github.com/FenixAra/go@v0.0.0-20170127160404-96ea0918e670/src/cmd/internal/obj/pcln.go (about) 1 // Copyright 2013 The Go Authors. All rights reserved. 2 // Use of this source code is governed by a BSD-style 3 // license that can be found in the LICENSE file. 4 5 package obj 6 7 import "log" 8 9 func addvarint(d *Pcdata, v uint32) { 10 for ; v >= 0x80; v >>= 7 { 11 d.P = append(d.P, uint8(v|0x80)) 12 } 13 d.P = append(d.P, uint8(v)) 14 } 15 16 // funcpctab writes to dst a pc-value table mapping the code in func to the values 17 // returned by valfunc parameterized by arg. The invocation of valfunc to update the 18 // current value is, for each p, 19 // 20 // val = valfunc(func, val, p, 0, arg); 21 // record val as value at p->pc; 22 // val = valfunc(func, val, p, 1, arg); 23 // 24 // where func is the function, val is the current value, p is the instruction being 25 // considered, and arg can be used to further parameterize valfunc. 26 func funcpctab(ctxt *Link, dst *Pcdata, func_ *LSym, desc string, valfunc func(*Link, *LSym, int32, *Prog, int32, interface{}) int32, arg interface{}) { 27 // To debug a specific function, uncomment lines and change name. 28 dbg := 0 29 30 //if func_.Name == "main.main" || desc == "pctospadj" { 31 // dbg = 1 32 //} 33 34 ctxt.Debugpcln += int32(dbg) 35 36 dst.P = dst.P[:0] 37 38 if ctxt.Debugpcln != 0 { 39 ctxt.Logf("funcpctab %s [valfunc=%s]\n", func_.Name, desc) 40 } 41 42 val := int32(-1) 43 oldval := val 44 if func_.Text == nil { 45 ctxt.Debugpcln -= int32(dbg) 46 return 47 } 48 49 pc := func_.Text.Pc 50 51 if ctxt.Debugpcln != 0 { 52 ctxt.Logf("%6x %6d %v\n", uint64(pc), val, func_.Text) 53 } 54 55 started := int32(0) 56 var delta uint32 57 for p := func_.Text; p != nil; p = p.Link { 58 // Update val. If it's not changing, keep going. 59 val = valfunc(ctxt, func_, val, p, 0, arg) 60 61 if val == oldval && started != 0 { 62 val = valfunc(ctxt, func_, val, p, 1, arg) 63 if ctxt.Debugpcln != 0 { 64 ctxt.Logf("%6x %6s %v\n", uint64(p.Pc), "", p) 65 } 66 continue 67 } 68 69 // If the pc of the next instruction is the same as the 70 // pc of this instruction, this instruction is not a real 71 // instruction. Keep going, so that we only emit a delta 72 // for a true instruction boundary in the program. 73 if p.Link != nil && p.Link.Pc == p.Pc { 74 val = valfunc(ctxt, func_, val, p, 1, arg) 75 if ctxt.Debugpcln != 0 { 76 ctxt.Logf("%6x %6s %v\n", uint64(p.Pc), "", p) 77 } 78 continue 79 } 80 81 // The table is a sequence of (value, pc) pairs, where each 82 // pair states that the given value is in effect from the current position 83 // up to the given pc, which becomes the new current position. 84 // To generate the table as we scan over the program instructions, 85 // we emit a "(value" when pc == func->value, and then 86 // each time we observe a change in value we emit ", pc) (value". 87 // When the scan is over, we emit the closing ", pc)". 88 // 89 // The table is delta-encoded. The value deltas are signed and 90 // transmitted in zig-zag form, where a complement bit is placed in bit 0, 91 // and the pc deltas are unsigned. Both kinds of deltas are sent 92 // as variable-length little-endian base-128 integers, 93 // where the 0x80 bit indicates that the integer continues. 94 95 if ctxt.Debugpcln != 0 { 96 ctxt.Logf("%6x %6d %v\n", uint64(p.Pc), val, p) 97 } 98 99 if started != 0 { 100 addvarint(dst, uint32((p.Pc-pc)/int64(ctxt.Arch.MinLC))) 101 pc = p.Pc 102 } 103 104 delta = uint32(val) - uint32(oldval) 105 if delta>>31 != 0 { 106 delta = 1 | ^(delta << 1) 107 } else { 108 delta <<= 1 109 } 110 addvarint(dst, delta) 111 oldval = val 112 started = 1 113 val = valfunc(ctxt, func_, val, p, 1, arg) 114 } 115 116 if started != 0 { 117 if ctxt.Debugpcln != 0 { 118 ctxt.Logf("%6x done\n", uint64(func_.Text.Pc+func_.Size)) 119 } 120 addvarint(dst, uint32((func_.Size-pc)/int64(ctxt.Arch.MinLC))) 121 addvarint(dst, 0) // terminator 122 } 123 124 if ctxt.Debugpcln != 0 { 125 ctxt.Logf("wrote %d bytes to %p\n", len(dst.P), dst) 126 for i := 0; i < len(dst.P); i++ { 127 ctxt.Logf(" %02x", dst.P[i]) 128 } 129 ctxt.Logf("\n") 130 } 131 132 ctxt.Debugpcln -= int32(dbg) 133 } 134 135 // pctofileline computes either the file number (arg == 0) 136 // or the line number (arg == 1) to use at p. 137 // Because p->lineno applies to p, phase == 0 (before p) 138 // takes care of the update. 