Conforming code segment correction

This commit is contained in:
Jeff Parsons 2016-03-15 23:48:27 -07:00
commit 410bcb60c9
6 changed files with 107 additions and 56 deletions

View file

@ -3298,7 +3298,7 @@ if (DEBUGGER) {
if (!seg) return; if (!seg) return;
var sDump = ""; var sDump = "";
var type = seg.type & ~X86.DESC.ACC.TSS_BUSY; var type = seg.type & ~X86.DESC.ACC.TYPE.TSS_BUSY;
var cch = (type == X86.DESC.ACC.TYPE.TSS286? 4 : 8); var cch = (type == X86.DESC.ACC.TYPE.TSS286? 4 : 8);
var aTSSFields = (type == X86.DESC.ACC.TYPE.TSS286? Debugger.TSS286 : Debugger.TSS386); var aTSSFields = (type == X86.DESC.ACC.TYPE.TSS286? Debugger.TSS286 : Debugger.TSS386);
var off, addr, v; var off, addr, v;
@ -4206,6 +4206,15 @@ if (DEBUGGER) {
} }
this.chipset.acTimer0Counts = []; this.chipset.acTimer0Counts = [];
} }
} else {
if (this.messageEnabled(Messages.HALT)) {
/*
* It's possible the user is trying to 'g' past a fault that was blocked by helpCheckFault()
* for the Debugger's benefit; if so, it will continue to be blocked, so try displaying a helpful
* message (another helpful tip would be to simply turn off the "halt" message category).
*/
sStopped += " (use the 't' command to execute blocked faults)";
}
} }
this.println(sStopped); this.println(sStopped);
} }

View file

@ -219,6 +219,11 @@ var X86 = {
WRITABLE: 0x0200, // DATA: set if writable, clear if read-only WRITABLE: 0x0200, // DATA: set if writable, clear if read-only
CONFORMING: 0x0400, // CODE: set if conforming, clear if not CONFORMING: 0x0400, // CODE: set if conforming, clear if not
EXPDOWN: 0x0400, // DATA: set if expand-down, clear if not EXPDOWN: 0x0400, // DATA: set if expand-down, clear if not
/*
* Assorted bits that apply only within NONSEG values
*/
TSS_BUSY: 0x0200,
NONSEG_386: 0x0800, // 80386 and up
/* /*
* The following are all the possible (valid) types (well, except for the variations * The following are all the possible (valid) types (well, except for the variations
* of DATA and CODE where the ACCESSED bit (0x0100) may also be set) * of DATA and CODE where the ACCESSED bit (0x0100) may also be set)
@ -244,11 +249,6 @@ var X86 = {
CODE_CONFORMING: 0x1C00, CODE_CONFORMING: 0x1C00,
CODE_CONFORMING_READABLE: 0x1E00 CODE_CONFORMING_READABLE: 0x1E00
}, },
/*
* Assorted ACC bits within NONSEG values
*/
TSS_BUSY: 0x0200,
NONSEG_386: 0x0800, // 80386 and up
DPL: { DPL: {
MASK: 0x6000, MASK: 0x6000,
SHIFT: 13 SHIFT: 13

View file

@ -2216,7 +2216,7 @@ X86CPU.prototype.setLIP = function(addr)
* never set without an accompanying IP (well, except for a few undocumented instructions, like POP CS, which * never set without an accompanying IP (well, except for a few undocumented instructions, like POP CS, which
* were available ONLY on the 8086/8088/80186/80188; see setCS() for details). * were available ONLY on the 8086/8088/80186/80188; see setCS() for details).
* *
* And even though this function is called setCSIP(), please note the order of the parameters is IP,CS, * And even though this function is called setCSIP(), please note the order of the parameters is [IP,CS],
* which matches the order that CS:IP values are normally stored in memory, allowing us to make calls like this: * which matches the order that CS:IP values are normally stored in memory, allowing us to make calls like this:
* *
* this.setCSIP(this.popWord(), this.popWord()); * this.setCSIP(this.popWord(), this.popWord());
@ -2225,7 +2225,7 @@ X86CPU.prototype.setLIP = function(addr)
* @param {number} off * @param {number} off
* @param {number} sel * @param {number} sel
* @param {boolean} [fCall] is true if CALLF in progress, false if RETF/IRET in progress, undefined otherwise * @param {boolean} [fCall] is true if CALLF in progress, false if RETF/IRET in progress, undefined otherwise
* @return {boolean|null} true if a stack switch occurred; the only opcode that really needs to pay attention is opRETFn() * @return {boolean|null} true if a stack switch occurred; the only operation that needs to pay attention is opRETFn()
*/ */
X86CPU.prototype.setCSIP = function(off, sel, fCall) X86CPU.prototype.setCSIP = function(off, sel, fCall)
{ {

