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  }