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AMEVTYPER1<n>, n = 0 - 15

Activity Monitors Event Type Registers 1

Provides information on the events that an auxiliary activity monitor event counter AMEVCNTR1<n> counts.

Configuration

AArch32 System register AMEVTYPER1<n> bits [31:0] are architecturally mapped to AArch64 System register AMEVTYPER1<n>_EL0[31:0].

AArch32 System register AMEVTYPER1<n> bits [31:0] are architecturally mapped to External register AMEVTYPER1<n>[31:0].

This register is present only when FEAT_AMUv1 is implemented and FEAT_AA32 is implemented. Otherwise, direct accesses to AMEVTYPER1<n> are UNDEFINED.

Attributes

AMEVTYPER1<n> is a 32-bit register.

Field descriptions

313029282726252423222120191817161514131211109876543210
RES0evtCount

Bits [31:16]:

Reserved, RES0.

evtCount, bits [15:0]:

Event to count. The event number of the event that is counted by the auxiliary activity monitor event counter AMEVCNTR1<n>.

It is IMPLEMENTATION DEFINED what values are supported by each counter.

If software writes a value to this field which is not supported by the corresponding counter AMEVCNTR1<n>, then:

The event counted by AMEVCNTR1<n> might be fixed at implementation. In this case, the field is read-only and writes are UNDEFINED.

If the corresponding counter AMEVCNTR1<n> is enabled, writes to this register have UNPREDICTABLE results.

The reset behavior of this field is:

Access Instructions

If <n> is greater than or equal to AMCGCR.CG1NC or FEAT_AMUv1p1 is implemented and auxiliary counter <n> is not implemented, then reads and writes of AMEVTYPER1<n> are UNDEFINED.

Accesses to this register use the following encodings in the System register encoding space:

MRC{<c>}{<q>} <coproc>, {#}<opc1>, <Rt>, <CRn>, <CRm>{, {#}<opc2>} ; Where m = 0-15

(coproc = 0b1111, opc1 = 0b000, CRn = 0b1101, CRm = 0b111:m[3], opc2 = m[2:0])