View file

@ -1537,8 +1537,8 @@ X86.fnLTR = function(dst, src)
{ {
this.opFlags |= X86.OPFLAG.NOWRITE; this.opFlags |= X86.OPFLAG.NOWRITE;
if (this.segTSS.load(dst) !== X86.ADDR_INVALID) { if (this.segTSS.load(dst) !== X86.ADDR_INVALID) {
this.setShort(this.segTSS.addrDesc + X86.DESC.ACC.OFFSET, this.segTSS.acc |= X86.DESC.ACC.TSS_BUSY); this.setShort(this.segTSS.addrDesc + X86.DESC.ACC.OFFSET, this.segTSS.acc |= X86.DESC.ACC.TYPE.TSS_BUSY);
this.segTSS.type |= X86.DESC.ACC.TSS_BUSY; this.segTSS.type |= X86.DESC.ACC.TYPE.TSS_BUSY;
} }
this.nStepCycles -= (17 + (this.regEA === X86.ADDR_INVALID? 0 : 2)); this.nStepCycles -= (17 + (this.regEA === X86.ADDR_INVALID? 0 : 2));
return dst; return dst;

View file

@ -960,7 +960,7 @@ X86.helpCheckFault = function(nFault, nError, fHalt)
var fRunning = this.aFlags.fRunning; var fRunning = this.aFlags.fRunning;
var sMessage = "Fault " + str.toHexByte(nFault) + (nError != null? " (" + str.toHexWord(nError) + ")" : "") + " on opcode " + str.toHexByte(bOpcode); var sMessage = "Fault " + str.toHexByte(nFault) + (nError != null? " (" + str.toHexWord(nError) + ")" : "") + " on opcode " + str.toHexByte(bOpcode);
if (fHalt && fRunning) sMessage += " (blocked by PCjs Debugger)"; if (fHalt && fRunning) sMessage += " (blocked)";
if (DEBUGGER && this.dbg) { if (DEBUGGER && this.dbg) {
this.printMessage(sMessage, fHalt || bitsMessage, true); this.printMessage(sMessage, fHalt || bitsMessage, true);

