fixnum_var', of type
|
|
1842 `Fixnum'. */
|
|
1843 #ifdef PDUMP
|
|
1844 #define dump_add_opaque_fixnum(fixnum_varaddr) do { \
|
|
1845 Fixnum *dao_ = (fixnum_varaddr); /* type check */ \
|
|
1846 dump_add_opaque (dao_, sizeof (*dao_)); \
|
|
1847 } while (0)
|
|
1848 #else
|
|
1849 #define dump_add_opaque_fixnum(fixnum_varaddr) DO_NOTHING
|
|
1850 #endif
|
|
1851
|
|
1852 /* Call dump_add_root_lisp_object (&var) to ensure that var is properly
|
|
1853 updated after pdump. */
|
|
1854 #ifdef PDUMP
|
|
1855 void dump_add_root_lisp_object (Lisp_Object *);
|
|
1856 #else
|
|
1857 #define dump_add_root_lisp_object(varaddr) DO_NOTHING
|
|
1858 #endif
|
|
1859
|
|
1860 /* Call dump_add_weak_lisp_object (&var) to ensure that var is properly
|
|
1861 updated after pdump. var must point to a linked list of objects out of
|
|
1862 which some may not be dumped */
|
|
1863 #ifdef PDUMP
|
|
1864 void dump_add_weak_object_chain (Lisp_Object *);
|
|
1865 #else
|
|
1866 #define dump_add_weak_object_chain(varaddr) DO_NOTHING
|
|
1867 #endif
|
|
1868
|
|
1869 /* Nonzero means Emacs has already been initialized.
|
|
1870 Used during startup to detect startup of dumped Emacs. */
|
1632
|
1871 extern MODULE_API int initialized;
|
1204
|
1872
|
|
1873 #ifdef PDUMP
|
1688
|
1874 #include "dumper.h"
|
3263
|
1875 #ifdef NEW_GC
|
2720
|
1876 #define DUMPEDP(adr) 0
|
3263
|
1877 #else /* not NEW_GC */
|
2367
|
1878 #define DUMPEDP(adr) ((((Rawbyte *) (adr)) < pdump_end) && \
|
|
1879 (((Rawbyte *) (adr)) >= pdump_start))
|
3263
|
1880 #endif /* not NEW_GC */
|
1204
|
1881 #else
|
|
1882 #define DUMPEDP(adr) 0
|
|
1883 #endif
|
|
1884
|
1330
|
1885 #define OBJECT_DUMPED_P(obj) DUMPEDP (XPNTR (obj))
|
|
1886
|
1204
|
1887 /***********************************************************************/
|
|
1888 /* data descriptions */
|
|
1889 /***********************************************************************/
|
|
1890
|
|
1891
|
|
1892 #if defined (USE_KKCC) || defined (PDUMP)
|
|
1893
|
|
1894 extern int in_pdump;
|
|
1895
|
|
1896 EMACS_INT lispdesc_indirect_count_1 (EMACS_INT code,
|
|
1897 const struct memory_description *idesc,
|
|
1898 const void *idata);
|
|
1899 const struct sized_memory_description *lispdesc_indirect_description_1
|
|
1900 (const void *obj, const struct sized_memory_description *sdesc);
|
2367
|
1901 Bytecount lispdesc_block_size_1 (const void *obj, Bytecount size,
|
|
1902 const struct memory_description *desc);
|
|
1903
|
|
1904 DECLARE_INLINE_HEADER (
|
|
1905 Bytecount lispdesc_block_size (const void *obj,
|
|
1906 const struct sized_memory_description *sdesc))
|
|
1907 {
|
|
1908 return lispdesc_block_size_1 (obj, sdesc->size, sdesc->description);
|
|
1909 }
|
1204
|
1910
|
|
1911 DECLARE_INLINE_HEADER (
|
|
1912 EMACS_INT
|
|
1913 lispdesc_indirect_count (EMACS_INT code,
|
|
1914 const struct memory_description *idesc,
|
|
1915 const void *idata)
|
|
1916 )
|
|
1917 {
|
|
1918 if (XD_IS_INDIRECT (code))
|
|
1919 code = lispdesc_indirect_count_1 (code, idesc, idata);
|
|
1920 return code;
|
|
1921 }
|
|
1922
|
|
1923 DECLARE_INLINE_HEADER (
|
|
1924 const struct sized_memory_description *
|
|
1925 lispdesc_indirect_description (const void *obj,
|
|
1926 const struct sized_memory_description *sdesc)
|
|
1927 )
|
|
1928 {
|
|
1929 if (sdesc->description)
|
|
1930 return sdesc;
|
|
1931 else
|
|
1932 return lispdesc_indirect_description_1 (obj, sdesc);
|
|
1933 }
|
|
1934
|
|
1935
|
|
1936 /* Do standard XD_UNION processing. DESC1 is an entry in DESC, which
|
|
1937 describes the entire data structure. Returns NULL (do nothing, nothing
|
|
1938 matched), or a new value for DESC1. In the latter case, assign to DESC1
|
|
1939 in your function and goto union_switcheroo. */
|
|
1940
|
|
1941 DECLARE_INLINE_HEADER (
|
|
1942 const struct memory_description *
|
|
1943 lispdesc_process_xd_union (const struct memory_description *desc1,
|
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1944 const struct memory_description *desc,
|
|
1945 const void *data)
|
|
1946 )
|
|
1947 {
|
|
1948 int count = 0;
|
|
1949 EMACS_INT variant = lispdesc_indirect_count (desc1->data1, desc,
|
|
1950 data);
|
|
1951 desc1 =
|
2551
|
1952 lispdesc_indirect_description (data, desc1->data2.descr)->description;
|
1204
|
1953
|
|
1954 for (count = 0; desc1[count].type != XD_END; count++)
|
|
1955 {
|
|
1956 if ((desc1[count].flags & XD_FLAG_UNION_DEFAULT_ENTRY) ||
|
|
1957 desc1[count].offset == variant)
|
|
1958 {
|
|
1959 return &desc1[count];
|
|
1960 }
|
|
1961 }
|
|
1962
|
|
1963 return NULL;
|
|
1964 }
|
|
1965
|
|
1966 #endif /* defined (USE_KKCC) || defined (PDUMP) */
|
428
|
1967
|
1743
|
1968 END_C_DECLS
|
1650
|
1969
|
440
|
1970 #endif /* INCLUDED_lrecord_h_ */
|