Moved tools

This commit is contained in:
2022-09-07 13:11:36 +02:00
parent d3beeb0538
commit ddabf14706
24 changed files with 0 additions and 0 deletions
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#!/usr/bin/env ruby
str1 = %Q!lbl: dc "Hallo", ", ", 0, 1, " der","Jens"!
i=0;
def get_stri_lit (str)
res = [""];
state = "out"
j = 0;
k = 0;
for i in (0..str.length-1)
c = str[i];
nstate = state
case state
when "out"
if c == "\""[0]
nstate = "in"
end
when "in"
if c == "\""[0]
nstate = "out"
if j > 0
k = k + 1;
res[k] = ""
end
else
res[k] = res[k] + format("%c", c);
j = j + 1;
end
end
state = nstate
end;
return res
end
get_stri_lit(str1).each do |word|
puts word
end
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#!/usr/bin/env ruby
# ----------------------------------------------------------------------
# Project: JCPU, a portable 8-bit RISC CPU written in VHDL
# This file: Insertion of code fragments into templates
#
# Copyright (C) 2007 J. Ahrensfeld
#
# This program is free software: you can redistribute it and/or modify
# it under the terms of the GNU General Public License as published by
# the Free Software Foundation, either version 3 of the License, or
# (at your option) any later version.
#
# This program is distributed in the hope that it will be useful,
# but WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
# GNU General Public License for more details.
#
# You should have received a copy of the GNU General Public License
# along with this program. If not, see <http://www.gnu.org/licenses/>.
#
# For questions and ideas, please contact the author at jens@jayfield.org
#
# ---------------------------------------------------------------------
arg = $*
rom_filename = arg[0].to_s
tpl_filename = arg[1].to_s
subst_pattern = "JASM_ROM_INSERT_HERE"
# --------------------------------------------------------
# Open file
# --------------------------------------------------------
romfile = File.open(rom_filename, "r")
tplfile = File.open(tpl_filename, "r")
re = Regexp.new(subst_pattern)
while (line = tplfile.gets)
puts line
line.scan(re).each do |word|
romfile.each do |raw_line|
puts raw_line
end
end
end
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-------------------------------------------------------------------------
-- Project: JCPU, a portable 8-bit RISC CPU written in VHDL
-- This file: The ROM file for use in your VHDL design
--
-- Copyright (C) 2007 J. Ahrensfeld
--
-- This program is free software: you can redistribute it and/or modify
-- it under the terms of the GNU General Public License as published by
-- the Free Software Foundation, either version 3 of the License, or
-- (at your option) any later version.
--
-- This program is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with this program. If not, see <http://www.gnu.org/licenses/>.
--
-- For questions and ideas, please contact the author at jens@jayfield.org
--
--------------------------------------------------------------------------
LIBRARY ieee;
use IEEE.STD_LOGIC_1164.ALL;
USE ieee.numeric_std.ALL;
library work;
use work.cpu_pkg.all;
-- JASM_ROM_INSERT_HERE
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-------------------------------------------------------------------------
-- Project: JCPU, a portable 8-bit RISC CPU written in VHDL
-- This file: loadable ROM
--
-- Copyright (C) 2007 J. Ahrensfeld
--
-- This program is free software: you can redistribute it and/or modify
-- it under the terms of the GNU General Public License as published by
-- the Free Software Foundation, either version 3 of the License, or
-- (at your option) any later version.
--
-- This program is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with this program. If not, see <http://www.gnu.org/licenses/>.
--
-- For questions and ideas, please contact the author at jens@jayfield.org
--
--------------------------------------------------------------------------
LIBRARY ieee;
use IEEE.STD_LOGIC_1164.ALL;
USE ieee.numeric_std.ALL;
library UNISIM;
use UNISIM.VComponents.all;
library work;
use work.cpu_pkg.all;
ENTITY irom IS
Port (
clk : in STD_LOGIC;
ce : in STD_LOGIC;
addr : in inst_addr_t;
dout : out inst_t
);
END irom;
ARCHITECTURE loadable OF irom IS
-- JASM_ROM_INSERT_HERE
signal jtag_ld_clk : STD_LOGIC;
signal jtag_ld_we : STD_LOGIC;
signal jtag_ld_addr : inst_addr_t;
signal jtag_ld_dout : inst_t;
signal jtag_ld_din : inst_t;
signal bs_rst, bs_sel, bs_shift, bs_tdi, bs_tdo : std_logic;
signal bs_capture, bs_clk0, bs_clk1, bs_update0, bs_update1 : std_logic;
signal user_regi, user_rego : unsigned (31 downto 0);
constant id : unsigned (31 downto 0) := X"BABE" & X"BEEF";
begin
--------------------------------------------------------------------------
-- Virtex-4: JTAG Loader
--------------------------------------------------------------------------
i00_BUFG : BUFG
port map
(
O => bs_clk1,
I => bs_clk0
);
i01_BUFG : BUFG
port map
(
O => bs_update1,
I => bs_update0
);
BSCAN_VIRTEX4_inst1 : BSCAN_VIRTEX4
generic map
(
JTAG_CHAIN => 1 -- Value to set BSCAN site of device. Possible values: (1,2,3 or 4)
)
port map
(
CAPTURE => bs_capture, -- CAPTURE output from TAP controller
DRCK => bs_clk0, -- Data register output for USER functions
RESET => bs_rst, -- Reset output from TAP controller
SEL => bs_sel, -- USER active output
SHIFT => bs_shift, -- SHIFT output from TAP controller
TDI => bs_tdi, -- TDI output from TAP controller
UPDATE => bs_update0, -- UPDATE output from TAP controller
TDO => bs_tdo -- Data input for USER function
);
jtag_ld_addr <= user_regi(user_regi'left downto user_regi'left-inst_addr_t'length+1);
jtag_ld_din <= user_regi(inst_t'length-1 downto 0);
jtag_ld_clk <= bs_update1;
jtag_ld_we <= bs_sel;
sipo:
process (bs_rst, bs_clk1, bs_tdi, bs_shift)
begin
if bs_rst = '1' then
user_regi <= (others => '0');
elsif rising_edge(bs_clk1) then
if bs_shift = '1' then
user_regi <= bs_tdi & user_regi(user_regi'left downto 1);
end if;
end if;
end process;
piso:
process (bs_rst, bs_clk1, bs_shift, user_rego)
begin
bs_tdo <= user_rego(0);
if bs_rst = '1' then
user_rego <= (others => '0');
elsif rising_edge(bs_clk1) then
if bs_shift = '1' then
user_rego <= user_rego(0) & user_rego(user_rego'left downto 1);
else
user_rego <= (user_rego'left downto inst_t'length => '0') & jtag_ld_dout;
-- user_rego <= id;
end if;
end if;
end process;
--------------------------------------------------------------------------
-- ROM Read/Write
--------------------------------------------------------------------------
PROM_READ:
process(clk, ce)
begin
if rising_edge(clk) and ce = '1' then
dout <= imem_rom(to_integer(addr));
end if;
end process;
PROM_WRITE:
process(jtag_ld_clk, jtag_ld_we)
begin
if rising_edge(jtag_ld_clk) then
if jtag_ld_we = '1' then
imem_rom(to_integer(jtag_ld_addr)) <= jtag_ld_din;
else
jtag_ld_dout <= imem_rom(to_integer(jtag_ld_addr));
end if;
end if;
end process;
--------------------------------------------------------------------------
end loadable;
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#!/usr/bin/env ruby
# ----------------------------------------------------------------------
# Project: JCPU, a portable 8-bit RISC CPU written in VHDL
# This file: A small assembler for the JCPU
# Copyright (C) 2007 J. Ahrensfeld
# This library is free software; you can redistribute it and/or
# modify it under the terms of the GNU Lesser General Public
# License as published by the Free Software Foundation; either
# version 2.1 of the License, or (at your option) any later version.
# This library is distributed in the hope that it will be useful,
# but WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
# Lesser General Public License for more details.
# You should have received a copy of the GNU Lesser General Public
# License along with this library; if not, write to the Free Software
# Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
# For questions and ideas, please contact the author at jens@jayfield.org
# ---------------------------------------------------------------------
arg = $*
MAX_SIZE_ROM = 1024
PROJECT_NAME = arg.to_s.gsub(/\..*/, "")
ENTITY_NAME = "rom"
ENTITY_DATA_TYPE = "inst_t"
ENTITY_ADDR_TYPE = "inst_addr_t"
OPC_LIST_NAME = "/cygdrive/w/vhdl/lib/CPUs/JCpu/tools/opc.list"
# --------------------------------------------------------
# Open file
# --------------------------------------------------------
filename = arg.to_s
if !File.exists?(filename)
STDERR.puts "#{filename} does not exist"
exit 1
end
# --------------------------------------------------------
# Pass 1
# --------------------------------------------------------
lc = 0 # Line counter
pc = 0 # Program counter
chip_dc = [0,0,0,0] # chip data counter
xmem_dc = 0 # xmem data counter
curr_segment = "UNDEF";
page = 0
label_list=[[],[]]
instr_list=[nil]
file = File.open(filename, "r")
file.each do |raw_line|
lc += 1
# Make all upper case
iline = "#{raw_line}".strip.upcase
# Remove comments
iline = iline.gsub(/;.*/, "")
# Split instruction at spaces
iline_member = iline.split(" ")
if iline_member[0] == nil
next
end
mc = 0;
label = nil
clean_line = nil
if (iline_member[0] =~ /\w+:/)
mc += 1
label = iline_member[0].delete(":")
if label_list.rindex(label) != nil
STDERR.puts format("Error in line %d: Duplicate label \"%s\" found", lc, label)
exit 1
end
end
case iline_member[mc]
when nil
value = format("0x%3.3X",pc)
when "EQU"
if 0 == (iline_member[mc+1] =~ /\d+/)
value = format("0x%2.2X",eval(iline_member[mc+1..iline_member.nitems].to_s))
else
value = iline_member[mc+1]
end
when "ORG", "CODE"
pc = eval(iline_member[mc+1..iline_member.nitems].to_s)
value = format("0x%3.3X",pc)
when "CDATA", "CMEM"
if iline_member[mc+1] == nil
STDERR.puts format("Error in line %d: CDATA needs argument!", lc)
exit 1
end
curr_segment = "CMEM";
page = iline_member[mc+1].to_i(16)
when "XDATA", "XMEM"
curr_segment = "XMEM";
when "DC"
len = 0;
iline.split("DC")[1].delete("0x").scan(/[0-9A-Fa-f]+/).each do |byte|
len += 1
end
if curr_segment == "CMEM"
STDERR.puts format("Error in line %d: CDATA cannot be initialized!", lc)
exit 1
else
value = format("0x%2.2X",xmem_dc)
puts format("Found DC defining %d bytes at 0x%4.4X in %s", len, xmem_dc, curr_segment);
xmem_dc += len
end
when "DB"
len = iline_member[mc+1].to_i
if curr_segment == "CMEM"
value = format("0x%2.2X",chip_dc[page])
puts format("Found DB reserving %d bytes at 0x%4.4X in %s(%d)", len, chip_dc[page], curr_segment, page);
chip_dc[page] += len
else
value = format("0x%2.2X",xmem_dc)
puts format("Found DB reserving %d bytes at 0x%4.4X in %s", len, xmem_dc, curr_segment);
xmem_dc += len
end
else
op_line = iline_member[mc+1..iline_member.nitems].to_s
value = format("0x%3.3X",pc)
opc = iline_member[mc]
if iline_member[mc+1] != nil
op1 = op_line.gsub(/,+.*$/, "")
end
if iline_member[mc+2] != nil
op2 = op_line.scan(/,.+$/).to_s.delete(", ")
end
if instr_list[pc] == nil
instr_list[pc] = [lc, pc, opc , op1 , op2]
pc += 1
else
STDERR.puts format("Error in line %d: Overlapping sections at %3.3X", lc, pc)
exit 1
end
end;
# Push labels
if label
label_list = label_list + [label, value]
end
end
file.close
# --------------------------------------------------------
def instr(opcode)
return format("\"%6.6B\" & X\"%3.3X\"",opcode ,0)
end
def tcl_bits(pc, opcode)
return format("%10.10B%6.6B%12.12B",pc, opcode ,0)
end
def instr_k(opcode, k)
return format("\"%6.6B\" & X\"%3.3X\"",opcode ,k)
end
def tcl_bits_k(pc, opcode, k)
return format("%10.10B%6.6B%12.12B",pc, opcode ,k)
end
def instr_r(opcode, r)
return format("\"%6.6B\" & X\"%2.2X%X\"",opcode ,0, r)
end
def tcl_bits_r(pc, opcode, r)
return format("%10.10B%6.6B%8.8B%4.4B",pc, opcode ,0,r)
end
def instr_kr(opcode, k, r)
return format("\"%6.6B\" & X\"%2.2X%X\"",opcode,k, r)
end
def tcl_bits_kr(pc, opcode, k, r)
return format("%10.10B%6.6B%8.8B%4.4B",pc, opcode, k, r)
end
def instr_rk(opcode, r, k)
return format("\"%6.6B\" & X\"%2.2X%X\"",opcode,k, r)
end
def tcl_bits_rk(pc, opcode, r, k)
return format("%10.10B%6.6B%8.8B%4.4B",pc, opcode, k, r)
end
def instr_rr(opcode, ra, rb)
return format("\"%6.6B\" & X\"%X%X%X\"",opcode,0, rb, ra)
end
def tcl_bits_rr(pc, opcode, ra, rb)
return format("%10.10B%6.6B%4.4B%4.4B%4.4B",pc, opcode, 0, rb, ra)
end
# --------------------------------------------------------
# Read mnemonic set
# --------------------------------------------------------
filename = OPC_LIST_NAME
if !File.exists?(filename)
STDERR.puts "#{filename} does not exist"
exit 1
end
mnemo_list = []
num_opcodes = 0
file = File.open(filename, "r")
file.each do |raw_line|
mnemo_list[num_opcodes] = raw_line.split(" ")[1]
num_opcodes += 1
end
# --------------------------------------------------------
# Pass 2
# --------------------------------------------------------
pc = 0
opc_start = 2
num_errors = 0
vhdl_trans_list = [nil]
vhdl_comment_list = [nil]
vhdl_tcl_list = [nil]
instr_list.each do |instruct|
# puts instruct
if instruct == nil
vhdl_trans_list[pc] = format("\"%6.6B\" & X\"%3.3X\"",0 ,0)
vhdl_comment_list[pc] = format("0x%3.3X:", pc)
vhdl_tcl_list[pc] = tcl_bits(pc, 0)
pc += 1
next
end
# determine arglen of instruction
ilen = 0
if instruct[opc_start+1] == nil
arglen = 0
elsif instruct[opc_start+2] == nil
arglen = 1
elsif instruct[opc_start+3] == nil
arglen = 2
end
# Symbol substitution
error = false
for i in (1..3)
subst_pos = opc_start+i
if instruct[subst_pos] == nil
next
end
expr_token = ""
expr_subst = nil
is_direct = true;
# instruct[subst_pos] = instruct[subst_pos].delete(" ")
# checks R0 .. R16, Mnemonics
instr_str = instruct[subst_pos]
if 0 == (instr_str =~ /\(.+\)/)
instr_str = instr_str.delete("()")
is_direct = false;
end
expr_token = instr_str.split(/\+|\-|\*|\//)[0]