View file

@ -645,7 +645,7 @@ X86Seg.prototype.loadDesc6 = function(addrDesc, sel)
* *
* Probed loads allow us to deal with complex segment load operations (ie, those involving an implied stack-switch * Probed loads allow us to deal with complex segment load operations (ie, those involving an implied stack-switch
* or task-switch), by allowing us to probe all the new selectors and generate the necessary faults before modifying * or task-switch), by allowing us to probe all the new selectors and generate the necessary faults before modifying
* any segment registers; if all the probes succeed, then all the loads can proceed. * any segment registers; if all the probes succeed, then the original load can proceed.
* *
* The next non-probed load of a probed selector will move those probed descriptor values into the X86Seg object, * The next non-probed load of a probed selector will move those probed descriptor values into the X86Seg object,
* saving us from having to reload and reparse the descriptor. However, if a different selector is loaded between * saving us from having to reload and reparse the descriptor. However, if a different selector is loaded between
@ -705,21 +705,25 @@ X86Seg.prototype.loadDesc8 = function(addrDesc, sel, fProbe)
case X86Seg.ID.CODE: case X86Seg.ID.CODE:
/*
* NOTE: Since we are X86Seg.ID.CODE, we can use this.cpl instead of the more convoluted
* this.cpu.segCS.cpl.
*/
var fCall = this.fCall; var fCall = this.fCall;
this.fStackSwitch = false; this.fStackSwitch = false;
/* /*
* This special bit of code is currently used only by the Debugger, when it needs to inject * This special bit of code is currently used only by the Debugger, when it needs to inject
* a 16:32 callback address into the machine that it can intercept calls to. We call these * a 16:32 callback address into the machine that it can intercept calls to. We call these
* "call break" addresses, because they're like private breakpoints that only operate when * "call break" addresses, because they're essentially breakpoints that only operate when
* a particular address is called; specifically, an address with selector 0x0001 and an offset * a particular address is called; specifically, an address with selector 0x0001 and an offset
* that forms an index (1-based) into the aCallBreaks function table. * that forms a (1-based) index into the aCallBreaks function table.
* *
* In protected-mode, 0x0001 is an invalid code selector (a null selector with an RPL of 1), * In protected-mode, any null selector, including 0x0001 (null with an RPL of 1), is
* and while it's not inconceivable that an operating system might use such a selector for * an invalid CS selector, and while it's not inconceivable that an operating system might
* some strange purpose, I've not seen such an operating system. And in any case, those * use such a selector for some strange purpose, I've not seen such an operating system.
* operating systems are not likely to trigger the Debugger's call to addCallBreak(), so no * And in any case, those operating systems are not likely to trigger the Debugger's call to
* call breaks will be generated, and this code will never execute. * addCallBreak(), so no call breaks will be generated, and this code will never execute.
* *
* TODO: If we ever need this to be mode-independent, it can be moved somewhere where it will * TODO: If we ever need this to be mode-independent, it can be moved somewhere where it will
* trigger for both real and protected-mode code segment loads, because CALLBREAK_SEL (0x0001) * trigger for both real and protected-mode code segment loads, because CALLBREAK_SEL (0x0001)
@ -744,43 +748,81 @@ X86Seg.prototype.loadDesc8 = function(addrDesc, sel, fProbe)
if (!selMasked) { if (!selMasked) {
/* /*
* selMasked is really the descriptor table offset, and a zero offset is fine for the IDT; * selMasked is really the descriptor table offset, and a zero offset is fine for the IDT,
* it MAY even be OK for the LDT. But it's definitely not OK for the GDT; a null selector * and it's probably fine for the LDT, but it's definitely NOT fine for the GDT, because
* is allowed in any of DS, ES, SS, FS, or GS, but never CS). Since there's no parameter * that's a reference to the null selector. A null selector is allowed in DS, ES, FS, or GS,
