CSR Bit Fields

RISC-V pmpaddr49 CSR Register

Address 0x3E1Privilege MachineAccess RW / MXLEN: RV32 encodes PA[33:2]; RV64 [53:0] encodes PA[55:2] and [63:54] is zeroMachine physical memory protection CSRs

pmpaddr49 (0x3E1) is the WARL address register for machine PMP entry 49 when 64 PMP entries are implemented; it encodes physical address bits 33:2 on RV32 and 55:2 on RV64.

Field Map

Understand pmpaddr49 By Bit Fields

2 key fields
63:54

0

WARL/reads zero

RV64: the upper ten bits are zero in the standard pmpaddr format; this segment is part of the WARL format.

0 (bits 63:54) — RV64: the upper ten bits are zero in the standard pmpaddr format; this segment is part of the WARL format.

What This Field Controls

  • - RV64: the upper ten bits are zero in the standard pmpaddr format; this segment is part of the WARL format.

Common Values

This field is better understood together with surrounding context than as a fixed memorized enumeration.

Open Official Manual
53:0

address[55:2]

WARL/may be RO0

RV64: encodes bits 55:2 of a 56-bit physical address. Unimplemented physical-address bits make the field WARL; every PMP CSR field may be implemented as read-only zero.

address[55:2] (bits 53:0) — RV64: encodes bits 55:2 of a 56-bit physical address. Unimplemented physical-address bits make the field WARL; every PMP CSR field may be implemented as read-only zero.

What This Field Controls

  • - RV64: encodes bits 55:2 of a 56-bit physical address. Unimplemented physical-address bits make the field WARL; every PMP CSR field may be implemented as read-only zero.

Common Values

This field is better understood together with surrounding context than as a fixed memorized enumeration.

Open Official Manual
Official Basis & Search Notes

pmpaddr49 is the MXLEN-bit WARL address encoding for entry 49 when 64 PMP entries are implemented. pmp49cfg.A determines its meaning; TOR uses pmpaddr48 as the lower bound.

RV32 pmpaddr encodes PA[33:2]; RV64 [53:0] encodes PA[55:2], with [63:54] zero.
TOR entry 49 uses pmpaddr48 as its lower bound and pmpaddr49 as its upper bound; NAPOT uses low pmpaddr49 bits to encode a naturally aligned power-of-two region of at least 8 bytes.
Platform grain changes low-bit readback; pmp49cfg.L or a locked TOR entry 50 can cause writes to pmpaddr49 to be ignored. Smepmp MML=1 changes L's permission meaning, but the relevant L=1 rules remain locked unless RLB=1 temporarily bypasses locking.

What To Check First When Reading This CSR

  • - PMP is optional; implementations may provide 0, 16, or 64 entries, with the lowest-numbered entries implemented first. Therefore, pmpaddr49 exists only when 64 entries are implemented; every PMP CSR field is WARL and may be read-only zero.
  • - pmpaddr49 is accessible only to M-mode. Its readback depends on pmp49cfg.A and the platform-wide PMP grain G.
  • - With G>=2 and A=NAPOT, pmpaddr49[G-2:0] reads as ones; with G>=1 and A=OFF/TOR, pmpaddr49[G-1:0] reads as zeros, but those bits do not affect TOR matching. Changing pmp49cfg.A[1] changes readback, not the underlying stored value.
  • - Reset specifies defaults only for writable PMP A/L fields (subject to platform overrides); pmpaddr49's reset value is unspecified, but no WARL field contains an illegal value.

Risk Checks Before Writing

  • - Writes to pmpaddr49 are ignored when pmp49cfg.L=1; pmpaddr49 is also unwritable as entry 50's lower bound when that entry is locked with pmp50cfg.A=TOR. Without Smepmp, locking persists until hart reset. With Smepmp MML=1, L changes permission meaning, but the L=1 M-mode-only or locked Shared-Region rules it defines remain locked unless mseccfg.RLB=1 temporarily bypasses locking.
  • - pmpaddr49 is WARL; read it back after writing and interpret the masked value using the current pmp49cfg.A and grain.
  • - With pmp49cfg.A=TOR, entry 49 matches pmpaddr48 <= y < pmpaddr49; if the lower bound is not less than the upper bound, it matches no addresses. NA4 is not selectable when G>=1.

Put It Back Into A Real Flow

1

Read pmp49cfg.A to determine whether entry 49 uses OFF, TOR, NA4, or NAPOT.

2

Write pmpaddr49 for the selected mode; TOR also requires lower bound pmpaddr48, while NAPOT encodes range size in low bits.

3

Read back pmpaddr49 and the corresponding pmpcfg CSR to confirm the effective WARL/grain encoding; set pmp49cfg.L only after final verification.

FAQ

Where do pmpaddr49's TOR bounds come from?

With pmp49cfg.A=TOR, pmpaddr48 supplies the lower bound and pmpaddr49 the upper bound, so entry 49 matches the half-open range pmpaddr48 <= y < pmpaddr49; it matches no addresses when the lower bound is not less than the upper bound.

Why can pmpaddr49 read back differently from the written value?

pmpaddr49 is WARL, and platform grain plus pmp49cfg.A[1] masks low-bit readback: NAPOT can read ones while OFF/TOR reads zeros. Changing A[1] does not alter the underlying stored value.