if (0 != (expr_token =~ /R[0-9]+/)) && (0 != (expr_token =~ /\d+/))
idx = label_list.rindex(expr_token)
if idx != nil
expr_subst = label_list[idx+1]
instruct[subst_pos] = instruct[subst_pos].gsub(expr_token, expr_subst)
else
STDERR.puts format("Error in line %d: Symbol \"%s\" not found", instruct[0], expr_token)
error = true
end
end
if expr_subst != nil
if 0 == (expr_subst =~ /\d+/)
if is_direct == true
instruct[subst_pos] = format("0x%2.2X", eval(instruct[subst_pos]))
else
instruct[subst_pos] = format("(0x%2.2X)", eval(instruct[subst_pos]))
end
else
if 0 != (expr_subst =~ /R[0-9]+/)
STDERR.puts format("Error in line %d: Invalid expression \"%s\"", instruct[0], expr_subst)
error = true
end
end
end
end
# Parse operands
reg = [0,0]
kk = 0
format = instruct[opc_start]
for i in (0..1)
if instruct[opc_start+i+1] =~ Regexp.new("R[0-9]+")
# Check indirect addressing
reg[i] = instruct[opc_start+i+1].delete("R()").to_i
format += "|R"
if reg[i] > 15
STDERR.puts format("Error in line %d: Invalid register \"R%d\" specified", instruct[0], reg[i])
error = true
end
else
if instruct[opc_start+i+1] =~ Regexp.new("[0-9A-F]+")
kk = instruct[opc_start+i+1].delete("()").to_i(16)
format += "|K"
end
end
if instruct[opc_start+i+1] =~ Regexp.new("\\(.+\\)")
format += "i";
end
end
# Output instruction
opcode = mnemo_list.rindex(format).to_i
mnemo = instruct[2];
case format
when "NOP", "HALT", "RET", "RETI"
vhdl_trans_list[pc] = instr(opcode)
vhdl_tcl_list[pc] = tcl_bits(pc, opcode)
minstr_comment = format("0x%3.3X: %s", pc, mnemo)
when "MOVC|R|Ri", "MOVX|R|Ri"
vhdl_trans_list[pc] = instr_rr(opcode, reg[0], reg[1]);
vhdl_tcl_list[pc] = tcl_bits_rr(pc, opcode, reg[0], reg[1])
minstr_comment = format("0x%3.3X: %s R%2.2d, (R%2.2d)", pc, mnemo, reg[0], reg[1])
when "MOV|R|R", "SUB|R|R", "ADD|R|R", "AND|R|R", "OR|R|R", "XOR|R|R", "CMP|R|R"
vhdl_trans_list[pc] = instr_rr(opcode, reg[0], reg[1]);
vhdl_tcl_list[pc] = tcl_bits_rr(pc, opcode, reg[0], reg[1])
minstr_comment = format("0x%3.3X: %s R%2.2d, R%2.2d", pc, mnemo, reg[0], reg[1])
when "MOVC|Ri|R", "MOVX|Ri|R"
vhdl_trans_list[pc] = instr_rr(opcode, reg[1], reg[0]);
vhdl_tcl_list[pc] = tcl_bits_rr(pc, opcode, reg[1], reg[0])
minstr_comment = format("0x%3.3X: %s (R%2.2d), R%2.2d", pc, mnemo, reg[1], reg[0])
when "MOVC|Ri|K", "MOVX|Ri|K", "COUT|Ri|K", "XOUT|Ri|K"
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
minstr_comment = format("0x%3.3X: %s (R%2.2d), 0x%2.2X", pc, mnemo, reg[0], kk)
when "MOVC|R|Ki", "MOVX|R|Ki", "CIN|R|Ki", "XIN|R|Ki"
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
minstr_comment = format("0x%3.3X: %s R%2.2d, (0x%2.2X)", pc, mnemo, reg[0], kk)
when "MOV|R|K", "SUB|R|K", "ADD|R|K", "AND|R|K", "OR|R|K", "XOR|R|K", "CMP|R|K"
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
minstr_comment = format("0x%3.3X: %s R%2.2d, 0x%2.2X", pc, mnemo, reg[0], kk)
when "MOVC|Ki|R", "MOVC|Ki|R", "MOVX|Ki|R", "MOVX|Ki|R", "COUT|Ki|R", "XOUT|Ki|R"
vhdl_trans_list[pc] = instr_kr(opcode, kk, reg[1]);
vhdl_tcl_list[pc] = tcl_bits_kr(pc, opcode, kk, reg[1])
minstr_comment = format("0x%3.3X: %s (0x%2.2X), R%2.2d", pc, mnemo, kk, reg[1])
when "CALL|K", "JMP|K", "JNZ|K", "JZ|K","JNC|K", "JC|K", "JLT|K", "JGT|K", "JLE|K", "JGE|K", "JEQ|K", "JNE|K"
vhdl_trans_list[pc] = instr_k(opcode, kk)
vhdl_tcl_list[pc] = tcl_bits_k(pc, opcode, kk)
minstr_comment = format("0x%3.3X: %s 0x%3.3X", pc, mnemo, kk)
when "PUSH|R", "POP|R", "SHR|R", "SHL|R", "ROR|R", "ROL|R", "RORC|R", "ROLC|R"
vhdl_trans_list[pc] = instr_r(opcode, reg[0])
vhdl_tcl_list[pc] = tcl_bits_r(pc, opcode, reg[0])
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
when "TST|R"
kk = 0
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
opcode = mnemo_list.rindex("CMP|R|K").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
when "INC|R"
kk = 1
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
opcode = mnemo_list.rindex("ADD|R|K").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
when "DEC|R"
kk = 1
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
opcode = mnemo_list.rindex("SUB|R|K").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
else
STDERR.puts format("Error in line %d: Not yet implemented %s", instruct[0], format)
error = true
end
if error
num_errors += 1
break
end
vhdl_comment_list[pc] = minstr_comment
puts vhdl_trans_list[pc] + " -- " + minstr_comment
pc += 1
end
# --------------------------------------------------------
# Output ROM file
# --------------------------------------------------------
if num_errors == 0
filename = format("rom_%s.vhdl.snip", PROJECT_NAME)
file = File.open(filename, "w")
file.puts format("ENTITY %s IS\n", ENTITY_NAME)
file.puts format("\tPort (\n")
file.puts format("\tclk\t\t\t: in STD_LOGIC;\n")
file.puts format("\tce\t\t\t: in STD_LOGIC;\n")
file.puts format("\taddr\t\t: in %s;\n", ENTITY_ADDR_TYPE)
file.puts format("\tdout\t\t: out %s\n", ENTITY_DATA_TYPE)
file.puts format("\t);\n")
file.puts format("END %s;\n", ENTITY_NAME)
file.puts format("\n")
file.puts format("ARCHITECTURE %s OF %s IS \n", PROJECT_NAME, ENTITY_NAME)
file.puts format("\n")
file.puts format("\ttype instruction_rom_t is array (0 to %d) of %s;\n", pc-1, ENTITY_DATA_TYPE)
file.puts format("\n")
file.puts format("\tconstant instruction_rom : instruction_rom_t :=\n")
file.puts format("\t(\n");
for i in (0..pc-2)
file.puts "\t\t" + vhdl_trans_list[i] + ", -- " + vhdl_comment_list[i] + "\n"
end;
file.puts "\t\t" + vhdl_trans_list[pc-1] + " -- " + vhdl_comment_list[pc-1] + "\n"
file.puts format("\t);\n")
file.puts format("\n")
file.puts format("begin")
file.puts format("\n")
file.puts format("PROM_READ:")
file.puts format("\tprocess(clk, ce)\n")
file.puts format("\tbegin\n")
file.puts format("\t\tif rising_edge(clk) and ce = '1' then\n")
file.puts format("\t\t\tdout <= instruction_rom(to_integer(addr));\n")
file.puts format("\t\tend if;\n")
file.puts format("\tend process;\n")
file.puts format("\n")
file.puts format("end %s;\n", PROJECT_NAME)
puts format("ROM file written to \"%s\"\n",filename)
file.close
end
if num_errors == 0
filename = format("preinit_%s.vhdl.snip", PROJECT_NAME)
file = File.open(filename, "w")
file.puts format("\tsignal instruction_rom : instruction_rom_t :=\n")
file.puts format("\t(\n");
for i in (0..pc-2)
file.puts "\t\t" + vhdl_trans_list[i] + ", -- " + vhdl_comment_list[i] + "\n"
end;
if pc < (MAX_SIZE_ROM-1)
file.puts "\t\t" + vhdl_trans_list[pc-1] + ", -- " + vhdl_comment_list[pc-1] + "\n"
for i in (pc..(MAX_SIZE_ROM-2))
file.puts "\t\t" + instr(0) + ",\n"
end;
file.puts "\t\t" + instr(0) + "\n"
else
file.puts "\t\t" + vhdl_trans_list[pc-1] + " -- " + vhdl_comment_list[pc-1] + "\n"
end
file.puts format("\t);\n")
puts format("PREINIT file written to \"%s\"\n",filename)
file.close
end
if num_errors == 0
filename = format("rom_%s.tcl.snip", PROJECT_NAME)
file = File.open(filename, "w")
for i in (0..pc-1)
# Chipscope 8.1
# file.puts format("jtag_shiftdr $handle -buffer \"%s\" -endstate RTI -device $devid", vhdl_tcl_list[i].reverse);
# Chipscope 9.1
file.puts format("\# %s", vhdl_comment_list[i])
file.puts format("::chipscope::csejtag_tap shift_device_dr $handle $devid $CSEJTAG_SHIFT_READWRITE $CSEJTAG_RUN_TEST_IDLE 0 %d \"%8.8X\"\n\n", vhdl_tcl_list[i].length, vhdl_tcl_list[i].to_i(2));
end;
puts format("TCL snippet written to \"%s\"\n",filename)
file.close
end
# --------------------------------------------------------
# Output final statistics
# --------------------------------------------------------
if num_errors == 0
puts "Program uses #{pc} instruction addresses"
puts "No errors found"
exit 0
else
puts "#{num_errors} errors found"
exit 1
end
+811
View File
@@ -0,0 +1,811 @@
#!/usr/bin/env ruby
# ----------------------------------------------------------------------
# Project: JCPU, a portable 8-bit RISC CPU written in VHDL
# This file: A small assembler for the JCPU
#
# Copyright (C) 2007 J. Ahrensfeld
#
# This program is free software: you can redistribute it and/or modify
# it under the terms of the GNU General Public License as published by
# the Free Software Foundation, either version 3 of the License, or
# (at your option) any later version.
#
# This program is distributed in the hope that it will be useful,
# but WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
# GNU General Public License for more details.
#
# You should have received a copy of the GNU General Public License
# along with this program. If not, see <http://www.gnu.org/licenses/>.
#
# For questions and ideas, please contact the author at jens@jayfield.org
#
# ---------------------------------------------------------------------
arg = $*
FILE_SUFFIX = "jsm"
IROM_MAX_SIZE = 1024
IROM_ENTITY_NAME = "irom"
IROM_DATA_TYPE = "inst_t"
IROM_ADDR_TYPE = "inst_addr_t"
XROM_MAX_SIZE = 256
XROM_DATA_TYPE = "dmem_data_t"
XROM_ADDR_TYPE = "dmem_addr_t"
XROM_ENTITY_NAME = "xrom"
OPC_LIST_NAME = __dir__ + "/opc.list"
# --------------------------------------------------------
class Parser
def curr_segment
@curr_segment
end
def curr_segment=(arg)
@curr_segment=arg
end
def add_label(labelname, addr)
@label_list = @label_list + [labelname, addr]
end
def getLabelIdByName(label)
return @label_list.rindex(label)
end
def getLabelNameById(id)
return @label_list[id]
end
def put_instr(name, lc, opc , op1 , op2)
if get_instr != nil
STDERR.puts format("Error in line %d: Overlapping sections at %3.3X", lc, @pc)
exit 1
end
@instr_list[@pc] = [lc, @pc, opc , op1 , op2, name]
end
def get_instr
return @instr_list[@pc]
end
def put_xmem(value, lc)
if get_xmem != nil
STDERR.puts format("Error in line %d: Overlapping sections at %3.3X (%s)", lc, xmem_dc, curr_segment)
exit 1
end
@xmem[xmem_dc] = value
@xmem_dc = xmem_dc + 1
end
def get_xmem
return @xmem[xmem_dc]
end
def xmem
return @xmem
end
def put_cmem(value, lc)
if get_cmem(page) != nil
STDERR.puts format("Error in line %d: Overlapping sections at %3.3X (%s)", lc, cmem_dc, curr_segment)
exit 1
end
@cmem[page][cmem_dc] = value
@cmem_dc[page] = cmem_dc + 1
end
def get_cmem(pg)
return @cmem[pg][cmem_dc]
end
def cmem(page)
return @cmem[page]
end
def cmem_dc=(addr)
@cmem_dc[page] = addr
end
def cmem_dc
@cmem_dc[page]
end
def xmem_dc=(addr)
@xmem_dc = addr
end
def xmem_dc
@xmem_dc
end
def page=(page)
@page = page;
end
def page
@page;
end
def pc=(pc)
@pc = pc;
if (pc > @pc_max)
@pc_max = pc
end
end
def pc
@pc;
end
def pc_max
@pc_max;
end
def instr_list
@instr_list
end
def label_list
@label_list
end
def initialize()
@pc_max = 0
@pc = 0 # Program counter
@cmem_dc = [0,0,0,0] # chip data counter
@xmem_dc = 0 # xmem data counter
@curr_segment = "UNDEF";
@page = 0
@label_list=[[],[]]
@instr_list=[nil]
@cmem = [[],[]];
@xmem = [];
end
def method_missing(name, *args)
puts "I don't know the method #{name}"
end
end
# --------------------------------------------------------
def parse(name, obj)
lc = 0 # Line counter
file = File.open(name, "r")
file.each do |raw_line|
lc += 1
# Make all upper case
iline = "#{raw_line}".strip
# Remove comments
iline = iline.gsub(/;.*/, "")
# Split instruction at spaces
iline_member = iline.split(" ")
if iline_member[0] == nil
next
end
mc = 0;
label = nil
clean_line = nil
if (iline_member[0] =~ /\w+:/)
mc += 1
label = iline_member[0].delete(":")
if obj.getLabelIdByName(label) != nil
STDERR.puts format("Error in line %d: Duplicate label \"%s\" found", lc, label)
exit 1
end
end
token = iline_member[mc]
mcnt = iline_member.count{|x| !x.nil?}
if token
token = token.upcase
end
case token
when nil
if obj.curr_segment == "CMEM"
curr_addr = format("0x%3.3X",obj.cmem_dc)
elsif obj.curr_segment == "XMEM"
curr_addr = format("0x%3.3X",obj.xmem_dc)
elsif obj.curr_segment == "CODE"
curr_addr = format("0x%3.3X",obj.pc)
else
STDERR.puts format("Error in line %d: Undefined segment", lc)
exit 1
end
when "INCLUDE"
if iline_member[mc+1] == nil
STDERR.puts format("Error in line %d: %s needs argument!", lc, token)
exit 1
end
inc_name = iline_member[mc+1].delete("\"")
puts format("Inserting \"%s\" into \"%s\" at line %d", inc_name, name, lc);
parse(inc_name, obj)
when "EQU"
if iline_member[mc+1] == nil
STDERR.puts format("Error in line %d: %s needs argument!", lc, token)
exit 1
end
if 0 == (iline_member[mc+1] =~ /\d+/)
curr_addr = format("0x%2.2X",eval(iline_member[mc+1..mcnt][0].to_s))
else
curr_addr = iline_member[mc+1]
end
when "ORG"
if iline_member[mc+1] == nil
STDERR.puts format("Error in line %d: %s needs argument!", lc, token)
exit 1
end
offset = eval(iline_member[mc+1..mcnt][0].to_s)
case obj.curr_segment
when "CODE"
obj.pc = offset
curr_addr = format("0x%3.3X",obj.pc)
when "CMEM"
obj.cmem_dc = offset
when "XMEM"
obj.xmem_dc = offset
end
when "CODE"
curr_addr = format("0x%3.3X",obj.pc)
obj.curr_segment = "CODE";
when "CDATA", "CMEM"
if iline_member[mc+1] == nil
STDERR.puts format("Error in line %d: %s needs argument!", lc, token)
exit 1
end
obj.curr_segment = "CMEM";
obj.page = iline_member[mc+1].to_i(16)
when "XDATA", "XMEM"
obj.curr_segment = "XMEM";
when "DC"
len = 0;
if iline_member[mc+1] == nil
STDERR.puts format("Error in line %d: %s needs argument!", lc, token)
exit 1
end
if obj.curr_segment == "CMEM"
STDERR.puts format("Error in line %d: %s cannot be initialized!", lc, obj.curr_segment)
exit 1
elsif obj.curr_segment == "XMEM"
curr_addr = format("0x%2.2X",obj.xmem_dc)
dc_old = obj.xmem_dc;
val_array = raw_line.split(/dc|DC|Dc|dC/)[1].delete("\t").gsub(/;.*/, "").split(",")
# Parse string literals
val_array.each do |item|
if 0 == (item =~ /.*\".*\"/)
str = item.delete("\"")
for nn in (0..str.length-1)
value = str[nn].ord
obj.put_xmem(value, lc);
len += 1
end;
else
argument = item
obj.put_xmem(eval(argument), lc);
len += 1
end
end