* that tells us which table we're using, we have to check manually. * but never CS or SS. Since there's no parameter that tells us which table we're using,
* we have to check manually.
* *
* If we ARE attempting to load a null selector from the GDT, then we zero type, which ensures * If we ARE attempting to load a null selector from the GDT, then we zero type, ensuring that
* that sizeGate will remain invalid, triggering a GP_FAULT below. * sizeGate will remain invalid (-1), triggering a GP_FAULT below.
*/ */
if (addrDesc >= cpu.addrGDT && addrDesc < cpu.addrGDTLimit) type = 0; if (addrDesc >= cpu.addrGDT && addrDesc < cpu.addrGDTLimit) type = 0;
} }
/*
* Since we are X86Seg.ID.CODE, we can use this.cpl instead of the more generic cpu.segCS.cpl
*/
if (type >= X86.DESC.ACC.TYPE.CODE_EXECONLY) { if (type >= X86.DESC.ACC.TYPE.CODE_EXECONLY) {
sizeGate = 0; /*
if (rpl > this.cpl) { * There are three basic ways a new code segment can be loaded (ignoring special cases like LOADALL):
/*. *
* If fCall is false, then we must have a RETF to a less privileged segment, which is OK. * 1) CALLF (fCall is true)
* 2) RETF (fCall is false)
* 3) JMPF (fCall is undefined)
*/
if (fProbe != null) {
sizeGate = 0;
}
else if (fCall !== false) {
/*
* We deal with CALLF/JMPF first. We've already ascertained that the selector type refers to
* a segment, not a gate, so the next important distinction is CONFORMING vs. non-CONFORMING.
* *
* Otherwise, we must be dealing with a CALLF or JMPF to a less privileged segment, in which * For a CONFORMING target, we must verify that its DPL <= CPL. For a non-CONFORMING target,
* case either DPL == CPL *or* the new segment is conforming and DPL <= CPL. * we must verify that RPL <= CPL and DPL == CPL. Assuming both those tests pass, we must also
* ensure that the current CPL is recorded as the new RPL (that is, the RPL bits of sel must be
* updated).
*/ */
sizeGate = -1; if (type & X86.DESC.ACC.TYPE.CONFORMING) {
if (fCall === false || dpl == this.cpl || (type & X86.DESC.ACC.TYPE.CONFORMING) && dpl <= this.cpl) { if (dpl <= this.cpl) {
/* sizeGate = 0;
* It's critical that any stack switch occur with the operand size in effect at the time of }
* the current instruction, BEFORE any calls to updateMode() and resetSizes(), otherwise the } else {
* operand size (or operand override) in effect on an instruction like IRETD will be ignored. if (rpl <= this.cpl && dpl == this.cpl) {
*/ sizeGate = 0;
regSP = cpu.popWord(); }
cpu.setSS(cpu.popWord(), true); }
cpu.setSP(regSP); if (!sizeGate) {
this.fStackSwitch = true; sel = (sel & ~X86.SEL.RPL) | (this.cpl & X86.SEL.RPL);
}
}
else {
/*
* We deal with RETF next. For starters, we must verify that RPL >= CPL. Moreover, if
* RPL > CPL, then we have a privilege level change that requires a stack switch, assuming
* the stack selector is acceptable.
*/
if (rpl >= this.cpl) {
if (rpl > this.cpl) {
regSP = cpu.popWord();
cpu.setSS(cpu.popWord(), true);
cpu.setSP(regSP);
this.fStackSwitch = true;
}
sizeGate = 0; sizeGate = 0;
} }
} }
if (DEBUG) {
var sizeGateCheck = 0, fStackSwitchCheck = false;
if (rpl > this.cpl) {
sizeGateCheck = -1;
if (fCall === false || dpl == this.cpl || (type & X86.DESC.ACC.TYPE.CONFORMING) && dpl <= this.cpl) {
fStackSwitchCheck = true;
sizeGateCheck = 0;
}
}
if (sizeGate != sizeGateCheck || this.fStackSwitch != fStackSwitchCheck) {
this.cpu.stopCPU();
}
}
} }
else if (type == X86.DESC.ACC.TYPE.TSS286 || type == X86.DESC.ACC.TYPE.TSS386) { else if (type == X86.DESC.ACC.TYPE.TSS286 || type == X86.DESC.ACC.TYPE.TSS386) {
if (!this.switchTSS(sel, fCall)) { if (!this.switchTSS(sel, fCall)) {
@ -851,7 +893,7 @@ X86Seg.prototype.loadDesc8 = function(addrDesc, sel, fProbe)
* TODO: Verify the PRESENT bit of the gate descriptor, and issue NP_FAULT as appropriate. * TODO: Verify the PRESENT bit of the gate descriptor, and issue NP_FAULT as appropriate.
*/ */
selCode = base & 0xffff; selCode = base & 0xffff;
if (I386 && (type & X86.DESC.ACC.NONSEG_386)) { if (I386 && (type & X86.DESC.ACC.TYPE.NONSEG_386)) {
limit = limitOrig | (ext << 16); limit = limitOrig | (ext << 16);
} }
@ -878,7 +920,7 @@ X86Seg.prototype.loadDesc8 = function(addrDesc, sel, fProbe)
* and then figure out which should really be used. * and then figure out which should really be used.
