1 | /*
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2 | * CDDL HEADER START
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3 | *
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4 | * The contents of this file are subject to the terms of the
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5 | * Common Development and Distribution License (the "License").
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6 | * You may not use this file except in compliance with the License.
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7 | *
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8 | * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
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9 | * or http://www.opensolaris.org/os/licensing.
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10 | * See the License for the specific language governing permissions
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11 | * and limitations under the License.
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12 | *
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13 | * When distributing Covered Code, include this CDDL HEADER in each
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14 | * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
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15 | * If applicable, add the following below this CDDL HEADER, with the
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16 | * fields enclosed by brackets "[]" replaced with your own identifying
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17 | * information: Portions Copyright [yyyy] [name of copyright owner]
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18 | *
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19 | * CDDL HEADER END
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20 | */
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21 | /*
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22 | * Copyright 2009 Sun Microsystems, Inc. All rights reserved.
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23 | * Use is subject to license terms.
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24 | */
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25 |
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26 |
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27 | #include <sys/modctl.h>
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28 | #include <sys/sunddi.h>
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29 | #include <sys/dtrace.h>
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30 | #include <sys/kobj.h>
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31 | #include <sys/stat.h>
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32 | #include <sys/conf.h>
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33 | #include <vm/seg_kmem.h>
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34 | #include <sys/stack.h>
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35 | #include <sys/frame.h>
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36 | #include <sys/dtrace_impl.h>
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37 | #include <sys/cmn_err.h>
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38 | #include <sys/sysmacros.h>
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39 | #include <sys/privregs.h>
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40 | #include <sys/sdt_impl.h>
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41 |
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42 | #define SDT_PATCHVAL 0xf0
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43 | #define SDT_ADDR2NDX(addr) ((((uintptr_t)(addr)) >> 4) & sdt_probetab_mask)
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44 | #define SDT_PROBETAB_SIZE 0x1000 /* 4k entries -- 16K total */
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45 |
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46 | static dev_info_t *sdt_devi;
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47 | static int sdt_verbose = 0;
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48 | static sdt_probe_t **sdt_probetab;
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49 | static int sdt_probetab_size;
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50 | static int sdt_probetab_mask;
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51 |
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52 | /*ARGSUSED*/
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53 | static int
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54 | sdt_invop(uintptr_t addr, uintptr_t *stack, uintptr_t eax)
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55 | {
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56 | uintptr_t stack0, stack1, stack2, stack3, stack4;
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57 | int i = 0;
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58 | sdt_probe_t *sdt = sdt_probetab[SDT_ADDR2NDX(addr)];
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59 |
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60 | #ifdef __amd64
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61 | /*
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62 | * On amd64, stack[0] contains the dereferenced stack pointer,
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63 | * stack[1] contains savfp, stack[2] contains savpc. We want
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64 | * to step over these entries.
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65 | */
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66 | i += 3;
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67 | #endif
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68 |
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69 | for (; sdt != NULL; sdt = sdt->sdp_hashnext) {
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70 | if ((uintptr_t)sdt->sdp_patchpoint == addr) {
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71 | /*
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72 | * When accessing the arguments on the stack, we must
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73 | * protect against accessing beyond the stack. We can
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74 | * safely set NOFAULT here -- we know that interrupts
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75 | * are already disabled.
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76 | */
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77 | DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
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78 | stack0 = stack[i++];
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79 | stack1 = stack[i++];
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80 | stack2 = stack[i++];
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81 | stack3 = stack[i++];
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82 | stack4 = stack[i++];
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83 | DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT |
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84 | CPU_DTRACE_BADADDR);
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85 |
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86 | dtrace_probe(sdt->sdp_id, stack0, stack1,
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87 | stack2, stack3, stack4);
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88 |
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89 | return (DTRACE_INVOP_NOP);
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90 | }
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91 | }
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92 |
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93 | return (0);
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94 | }
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95 |
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96 | /*ARGSUSED*/
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97 | static void
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98 | sdt_provide_module(void *arg, struct modctl *ctl)
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99 | {
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100 | struct module *mp = ctl->mod_mp;
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101 | char *modname = ctl->mod_modname;
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102 | sdt_probedesc_t *sdpd;
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103 | sdt_probe_t *sdp, *old;
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104 | sdt_provider_t *prov;
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105 | int len;
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106 |
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107 | /*
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108 | * One for all, and all for one: if we haven't yet registered all of
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109 | * our providers, we'll refuse to provide anything.