puts format("Found DC defining %d bytes at 0x%4.4X in %s", len, dc_old, obj.curr_segment);
else
STDERR.puts format("Error in line %d: Invalid segment %s for \"%s\"", lc, obj.curr_segment, token)
exit 1
end
when "DB"
if iline_member[mc+1] == nil
STDERR.puts format("Error in line %d: %s needs argument!", lc, token)
exit 1
end
len = eval(iline_member[mc+1]).to_i
if obj.curr_segment == "CMEM"
curr_addr = format("0x%2.2X",obj.cmem_dc)
puts format("Found DB reserving %d bytes at 0x%4.4X in %s(%d)", len, obj.cmem_dc, obj.curr_segment, obj.page);
for nn in (1..len)
obj.put_cmem(0, lc)
end
elsif obj.curr_segment == "XMEM"
curr_addr = format("0x%2.2X",obj.xmem_dc)
puts format("Found DB reserving %d bytes at 0x%4.4X in %s", len, obj.xmem_dc, obj.curr_segment);
for nn in (1..len)
obj.put_xmem(0, lc)
end
else
STDERR.puts format("Error in line %d: Invalid segment %s for \"%s\"", lc, obj.curr_segment, token)
exit 1
end
else
if obj.curr_segment != "CODE"
STDERR.puts format("Error in line %d: Invalid segment %s for \"%s\"", lc, obj.curr_segment, token)
exit 1
end
op_line = iline_member[mc+1..mcnt]
curr_addr = format("0x%3.3X",obj.pc)
opc = token
if iline_member[mc+1] != nil
op1 = op_line[0].to_s.gsub(/,+.*$/, "")
end
if iline_member[mc+2] != nil
op2 = op_line[1].to_s.gsub(/,+.*$/, "")
end
obj.put_instr(name, lc, opc, op1, op2)
obj.pc = obj.pc + 1
end;
# Push labels
if label
obj.add_label(label, curr_addr)
end
end
file.close
return obj
end
# --------------------------------------------------------
# Instruction formatting
# --------------------------------------------------------
def instr(opcode)
return format("\"%6.6B\" & X\"%3.3X\"",opcode ,0)
end
def tcl_bits(pc, opcode)
return format("%12.12B%8.8B%12.12B",pc, opcode ,0)
end
def instr_k(opcode, k)
return format("\"%6.6B\" & X\"%3.3X\"",opcode ,k)
end
def tcl_bits_k(pc, opcode, k)
return format("%12.12B%8.8B%12.12B",pc, opcode ,k)
end
def instr_r(opcode, r)
return format("\"%6.6B\" & X\"%2.2X%X\"",opcode ,0, r)
end
def tcl_bits_r(pc, opcode, r)
return format("%12.12B%8.8B%8.8B%4.4B",pc, opcode ,0,r)
end
def instr_kr(opcode, k, r)
return format("\"%6.6B\" & X\"%2.2X%X\"",opcode,k, r)
end
def tcl_bits_kr(pc, opcode, k, r)
return format("%12.12B%8.8B%8.8B%4.4B",pc, opcode, k, r)
end
def instr_rk(opcode, r, k)
return format("\"%6.6B\" & X\"%2.2X%X\"",opcode,k, r)
end
def tcl_bits_rk(pc, opcode, r, k)
return format("%12.12B%8.8B%8.8B%4.4B",pc, opcode, k, r)
end
def instr_rr(opcode, ra, rb)
return format("\"%6.6B\" & X\"%X%X%X\"",opcode,0, rb, ra)
end
def tcl_bits_rr(pc, opcode, ra, rb)
return format("%12.12B%8.8B%4.4B%4.4B%4.4B",pc, opcode, 0, rb, ra)
end
# --------------------------------------------------------
# Open file
# --------------------------------------------------------
filename = arg[0].to_s
if !File.exists?(filename)
STDERR.puts "#{filename} does not exist"
exit 1
end
PROJECT_NAME = File.basename(filename, "." + FILE_SUFFIX)
# --------------------------------------------------------
# Pass 1
# --------------------------------------------------------
first_pass = Parser.new();
parse(filename, first_pass)
# --------------------------------------------------------
# Read mnemonic set
# --------------------------------------------------------
filename = OPC_LIST_NAME
if !File.exists?(filename)
STDERR.puts "#{filename} does not exist"
exit 1
end
mnemo_list = []
num_opcodes = 0
file = File.open(filename, "r")
file.each do |raw_line|
mnemo_list[num_opcodes] = raw_line.split(" ")[1]
num_opcodes += 1
end
# --------------------------------------------------------
# Pass 2
# --------------------------------------------------------
pc = 0
opc_start = 2
num_errors = 0
vhdl_trans_list = [nil]
vhdl_comment_list = [nil]
vhdl_tcl_list = [nil]
# ToDo: Use class-methods
label_list = first_pass.label_list
instr_list = first_pass.instr_list
instr_list.each do |instruct|
# puts instruct
if instruct == nil
vhdl_trans_list[pc] = format("\"%6.6B\" & X\"%3.3X\"",0 ,0)
vhdl_comment_list[pc] = format("0x%3.3X:", pc)
vhdl_tcl_list[pc] = tcl_bits(pc, 0)
pc += 1
next
end
# determine arglen of instruction
ilen = 0
if instruct[opc_start+1] == nil
arglen = 0
elsif instruct[opc_start+2] == nil
arglen = 1
elsif instruct[opc_start+3] == nil
arglen = 2
end
# Symbol substitution
error = false
for i in (1..2)
subst_pos = opc_start+i
if instruct[subst_pos] == nil
next
end
expr_token = ""
expr_subst = nil
is_direct = true;
# checks R0 .. R16, Mnemonics
instruct[subst_pos] = instruct[subst_pos].gsub(/'low/, "")
if (nil != (instruct[subst_pos] =~ /'high/))
instruct[subst_pos]= format("%s/256", instruct[subst_pos].gsub(/'high/, ""))
end
instr_str = instruct[subst_pos]
if 0 == (instr_str =~ /\(.+\)/)
instr_str = instr_str.delete("()")
is_direct = false;
end
expr_token = instr_str.split(/\+|\-|\*|\/|\||\&/)[0]
if (0 != (expr_token =~ /R[0-9]+/)) && (0 != (expr_token =~ /\d+/))
idx = label_list.rindex(expr_token)
if idx != nil
expr_subst = label_list[idx+1]
instruct[subst_pos] = instruct[subst_pos].gsub(expr_token, expr_subst)
else
STDERR.puts format("%s: Error in line %d: Symbol \"%s\" not found", instruct[5], instruct[0], expr_token)
error = true
end
end
if expr_subst != nil
if 0 == (expr_subst =~ /\d+/)
if is_direct == true
instruct[subst_pos] = format("0x%2.2X", eval(instruct[subst_pos]))
else
instruct[subst_pos] = format("(0x%2.2X)", eval(instruct[subst_pos]))
end
else
if 0 != (expr_subst =~ /R[0-9]+/)
STDERR.puts format("%s: Error in line %d: Invalid expression \"%s\"", instruct[5], instruct[0], expr_subst)
error = true
end
end
end
end
# Parse operands
reg = [0,0]
kk = 0
format = instruct[opc_start]
for i in (0..1)
if instruct[opc_start+i+1] =~ Regexp.new("R[0-9]+")
# Check indirect addressing
reg[i] = instruct[opc_start+i+1].delete("R()").to_i
format += "|R"
if reg[i] > 15
STDERR.puts format("%s: Error in line %d: Invalid register \"R%d\" specified", instruct[5], instruct[0], reg[i])
error = true
end
else
if instruct[opc_start+i+1] =~ Regexp.new("[0-9A-F]+")
kk = eval(instruct[opc_start+i+1].delete("()"))
format += "|K"
end
end
if instruct[opc_start+i+1] =~ Regexp.new("\\(.+\\)")
format += "i";
end
end
if error
num_errors += 1
break
end
# Output instruction
opcode = mnemo_list.rindex(format).to_i
mnemo = instruct[2];
case format
# Native instructions
when "NOP", "HALT", "RET", "RETI", "SETC"
vhdl_trans_list[pc] = instr(opcode)
vhdl_tcl_list[pc] = tcl_bits(pc, opcode)
minstr_comment = format("0x%3.3X: %s", pc, mnemo)
when "MOVC|R|Ri", "MOVX|R|Ri"
vhdl_trans_list[pc] = instr_rr(opcode, reg[0], reg[1]);
vhdl_tcl_list[pc] = tcl_bits_rr(pc, opcode, reg[0], reg[1])
minstr_comment = format("0x%3.3X: %s R%2.2d, (R%2.2d)", pc, mnemo, reg[0], reg[1])
when "MOV|R|R", "SUB|R|R", "SUBC|R|R", "ADD|R|R", "ADDC|R|R", "AND|R|R", "OR|R|R", "XOR|R|R", "CMP|R|R"
vhdl_trans_list[pc] = instr_rr(opcode, reg[0], reg[1]);
vhdl_tcl_list[pc] = tcl_bits_rr(pc, opcode, reg[0], reg[1])
minstr_comment = format("0x%3.3X: %s R%2.2d, R%2.2d", pc, mnemo, reg[0], reg[1])
when "MOVC|Ri|R", "MOVX|Ri|R"
vhdl_trans_list[pc] = instr_rr(opcode, reg[1], reg[0]);
vhdl_tcl_list[pc] = tcl_bits_rr(pc, opcode, reg[1], reg[0])
minstr_comment = format("0x%3.3X: %s (R%2.2d), R%2.2d", pc, mnemo, reg[1], reg[0])
when "MOVC|Ri|K", "MOVX|Ri|K", "COUT|Ri|K", "XOUT|Ri|K"
kk = kk % 256;
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
minstr_comment = format("0x%3.3X: %s (R%2.2d), 0x%2.2X", pc, mnemo, reg[0], kk)
when "MOVC|R|Ki", "MOVX|R|Ki", "CIN|R|Ki", "XIN|R|Ki"
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
minstr_comment = format("0x%3.3X: %s R%2.2d, (0x%2.2X)", pc, mnemo, reg[0], kk)
when "MOV|R|K", "SUB|R|K", "SUBC|R|K", "ADD|R|K", "ADDC|R|K", "AND|R|K", "OR|R|K", "XOR|R|K", "CMP|R|K"
kk = kk % 256;
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
minstr_comment = format("0x%3.3X: %s R%2.2d, 0x%2.2X", pc, mnemo, reg[0], kk)
when "SUB|K|R", "SUBC|K|R"
kk = kk % 256;
vhdl_trans_list[pc] = instr_kr(opcode, kk, reg[1]);
vhdl_tcl_list[pc] = tcl_bits_kr(pc, opcode, kk, reg[1])
minstr_comment = format("0x%3.3X: %s 0x%2.2d, R%2.2X", pc, mnemo, kk, reg[1])
when "MOVC|Ki|R", "MOVC|Ki|R", "MOVX|Ki|R", "MOVX|Ki|R", "COUT|Ki|R", "XOUT|Ki|R"
vhdl_trans_list[pc] = instr_kr(opcode, kk, reg[1]);
vhdl_tcl_list[pc] = tcl_bits_kr(pc, opcode, kk, reg[1])
minstr_comment = format("0x%3.3X: %s (0x%2.2X), R%2.2d", pc, mnemo, kk, reg[1])
when "CALL|K", "JMP|K", "JNZ|K", "JZ|K","JNC|K", "JC|K", "JLT|K", "JGT|K", "JLE|K", "JGE|K", "JEQ|K", "JNE|K"
vhdl_trans_list[pc] = instr_k(opcode, kk)
vhdl_tcl_list[pc] = tcl_bits_k(pc, opcode, kk)
minstr_comment = format("0x%3.3X: %s 0x%3.3X", pc, mnemo, kk)
when "PUSH|R", "POP|R", "SHR|R", "SHL|R", "ROR|R", "ROL|R", "RORC|R", "ROLC|R", "SWAP|R"
vhdl_trans_list[pc] = instr_r(opcode, reg[0])
vhdl_tcl_list[pc] = tcl_bits_r(pc, opcode, reg[0])
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
# Synthetic instructions
when "CLRC"
kk = 0;
minstr_comment = format("0x%3.3X: %s", pc, mnemo)
opcode = mnemo_list.rindex("SUB|R|K").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
when "TST|R"
kk = 0
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
opcode = mnemo_list.rindex("CMP|R|K").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
when "NEG|R"
kk = 0
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
opcode = mnemo_list.rindex("SUB|K|R").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
when "NOT|R"
kk = 0
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
opcode = mnemo_list.rindex("XOR|R|K").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
when "INC|R"
kk = 1
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
opcode = mnemo_list.rindex("ADD|R|K").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
when "DEC|R"
kk = 1
minstr_comment = format("0x%3.3X: %s R%2.2d", pc, mnemo, reg[0])
opcode = mnemo_list.rindex("SUB|R|K").to_i
vhdl_trans_list[pc] = instr_rk(opcode, reg[0], kk);
vhdl_tcl_list[pc] = tcl_bits_rk(pc, opcode, reg[0], kk)
else
STDERR.puts format("%s: Error in line %d: Not yet implemented %s", instruct[5], instruct[0], format)
error = true
end
if error
num_errors += 1
break
end
vhdl_comment_list[pc] = minstr_comment
puts vhdl_trans_list[pc] + " -- " + minstr_comment
pc += 1
end
# --------------------------------------------------------
# Output ROM file
# --------------------------------------------------------
if num_errors == 0
# I-ROM VHDL-ROM
filename = format("%s.irom.vhdl.snip", PROJECT_NAME)
file = File.open(filename, "w")
file.puts format("ENTITY %s IS\n", IROM_ENTITY_NAME)
file.puts format("\tPort (\n")
file.puts format("\tclk\t\t\t: in STD_LOGIC;\n")
file.puts format("\tce\t\t\t: in STD_LOGIC;\n")
file.puts format("\taddr\t\t: in %s;\n", IROM_ADDR_TYPE)
file.puts format("\tdout\t\t: out %s\n", IROM_DATA_TYPE)
file.puts format("\t);\n")
file.puts format("END %s;\n", IROM_ENTITY_NAME)
file.puts format("\n")
file.puts format("ARCHITECTURE %s OF %s IS \n", PROJECT_NAME, IROM_ENTITY_NAME)
file.puts format("\n")
file.puts format("\ttype imem_rom_t is array (0 to %d) of %s;\n", [IROM_MAX_SIZE, pc].min-1 , IROM_DATA_TYPE)
file.puts format("\n")
file.puts format("\t-- Assembled from %s.%s", PROJECT_NAME, FILE_SUFFIX)
file.puts format("\tconstant imem_rom : imem_rom_t :=\n")
file.puts format("\t(\n");
for i in (0..[IROM_MAX_SIZE, pc].min-2)
file.puts "\t\t" + vhdl_trans_list[i] + ", -- " + vhdl_comment_list[i] + "\n"
end;
file.puts "\t\t" + vhdl_trans_list[pc-1] + " -- " + vhdl_comment_list[pc-1] + "\n"
file.puts format("\t);\n")
file.puts format("\n")
file.puts format("begin")
file.puts format("\n")
file.puts format("PROM_READ:")
file.puts format("\tprocess(clk, ce)\n")
file.puts format("\tbegin\n")
file.puts format("\t\tif rising_edge(clk) and ce = '1' then\n")
file.puts format("\t\t\tdout <= imem_rom(to_integer(addr));\n")
file.puts format("\t\tend if;\n")
file.puts format("\tend process;\n")
file.puts format("\n")
file.puts format("end %s;\n", PROJECT_NAME)
puts format("I-ROM file written to \"%s\"\n",filename)
file.close
# I-ROM VHDL-ROM (loadable)
filename = format("%s.irom_ld.vhdl.snip", PROJECT_NAME)
file = File.open(filename, "w")
file.puts format("\n\t-- Assembled from %s.%s", PROJECT_NAME, FILE_SUFFIX)
file.puts format("\ttype imem_rom_t is array (0 to %d) of %s;\n", IROM_MAX_SIZE-1, IROM_DATA_TYPE)
file.puts format("\tsignal imem_rom : imem_rom_t :=\n")
file.puts format("\t(\n");
for i in (0..pc-2)
file.puts "\t\t" + vhdl_trans_list[i] + ", -- " + vhdl_comment_list[i] + "\n"
end;
if pc < (IROM_MAX_SIZE-1)
file.puts "\t\t" + vhdl_trans_list[pc-1] + ", -- " + vhdl_comment_list[pc-1] + "\n"
for i in (pc..(IROM_MAX_SIZE-2))
file.puts "\t\t" + instr(0) + ",\n"
end;
file.puts "\t\t" + instr(0) + "\n"
else
file.puts "\t\t" + vhdl_trans_list[pc-1] + " -- " + vhdl_comment_list[pc-1] + "\n"
end
file.puts format("\t);\n")
puts format("I-ROM (loadable) file written to \"%s\"\n",filename)
file.close
# I-ROM TCL-Loader
filename = format("%s.irom.tcl.snip", PROJECT_NAME)
file = File.open(filename, "w")
file.puts format("# Assembled from %s.%s", PROJECT_NAME, FILE_SUFFIX)
file.puts format("# ---------------------------------------------------------------");
file.puts format("# Shift the USER1 Instruction (b1111000010) into the Instruction Register of FPGA");
file.puts format("# User 1")
file.puts format("set result [::chipscope::csejtag_tap shift_device_ir $handle $devid $CSE_OP $CSE_ES 0 $irlength \"3C2\"]\n\n")
for i in (0..pc-1)
# Chipscope 8.1
# file.puts format("jtag_shiftdr $handle -buffer \"%s\" -endstate RTI -device $devid", vhdl_tcl_list[i].reverse);
# Chipscope 9.1
file.puts format("\# %s", vhdl_comment_list[i])