*/ */
addrTSS = cpu.segTSS.base; addrTSS = cpu.segTSS.base;
if (!I386 || !(cpu.segTSS.type & X86.DESC.ACC.NONSEG_386)) { if (!I386 || !(cpu.segTSS.type & X86.DESC.ACC.TYPE.NONSEG_386)) {
offSP = (cplNew << 2) + X86.TSS286.CPL0_SP; offSP = (cplNew << 2) + X86.TSS286.CPL0_SP;
lenSP = 2; lenSP = 2;
} else { } else {
@ -925,7 +967,7 @@ X86Seg.prototype.loadDesc8 = function(addrDesc, sel, fProbe)
* TODO: Consider whether we can skip this loadProt() call if this.sel already contains selCode * TODO: Consider whether we can skip this loadProt() call if this.sel already contains selCode
* (and the previous mode matches, which might require we cache the mode in the X86Seg object, too). * (and the previous mode matches, which might require we cache the mode in the X86Seg object, too).
*/ */
if (this.loadProt(selCode) === X86.ADDR_INVALID) { if (this.loadProt(selCode, false) === X86.ADDR_INVALID) {
return X86.ADDR_INVALID; return X86.ADDR_INVALID;
} }
@ -933,9 +975,9 @@ X86Seg.prototype.loadDesc8 = function(addrDesc, sel, fProbe)
this.offIP = limit; this.offIP = limit;
cpu.assert(this.cpl == cplNew); // cpu.assert(this.cpl == cplNew);
if (this.cpl < cplOld) { if (cplNew < cplOld) {
if (fCall !== true) { if (fCall !== true) {
cpu.assert(false); cpu.assert(false);
@ -1065,7 +1107,7 @@ X86Seg.prototype.loadDesc8 = function(addrDesc, sel, fProbe)
break; break;
case X86Seg.ID.TSS: case X86Seg.ID.TSS:
var typeTSS = type & ~X86.DESC.ACC.TSS_BUSY; var typeTSS = type & ~X86.DESC.ACC.TYPE.TSS_BUSY;
if (!selMasked || typeTSS != X86.DESC.ACC.TYPE.TSS286 && typeTSS != X86.DESC.ACC.TYPE.TSS386) { if (!selMasked || typeTSS != X86.DESC.ACC.TYPE.TSS286 && typeTSS != X86.DESC.ACC.TYPE.TSS386) {
X86.helpFault.call(cpu, X86.EXCEPTION.GP_FAULT, sel & X86.ERRCODE.SELMASK); X86.helpFault.call(cpu, X86.EXCEPTION.GP_FAULT, sel & X86.ERRCODE.SELMASK);
return X86.ADDR_INVALID; return X86.ADDR_INVALID;
@ -1180,14 +1222,14 @@ X86Seg.prototype.switchTSS = function switchTSS(selNew, fNest)
/* /*
* TODO: Verify that it is (always) correct to require that the BUSY bit be currently set. * TODO: Verify that it is (always) correct to require that the BUSY bit be currently set.
*/ */
if (!(cpu.segTSS.type & X86.DESC.ACC.TSS_BUSY)) { if (!(cpu.segTSS.type & X86.DESC.ACC.TYPE.TSS_BUSY)) {
X86.helpFault.call(cpu, X86.EXCEPTION.GP_FAULT, selNew & X86.ERRCODE.SELMASK); X86.helpFault.call(cpu, X86.EXCEPTION.GP_FAULT, selNew & X86.ERRCODE.SELMASK);
return false; return false;
} }
/* /*
* TODO: Should I be more paranoid about writing our cached ACC value back into the descriptor? * TODO: Should I be more paranoid about writing our cached ACC value back into the descriptor?
*/ */
cpu.setShort(cpu.segTSS.addrDesc + X86.DESC.ACC.OFFSET, cpu.segTSS.acc &= ~X86.DESC.ACC.TSS_BUSY); cpu.setShort(cpu.segTSS.addrDesc + X86.DESC.ACC.OFFSET, cpu.segTSS.acc &= ~X86.DESC.ACC.TYPE.TSS_BUSY);
} }
if (cpu.segTSS.load(selNew) === X86.ADDR_INVALID) { if (cpu.segTSS.load(selNew) === X86.ADDR_INVALID) {
@ -1200,18 +1242,18 @@ X86Seg.prototype.switchTSS = function switchTSS(selNew, fNest)
} }
if (fNest !== false) { if (fNest !== false) {
if (cpu.segTSS.type & X86.DESC.ACC.TSS_BUSY) { if (cpu.segTSS.type & X86.DESC.ACC.TYPE.TSS_BUSY) {
X86.helpFault.call(cpu, X86.EXCEPTION.GP_FAULT, selNew & X86.ERRCODE.SELMASK); X86.helpFault.call(cpu, X86.EXCEPTION.GP_FAULT, selNew & X86.ERRCODE.SELMASK);
return false; return false;
} }
cpu.setShort(cpu.segTSS.addrDesc + X86.DESC.ACC.OFFSET, cpu.segTSS.acc |= X86.DESC.ACC.TSS_BUSY); cpu.setShort(cpu.segTSS.addrDesc + X86.DESC.ACC.OFFSET, cpu.segTSS.acc |= X86.DESC.ACC.TYPE.TSS_BUSY);
} }
/* /*
* Now that we're done checking the TSS_BUSY bit in the TYPE field (which is a subset of the ACC field), * Now that we're done checking the TSS_BUSY bit in the TYPE field (which is a subset of the ACC field),
* sync any changes made above in the ACC field to the TYPE field. * sync any changes made above in the ACC field to the TYPE field.
*/ */
cpu.segTSS.type = (cpu.segTSS.type & ~X86.DESC.ACC.TSS_BUSY) | (cpu.segTSS.acc & X86.DESC.ACC.TSS_BUSY); cpu.segTSS.type = (cpu.segTSS.type & ~X86.DESC.ACC.TYPE.TSS_BUSY) | (cpu.segTSS.acc & X86.DESC.ACC.TYPE.TSS_BUSY);
/* /*
* Update the old TSS * Update the old TSS