mirror of
https://github.com/openhwgroup/cvw
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182 lines
5.4 KiB
ArmAsm
182 lines
5.4 KiB
ArmAsm
##########################################
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# tlbGLB.S
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#
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# Written: mmendozamanriquez@hmc.edu 4 April 2023
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# nlimpert@hmc.edu
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# Modified: kevin.j.thomas@okstate.edu May/4/20203
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#
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# Purpose: Coverage for the Page Table Entry Global flag check.
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#
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# A component of the CORE-V-WALLY configurable RISC-V project.
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# https://github.com/openhwgroup/cvw
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#
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# Copyright (C) 2021-23 Harvey Mudd College & Oklahoma State University
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#
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# SPDX-License-Identifier: Apache-2.0 WITH SHL-2.1
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#
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# Licensed under the Solderpad Hardware License v 2.1 (the “License”); you may not use this file
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# except in compliance with the License, or, at your option, the Apache License version 2.0. You
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# may obtain a copy of the License at
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#
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# https://solderpad.org/licenses/SHL-2.1/
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#
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# Unless required by applicable law or agreed to in writing, any work distributed under the
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# License is distributed on an “AS IS” BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND,
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# either express or implied. See the License for the specific language governing permissions
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# and limitations under the License.
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##############################################################################################
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# load code to initalize stack, handle interrupts, terminate
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#include "WALLY-init-lib.h"
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# run-elf.bash find this in project description
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main:
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# Page table root address at 0x80010000
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li t5, 0x9000000000080080 # try making asid = 0.
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csrw satp, t5
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# switch to supervisor mode
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li a0, 1
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ecall
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li t5, 0 # j = 0, run nASID only once
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li t3, 32 #Max amount of Loops = 32
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li t4, 0x1000 #offset between addressses.
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li t1, 0x00008067 #load in jalr x0 x1 0 instruction to be stored
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setup:
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li t0, 0xC0000000 #starting address
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li t2, 0 # i = 0
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beq t5, zero, loop #jump to first loop
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loop2: #jump to each of the addresses in different address space
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bge t2, t3, done
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jalr t0 #jump to instruction at the virtual address
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add t0, t0, t4 #change address for next loop
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addi t2, t2, 1 #keep track of number of loops ran
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j loop2
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loop: #store jalr across memory
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bge t2, t3, nASID # exit loop if i >= loops
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sw t1, 0(t0) #stores this jalr in the virtual address
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fence.I #invalidate instruction cache
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jalr t0 #jump to instruction at the virtual address
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add t0, t0, t4 #change address for next loop
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addi t2, t2, 1 #keep track of number of loops ran
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j loop
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nASID: #swap to different address space -> jump to each address
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li a0, 3 #swap to machine mode
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ecall
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li t5, 0x9000100000080080 #swap to address space 1 from 0
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csrw satp, t5
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li a0, 1 # change back to supervisor mode.
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ecall
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li t5, 1 #flag for finished after loops
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j setup
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.data
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.align 19
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# level 3 Page table situated at 0x8008 0000, should point to 8008,1000
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pagetable:
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.8byte 0x200204C1
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.align 12 # level 2 page table, contains direction to a gigapageg
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.8byte 0x0
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.8byte 0x0
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.8byte 0x200000EF # gigapage that starts at 8000 0000 goes to C000 0000
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.8byte 0x200208E1 # pointer to next page table entry at 8008 2000
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.align 12 # level 1 page table, points to level 0 page table
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.8byte 0x20020CE1
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.align 12 # level 0 page table, points to address C000 0000 # FOR NOW ALL OF THESE GO TO 8 instead of C cause they start with 2
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.8byte 0x200000EF # access xC000 0000
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.8byte 0x200004EF # access xC000 1000
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.8byte 0x200008EF # access xC000 2000
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.8byte 0x20000CEF # access xC000 3000
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.8byte 0x200010EF # access xC000 4000
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.8byte 0x200014EF
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.8byte 0x200018EF
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.8byte 0x20001CEF
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.8byte 0x200020EF # access xC000 8000
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.8byte 0x200024EF
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.8byte 0x200028EF
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.8byte 0x20002CEF
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.8byte 0x200030EF # access xC000 C000
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.8byte 0x200034EF
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.8byte 0x200038EF
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.8byte 0x20003CEF
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.8byte 0x200040EF # access xC001 0000
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.8byte 0x200044EF
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.8byte 0x200048EF
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.8byte 0x20004CEF
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.8byte 0x200050EF # access xC001 4000
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.8byte 0x200054EF
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.8byte 0x200058EF
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.8byte 0x20005CEF
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.8byte 0x200060EF # access xC001 8000
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.8byte 0x200064EF
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.8byte 0x200068EF
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.8byte 0x20006CEF
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.8byte 0x200070EF # access xC001 C000
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.8byte 0x200074eF
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.8byte 0x200078EF
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.8byte 0x20007CEF
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.8byte 0x200080EF # access xC002 0000
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.8byte 0x200084EF
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.8byte 0x200088EF
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.8byte 0x20008CEF
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.8byte 0x200010EF # access xC000 4000
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.8byte 0x200014EF
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.8byte 0x200018EF
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.8byte 0x20001CEF
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.8byte 0x200020EF # access xC000 8000
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.8byte 0x200024EF
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.8byte 0x200028EF
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.8byte 0x20002CEF
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.8byte 0x200030EF # access xC000 C000
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.8byte 0x200034EF
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.8byte 0x200038EF
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.8byte 0x20003CEF
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.8byte 0x200040EF # access xC001 0000
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.8byte 0x200044EF
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.8byte 0x200048EF
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.8byte 0x20004CEF
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.8byte 0x200050EF # access xC001 4000
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.8byte 0x200054EF
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.8byte 0x200058EF
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.8byte 0x20005CEF
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.8byte 0x200060EF # access xC001 8000
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.8byte 0x200064EF
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.8byte 0x200068EF
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.8byte 0x20006CEF
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.8byte 0x200070EF # access xC001 C000
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.8byte 0x200074eF
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.8byte 0x200078EF
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.8byte 0x20007CEF
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.8byte 0x200080EF # access xC002 0000
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.8byte 0x200084EF
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.8byte 0x200088EF
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.8byte 0x20008CEF
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