file.puts format("::chipscope::csejtag_tap shift_device_dr $handle $devid $CSE_OP $CSE_ES 0 %d \"%8.8X\"\n\n", vhdl_tcl_list[i].length, vhdl_tcl_list[i].to_i(2));
end;
puts format("I-ROM TCL-loader written to \"%s\"\n",filename)
file.close
# X-ROM VHDL-ROM
filename = format("%s.xrom.vhdl.snip", PROJECT_NAME)
file = File.open(filename, "w")
file.puts format("ENTITY %s IS\n", XROM_ENTITY_NAME)
file.puts format("\tPort (\n")
file.puts format("\tclk\t\t\t: in STD_LOGIC;\n")
file.puts format("\tce\t\t\t: in STD_LOGIC;\n")
file.puts format("\taddr\t\t: in %s;\n", XROM_ADDR_TYPE)
file.puts format("\tdout\t\t: out %s\n", XROM_DATA_TYPE)
file.puts format("\t);\n")
file.puts format("END %s;\n", XROM_ENTITY_NAME)
file.puts format("\n")
file.puts format("ARCHITECTURE %s OF %s IS \n", PROJECT_NAME, XROM_ENTITY_NAME)
file.puts format("\n")
file.puts format("\ttype xmem_rom_t is array (0 to %d) of %s;\n", XROM_MAX_SIZE-1, XROM_DATA_TYPE)
file.puts format("\n")
file.puts format("\t-- Assembled from %s.%s", PROJECT_NAME, FILE_SUFFIX)
file.puts format("\tconstant xmem_rom : xmem_rom_t :=\n")
file.puts format("\t(\n");
for i in (0..XROM_MAX_SIZE-2)
file.puts format("\t\tX\"%2.2X\", -- 0x%2.2X\n", first_pass.xmem[i].to_i(), i)
end;
i = XROM_MAX_SIZE-1
file.puts format("\t\tX\"%2.2X\" -- 0x%2.2X\n", first_pass.xmem[i].to_i(), i)
file.puts format("\t);\n")
file.puts format("\n")
file.puts format("begin")
file.puts format("\n")
file.puts format("PROM_READ:")
file.puts format("\tprocess(clk, ce)\n")
file.puts format("\tbegin\n")
file.puts format("\t\tif rising_edge(clk) and ce = '1' then\n")
file.puts format("\t\t\tdout <= xmem_rom(to_integer(addr));\n")
file.puts format("\t\tend if;\n")
file.puts format("\tend process;\n")
file.puts format("\n")
file.puts format("end %s;\n", PROJECT_NAME)
puts format("X-ROM file written to \"%s\"\n",filename)
file.close
# X-ROM VHDL-ROM (loadable)
filename = format("%s.xrom_ld.vhdl.snip", PROJECT_NAME)
file = File.open(filename, "w")
file.puts format("\n\t-- Assembled from %s.%s", PROJECT_NAME, FILE_SUFFIX)
file.puts format("\ttype xmem_rom_t is array (0 to %d) of %s;\n", XROM_MAX_SIZE-1, XROM_DATA_TYPE)
file.puts format("\tsignal xmem_rom : xmem_rom_t :=\n")
file.puts format("\t(\n");
for i in (0..XROM_MAX_SIZE-2)
file.puts format("\t\tX\"%2.2X\", -- 0x%2.2X\n", first_pass.xmem[i].to_i(), i)
end;
i = XROM_MAX_SIZE-1
file.puts format("\t\tX\"%2.2X\" -- 0x%2.2X\n", first_pass.xmem[i].to_i(), i)
file.puts format("\t);\n")
puts format("X-ROM (loadable) file written to \"%s\"\n",filename)
file.close
# X-ROM JTAG-Loader
filename = format("%s.xrom.tcl.snip", PROJECT_NAME)
file = File.open(filename, "w")
file.puts format("# Assembled from %s.%s", PROJECT_NAME, FILE_SUFFIX)
file.puts format("# ---------------------------------------------------------------");
file.puts format("# Shift the USER2 Instruction (b1111000011) into the Instruction Register of FPGA");
file.puts format("# User 2")
file.puts format("set result [::chipscope::csejtag_tap shift_device_ir $handle $devid $CSE_OP $CSE_ES 0 $irlength \"3C3\"]\n\n")
for i in (0..first_pass.xmem.length-1)
# Chipscope 8.1
# file.puts format("jtag_shiftdr $handle -buffer \"%s\" -endstate RTI -device $devid", vhdl_tcl_list[i].reverse);
# Chipscope 9.1
file.puts format("::chipscope::csejtag_tap shift_device_dr $handle $devid $CSE_OP $CSE_ES 0 %d \"%2.2X%2.2X\"\n", 16, i, first_pass.xmem[i]);
end;
puts format("X-ROM TCL-loader written to \"%s\"\n",filename)
file.close
end
# --------------------------------------------------------
# Output final statistics
# --------------------------------------------------------
if num_errors == 0
puts "Program uses #{first_pass.pc_max} instruction addresses"
puts "No errors found"
exit 0
else
puts "#{num_errors} errors found"
exit 1
end
+72
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@@ -0,0 +1,72 @@
; -------------------------------------------------
; lcd.inc.jsm
; -------------------------------------------------
; needs xio-address equates for
; reg_cg_char_addr: equ 0xXX ; RW
; reg_cg_line_addr: equ 0xXX ; RW
; reg_cg_data: equ 0xXX ; RW
; reg_cg_ctrl: equ 0xXX ; WO
; needs delay.inc.jsm
; -------------------------------------------------
cg_clr_line: push R0
mov R0, 2
xout (reg_cg_ctrl), R0
pop R0
ret
; -------------------------------------------------
cg_clr_screen: push R0
mov R0, 1
xout (reg_cg_ctrl), R0
pop R0
ret
; -------------------------------------------------
; R0 : char address
; R1 : line address
cg_set_addr: call cg_wait_rdy
xout (reg_cg_line_addr), R1
xout (reg_cg_char_addr), R0
ret
; -------------------------------------------------
; R0 : character
cg_putchar: call cg_wait_rdy
xout (reg_cg_data), R0
ret
; -------------------------------------------------
; R1 : ptr to string
cg_puts: push R0
cg_p_lp: movx R0, (R1)
inc R1
tst R0
jz ex_cgp
call cg_putchar
jmp cg_p_lp
ex_cgp: pop R0
ret
; -------------------------------------------------
; R1 : ptr to string
cg_clr_puts: call cg_clr_line
call cg_puts
ret
; -------------------------------------------------
; R1 : ptr to string
cg_puts_clr: call cg_puts
call cg_clr_line
ret
; -------------------------------------------------
cg_wait_rdy: push R0
cg_wr_lp: xin R0, (reg_hwstat)
and R0, 0x02
jz cg_wr_lp
pop R0
ret
; -------------------------------------------------
+7
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@@ -0,0 +1,7 @@
; JCPU On-Chip register
cpu_revision: equ 0x00 ; RO
cpu_control: equ 0x01 ; R/W
cpu_status: equ 0x02 ; RO
cpu_int_ctrl: equ 0x03 ; RW
cpu_cmem_high: equ 0x04 ; RW
cpu_stack_high: equ 0x05 ; RW
+64
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@@ -0,0 +1,64 @@
; -------------------------------------------------
; Delays
; -------------------------------------------------
delay1s: push R15
mov R15, 10
loop1s: call delay100ms
dec R15
jnz loop1s
pop R15
ret
delay100ms: push R15
mov R15, 10
loop100ms: call delay10ms
dec R15
jnz loop100ms
pop R15
ret
delay10ms: push R15
mov R15, 10
loop10ms: call delay1ms
dec R15
jnz loop10ms
pop R15
ret
delay1ms: push R15
mov R15, 10
loop1ms: call delay100us
dec R15
jnz loop1ms
pop R15
ret
delay100us: push R15
mov R15, 10
loop100us: call delay10us
dec R15
jnz loop100us
pop R15
ret
delay10us: push R15
mov R15, 99
loop10us: nop
nop
nop
dec R15
jnz loop10us
pop R15
ret
delay1us: push R15
mov R15, 9
loop1us: nop
nop
nop
dec R15
jnz loop1us
pop R15
ret
; -------------------------------------------------
+208
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@@ -0,0 +1,208 @@
; -------------------------------------------------
; lcd.inc.jsm
; -------------------------------------------------
; needs xmem-address definition for
; - lcd_port (LCD-Base)
; needs delay.inc.jsm
; -------------------------------------------------
lcd_cmd: equ 0x00
lcd_rd: equ 0x20
lcd_data: equ 0x40
lcd_enable: equ 0x80
LCD_CMD_Z1: equ 0x80
LCD_CMD_Z2: equ 0xC0
LCD_CMD_CLEAR: equ 0x01
; -------------------------------------------------
; Init LCD
; -------------------------------------------------
LCD_init: mov R2, 0x00
mov R0, 0x03
call _write_lcd
call delay10ms
mov R2, 0x00
mov R0, 0x03
call _write_lcd
call delay10ms
mov R2, 0x00
mov R0, 0x02
call _write_lcd
call delay1ms
; 1. Function set: 4-Bit mode, two display lines
mov R0, 0x28
call LCD_writecmd
; 2. Display on, no cursor
mov R0, 0x0C
call LCD_writecmd
; 3. Cursor shift during write
mov R0, 0x06
call LCD_writecmd
; 4. Display clear
mov R0, 0x01
call LCD_writecmd
ret
; -------------------------------------------------
; LCD_waitbsy
; -------------------------------------------------
LCD_waitbsy: push R0
bsy_loop: call LCD_readstat
and R0, 0x80
jz ex_bsy
call delay1us
jmp bsy_loop
ex_bsy: pop R0
ret
; -------------------------------------------------
; LCD_writecmd
; -------------------------------------------------
; R0 = cmd
LCD_writeaddr:
LCD_writecmd: push R2
mov R2, lcd_cmd
call LCD_write
pop R2
ret
; -------------------------------------------------
; LCD_putsx
; -------------------------------------------------
; R1 = address of null-terminated string in XMEM
LCD_putsx: push R0
putsx_loop: movx R0, (R1)
inc R1
tst R0
jz putsx_ex
call LCD_writechar
jmp putsx_loop
putsx_ex: pop R0
ret
; -------------------------------------------------
; LCD_putsc
; -------------------------------------------------
; R1 = address of null-terminated string in CMEM
LCD_putsc: push R0
putsc_loop: movc R0, (R1)
inc R1
tst R0
jz putsc_ex
call LCD_writechar
jmp putsc_loop
putsc_ex: pop R0
ret
; -------------------------------------------------
; LCD_writechar
; -------------------------------------------------
; R0 = char
LCD_writedata:
LCD_writechar: push R2
mov R2, lcd_data
call LCD_write
pop R2
ret
; -------------------------------------------------
; LCD_write
; -------------------------------------------------
; R0 = input
; R2 = register
LCD_write: call LCD_waitbsy
push R0
swap R0
call _write_lcd
pop R0
call _write_lcd
ret
; -------------------------------------------------
; LCD_readstat
; -------------------------------------------------
; R0 = status
LCD_readstat: push R2
mov R2, lcd_cmd
call LCD_read
pop R2
ret
; -------------------------------------------------
; LCD_read
; -------------------------------------------------
; R0 = output
; R2 = register
LCD_read: call _read_lcd
swap R0
push R0
call _read_lcd
pop R2
or R0, R2
ret
; -------------------------------------------------
; _write
; -------------------------------------------------
; R0 = input
_write_lcd: push R1
and R0, 0x0F
mov R1, R0
or R1, R2
xout (lcd_port), R1
call delay1us
mov R1, R0
or R1, R2
or R1, lcd_enable
xout (lcd_port), R1
call delay1us
mov R1, R0
or R1, R2
xout (lcd_port), R1
call delay1us
or R1, lcd_rd
xout (lcd_port), R1
pop R1
ret
; -------------------------------------------------
; _read
; -------------------------------------------------
; R0 = output
_read_lcd: push R1
mov R1, lcd_rd
or R1, R2
xout (lcd_port), R1
call delay1us
mov R1, lcd_rd
or R1, R2
or R1, lcd_enable
xout (lcd_port), R1
call delay1us
xin R0, (lcd_port)
and R0, 0x0F
mov R1, lcd_rd
or R1, R2
xout (lcd_port), R1
call delay1us
pop R1
ret
+42
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@@ -0,0 +1,42 @@
; -------------------------------------------------
; mul8x8.inc.jsm
; -------------------------------------------------
; -------------------------------------------------
; Parameter:
; R0 : operand 1
; R1 : operand 2
; Return:
; R0 : product low
; R1 : product high
mul8x8: push R2
push R3
push R4
mov R4, R1
mov R1, 0
mov R2, 0
mov R3, 0
loop1: cmp R4, 0x01
jeq ende1
shr R4
jnc next1
add R2, R0
addc R3, R1
next1: shl R0
rolc R1
jmp loop1
ende1: add R0, R2
addc R1, R3
pop R4
pop R3
pop R2
ret
; -------------------------------------------------
+58
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@@ -0,0 +1,58 @@
; -------------------------------------------------
; uart.inc.jsm
; -------------------------------------------------
; needs xmem-address definition for
; - uart_status (Status register)
; - uart_data (Data register)
UART_TX_EMPTY: equ 0x01
UART_TX_FULL: equ 0x02
UART_TX_CMPL: equ 0x04
UART_RX_PRESENT: equ 0x10
; -------------------------------------------------
; uart_puts
; -------------------------------------------------
; R1 : ptr to string
uart_puts: push R0
u_p_lp: movx R0, (R1)
inc R1
tst R0
jz ex_ugp
call uart_putchar
jmp u_p_lp
ex_ugp: pop R0
ret
; -------------------------------------------------
; uart_putchar
; -------------------------------------------------
; R0 = input
uart_putchar: jmp sout
; -------------------------------------------------
; sout
; -------------------------------------------------
; R0 = input
sout: push R1
sout1: xin R1, (uart_status)
and R1, UART_TX_FULL
jnz sout1
xout (uart_data), R0
pop R1
ret
; -------------------------------------------------
; sin
; -------------------------------------------------
; R0 = output
sin: push R1
sin1: xin R1, (uart_status)
and R1, UART_RX_PRESENT
jnz sin1
xin R0, (uart_data)
pop R1
ret
; -------------------------------------------------
+32
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@@ -0,0 +1,32 @@
; -------------------------------------------------
; utils.inc.jsm
; -------------------------------------------------
; -------------------------------------------------
; Parameter
; R0 : Bin value in lower nibble
; Return
; R0 : Hex character representing lower nibble
nibble2hex: and R0, 0x0F
cmp R0, 0x0A
jlt isNum1
add R0, 0x07
isNum1: add R0, 0x30
ret
; -------------------------------------------------
; Parameter
; R0 : Bin value
; Return
; R0 : Hex character high
; R1 : Hex character low
bin2hex: push R0
call nibble2hex
mov R1, R0
pop R0
swap R0
call nibble2hex
ret
; -------------------------------------------------
+64
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@@ -0,0 +1,64 @@
0 NOP
1 HALT
2 MOV|R|R
3 MOV|R|K
4 MOVX|R|Ri
5 MOVX|R|Ki
6 MOVX|Ri|R
7 MOVX|Ri|K
8 MOVX|Ki|R
9 MOVC|R|Ri
10 MOVC|R|Ki
11 MOVC|Ri|R
12 MOVC|Ri|K
13 MOVC|Ki|R
14 CMP|R|R
15 CMP|R|K
16 ADD|R|R
17 ADD|R|K
18 ADDC|R|R
19 ADDC|R|K
20 SUB|R|R
21 SUB|R|K
22 SUBC|R|R
23 SUBC|R|K
24 AND|R|R
25 AND|R|K
26 OR|R|R
27 OR|R|K
28 XOR|R|R
29 XOR|R|K
30 SHL|R
31 SHR|R
32 ROL|R
33 ROR|R
34 ROLC|R
35 RORC|R
36 XOUT|Ki|R
37 XOUT|Ri|K
38 COUT|Ki|R
39 COUT|Ri|K
40 XIN|R|Ki
41 CIN|R|Ki
42 SWAP|R
43 SETC
44 UNDEF
45 UNDEF
46 SUB|K|R
47 SUBC|K|R
48 JMP|K
49 JZ|K
50 JNZ|K
51 JC|K
52 JNC|K
53 JLT|K
54 JGT|K
55 JLE|K
56 JGE|K
57 JEQ|K
58 JNE|K
59 CALL|K
60 PUSH|R
61 POP|R
62 RET
63 RETI
+20
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@@ -0,0 +1,20 @@
#!/usr/bin/env ruby
st = "\033[7m"
en = "\033[m"
while TRUE
print "str> "
STDOUT.flush
str = gets
break if not str
str.chop!