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110 | */
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111 | for (prov = sdt_providers; prov->sdtp_name != NULL; prov++) {
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112 | if (prov->sdtp_id == DTRACE_PROVNONE)
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113 | return;
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114 | }
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115 |
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116 | if (mp->sdt_nprobes != 0 || (sdpd = mp->sdt_probes) == NULL)
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117 | return;
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118 |
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119 | for (sdpd = mp->sdt_probes; sdpd != NULL; sdpd = sdpd->sdpd_next) {
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120 | char *name = sdpd->sdpd_name, *func, *nname;
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121 | int i, j;
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122 | sdt_provider_t *prov;
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123 | ulong_t offs;
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124 | dtrace_id_t id;
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125 |
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126 | for (prov = sdt_providers; prov->sdtp_prefix != NULL; prov++) {
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127 | char *prefix = prov->sdtp_prefix;
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128 |
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129 | if (strncmp(name, prefix, strlen(prefix)) == 0) {
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130 | name += strlen(prefix);
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131 | break;
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132 | }
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133 | }
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134 |
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135 | nname = kmem_alloc(len = strlen(name) + 1, KM_SLEEP);
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136 |
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137 | for (i = 0, j = 0; name[j] != '\0'; i++) {
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138 | if (name[j] == '_' && name[j + 1] == '_') {
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139 | nname[i] = '-';
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140 | j += 2;
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141 | } else {
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142 | nname[i] = name[j++];
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143 | }
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144 | }
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145 |
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146 | nname[i] = '\0';
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147 |
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148 | sdp = kmem_zalloc(sizeof (sdt_probe_t), KM_SLEEP);
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149 | sdp->sdp_loadcnt = ctl->mod_loadcnt;
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150 | sdp->sdp_ctl = ctl;
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151 | sdp->sdp_name = nname;
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152 | sdp->sdp_namelen = len;
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153 | sdp->sdp_provider = prov;
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154 |
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155 | func = kobj_searchsym(mp, sdpd->sdpd_offset, &offs);
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156 |
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157 | if (func == NULL)
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158 | func = "<unknown>";
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159 |
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160 | /*
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161 | * We have our provider. Now create the probe.
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162 | */
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163 | if ((id = dtrace_probe_lookup(prov->sdtp_id, modname,
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164 | func, nname)) != DTRACE_IDNONE) {
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165 | old = dtrace_probe_arg(prov->sdtp_id, id);
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166 | ASSERT(old != NULL);
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167 |
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168 | sdp->sdp_next = old->sdp_next;
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169 | sdp->sdp_id = id;
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170 | old->sdp_next = sdp;
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171 | } else {
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172 | sdp->sdp_id = dtrace_probe_create(prov->sdtp_id,
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173 | modname, func, nname, 3, sdp);
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174 |
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175 | mp->sdt_nprobes++;
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176 | }
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177 |
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178 | sdp->sdp_hashnext =
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179 | sdt_probetab[SDT_ADDR2NDX(sdpd->sdpd_offset)];
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180 | sdt_probetab[SDT_ADDR2NDX(sdpd->sdpd_offset)] = sdp;
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181 |
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182 | sdp->sdp_patchval = SDT_PATCHVAL;
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183 | sdp->sdp_patchpoint = (uint8_t *)sdpd->sdpd_offset;
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184 | sdp->sdp_savedval = *sdp->sdp_patchpoint;
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185 | }
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186 | }
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187 |
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188 | /*ARGSUSED*/
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189 | static void
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190 | sdt_destroy(void *arg, dtrace_id_t id, void *parg)
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191 | {
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192 | sdt_probe_t *sdp = parg, *old, *last, *hash;
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193 | struct modctl *ctl = sdp->sdp_ctl;
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194 | int ndx;
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195 |
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196 | if (ctl != NULL && ctl->mod_loadcnt == sdp->sdp_loadcnt) {
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197 | if ((ctl->mod_loadcnt == sdp->sdp_loadcnt &&
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198 | ctl->mod_loaded)) {
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199 | ((struct module *)(ctl->mod_mp))->sdt_nprobes--;
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200 | }
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201 | }
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202 |
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203 | while (sdp != NULL) {
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204 | old = sdp;
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205 |
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206 | /*
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207 | * Now we need to remove this probe from the sdt_probetab.