let m:integer = UInt(CRm[0] :: opc2[2:0]); if !(IsFeatureImplemented(FEAT_AMUv1) && IsFeatureImplemented(FEAT_AA32)) then Undefined(); elsif m >= NUM_AMU_CG1_MONITORS then Undefined(); elsif !IsG1ActivityMonitorImplemented(m) then Undefined(); elsif HaveEL(EL3) && PSTATE.EL != EL3 && EL3SDDUndefPriority() && IsFeatureImplemented(FEAT_AA64EL3) && !ELUsingAArch32(EL3) && CPTR_EL3().TAM == '1' then Undefined(); elsif PSTATE.EL == EL0 then if IsFeatureImplemented(FEAT_AA64EL1) && !ELUsingAArch32(EL1) && AMUSERENR_EL0().EN == '0' then AArch64_AArch32SystemAccessTraptoEL1orEL2(0x03); elsif IsFeatureImplemented(FEAT_AA32EL1) && ELUsingAArch32(EL1) && AMUSERENR().EN == '0' then if EL2Enabled() && (IsFeatureImplemented(FEAT_AA64EL2) && !ELUsingAArch32(EL2)) && HCR_EL2().TGE == '1' then AArch64_AArch32SystemAccessTrap(EL2, 0x03); elsif EL2Enabled() && (IsFeatureImplemented(FEAT_AA32EL2) && ELUsingAArch32(EL2)) && HCR().TGE == '1' then AArch32_TakeHypTrapException(0x00); else Undefined(); end; elsif EL2Enabled() && (IsFeatureImplemented(FEAT_AA64EL2) && !ELUsingAArch32(EL2)) && EffectivelyAtEL0NotInHost() && HSTR_EL2().T13 == '1' then AArch64_AArch32SystemAccessTrap(EL2, 0x03); elsif EL2Enabled() && (IsFeatureImplemented(FEAT_AA32EL2) && ELUsingAArch32(EL2)) && HSTR().T13 == '1' then AArch32_TakeHypTrapException(0x03); elsif EL2Enabled() && (IsFeatureImplemented(FEAT_AA64EL2) && !ELUsingAArch32(EL2)) && CPTR_EL2().TAM == '1' then AArch64_AArch32SystemAccessTrap(EL2, 0x03); elsif EL2Enabled() && (IsFeatureImplemented(FEAT_AA32EL2) && ELUsingAArch32(EL2)) && HCPTR().TAM == '1' then AArch32_TakeHypTrapException(0x03); elsif EL2Enabled() && (IsFeatureImplemented(FEAT_AA64EL1) && !ELUsingAArch32(EL1)) && EffectivelyAtEL0NotInHost() && IsFeatureImplemented(FEAT_FGT) && (!HaveEL(EL3) || SCR_EL3().FGTEn == '1') && HAFGRTR_EL2()[(2 * m) + 19] == '1' then AArch64_AArch32SystemAccessTrap(EL2, 0x03); elsif HaveEL(EL3) && IsFeatureImplemented(FEAT_AA64EL3) && !ELUsingAArch32(EL3) && CPTR_EL3().TAM == '1' then if EL3SDDUndef() then Undefined(); else AArch64_AArch32SystemAccessTrap(EL3, 0x03); end; else R(t) = AMEVTYPER1(m); end; elsif PSTATE.EL == EL1 then if EL2Enabled() && IsFeatureImplemented(FEAT_AA64EL2) && !ELUsingAArch32(EL2) && HSTR_EL2().T13 == '1' then AArch64_AArch32SystemAccessTrap(EL2, 0x03); elsif EL2Enabled() && IsFeatureImplemented(FEAT_AA32EL2) && ELUsingAArch32(EL2) && HSTR().T13 == '1' then AArch32_TakeHypTrapException(0x03); elsif EL2Enabled() && IsFeatureImplemented(FEAT_AA64EL2) && !ELUsingAArch32(EL2) && CPTR_EL2().TAM == '1' then AArch64_AArch32SystemAccessTrap(EL2, 0x03); elsif EL2Enabled() && IsFeatureImplemented(FEAT_AA32EL2) && ELUsingAArch32(EL2) && HCPTR().TAM == '1' then AArch32_TakeHypTrapException(0x03); elsif HaveEL(EL3) && IsFeatureImplemented(FEAT_AA64EL3) && !ELUsingAArch32(EL3) && CPTR_EL3().TAM == '1' then if EL3SDDUndef() then Undefined(); else AArch64_AArch32SystemAccessTrap(EL3, 0x03); end; else R(t) = AMEVTYPER1(m); end; elsif PSTATE.EL == EL2 then if HaveEL(EL3) && IsFeatureImplemented(FEAT_AA64EL3) && !ELUsingAArch32(EL3) && CPTR_EL3().TAM == '1' then if EL3SDDUndef() then Undefined(); else AArch64_AArch32SystemAccessTrap(EL3, 0x03); end; else R(t) = AMEVTYPER1(m); end; elsif PSTATE.EL == EL3 then R(t) = AMEVTYPER1(m); end;

MCR{<c>}{<q>} <coproc>, {#}<opc1>, <Rt>, <CRn>, <CRm>{, {#}<opc2>} ; Where m = 0-15

(coproc = 0b1111, opc1 = 0b000, CRn = 0b1101, CRm = 0b111:m[3], opc2 = m[2:0])

let m:integer = UInt(CRm[0] :: opc2[2:0]); if !(IsFeatureImplemented(FEAT_AMUv1) && IsFeatureImplemented(FEAT_AA32)) then Undefined(); elsif m >= NUM_AMU_CG1_MONITORS then Undefined(); elsif !IsG1ActivityMonitorImplemented(m) then Undefined(); elsif PSTATE.EL == EL1 && EL2Enabled() && IsFeatureImplemented(FEAT_AA64EL2) && !ELUsingAArch32(EL2) && HSTR_EL2().T13 == '1' then AArch64_AArch32SystemAccessTrap(EL2, 0x03); elsif PSTATE.EL == EL1 && EL2Enabled() && IsFeatureImplemented(FEAT_AA32EL2) && ELUsingAArch32(EL2) && HSTR().T13 == '1' then AArch32_TakeHypTrapException(0x03); elsif IsHighestEL(PSTATE.EL) && !ImpDefBool("AMEVCNTR1()[m] is fixed") then AMEVTYPER1(m) = R(t); else Undefined(); end;


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