print "pat> "
STDOUT.flush
re = gets
break if not re
re.chop!
str.gsub! re, "#{st}\\&#{en}"
print str, "\n"
end
print "\n"
+61
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@@ -0,0 +1,61 @@
# ----------------------------------------------------------------------
# Project: JCPU, a portable 8-bit RISC CPU written in VHDL
# This file: The ROM file for upload to target over JTAG
#
# Copyright (C) 2007 J. Ahrensfeld
#
# This program is free software: you can redistribute it and/or modify
# it under the terms of the GNU General Public License as published by
# the Free Software Foundation, either version 3 of the License, or
# (at your option) any later version.
#
# This program is distributed in the hope that it will be useful,
# but WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
# GNU General Public License for more details.
#
# You should have received a copy of the GNU General Public License
# along with this program. If not, see <http://www.gnu.org/licenses/>.
#
# For questions and ideas, please contact the author at jens@jayfield.org
#
# ---------------------------------------------------------------------
# ---------------------------------------------------------------------
# For Chipscope 9.1
# ---------------------------------------------------------------------
# Source JTAG/TCL frame work
cd $env(CHIPSCOPE)\\bin\\nt
source csejtag.tcl
namespace import ::chipscope::*
# Platform USB Cable
set PLATFORM_USB_CABLE_ARGS [list "port=USB2" "frequency=6000000"]
# frequency="24000000 | 12000000 | 6000000 | 3000000 | 1500000 | 750000"
# Create session
set handle [::chipscope::csejtag_session create 0]
# Open JTAG and lock
set open_result [::chipscope::csejtag_target open $handle $CSEJTAG_TARGET_PLATFORMUSB 0 $PLATFORM_USB_CABLE_ARGS]
set lock_result [::chipscope::csejtag_target lock $handle 1000]
set devlist [::chipscope::csejtag_tap autodetect_chain $handle $CSEJTAG_SCAN_DEFAULT]
# Get Device ID
set devtype "Virtex-4SX"
set devid 2
set irlength [::chipscope::csejtag_tap get_irlength $handle $devid]
set idcode [::chipscope::csejtag_tap get_device_idcode $handle $devid]
set CSE_OP $CSEJTAG_SHIFT_READWRITE
set CSE_ES $CSEJTAG_RUN_TEST_IDLE
# Write Program
# JASM_ROM_INSERT_HERE
::chipscope::csejtag_target unlock $handle
::chipscope::csejtag_target close $handle
::chipscope::csejtag_session destroy $handle
exit
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#!/usr/bin/env ruby
template = <<'END'
-- (tv #1342) read output FIFO
(
cycles => 1,
cm_i => bus_read_init(addr => ADDR_KS_OFIFO_DOUT),
sep => msg(""),
cm_o => bus_no_ack,
irq => (others => '0')
),
-- (tv #1343) wait while FIFO is read
(
cycles => 2,
cm_i => bus_wait_ack,
sep => msg(""),
cm_o => bus_no_ack,
irq => (others => '0')
),
-- (tv #1343) wait for ack
(
cycles => 1,
cm_i => bus_wait_ack,
sep => msg(""),
cm_o => bus_read_ack(dat => #{exp_data}),
irq => (others => '0')
),
END
puts "KS-128 testvectors:\n"
puts "\n" * 3
0.upto(10) { |sk_no|
3.downto(0) { |sl_no|
exp_data = "slice_32(TC1_SUBKEYS(#{sk_no}), #{sl_no})"
t = template.gsub(/"/, '\\"')
puts eval("format(\"#{t}\")")
}
}
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-------------------------------------------------------------------------
-- Project: JCPU, a portable 8-bit RISC CPU written in VHDL
-- This file: The ROM file for use in your VHDL design
--
-- Copyright (C) 2007 J. Ahrensfeld
--
-- This program is free software: you can redistribute it and/or modify
-- it under the terms of the GNU General Public License as published by
-- the Free Software Foundation, either version 3 of the License, or
-- (at your option) any later version.
--
-- This program is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with this program. If not, see <http://www.gnu.org/licenses/>.
--
-- For questions and ideas, please contact the author at jens@jayfield.org
--
--------------------------------------------------------------------------
LIBRARY ieee;
use IEEE.STD_LOGIC_1164.ALL;
USE ieee.numeric_std.ALL;
library work;
use work.cpu_pkg.all;
-- JASM_ROM_INSERT_HERE
+151
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-------------------------------------------------------------------------
-- Project: JCPU, a portable 8-bit RISC CPU written in VHDL
-- This file: loadable ROM
--
-- Copyright (C) 2007 J. Ahrensfeld
--
-- This program is free software: you can redistribute it and/or modify
-- it under the terms of the GNU General Public License as published by
-- the Free Software Foundation, either version 3 of the License, or
-- (at your option) any later version.
--
-- This program is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with this program. If not, see <http://www.gnu.org/licenses/>.
--
-- For questions and ideas, please contact the author at jens@jayfield.org
--
--------------------------------------------------------------------------
LIBRARY ieee;
use IEEE.STD_LOGIC_1164.ALL;
USE ieee.numeric_std.ALL;
library UNISIM;
use UNISIM.VComponents.all;
library work;
use work.cpu_pkg.all;
ENTITY xrom IS
Port (
clk : in STD_LOGIC;
ce : in STD_LOGIC;
addr : in dmem_addr_t;
dout : out dmem_data_t
);
END xrom;
ARCHITECTURE loadable OF xrom IS
-- JASM_ROM_INSERT_HERE
signal jtag_ld_clk : STD_LOGIC;
signal jtag_ld_we : STD_LOGIC;
signal jtag_ld_addr : dmem_addr_t;
signal jtag_ld_dout : dmem_data_t;
signal jtag_ld_din : dmem_data_t;
signal bs_rst, bs_sel, bs_shift, bs_tdi, bs_tdo : std_logic;
signal bs_capture, bs_clk0, bs_clk1, bs_update0, bs_update1 : std_logic;
signal user_regi, user_rego : unsigned (15 downto 0);
constant id : unsigned (15 downto 0) := X"BEEF";
begin
--------------------------------------------------------------------------
-- Virtex-4: JTAG Loader
--------------------------------------------------------------------------
i00_BUFG : BUFG
port map
(
O => bs_clk1,
I => bs_clk0
);
i01_BUFG : BUFG
port map
(
O => bs_update1,
I => bs_update0
);
BSCAN_VIRTEX4_inst2 : BSCAN_VIRTEX4
generic map
(
JTAG_CHAIN => 2 -- Value to set BSCAN site of device. Possible values: (1,2,3 or 4)
)
port map
(
CAPTURE => bs_capture, -- CAPTURE output from TAP controller
DRCK => bs_clk0, -- Data register output for USER functions
RESET => bs_rst, -- Reset output from TAP controller
SEL => bs_sel, -- USER active output
SHIFT => bs_shift, -- SHIFT output from TAP controller
TDI => bs_tdi, -- TDI output from TAP controller
UPDATE => bs_update0, -- UPDATE output from TAP controller
TDO => bs_tdo -- Data input for USER function
);
jtag_ld_addr <= user_regi(user_regi'left downto user_regi'left-dmem_data_t'length+1);
jtag_ld_din <= user_regi(dmem_data_t'left downto 0);
jtag_ld_clk <= bs_update1;
jtag_ld_we <= bs_sel;
sipo:
process (bs_rst, bs_clk1, bs_tdi, bs_shift)
begin
if bs_rst = '1' then
user_regi <= (others => '0');
elsif rising_edge(bs_clk1) then
if bs_shift = '1' then
user_regi <= bs_tdi & user_regi(user_regi'left downto 1);
end if;
end if;
end process;
piso:
process (bs_rst, bs_clk1, bs_shift, user_rego)
begin
bs_tdo <= user_rego(0);
if bs_rst = '1' then
user_rego <= (others => '0');
elsif rising_edge(bs_clk1) then
if bs_shift = '1' then
user_rego <= user_rego(0) & user_rego(user_rego'left downto 1);
else
user_rego <= (user_rego'left downto dmem_data_t'length => '0') & jtag_ld_dout;
-- user_rego <= id;
end if;
end if;
end process;
--------------------------------------------------------------------------
-- ROM Read/Write
--------------------------------------------------------------------------
PROM_READ:
process(clk, ce)
begin
if rising_edge(clk) and ce = '1' then
dout <= xmem_rom(to_integer(addr));
end if;
end process;
PROM_WRITE:
process(jtag_ld_clk, jtag_ld_we)
begin
if rising_edge(jtag_ld_clk) then
if jtag_ld_we = '1' then
xmem_rom(to_integer(jtag_ld_addr)) <= jtag_ld_din;
else
jtag_ld_dout <= xmem_rom(to_integer(jtag_ld_addr));
end if;
end if;
end process;
--------------------------------------------------------------------------
end loadable;
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CFLAGS=-O2
CC=gcc
PREFIX=/usr/local
all: romgen ramgen flashgen flashgen_tlb packhex
romgen: ./src/romgen.c
$(CC) $(CFLAGS) ./src/romgen.c -lm -o ./romgen
ramgen: ./src/ramgen.c
$(CC) $(CFLAGS) ./src/ramgen.c -lm -o ./ramgen
flashgen: ./src/flashgen.c
$(CC) $(CFLAGS) ./src/flashgen.c -lm -o ./flashgen
flashgen_tlb: ./src/flashgen.c
$(CC) $(CFLAGS) -DSDRAM_BASE=0x80000000 -DFLASH_BASE_MEM=0x88000000 ./src/flashgen.c -lm -o ./flashgen_tlb
packhex: ./src/packhex.c
$(CC) $(CFLAGS) ./src/packhex.c -lm -o ./packhex
install:
cp romgen $(PREFIX)/bin
cp ramgen $(PREFIX)/bin
cp flashgen $(PREFIX)/bin
clean:
rm -rf romgen* ramgen* flashgen*
+187
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#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <math.h>
#include <stdint.h>
#ifndef SDRAM_BASE
#define SDRAM_BASE 0x40000000
#endif
#ifndef FLASH_BASE_MEM
#define FLASH_BASE_MEM 0x00000000
#endif
#define MAGIC 0x4A464931 // "JFI1" in big-endian;
uint8_t _g_bytes[4] = {0x12, 0x34, 0x56, 0x78};
uint8_t _g_bytes2[4] = {0};
int IsEndianBig(void)
{
int i, result;
uint8_t *pBuf8;
uint16_t *pBuf16;
uint32_t *pBuf32;
uint16_t halve;
uint32_t word;
halve = 0x1234;
word = 0x12345678;
result = -1;
for (i=0; i < 4; i++)
_g_bytes2[i] = _g_bytes[i];
pBuf8 = (uint8_t*)&word;
if (((*pBuf8+0) == 0x12) && (*(pBuf8+1) == 0x34) && (*(pBuf8+2) == 0x56) && (*(pBuf8+3) == 0x78))
{
pBuf8 = (uint8_t*)&halve;
if (((*pBuf8+0) == 0x12) && (*(pBuf8+1) == 0x34))
{
result = 1;
}
}
pBuf8 = (uint8_t*)&word;
if (((*pBuf8+0) == 0x78) && (*(pBuf8+1) == 0x56) && (*(pBuf8+2) == 0x34) && (*(pBuf8+3) == 0x12))
{
pBuf8 = (uint8_t*)&halve;
if (((*pBuf8+0) == 0x34) && (*(pBuf8+1) == 0x12))
{
result = 0;
}
}
return result;
}
uint32_t conv_endian32(uint32_t src)
{
uint32_t dst;
dst = (0xFF000000 & (src << 24))
| (0x00FF0000 & (src << 8))
| (0x0000FF00 & (src >> 8))
| (0x000000FF & (src >> 24));
return dst;
};
// --------------------------------------------------------------
typedef struct _sflash_img_hdr_t
{
uint32_t magic;
uint32_t target_addr;
uint32_t img_offset;
uint32_t img_size;
uint32_t hdr_next;
uint8_t img_name[128];
uint8_t res[108];
} flash_img_hdr_t;
// --------------------------------------------------------------
void basename(char *pSrc, char *pDst)
{
int i, size;
size = strlen(pSrc);
while(pSrc[size] != '.')
size--;
for (i=0; i < size; i++)
pDst[i] = pSrc[i];
pDst[i] = 0;
}
// --------------------------------------------------------------
int main(int argc, char *argv[])
{
char *pFilenameIn;
char name_flash[1024];
char name_prj[1024];
char *pBuf;
uint32_t *pBuf32;
flash_img_hdr_t img_hdr = {0};
FILE *pFile;
int filesize;
long start, end;
int i;
if (argc < 2)
{
fprintf(stderr, "Usage: flashgen <input file> [-{EL|EB}]\n");
return 1;
}
pFilenameIn = argv[1];
pFile = fopen(pFilenameIn, "rb");
if (!pFile)
{
fprintf(stderr, "Error opening file %s\n", pFilenameIn);
return 1;
}
basename(pFilenameIn, name_prj);
sprintf(name_flash, "%s.flash.bin", name_prj);
// determine filesize
fseek(pFile, 0, SEEK_SET);
start = ftell(pFile);
fseek(pFile, 0, SEEK_END);
end = ftell(pFile);
fseek(pFile, 0, SEEK_SET);
filesize = (end-start);
pBuf = (char*)malloc(filesize);
filesize = fread(pBuf, 1, filesize, pFile);
fclose(pFile);
pFile = fopen(name_flash, "wb");
if (!pFile)
{
fprintf(stderr, "Error opening file %s\n", name_flash);
return 1;
}
img_hdr.magic = MAGIC;
img_hdr.target_addr = SDRAM_BASE;
img_hdr.img_size = filesize;
img_hdr.img_offset = FLASH_BASE_MEM + sizeof(flash_img_hdr_t);
img_hdr.hdr_next = FLASH_BASE_MEM;
if (argc == 3)
{
if ((argv[2][0] == '-') && (toupper(argv[2][1]) == 'E') && (toupper(argv[2][2]) == 'B'))
{
if (1 == IsEndianBig())
{
img_hdr.magic = conv_endian32(MAGIC);
pBuf32 = (uint32_t*)pBuf;
for (i=0; i < filesize/4; i ++)
pBuf32[i] = pBuf32[i]; // don't convert data
}
else
{
pBuf32 = (uint32_t*)pBuf;
for (i=0; i < filesize/4; i ++)
pBuf32[i] = conv_endian32(pBuf32[i]); // convert data
}
}
}
fwrite(&img_hdr, sizeof(flash_img_hdr_t), 1, pFile);
fwrite(pBuf, 1, filesize, pFile);
fclose(pFile);
return 0;
}
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/***** P A C K H E X . C ************************************************
*
* Packhex is a hex-file compaction utility. It attempts to concatenate
* hex records to produce more size-efficient packaging.
*
* Limitations: Input files must be correctly formatted. This utility
* is not robust enough to detect hex-record formatting
* errors.