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208 | */
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209 | ndx = SDT_ADDR2NDX(sdp->sdp_patchpoint);
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210 | last = NULL;
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211 | hash = sdt_probetab[ndx];
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212 |
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213 | while (hash != sdp) {
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214 | ASSERT(hash != NULL);
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215 | last = hash;
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216 | hash = hash->sdp_hashnext;
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217 | }
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218 |
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219 | if (last != NULL) {
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220 | last->sdp_hashnext = sdp->sdp_hashnext;
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221 | } else {
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222 | sdt_probetab[ndx] = sdp->sdp_hashnext;
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223 | }
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224 |
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225 | kmem_free(sdp->sdp_name, sdp->sdp_namelen);
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226 | sdp = sdp->sdp_next;
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227 | kmem_free(old, sizeof (sdt_probe_t));
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228 | }
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229 | }
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230 |
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231 | /*ARGSUSED*/
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232 | static int
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233 | sdt_enable(void *arg, dtrace_id_t id, void *parg)
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234 | {
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235 | sdt_probe_t *sdp = parg;
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236 | struct modctl *ctl = sdp->sdp_ctl;
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237 |
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238 | ctl->mod_nenabled++;
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239 |
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240 | /*
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241 | * If this module has disappeared since we discovered its probes,
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242 | * refuse to enable it.
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243 | */
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244 | if (!ctl->mod_loaded) {
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245 | if (sdt_verbose) {
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246 | cmn_err(CE_NOTE, "sdt is failing for probe %s "
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247 | "(module %s unloaded)",
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248 | sdp->sdp_name, ctl->mod_modname);
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249 | }
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250 | goto err;
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251 | }
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252 |
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253 | /*
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254 | * Now check that our modctl has the expected load count. If it
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255 | * doesn't, this module must have been unloaded and reloaded -- and
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256 | * we're not going to touch it.
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257 | */
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258 | if (ctl->mod_loadcnt != sdp->sdp_loadcnt) {
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259 | if (sdt_verbose) {
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260 | cmn_err(CE_NOTE, "sdt is failing for probe %s "
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261 | "(module %s reloaded)",
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262 | sdp->sdp_name, ctl->mod_modname);
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263 | }
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264 | goto err;
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265 | }
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266 |
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267 | while (sdp != NULL) {
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268 | *sdp->sdp_patchpoint = sdp->sdp_patchval;
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269 | sdp = sdp->sdp_next;
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270 | }
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271 | err:
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272 | return (0);
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273 | }
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274 |
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275 | /*ARGSUSED*/
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276 | static void
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277 | sdt_disable(void *arg, dtrace_id_t id, void *parg)
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278 | {
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279 | sdt_probe_t *sdp = parg;
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280 | struct modctl *ctl = sdp->sdp_ctl;
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281 |
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282 | ctl->mod_nenabled--;
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283 |
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284 | if (!ctl->mod_loaded || ctl->mod_loadcnt != sdp->sdp_loadcnt)
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285 | goto err;
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286 |
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287 | while (sdp != NULL) {
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288 | *sdp->sdp_patchpoint = sdp->sdp_savedval;
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289 | sdp = sdp->sdp_next;
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290 | }
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291 |
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292 | err:
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293 | ;
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294 | }
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295 |
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296 | /*ARGSUSED*/
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297 | uint64_t
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298 | sdt_getarg(void *arg, dtrace_id_t id, void *parg, int argno, int aframes)
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299 | {
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300 | uintptr_t val;
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301 | struct frame *fp = (struct frame *)dtrace_getfp();
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302 | uintptr_t *stack;
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303 | int i;
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304 | #if defined(__amd64)
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305 | /*
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306 | * A total of 6 arguments are passed via registers; any argument with
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307 | * index of 5 or lower is therefore in a register.
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308 | */
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309 | int inreg = 5;
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310 | #endif
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311 |
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312 | for (i = 1; i <= aframes; i++) {
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313 | fp = (struct frame *)(fp->fr_savfp);
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314 |
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315 | if (fp->fr_savpc == (pc_t)dtrace_invop_callsite) {
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316 | #if !defined(__amd64)
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317 | /*
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318 | * If we pass through the invalid op handler, we will
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319 | * use the pointer that it passed to the stack as the
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320 | * second argument to dtrace_invop() as the pointer to
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321 | * the stack.
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322 | */
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323 | stack = ((uintptr_t **)&fp[1])[1];
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324 | #else
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325 | /*
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326 | * In the case of amd64, we will use the pointer to the
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327 | * regs structure that was pushed when we took the
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328 | * trap. To get this structure, we must increment
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329 | * beyond the frame structure. If the argument that
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330 | * we're seeking is passed on the stack, we'll pull
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331 | * the true stack pointer out of the saved registers
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332 | * and decrement our argument by the number of
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333 | * arguments passed in registers; if the argument
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334 | * we're seeking is passed in regsiters, we can just
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335 | * load it directly.