139 func pctofileline(ctxt *Link, sym *LSym, oldval int32, p *Prog, phase int32, arg interface{}) int32 { 140 if p.As == ATEXT || p.As == ANOP || p.As == AUSEFIELD || p.Lineno == 0 || phase == 1 { 141 return oldval 142 } 143 f, l := linkgetline(ctxt, p.Lineno) 144 if f == nil { 145 // print("getline failed for %s %v\n", ctxt->cursym->name, p); 146 return oldval 147 } 148 149 if arg == nil { 150 return l 151 } 152 pcln := arg.(*Pcln) 153 154 if f == pcln.Lastfile { 155 return int32(pcln.Lastindex) 156 } 157 158 for i, file := range pcln.File { 159 if file == f { 160 pcln.Lastfile = f 161 pcln.Lastindex = i 162 return int32(i) 163 } 164 } 165 i := len(pcln.File) 166 pcln.File = append(pcln.File, f) 167 pcln.Lastfile = f 168 pcln.Lastindex = i 169 return int32(i) 170 } 171 172 // pctospadj computes the sp adjustment in effect. 173 // It is oldval plus any adjustment made by p itself. 174 // The adjustment by p takes effect only after p, so we 175 // apply the change during phase == 1. 176 func pctospadj(ctxt *Link, sym *LSym, oldval int32, p *Prog, phase int32, arg interface{}) int32 { 177 if oldval == -1 { // starting 178 oldval = 0 179 } 180 if phase == 0 { 181 return oldval 182 } 183 if oldval+p.Spadj < -10000 || oldval+p.Spadj > 1100000000 { 184 ctxt.Diag("overflow in spadj: %d + %d = %d", oldval, p.Spadj, oldval+p.Spadj) 185 log.Fatalf("bad code") 186 } 187 188 return oldval + p.Spadj 189 } 190 191 // pctopcdata computes the pcdata value in effect at p. 192 // A PCDATA instruction sets the value in effect at future 193 // non-PCDATA instructions. 194 // Since PCDATA instructions have no width in the final code, 195 // it does not matter which phase we use for the update. 196 func pctopcdata(ctxt *Link, sym *LSym, oldval int32, p *Prog, phase int32, arg interface{}) int32 { 197 if phase == 0 || p.As != APCDATA || p.From.Offset != int64(arg.(uint32)) { 198 return oldval 199 } 200 if int64(int32(p.To.Offset)) != p.To.Offset { 201 ctxt.Diag("overflow in PCDATA instruction: %v", p) 202 log.Fatalf("bad code") 203 } 204 205 return int32(p.To.Offset) 206 } 207 208 func linkpcln(ctxt *Link, cursym *LSym) { 209 ctxt.Cursym = cursym 210 211 pcln := new(Pcln) 212 cursym.Pcln = pcln 213 214 npcdata := 0 215 nfuncdata := 0 216 for p := cursym.Text; p != nil; p = p.Link { 217 // Find the highest ID of any used PCDATA table. This ignores PCDATA table 218 // that consist entirely of "-1", since that's the assumed default value. 219 // From.Offset is table ID 220 // To.Offset is data 221 if p.As == APCDATA && p.From.Offset >= int64(npcdata) && p.To.Offset != -1 { // ignore -1 as we start at -1, if we only see -1, nothing changed 222 npcdata = int(p.From.Offset + 1) 223 } 224 // Find the highest ID of any FUNCDATA table. 225 // From.Offset is table ID 226 if p.As == AFUNCDATA && p.From.Offset >= int64(nfuncdata) { 227 nfuncdata = int(p.From.Offset + 1) 228 } 229 } 230 231 pcln.Pcdata = make([]Pcdata, npcdata) 232 pcln.Pcdata = pcln.Pcdata[:npcdata] 233 pcln.Funcdata = make([]*LSym, nfuncdata) 234 pcln.Funcdataoff = make([]int64, nfuncdata) 235 pcln.Funcdataoff = pcln.Funcdataoff[:nfuncdata] 236 237 funcpctab(ctxt, &pcln.Pcsp, cursym, "pctospadj", pctospadj, nil) 238 funcpctab(ctxt, &pcln.Pcfile, cursym, "pctofile", pctofileline, pcln) 239 funcpctab(ctxt, &pcln.Pcline, cursym, "pctoline", pctofileline, nil) 240 241 // tabulate which pc and func data we have. 242 havepc := make([]uint32, (npcdata+31)/32) 243 havefunc := make([]uint32, (nfuncdata+31)/32) 244 for p := cursym.Text; p != nil; p = p.Link { 245 if p.As == AFUNCDATA { 246 if (havefunc[p.From.Offset/32]>>uint64(p.From.Offset%32))&1 != 0 { 247 ctxt.Diag("multiple definitions for FUNCDATA $%d", p.From.Offset) 248 } 249 havefunc[p.From.Offset/32] |= 1 << uint64(p.From.Offset%32) 250 } 251 252 if p.As == APCDATA && p.To.Offset != -1 { 253 havepc[p.From.Offset/32] |= 1 << uint64(p.From.Offset%32) 254 } 255 } 256 257 // pcdata. 258 for i := 0; i < npcdata; i++ { 259 if (havepc[i/32]>>uint(i%32))&1 == 0 { 260 continue 261 } 262 funcpctab(ctxt, &pcln.Pcdata[i], cursym, "pctopcdata", pctopcdata, interface{}(uint32(i))) 263 } 264 265 // funcdata 266 if nfuncdata > 0 { 267 var i int 268 for p := cursym.Text; p != nil; p = p.Link { 269 if p.As == AFUNCDATA { 270 i = int(p.From.Offset) 271 pcln.Funcdataoff[i] = p.To.Offset 272 if p.To.Type != TYPE_CONST { 273 // TODO: Dedup. 274 //funcdata_bytes += p->to.sym->size; 275 pcln.Funcdata[i] = p.To.Sym 276 } 277 } 278 } 279 } 280 }