*
* Published: May 1993 Embedded Systems Programming magazine
* "Creating Faster Hex Files"
*
* URL: ESP magazine: http://www.embedded.com
* Source Code: ftp://ftp.mfi.com/pub/espmag/1993/pakhex.zip
*
* Author: Mark Gringrich
*
* Compiler: Microsoft C 6.0
* cl /F 1000 packhex.c
*
*
* $Id: packhex.c,v 1.9 2004/04/20 07:07:08 ralf Exp $
*
**************************************************************************/
/* #define SMALLER_RECORDS */
#ifdef SMALLER_RECORDS
#define MAX_LEN_S1_RECS 128
#define MAX_LEN_S2_RECS 128
#define MAX_LEN_S3_RECS 128
#else
#define MAX_LEN_S1_RECS 252
#define MAX_LEN_S2_RECS 251
#define MAX_LEN_S3_RECS 250
#endif
/*--------------------------------- includes ---------------------------------*/
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#if 0
#include "config.h"
#ifndef VMS
#ifndef HAVE_STRERROR
extern int sys_nerr;
extern char *sys_errlist[];
#define strerror( _err ) \
((_err) < sys_nerr) ? sys_errlist [(_err)] : "unknown error"
#else /* HAVE_STRERROR */
char *strerror ();
#endif
#else /* VMS */
char *strerror (int,...);
#endif
#endif
#if defined(__unix__) && !defined(EXIT_FAILURE)
#define EXIT_FAILURE -1
#define EXIT_SUCCESS 0
#endif
/*--------------------------------- defines ----------------------------------*/
#define YES 1
#define MAX_LINE_SIZE 600
#define EOS '\0'
/*---------------------------------- macros ----------------------------------*/
/* Convert ASCII hexadecimal digit to value. */
#define HEX_DIGIT( C ) ( ( ( ( C ) > '9' ) ? ( C ) + 25 : ( C ) ) & 0xF )
/*--------------------------------- typedefs ---------------------------------*/
typedef unsigned char Boolean;
typedef unsigned char Uchar;
typedef unsigned int Uint;
typedef unsigned long Ulong;
typedef struct /* Functions and constant returning Hex-record vital stats. */
{
Boolean ( *is_data_record )( char * );
Ulong ( *get_address )( char * );
Uint ( *get_data_count )( char * );
const Uint max_data_count;
char *( *get_data_start )( char * );
void ( *put_data_record )( Uint, Ulong, char * );
} Rec_vitals;
/*--------------------------- function prototypes ----------------------------*/
Rec_vitals * identify_first_data_record( char *, int );
Ulong get_ndigit_hex( char *, int );
/*----------------------------- Intel Hex format -----------------------------*/
/*
* Intel Hex data-record layout
*
* :aabbbbccd...dee
*
* : - header character
* aa - record data byte count, a 2-digit hex value
* bbbb - record address, a 4-digit hex value
* cc - record type, a 2-digit hex value:
* "00" is a data record
* "01" is an end-of-data record
* "02" is an extended-address record
* "03" is a start record
* d...d - data (always an even number of chars)
* ee - record checksum, a 2-digit hex value
* checksum = 2's complement
* [ (sum of bytes: aabbbbccd...d) modulo 256 ]
*/
Boolean is_intel_data_rec( char * rec_str )
{
return( ( rec_str[ 0 ] == ':' ) && ( rec_str[ 8 ] == '0' ) );
}
Uint get_intel_rec_data_count( char * rec_str )
{
return( ( Uint ) get_ndigit_hex( rec_str + 1, 2 ) );
}
Ulong get_intel_rec_address( char * rec_str )
{
return( get_ndigit_hex( rec_str + 3, 4 ) );
}
char * get_intel_rec_data_start( char * rec_str )
{
return( rec_str + 9 );
}
void put_intel_data_rec( Uint count, Ulong address, char * data_str )
{
char *ptr;
Uint sum = count + ( address >> 8 & 0xff ) + ( address & 0xff );
for ( ptr = data_str ; *ptr != EOS ; ptr += 2 )
sum += ( Uint ) get_ndigit_hex( ptr, 2 );
printf(
":%02X%04lX00%s%02X\n", count, address, data_str, (~sum + 1) & 0xff
);
}
Rec_vitals intel_hex =
{
is_intel_data_rec,
get_intel_rec_address,
get_intel_rec_data_count,
255, /* Maximum data bytes in a record. */
get_intel_rec_data_start,
put_intel_data_rec
};
/*------------------------- Motorola S1-record format ------------------------*/
/*
* Motorola S-record data-record layout
*
* Sabbc...cd...dee
*
* S - header character
* a - record type, a 1-digit value:
* "0" is a header record
* "1" is a 2-byte-address data record
* "2" is a 3-byte-address data record
* "3" is a 4-byte-address data record
* "7" is a 4-byte-address end-of-data record
* "8" is a 3-byte-address end-of-data record
* "9" is a 2-byte-address end-of-data record
* bb - record length in bytes, a 2-digit hex value
* (record length doesn't count the header/type
* chars and checksum byte)
* c...c - record address, a 4-, 6-, or 8-digit value,
* depending on record type
* d...d - data (always an even number of chars)
* ee - record checksum, a 2-digit hex value
* checksum = 1's complement
* [ (sum of all bytes: bbc..cd...d) modulo 256 ]
*/
#define S1_COUNT_OFFSET 3
Boolean is_moto_s1_data_rec( char * rec_str )
{
return ( ( rec_str[ 0 ] == 'S' ) && ( rec_str[ 1 ] == '1' ) );
}
Uint get_moto_s1_rec_data_count( char * rec_str )
{
return( ( Uint ) get_ndigit_hex( rec_str + 2, 2 ) - S1_COUNT_OFFSET );
}
Ulong get_moto_s1_rec_address( char * rec_str )
{
return( get_ndigit_hex( rec_str + 4, 4 ) );
}
char * get_moto_s1_rec_data_start( char * rec_str )
{
return( rec_str + 8 );
}
void put_moto_s1_data_rec( Uint count, Ulong address, char * data_str )
{
char *ptr;
Uint sum = S1_COUNT_OFFSET + count +
( address >> 8 & 0xff ) + ( address & 0xff );
for ( ptr = data_str ; *ptr != EOS ; ptr += 2 )
sum += ( Uint ) get_ndigit_hex( ptr, 2 );
printf(
"S1%02X%04lX%s%02X\n",
count + S1_COUNT_OFFSET, address, data_str, ~sum & 0xff
);
}
Rec_vitals motorola_s1_rec =
{
is_moto_s1_data_rec,
get_moto_s1_rec_address,
get_moto_s1_rec_data_count,
MAX_LEN_S1_RECS, /* Maximum data bytes in a record. */
get_moto_s1_rec_data_start,
put_moto_s1_data_rec
};
/*------------------------- Motorola S2-record format ------------------------*/
#define S2_COUNT_OFFSET 4
Boolean is_moto_s2_data_rec( char * rec_str )
{
return ( ( rec_str[ 0 ] == 'S' ) && ( rec_str[ 1 ] == '2' ) );
}
Uint get_moto_s2_rec_data_count( char * rec_str )
{
return( ( Uint ) get_ndigit_hex( rec_str + 2, 2 ) - S2_COUNT_OFFSET );
}
Ulong get_moto_s2_rec_address( char * rec_str )
{
return( get_ndigit_hex( rec_str + 4, 6 ) );
}
char * get_moto_s2_rec_data_start( char * rec_str )
{
return( rec_str + 10 );
}
void put_moto_s2_data_rec( Uint count, Ulong address, char * data_str )
{
char *ptr;
Uint sum = S2_COUNT_OFFSET + count + ( address >> 16 & 0xff ) +
( address >> 8 & 0xff ) +
( address & 0xff );
for ( ptr = data_str ; *ptr != EOS ; ptr += 2 )
sum += ( Uint ) get_ndigit_hex( ptr, 2 );
printf(
"S2%02X%06lX%s%02X\n",
count + S2_COUNT_OFFSET, address, data_str, ~sum & 0xff
);
}
Rec_vitals motorola_s2_rec =
{
is_moto_s2_data_rec,
get_moto_s2_rec_address,
get_moto_s2_rec_data_count,
MAX_LEN_S2_RECS, /* Maximum data bytes in a record. */
get_moto_s2_rec_data_start,
put_moto_s2_data_rec
};
/*------------------------- Motorola S3-record format ------------------------*/
#define S3_COUNT_OFFSET 5
Boolean is_moto_s3_data_rec( char * rec_str )
{
return ( ( rec_str[ 0 ] == 'S' ) && ( rec_str[ 1 ] == '3' ) );
}
Uint get_moto_s3_rec_data_count( char * rec_str )
{
return( ( Uint ) get_ndigit_hex( rec_str + 2, 2 ) - S3_COUNT_OFFSET );
}
Ulong get_moto_s3_rec_address( char * rec_str )
{
return( get_ndigit_hex( rec_str + 4, 8 ) );
}
char * get_moto_s3_rec_data_start( char * rec_str )
{
return( rec_str + 12 );
}
void put_moto_s3_data_rec( Uint count, Ulong address, char * data_str )
{
char *ptr;
Uint sum = S3_COUNT_OFFSET + count + ( address >> 24 & 0xff ) +
( address >> 16 & 0xff ) +
( address >> 8 & 0xff ) +
( address & 0xff );
for ( ptr = data_str ; *ptr != EOS ; ptr += 2 )
sum += ( Uint ) get_ndigit_hex( ptr, 2 );
printf(
"S3%02X%08lX%s%02X\n",
count + S3_COUNT_OFFSET, address, data_str, ~sum & 0xff
);
}
Rec_vitals motorola_s3_rec =
{
is_moto_s3_data_rec,
get_moto_s3_rec_address,
get_moto_s3_rec_data_count,
MAX_LEN_S3_RECS, /* Maximum data bytes in a record. */
get_moto_s3_rec_data_start,
put_moto_s3_data_rec
};
/*-------------------- Put your favorite hex format here ---------------------*/
/*
* * * * The following is a template for an additional hex format: * * *
*
*
* Boolean is_X_data_rec( char * rec_str ) {}
*
* Uint get_X_rec_data_count( char * rec_str ) {}
*
* Ulong get_X_rec_address( char * rec_str ) {}
*
* char * get_X_rec_data_start( char * rec_str ) {}
*
* void put_X_data_rec( Uint count, Ulong address, char * data_str ) {}
*
* Rec_vitals X_rec =
* {
* is_X_data_rec,
* get_X_rec_address,
* get_X_rec_data_count,
* MAXIMUM DATA BYTES IN A RECORD,
* get_X_rec_data_start,
* put_X_data_rec
* };
*
*/
/*----------------------------------------------------------------------------*/
/*
* Put address of additional Rec_vitals structures
* in this array, before the NULL entry.
*/
Rec_vitals *formats[] =
{
&intel_hex,
&motorola_s1_rec,
&motorola_s2_rec,
&motorola_s3_rec,
( Rec_vitals * ) NULL
};
/**** main *****************************************************************
*
*
* Expects: Nothing (no command-line parameters).
*
* Returns: Exit status (EXIT_SUCCESS or EXIT_FAILURE).
*
* Reads hex records on the standard input and attempts to
* splice adjacent data fields together. Results appear on
* the standard output.
*
*******************************************************************************/
int main(
int argc,
char **argv
)
{
char inbuff[ MAX_LINE_SIZE ], outbuff[ MAX_LINE_SIZE ];
char *in_dptr, *out_dptr;
int d_total, d_count, d_excess, n;
int length;
Ulong in_rec_addr, out_rec_addr = 0;
Rec_vitals *rptr;
/* Sift through file until first hex record is identified. */
rptr = identify_first_data_record( inbuff, MAX_LINE_SIZE );
if ( rptr == NULL )
{
fputs( "No hex records found.\n", stderr );
exit( EXIT_FAILURE );
}
/* Attempt data-record splicing until end-of-file is reached. */
d_total = 0;
for (;;) {
if ( rptr->is_data_record( inbuff ) == YES )
{ /* Input record is a data record. */
d_count = rptr->get_data_count( inbuff );
in_rec_addr = rptr->get_address( inbuff );
in_dptr = rptr->get_data_start( inbuff );
if ( d_total == 0 || in_rec_addr != out_rec_addr + d_total )
{ /* Begin a new output record. */
if ( d_total != 0 )
rptr->put_data_record( d_total, out_rec_addr, outbuff );
out_dptr = outbuff;
n = d_total = d_count;
out_rec_addr = in_rec_addr;
}
else if
( ( d_excess = d_total + d_count - rptr->max_data_count ) > 0 )
{ /* Output a maximum-length record, then start a new record. */
strncat( outbuff, in_dptr, 2 * ( d_count - d_excess ) );
rptr->put_data_record(
rptr->max_data_count, out_rec_addr, outbuff
);
in_dptr += 2 * ( d_count - d_excess );
out_dptr = outbuff;
n = d_total = d_excess;
out_rec_addr += rptr->max_data_count;
}
else
{ /* Append input record's data field with accumulated data. */
out_dptr = outbuff + ( 2 * d_total );
d_total += n = d_count;
}
strncpy( out_dptr, in_dptr, 2 * n );
out_dptr[ 2 * n ] = EOS;
}
else
{ /* Not a data record;
* flush accumulated data then echo non-data record.
*/
if ( d_total != 0 )
{
rptr->put_data_record( d_total, out_rec_addr, outbuff );
d_total = 0;
}
puts( inbuff );
}
inbuff[ MAX_LINE_SIZE - 1 ] = '\0';
if ( !fgets( inbuff, MAX_LINE_SIZE, stdin ) )
break;
if ( inbuff[ MAX_LINE_SIZE - 1 ] ) {
fprintf( stderr, "Input line too long" );
exit( 1 );
}
length = strlen(inbuff);
inbuff[length - 1] = '\0';
}
return ( EXIT_SUCCESS );
}
/**** identify_first_data_record *******************************************
*
* Expects: Pointer to hex-record line buffer.
*
* Returns: Pointer to hex-record structure (NULL if no match found).
*
* Reads the standard input, line by line, searching for a valid
* record header character. If a valid header is found, a pointer
* to the hex-record's type structure is returned, otherwise NULL.
*
* The input-stream pointer is left pointing to the first valid hex record.
*
*******************************************************************************/
Rec_vitals * identify_first_data_record( char * buff_ptr, int max_length )
{
Rec_vitals ** ptr;
int length;
for ( ;; ) {
buff_ptr[ max_length - 1 ] = '\0';
if ( !fgets( buff_ptr, max_length, stdin ) )
break;
if ( buff_ptr[ max_length - 1 ] ) {
fprintf( stderr, "Input line too long" );
exit( 1 );
}
length = strlen(buff_ptr);
buff_ptr[length - 1] = '\0';
for ( ptr = formats ; *ptr != ( Rec_vitals * ) NULL ; ptr++ )
if ( ( *ptr )->is_data_record( buff_ptr ) == YES )
return( *ptr ); /* Successful return. */
puts( buff_ptr ); /* Echo non-hex-record line. */
}
return( ( Rec_vitals * ) NULL ); /* Unsuccessful return. */
}
/**** get_ndigit_hex *******************************************************
*
* Expects: Pointer to first ASCII hexadecimal digit, number of digits.
*
* Returns: Value of hexadecimal string as an unsigned long.