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336 | */
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337 | struct regs *rp = (struct regs *)((uintptr_t)&fp[1] +
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338 | sizeof (uintptr_t));
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339 |
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340 | if (argno <= inreg) {
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341 | stack = (uintptr_t *)&rp->r_rdi;
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342 | } else {
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343 | stack = (uintptr_t *)(rp->r_rsp);
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344 | argno -= (inreg + 1);
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345 | }
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346 | #endif
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347 | goto load;
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348 | }
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349 | }
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350 |
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351 | /*
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352 | * We know that we did not come through a trap to get into
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353 | * dtrace_probe() -- the provider simply called dtrace_probe()
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354 | * directly. As this is the case, we need to shift the argument
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355 | * that we're looking for: the probe ID is the first argument to
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356 | * dtrace_probe(), so the argument n will actually be found where
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357 | * one would expect to find argument (n + 1).
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358 | */
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359 | argno++;
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360 |
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361 | #if defined(__amd64)
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362 | if (argno <= inreg) {
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363 | /*
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364 | * This shouldn't happen. If the argument is passed in a
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365 | * register then it should have been, well, passed in a
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366 | * register...
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367 | */
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368 | DTRACE_CPUFLAG_SET(CPU_DTRACE_ILLOP);
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369 | return (0);
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370 | }
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371 |
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372 | argno -= (inreg + 1);
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373 | #endif
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374 | stack = (uintptr_t *)&fp[1];
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375 |
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376 | load:
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377 | DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
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378 | val = stack[argno];
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379 | DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
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380 |
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381 | return (val);
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382 | }
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383 |
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384 | static dtrace_pops_t sdt_pops = {
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385 | NULL,
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386 | sdt_provide_module,
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387 | sdt_enable,
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388 | sdt_disable,
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389 | NULL,
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390 | NULL,
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391 | sdt_getargdesc,
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392 | sdt_getarg,
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393 | NULL,
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394 | sdt_destroy
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395 | };
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396 |
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397 | /*ARGSUSED*/
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398 | static int
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399 | sdt_attach(dev_info_t *devi, ddi_attach_cmd_t cmd)
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400 | {
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401 | sdt_provider_t *prov;
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402 |
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403 | if (ddi_create_minor_node(devi, "sdt", S_IFCHR,
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404 | 0, DDI_PSEUDO, NULL) == DDI_FAILURE) {
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405 | cmn_err(CE_NOTE, "/dev/sdt couldn't create minor node");
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406 | ddi_remove_minor_node(devi, NULL);
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407 | return (DDI_FAILURE);
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408 | }
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409 |
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410 | ddi_report_dev(devi);
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411 | sdt_devi = devi;
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412 |
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413 | if (sdt_probetab_size == 0)
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414 | sdt_probetab_size = SDT_PROBETAB_SIZE;
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415 |
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416 | sdt_probetab_mask = sdt_probetab_size - 1;
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417 | sdt_probetab =
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418 | kmem_zalloc(sdt_probetab_size * sizeof (sdt_probe_t *), KM_SLEEP);
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419 | dtrace_invop_add(sdt_invop);
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420 |
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421 | for (prov = sdt_providers; prov->sdtp_name != NULL; prov++) {
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422 | if (dtrace_register(prov->sdtp_name, prov->sdtp_attr,
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423 | DTRACE_PRIV_KERNEL, NULL,
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424 | &sdt_pops, prov, &prov->sdtp_id) != 0) {
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425 | cmn_err(CE_WARN, "failed to register sdt provider %s",
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426 | prov->sdtp_name);
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427 | }
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428 | }
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429 |
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430 | return (DDI_SUCCESS);
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431 | }
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432 |
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433 | /*ARGSUSED*/
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434 | static int
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435 | sdt_detach(dev_info_t *dip, ddi_detach_cmd_t cmd)
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436 | {
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437 | sdt_provider_t *prov;
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438 |
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439 | switch (cmd) {
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440 | case DDI_DETACH:
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441 | break;
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442 |
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443 | case DDI_SUSPEND:
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444 | return (DDI_SUCCESS);
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445 |
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446 | default:
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447 | return (DDI_FAILURE);
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448 | }
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449 |
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450 | for (prov = sdt_providers; prov->sdtp_name != NULL; prov++) {
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451 | if (prov->sdtp_id != DTRACE_PROVNONE) {
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452 | if (dtrace_unregister(prov->sdtp_id) != 0)
|
---|
453 | return (DDI_FAILURE);
|
---|
454 |
|
---|
455 | prov->sdtp_id = DTRACE_PROVNONE;
|
---|
456 | }
|
---|
457 | }
|
---|
458 |
|
---|
459 | dtrace_invop_remove(sdt_invop);
|
---|
460 | kmem_free(sdt_probetab, sdt_probetab_size * sizeof (sdt_probe_t *));
|
---|
461 |
|
---|
462 | return (DDI_SUCCESS);
|
---|
463 | }
|
---|
464 |
|
---|
465 | /*ARGSUSED*/
|
---|
466 | static int
|
---|
467 | sdt_info(dev_info_t *dip, ddi_info_cmd_t infocmd, void *arg, void **result)
|
---|
468 | {
|
---|
469 | int error;
|
---|
470 |
|
---|
471 | switch (infocmd) {
|
---|
472 | case DDI_INFO_DEVT2DEVINFO:
|
---|
473 | *result = (void *)sdt_devi;
|
---|
474 | error = DDI_SUCCESS;
|
---|
475 | break;
|
---|
476 | case DDI_INFO_DEVT2INSTANCE:
|
---|
477 | *result = (void *)0;
|
---|
478 | error = DDI_SUCCESS;
|
---|
479 | break;
|
---|
480 | default:
|
---|
481 | error = DDI_FAILURE;
|
---|
482 | }
|
---|
483 | return (error);
|
---|
484 | }
|
---|
485 |
|
---|
486 | /*ARGSUSED*/
|
---|
487 | static int
|
---|
488 | sdt_open(dev_t *devp, int flag, int otyp, cred_t *cred_p)
|
---|
489 | {
|
---|
490 | return (0);
|
---|
491 | }
|
---|
492 |
|
---|
493 | static struct cb_ops sdt_cb_ops = {
|
---|
494 | sdt_open, /* open */
|
---|
495 | nodev, /* close */
|
---|
496 | nulldev, /* strategy */
|
---|
497 | nulldev, /* print */
|
---|
498 | nodev, /* dump */
|
---|
499 | nodev, /* read */
|
---|
500 | nodev, /* write */
|
---|
501 | nodev, /* ioctl */
|
---|
502 | nodev, /* devmap */
|
---|
503 | nodev, /* mmap */
|
---|
504 | nodev, /* segmap */
|
---|
505 | nochpoll, /* poll */
|
---|
506 | ddi_prop_op, /* cb_prop_op */
|
---|
507 | 0, /* streamtab */
|
---|
508 | D_NEW | D_MP /* Driver compatibility flag */
|
---|
509 | };
|
---|
510 |
|
---|
511 | static struct dev_ops sdt_ops = {
|
---|
512 | DEVO_REV, /* devo_rev, */
|
---|
513 | 0, /* refcnt */
|
---|
514 | sdt_info, /* get_dev_info */
|
---|
515 | nulldev, /* identify */
|
---|
516 | nulldev, /* probe */
|
---|
517 | sdt_attach, /* attach */
|
---|
518 | sdt_detach, /* detach */
|
---|
519 | nodev, /* reset */
|
---|
520 | &sdt_cb_ops, /* driver operations */
|
---|
521 | NULL, /* bus operations */
|
---|
522 | nodev, /* dev power */
|
---|
523 | ddi_quiesce_not_needed, /* quiesce */
|
---|
524 | };
|
---|
525 |
|
---|
526 | /*
|
---|
527 | * Module linkage information for the kernel.
|
---|
528 | */
|
---|
529 | static struct modldrv modldrv = {
|
---|
530 | &mod_driverops, /* module type (this is a pseudo driver) */
|
---|
531 | "Statically Defined Tracing", /* name of module */
|
---|
532 | &sdt_ops, /* driver ops */
|
---|
533 | };
|
---|
534 |
|
---|
535 | static struct modlinkage modlinkage = {
|
---|
536 | MODREV_1,
|
---|
537 | (void *)&modldrv,
|
---|
538 | NULL
|
---|
539 | };
|
---|
540 |
|
---|
541 | int
|
---|
542 | _init(void)
|
---|
543 | {
|
---|
544 | return (mod_install(&modlinkage));
|
---|
545 | }
|
---|
546 |
|
---|
547 | int
|
---|
548 | _info(struct modinfo *modinfop)
|
---|
549 | {
|
---|
550 | return (mod_info(&modlinkage, modinfop));
|
---|
551 | }
|
---|
552 |
|
---|
553 | int
|
---|
554 | _fini(void)
|
---|
555 | {
|
---|
556 | return (mod_remove(&modlinkage));
|
---|
557 | }
|
---|