*
*******************************************************************************/
Ulong get_ndigit_hex( char * cptr, int digits )
{
Ulong value;
for ( value = 0 ; --digits >= 0 ; cptr++ )
value = ( value * 16L ) + HEX_DIGIT( *cptr );
return( value );
}
+387
View File
@@ -0,0 +1,387 @@
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <math.h>
#define ARCH_NAME "data"
#define ENT_NAME "ram"
#define JTAG_ADDR_WIDTH 16
// --------------------------------------------------------------
void basename(char *pSrc, char *pDst)
{
int i, size;
size = strlen(pSrc);
while(pSrc[size] != '.')
size--;
for (i=0; i < size; i++)
pDst[i] = pSrc[i];
pDst[i] = 0;
}
int SaveRAM(char *pFilenameIn, char *pFilenameOut, char *pArchName, char *pEntName, int nbits_addr, int nbits_data)
{
FILE *pFileIn, *pFileOut;
long start, end;
int i, word, filesize, romsize;
pFileIn = fopen(pFilenameIn, "rb");
if (!pFileIn)
{
fprintf(stderr, "Error opening file %s\n", pFilenameIn);
return 1;
}
pFileOut = fopen(pFilenameOut, "wb");
if (!pFileOut)
{
fprintf(stderr, "Error opening file %s\n", pFilenameOut);
return 1;
}
fseek(pFileIn, 0, SEEK_SET);
start = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_END);
end = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_SET);
filesize = (end-start);
romsize = (int)pow(2, nbits_addr+2);
// -------------------------------------------------------------------------
// Header
// -------------------------------------------------------------------------
fprintf(pFileOut, "LIBRARY IEEE;\n");
fprintf(pFileOut, "USE IEEE.STD_LOGIC_1164.ALL;\n");
fprintf(pFileOut, "USE IEEE.NUMERIC_STD.ALL;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "ENTITY %s IS\n", ENT_NAME);
fprintf(pFileOut, "\tPort\n");
fprintf(pFileOut, "\t(\n");
fprintf(pFileOut, "\t\tclk\t\t: in STD_LOGIC;\n");
fprintf(pFileOut, "\t\tce\t\t: in STD_LOGIC;\n");
fprintf(pFileOut, "\t\twe\t\t: in unsigned(%d downto 0);\n", nbits_data/8-1);
fprintf(pFileOut, "\t\taddr\t\t: in unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\t\tdin\t\t: in unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\t\tdout\t\t: out unsigned(%d downto 0)\n", nbits_data-1);
fprintf(pFileOut, "\t);\n");
fprintf(pFileOut, "END %s;\n", ENT_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "ARCHITECTURE %s OF %s IS\n", ARCH_NAME, ENT_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "\tconstant depth : natural := %d;\n", romsize/4);
fprintf(pFileOut, "\tsubtype word_t is unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\ttype word_array_t is array (0 to %d) of word_t;\n", romsize/4-1);
fprintf(pFileOut, "\tsignal sram : word_array_t :=\n");
fprintf(pFileOut, "\t(\n");
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// ROM part
// -------------------------------------------------------------------------
for (i=0; i < filesize; i += sizeof(int))
{
fread(&word, 1, sizeof(int), pFileIn);
fprintf(pFileOut, "\t\tX\"%8.8X\"", word);
if (i < (romsize-sizeof(int)))
fprintf(pFileOut, ", -- %8.8X\n", i);
else
fprintf(pFileOut, " -- %8.8X\n", i);
}
word = 0;
for (; i < romsize; i += sizeof(int))
{
fprintf(pFileOut, "\t\tX\"%8.8X\"", word);
if (i < (romsize-sizeof(int)))
fprintf(pFileOut, ", -- %8.8X\n", i);
else
fprintf(pFileOut, " -- %8.8X\n", i);
}
fprintf(pFileOut, "\t);\n");
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// Trailer
// -------------------------------------------------------------------------
fprintf(pFileOut, "begin\n", ARCH_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "RAM_RW:\n", ARCH_NAME);
fprintf(pFileOut, "\tprocess(clk)\n");
fprintf(pFileOut, "\tvariable index : natural range 0 to depth-1;\n");
fprintf(pFileOut, "\tbegin\n");
fprintf(pFileOut, "\t\tif rising_edge(clk) and ce = '1' then\n");
fprintf(pFileOut, "\t\t\tindex := to_integer(addr(%d downto 2));\n", nbits_addr+1);
fprintf(pFileOut, "\t\t\tif we(0) = '1' then\n");
fprintf(pFileOut, "\t\t\t\tsram(index)(7 downto 0)\t\t<= din(7 downto 0);\n");
fprintf(pFileOut, "\t\t\tend if;\n");
fprintf(pFileOut, "\t\t\tif we(1) = '1' then\n");
fprintf(pFileOut, "\t\t\t\tsram(index)(15 downto 8)\t<= din(15 downto 8);\n");
fprintf(pFileOut, "\t\t\tend if;\n");
fprintf(pFileOut, "\t\t\tif we(2) = '1' then\n");
fprintf(pFileOut, "\t\t\t\tsram(index)(23 downto 16)\t<= din(23 downto 16);\n");
fprintf(pFileOut, "\t\t\tend if;\n");
fprintf(pFileOut, "\t\t\tif we(3) = '1' then\n");
fprintf(pFileOut, "\t\t\t\tsram(index)(31 downto 24)\t\t<= din(31 downto 24);\n");
fprintf(pFileOut, "\t\t\tend if;\n");
fprintf(pFileOut, "\t\t\tdout <= sram(index);\n");
fprintf(pFileOut, "\t\tend if;\n");
fprintf(pFileOut, "\tend process;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "end %s;\n", ARCH_NAME);
return 0;
}
int SaveRAM_V4LD(char *pFilenameIn, char *pFilenameOut, char *pArchName, char *pEntName, int nbits_addr, int nbits_data)
{
FILE *pFileIn, *pFileOut;
long start, end;
int i, word, filesize, romsize;
char tpl[] = {"--------------------------------------------------------------------------\n-- Virtex-4: JTAG Loader\n--------------------------------------------------------------------------\n\ti00_BUFG : BUFG\n\tport map\n\t(\n\t\tO => bs_clk1,\n I => bs_clk0\n\t);\n\t\n\ti01_BUFG : BUFG\n\tport map\n\t(\n\t\tO => bs_update1,\n I => bs_update0\n\t);\n\n\tBSCAN_VIRTEX4_inst1 : BSCAN_VIRTEX4 \n\tgeneric map\n\t(\n\t\tJTAG_CHAIN => 1 -- Value to set BSCAN site of device. Possible values: (1,2,3 or 4)\n\t)\n\tport map \n\t(\n\t\tCAPTURE => bs_capture, -- CAPTURE output from TAP controller\n\t\tDRCK => bs_clk0, -- Data register output for USER functions\n\t\tRESET => bs_rst, -- Reset output from TAP controller\n\t\tSEL => bs_sel, -- USER active output\n\t\tSHIFT => bs_shift, -- SHIFT output from TAP controller\n\t\tTDI => bs_tdi, -- TDI output from TAP controller\n\t\tUPDATE => bs_update0, -- UPDATE output from TAP controller\n\t\tTDO => bs_tdo -- Data input for USER function\n\t);\n\n\tjtag_ld_addr <= user_regi(user_regi'left downto jtag_ld_dout'length);\n\tjtag_ld_din <= user_regi(jtag_ld_dout'length-1 downto 0);\n\tjtag_ld_clk <= bs_update1;\n\tjtag_ld_we <= bs_sel;\n\t\nsipo:\n\tprocess (bs_rst, bs_clk1, bs_tdi, bs_shift)\n\tbegin\n\t\tif bs_rst = '1' then\n\t\t\tuser_regi <= (others => '0');\n\t\telsif rising_edge(bs_clk1) then\n\t\t\tif bs_shift = '1' then\n\t\t\t\tuser_regi <= bs_tdi & user_regi(user_regi'left downto 1);\n\t\t\tend if;\n\t\tend if;\n\tend process;\t\n\npiso:\n\tprocess (bs_rst, bs_clk1, bs_shift, user_rego)\n\tbegin\n\t\tbs_tdo <= user_rego(0);\n\t\tif bs_rst = '1' then\n\t\t\tuser_rego <= (others => '0');\n\t\telsif rising_edge(bs_clk1) then\n\t\t\tif bs_shift = '1' then\n\t\t\t\tuser_rego <= user_rego(0) & user_rego(user_rego'left downto 1);\n\t\t\telse\n\t\t\t\tuser_rego <= (user_rego'left downto jtag_ld_dout'length => '0') & jtag_ld_dout;\t\n\t\n\t\t\tend if;\n\t\tend if;\n\tend process;\n\n"};
pFileIn = fopen(pFilenameIn, "rb");
if (!pFileIn)
{
fprintf(stderr, "Error opening file %s\n", pFilenameIn);
return 1;
}
pFileOut = fopen(pFilenameOut, "wb");
if (!pFileOut)
{
fprintf(stderr, "Error opening file %s\n", pFilenameOut);
return 1;
}
fseek(pFileIn, 0, SEEK_SET);
start = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_END);
end = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_SET);
filesize = (end-start);
romsize = (int)pow(2, nbits_addr+2);
// -------------------------------------------------------------------------
// Header
// -------------------------------------------------------------------------
fprintf(pFileOut, "LIBRARY IEEE;\n");
fprintf(pFileOut, "USE IEEE.STD_LOGIC_1164.ALL;\n");
fprintf(pFileOut, "USE IEEE.NUMERIC_STD.ALL;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "library UNISIM;\n");
fprintf(pFileOut, "use UNISIM.VComponents.all;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "ENTITY %s IS\n", ENT_NAME);
fprintf(pFileOut, "\tPort\n");
fprintf(pFileOut, "\t(\n");
fprintf(pFileOut, "\t\tclk\t\t: in STD_LOGIC;\n");
fprintf(pFileOut, "\t\tce\t\t: in STD_LOGIC;\n");
fprintf(pFileOut, "\t\taddr\t\t: in unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\t\tdout\t\t: out unsigned(%d downto 0)\n", nbits_data-1);
fprintf(pFileOut, "\t);\n");
fprintf(pFileOut, "END %s;\n", ENT_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "ARCHITECTURE %s OF %s IS\n", ARCH_NAME, ENT_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "\tsubtype word_t is unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\ttype word_array_t is array (0 to %d) of word_t;\n", romsize/4-1);
fprintf(pFileOut, "\tsignal jtag_ld_clk\t\t: STD_LOGIC;\n");
fprintf(pFileOut, "\tsignal jtag_ld_we\t\t: STD_LOGIC;\n");
fprintf(pFileOut, "\tsignal jtag_ld_addr\t\t: unsigned (%d downto 0);\n", JTAG_ADDR_WIDTH-1);
fprintf(pFileOut, "\tsignal jtag_ld_dout\t\t: unsigned (%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\tsignal jtag_ld_din\t\t: unsigned (%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\tsignal bs_rst, bs_sel, bs_shift, bs_tdi, bs_tdo : std_logic;\n");
fprintf(pFileOut, "\tsignal bs_capture, bs_clk0, bs_clk1, bs_update0, bs_update1 : std_logic;\n");
fprintf(pFileOut, "\tsignal user_regi, user_rego : unsigned (%d downto 0);\n", 31 + JTAG_ADDR_WIDTH);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "\tsignal word_array : word_array_t :=\n");
fprintf(pFileOut, "\t(\n");
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// ROM part
// -------------------------------------------------------------------------
for (i=0; i < filesize; i += sizeof(int))
{
fread(&word, 1, sizeof(int), pFileIn);
fprintf(pFileOut, "\t\tX\"%8.8X\"", word);
if (i < (romsize-sizeof(int)))
fprintf(pFileOut, ", -- %8.8X\n", i);
else
fprintf(pFileOut, " -- %8.8X\n", i);
}
word = 0;
for (; i < romsize; i += sizeof(int))
{
fprintf(pFileOut, "\t\tX\"%8.8X\"", word);
if (i < (romsize-sizeof(int)))
fprintf(pFileOut, ", -- %8.8X\n", i);
else
fprintf(pFileOut, " -- %8.8X\n", i);
}
fprintf(pFileOut, "\t);\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "begin\n", ARCH_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "PROM_READ:\n", ARCH_NAME);
fprintf(pFileOut, "\tprocess(clk)\n");
fprintf(pFileOut, "\tbegin\n");
fprintf(pFileOut, "\t\tif rising_edge(clk) then\n");
fprintf(pFileOut, "\t\t\tif ce = '1' then\n");
fprintf(pFileOut, "\t\t\tdout <= word_array(to_integer(addr(%d downto 2)));\n", nbits_addr+1);
fprintf(pFileOut, "\t\t\tend if;\n");
fprintf(pFileOut, "\t\tend if;\n");
fprintf(pFileOut, "\tend process;\n");
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// Trailer
// -------------------------------------------------------------------------
fprintf(pFileOut, "\n");
fputs(tpl, pFileOut);
fprintf(pFileOut, "PROM_WRITE:\n", ARCH_NAME);
fprintf(pFileOut, "\tprocess(jtag_ld_clk, jtag_ld_we)\n");
fprintf(pFileOut, "\tbegin\n");
fprintf(pFileOut, "\t\tif rising_edge(jtag_ld_clk) then\n");
fprintf(pFileOut, "\t\t\tif jtag_ld_we = '1' then\n");
fprintf(pFileOut, "\t\t\t\tword_array(to_integer(jtag_ld_addr(%d downto 0))) <= jtag_ld_din;\n", nbits_addr-1);
fprintf(pFileOut, "\t\t\telse\n");
fprintf(pFileOut, "\t\t\t\tjtag_ld_dout <= word_array(to_integer(jtag_ld_addr(%d downto 0)));\n", nbits_addr-1);
fprintf(pFileOut, "\t\t\tend if;\n");
fprintf(pFileOut, "\t\tend if;\n");
fprintf(pFileOut, "\tend process;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "end %s;\n", ARCH_NAME);
return 0;
}
int SaveRAM_TCL(char *pFilenameIn, char *pFilenameOut, char *pArchName, char *pEntName, int nbits_addr, int nbits_data)
{
FILE *pFileIn, *pFileOut;
long start, end;
int i, word, word_addr, filesize, romsize;
char binstr_addr[33];
char binstr_data[33];
char tpl[] = {"# ---------------------------------------------------------------------\n# For Chipscope 9.1\n# ---------------------------------------------------------------------\n# Source JTAG/TCL frame work\ncd $env(CHIPSCOPE)\\\\bin\\\\nt\nsource csejtag.tcl\n\nnamespace import ::chipscope::*\n\n# Platform USB Cable\nset PLATFORM_USB_CABLE_ARGS [list \"port=USB2\" \"frequency=6000000\"]\n# frequency=\"24000000 | 12000000 | 6000000 | 3000000 | 1500000 | 750000\"\n\n# Create session\nset handle [::chipscope::csejtag_session create 0]\n\n# Open JTAG and lock\nset open_result [::chipscope::csejtag_target open $handle $CSEJTAG_TARGET_PLATFORMUSB 0 $PLATFORM_USB_CABLE_ARGS]\nset lock_result [::chipscope::csejtag_target lock $handle 1000]\n\nset devlist [::chipscope::csejtag_tap autodetect_chain $handle $CSEJTAG_SCAN_DEFAULT]\n\n# Get Device ID\nset devtype \"Virtex-4SX\"\nset devid 2\nset irlength [::chipscope::csejtag_tap get_irlength $handle $devid]\nset idcode [::chipscope::csejtag_tap get_device_idcode $handle $devid]\n\nset CSE_OP $CSEJTAG_SHIFT_READWRITE\nset CSE_ES $CSEJTAG_RUN_TEST_IDLE\n\n# Write Program\n"};
pFileIn = fopen(pFilenameIn, "rb");
if (!pFileIn)
{
fprintf(stderr, "Error opening file %s\n", pFilenameIn);
return 1;
}
pFileOut = fopen(pFilenameOut, "wb");
if (!pFileOut)
{
fprintf(stderr, "Error opening file %s\n", pFilenameOut);
return 1;
}
fseek(pFileIn, 0, SEEK_SET);
start = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_END);
end = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_SET);
filesize = (end-start);
romsize = (int)pow(2, nbits_addr+2);
// -------------------------------------------------------------------------
// Header
// -------------------------------------------------------------------------
fputs(tpl, pFileOut);
// -------------------------------------------------------------------------
// ROM part
// -------------------------------------------------------------------------
fprintf(pFileOut, "# Assembled from %s\n", pFilenameIn);
fprintf(pFileOut, "# ---------------------------------------------------------------\n");
fprintf(pFileOut, "# Shift the USER2 Instruction (b1111000011) into the Instruction Register of FPGA\n");
fprintf(pFileOut, "# User 2\n");
fprintf(pFileOut, "set result [::chipscope::csejtag_tap shift_device_ir $handle $devid $CSE_OP $CSE_ES 0 $irlength \"3C3\"]\n\n");
word_addr = 0;
for (i=0; i < filesize; i += sizeof(int))
{
fread(&word, 1, sizeof(int), pFileIn);
fprintf(pFileOut, "::chipscope::csejtag_tap shift_device_dr $handle $devid $CSE_OP $CSE_ES 0 %d \"%4.4X%8.8X\"\n", nbits_data + JTAG_ADDR_WIDTH, word_addr, word);
word_addr++;
}
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// Trailer
// -------------------------------------------------------------------------
fprintf(pFileOut, "::chipscope::csejtag_target unlock $handle\n");
fprintf(pFileOut, "::chipscope::csejtag_target close $handle\n");
fprintf(pFileOut, "::chipscope::csejtag_session destroy $handle\n");
fprintf(pFileOut, "exit\n");
return 0;
}
int main(int argc, char *argv[])
{
char *pFilenameIn;
char name_prj[1024];
char name_rom_tcl[1024];
char name_rom[1024];
char name_rom_v4ld[1024];
FILE *pFileIn;
int filesize, romsize, nbits_addr, nbits_data;
long start, end;
int word, i;
if (argc < 2)
{
fprintf(stderr, "Usage: ramgen <input file> <num. word address bits>\n");
return 1;
}
pFilenameIn = argv[1];
if (argc == 3)
nbits_addr = atoi(argv[2]);
basename(pFilenameIn, name_prj);
sprintf(name_rom, "%s.vhd", name_prj);
sprintf(name_rom_v4ld, "%s_ld.vhd", name_prj);
sprintf(name_rom_tcl, "%s.tcl", name_prj);
SaveRAM(pFilenameIn, name_rom, ARCH_NAME, ENT_NAME, nbits_addr, 32);
// SaveROM_V4LD(pFilenameIn, name_rom_v4ld, ARCH_NAME, ENT_NAME, nbits_addr, 32);
SaveRAM_TCL(pFilenameIn, name_rom_tcl, ARCH_NAME, ENT_NAME, nbits_addr, 32);
return 0;
}
+430
View File
@@ -0,0 +1,430 @@
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <math.h>
#define INT8 char
#define INT16 short
#define INT32 long
#define UINT8 unsigned char
#define UINT16 unsigned short
#define UINT32 unsigned long
#define INT int
#define UINT unsigned int
#define FLOAT32 float
#define FLOAT64 double
#define ARCH_NAME "data"
#define ENT_NAME "rom"
#define JTAG_ADDR_WIDTH 16
UINT32 g_endianess_EB;
// --------------------------------------------------------------
UINT32 conv_endian32(UINT32 src)
{
UINT32 dst;
dst = (0xFF000000 & (src << 24))
| (0x00FF0000 & (src << 8))
| (0x0000FF00 & (src >> 8))
| (0x000000FF & (src >> 24));
return dst;
};
UINT32 to_big_endian32(UINT32 src)
{
#ifndef NATIVE_IS_BIG_ENDIAN
return conv_endian32(src);
#else
return src;
#endif
}
UINT32 from_big_endian32(UINT32 src)
{
#ifndef NATIVE_IS_BIG_ENDIAN
return conv_endian32(src);
#else
return src;
#endif
}
void basename(char *pSrc, char *pDst)
{
int i, size;
size = strlen(pSrc);
while(pSrc[size] != '.')
size--;
for (i=0; i < size; i++)
pDst[i] = pSrc[i];
pDst[i] = 0;
}
int SaveROM(char *pFilenameIn, char *pFilenameOut, char *pArchName, char *pEntName, int nbits_addr, int nbits_data)
{
FILE *pFileIn, *pFileOut;
long start, end;
int i, word, filesize, romsize;
pFileIn = fopen(pFilenameIn, "rb");
if (!pFileIn)
{
fprintf(stderr, "Error opening file %s\n", pFilenameIn);
return 1;
}
pFileOut = fopen(pFilenameOut, "wb");
if (!pFileOut)
{
fprintf(stderr, "Error opening file %s\n", pFilenameOut);
return 1;
}
fseek(pFileIn, 0, SEEK_SET);
start = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_END);
end = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_SET);
filesize = (end-start);
romsize = (int)pow(2, nbits_addr+2);
// -------------------------------------------------------------------------
// Header
// -------------------------------------------------------------------------
fprintf(pFileOut, "LIBRARY IEEE;\n");
fprintf(pFileOut, "USE IEEE.STD_LOGIC_1164.ALL;\n");
fprintf(pFileOut, "USE IEEE.NUMERIC_STD.ALL;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "ENTITY %s IS\n", ENT_NAME);
fprintf(pFileOut, "\tPort\n");
fprintf(pFileOut, "\t(\n");
fprintf(pFileOut, "\t\tclk\t\t: in STD_LOGIC;\n");
fprintf(pFileOut, "\t\tce\t\t: in STD_LOGIC;\n");
fprintf(pFileOut, "\t\taddr\t\t: in unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\t\tdout\t\t: out unsigned(%d downto 0)\n", nbits_data-1);
fprintf(pFileOut, "\t);\n");
fprintf(pFileOut, "END %s;\n", ENT_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "ARCHITECTURE %s OF %s IS\n", ARCH_NAME, ENT_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "\tsubtype word_t is unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\ttype word_array_t is array (0 to %d) of word_t;\n", romsize/4-1);
fprintf(pFileOut, "\tconstant word_array : word_array_t :=\n");
fprintf(pFileOut, "\t(\n");
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// ROM part
// -------------------------------------------------------------------------
for (i=0; i < filesize; i += sizeof(int))
{
fread(&word, 1, sizeof(int), pFileIn);
if (g_endianess_EB)
fprintf(pFileOut, "\t\tX\"%8.8X\"", to_big_endian32(word));
else
fprintf(pFileOut, "\t\tX\"%8.8X\"", word);
if (i < (romsize-sizeof(int)))
fprintf(pFileOut, ", -- %8.8X\n", i);
else
fprintf(pFileOut, " -- %8.8X\n", i);
}
word = 0;
for (; i < romsize; i += sizeof(int))
{
fprintf(pFileOut, "\t\tX\"%8.8X\"", word);
if (i < (romsize-sizeof(int)))
fprintf(pFileOut, ", -- %8.8X\n", i);
else
fprintf(pFileOut, " -- %8.8X\n", i);
}
fprintf(pFileOut, "\t);\n");
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// Trailer
// -------------------------------------------------------------------------
fprintf(pFileOut, "begin\n", ARCH_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "PROM_READ:\n", ARCH_NAME);
fprintf(pFileOut, "\tprocess(clk)\n");
fprintf(pFileOut, "\tbegin\n");
fprintf(pFileOut, "\t\tif rising_edge(clk) then\n");
fprintf(pFileOut, "\t\t\tif ce = '1' then\n");
fprintf(pFileOut, "\t\t\t\tdout <= word_array(to_integer(addr(%d downto 2)));\n", nbits_addr+1);
fprintf(pFileOut, "\t\t\tend if;\n");
fprintf(pFileOut, "\t\tend if;\n");
fprintf(pFileOut, "\tend process;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "end %s;\n", ARCH_NAME);
return 0;
}
int SaveROM_V4LD(char *pFilenameIn, char *pFilenameOut, char *pArchName, char *pEntName, int nbits_addr, int nbits_data)
{
FILE *pFileIn, *pFileOut;
long start, end;
int i, word, filesize, romsize;
char tpl[] = {"--------------------------------------------------------------------------\n-- Virtex-4: JTAG Loader\n--------------------------------------------------------------------------\n\ti00_BUFG : BUFG\n\tport map\n\t(\n\t\tO => bs_clk1,\n I => bs_clk0\n\t);\n\t\n\ti01_BUFG : BUFG\n\tport map\n\t(\n\t\tO => bs_update1,\n I => bs_update0\n\t);\n\n\tBSCAN_VIRTEX4_inst1 : BSCAN_VIRTEX4 \n\tgeneric map\n\t(\n\t\tJTAG_CHAIN => 1 -- Value to set BSCAN site of device. Possible values: (1,2,3 or 4)\n\t)\n\tport map \n\t(\n\t\tCAPTURE => bs_capture, -- CAPTURE output from TAP controller\n\t\tDRCK => bs_clk0, -- Data register output for USER functions\n\t\tRESET => bs_rst, -- Reset output from TAP controller\n\t\tSEL => bs_sel, -- USER active output\n\t\tSHIFT => bs_shift, -- SHIFT output from TAP controller\n\t\tTDI => bs_tdi, -- TDI output from TAP controller\n\t\tUPDATE => bs_update0, -- UPDATE output from TAP controller\n\t\tTDO => bs_tdo -- Data input for USER function\n\t);\n\n\tjtag_ld_addr <= user_regi(user_regi'left downto jtag_ld_dout'length);\n\tjtag_ld_din <= user_regi(jtag_ld_dout'length-1 downto 0);\n\tjtag_ld_clk <= bs_update1;\n\tjtag_ld_we <= bs_sel;\n\t\nsipo:\n\tprocess (bs_rst, bs_clk1, bs_tdi, bs_shift)\n\tbegin\n\t\tif bs_rst = '1' then\n\t\t\tuser_regi <= (others => '0');\n\t\telsif rising_edge(bs_clk1) then\n\t\t\tif bs_shift = '1' then\n\t\t\t\tuser_regi <= bs_tdi & user_regi(user_regi'left downto 1);\n\t\t\tend if;\n\t\tend if;\n\tend process;\t\n\npiso:\n\tprocess (bs_rst, bs_clk1, bs_shift, user_rego)\n\tbegin\n\t\tbs_tdo <= user_rego(0);\n\t\tif bs_rst = '1' then\n\t\t\tuser_rego <= (others => '0');\n\t\telsif rising_edge(bs_clk1) then\n\t\t\tif bs_shift = '1' then\n\t\t\t\tuser_rego <= user_rego(0) & user_rego(user_rego'left downto 1);\n\t\t\telse\n\t\t\t\tuser_rego <= (user_rego'left downto jtag_ld_dout'length => '0') & jtag_ld_dout;\t\n\t\n\t\t\tend if;\n\t\tend if;\n\tend process;\n\n"};
pFileIn = fopen(pFilenameIn, "rb");
if (!pFileIn)
{
fprintf(stderr, "Error opening file %s\n", pFilenameIn);
return 1;
}
pFileOut = fopen(pFilenameOut, "wb");
if (!pFileOut)
{
fprintf(stderr, "Error opening file %s\n", pFilenameOut);
return 1;
}
fseek(pFileIn, 0, SEEK_SET);
start = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_END);
end = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_SET);
filesize = (end-start);
romsize = (int)pow(2, nbits_addr+2);
// -------------------------------------------------------------------------
// Header
// -------------------------------------------------------------------------
fprintf(pFileOut, "LIBRARY IEEE;\n");
fprintf(pFileOut, "USE IEEE.STD_LOGIC_1164.ALL;\n");
fprintf(pFileOut, "USE IEEE.NUMERIC_STD.ALL;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "library UNISIM;\n");
fprintf(pFileOut, "use UNISIM.VComponents.all;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "ENTITY %s IS\n", ENT_NAME);
fprintf(pFileOut, "\tPort\n");
fprintf(pFileOut, "\t(\n");
fprintf(pFileOut, "\t\tclk\t\t: in STD_LOGIC;\n");
fprintf(pFileOut, "\t\tce\t\t: in STD_LOGIC;\n");
fprintf(pFileOut, "\t\taddr\t\t: in unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\t\tdout\t\t: out unsigned(%d downto 0)\n", nbits_data-1);
fprintf(pFileOut, "\t);\n");
fprintf(pFileOut, "END %s;\n", ENT_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "ARCHITECTURE %s OF %s IS\n", ARCH_NAME, ENT_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "\tsubtype word_t is unsigned(%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\ttype word_array_t is array (0 to %d) of word_t;\n", romsize/4-1);
fprintf(pFileOut, "\tsignal jtag_ld_clk\t\t: STD_LOGIC;\n");
fprintf(pFileOut, "\tsignal jtag_ld_we\t\t: STD_LOGIC;\n");
fprintf(pFileOut, "\tsignal jtag_ld_addr\t\t: unsigned (%d downto 0);\n", JTAG_ADDR_WIDTH-1);
fprintf(pFileOut, "\tsignal jtag_ld_dout\t\t: unsigned (%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\tsignal jtag_ld_din\t\t: unsigned (%d downto 0);\n", nbits_data-1);
fprintf(pFileOut, "\tsignal bs_rst, bs_sel, bs_shift, bs_tdi, bs_tdo : std_logic;\n");
fprintf(pFileOut, "\tsignal bs_capture, bs_clk0, bs_clk1, bs_update0, bs_update1 : std_logic;\n");
fprintf(pFileOut, "\tsignal user_regi, user_rego : unsigned (%d downto 0);\n", 31 + JTAG_ADDR_WIDTH);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "\tsignal word_array : word_array_t :=\n");
fprintf(pFileOut, "\t(\n");
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// ROM part
// -------------------------------------------------------------------------
for (i=0; i < filesize; i += sizeof(int))
{
fread(&word, 1, sizeof(int), pFileIn);
if (g_endianess_EB)
fprintf(pFileOut, "\t\tX\"%8.8X\"", to_big_endian32(word));
else
fprintf(pFileOut, "\t\tX\"%8.8X\"", word);
if (i < (romsize-sizeof(int)))
fprintf(pFileOut, ", -- %8.8X\n", i);
else
fprintf(pFileOut, " -- %8.8X\n", i);
}
word = 0;
for (; i < romsize; i += sizeof(int))
{
fprintf(pFileOut, "\t\tX\"%8.8X\"", word);
if (i < (romsize-sizeof(int)))
fprintf(pFileOut, ", -- %8.8X\n", i);
else
fprintf(pFileOut, " -- %8.8X\n", i);
}
fprintf(pFileOut, "\t);\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "begin\n", ARCH_NAME);
fprintf(pFileOut, "\n");
fprintf(pFileOut, "PROM_READ:\n", ARCH_NAME);
fprintf(pFileOut, "\tprocess(clk)\n");
fprintf(pFileOut, "\tbegin\n");
fprintf(pFileOut, "\t\tif rising_edge(clk) and ce = '1' then\n");
fprintf(pFileOut, "\t\t\tdout <= word_array(to_integer(addr(%d downto 2)));\n", nbits_addr+1);
fprintf(pFileOut, "\t\tend if;\n");
fprintf(pFileOut, "\tend process;\n");
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// Trailer
// -------------------------------------------------------------------------
fprintf(pFileOut, "\n");
fputs(tpl, pFileOut);
fprintf(pFileOut, "PROM_WRITE:\n", ARCH_NAME);
fprintf(pFileOut, "\tprocess(jtag_ld_clk, jtag_ld_we)\n");
fprintf(pFileOut, "\tbegin\n");
fprintf(pFileOut, "\t\tif rising_edge(jtag_ld_clk) then\n");
fprintf(pFileOut, "\t\t\tif jtag_ld_we = '1' then\n");
fprintf(pFileOut, "\t\t\t\tword_array(to_integer(jtag_ld_addr(%d downto 0))) <= jtag_ld_din;\n", nbits_addr-1);
fprintf(pFileOut, "\t\t\telse\n");
fprintf(pFileOut, "\t\t\t\tjtag_ld_dout <= word_array(to_integer(jtag_ld_addr(%d downto 0)));\n", nbits_addr-1);
fprintf(pFileOut, "\t\t\tend if;\n");
fprintf(pFileOut, "\t\tend if;\n");
fprintf(pFileOut, "\tend process;\n");
fprintf(pFileOut, "\n");
fprintf(pFileOut, "end %s;\n", ARCH_NAME);
return 0;
}
int SaveROM_TCL(char *pFilenameIn, char *pFilenameOut, char *pArchName, char *pEntName, int nbits_addr, int nbits_data)
{
FILE *pFileIn, *pFileOut;
long start, end;
int i, word, word_addr, filesize, romsize;
char binstr_addr[33];
char binstr_data[33];
char tpl[] =
{"# ---------------------------------------------------------------------\n# For Chipscope 10.1\n# ---------------------------------------------------------------------\n# Source JTAG/TCL frame work\nsource $env(CS_PATH)\\\\csejtag.tcl\n\nnamespace import ::chipscope::*\n\n# Platform USB Cable\n# Create session\nset handle [::chipscope::csejtag_session create 0]\n\n# Open JTAG and lock\nset open_result [::chipscope::csejtag_target open $handle $CSEJTAG_TARGET_PLATFORMUSB 0 \"port=USB2\" \"frequency=6000000\"]\n# frequency=\"24000000 | 12000000 | 6000000 | 3000000 | 1500000 | 750000\"\n\nset lock_result [::chipscope::csejtag_target lock $handle 1000]\n\nset devlist [::chipscope::csejtag_tap autodetect_chain $handle $CSEJTAG_SCAN_DEFAULT]\n\n# Get Device ID\nset devtype \"Virtex-4SX\"\nset devid 2\nset irlength [::chipscope::csejtag_tap get_irlength $handle $devid]\nset idcode [::chipscope::csejtag_tap get_device_idcode $handle $devid]\n\nset CSE_OP $CSEJTAG_SHIFT_READWRITE\nset CSE_ES $CSEJTAG_RUN_TEST_IDLE\n\n# Write Program\n"};
pFileIn = fopen(pFilenameIn, "rb");
if (!pFileIn)
{
fprintf(stderr, "Error opening file %s\n", pFilenameIn);
return 1;
}
pFileOut = fopen(pFilenameOut, "wb");
if (!pFileOut)
{
fprintf(stderr, "Error opening file %s\n", pFilenameOut);
return 1;
}
fseek(pFileIn, 0, SEEK_SET);
start = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_END);
end = ftell(pFileIn);
fseek(pFileIn, 0, SEEK_SET);
filesize = (end-start);
romsize = (int)pow(2, nbits_addr+2);
// -------------------------------------------------------------------------
// Header
// -------------------------------------------------------------------------
fputs(tpl, pFileOut);
// -------------------------------------------------------------------------
// ROM part
// -------------------------------------------------------------------------
fprintf(pFileOut, "# Assembled from %s\n", pFilenameIn);
fprintf(pFileOut, "# ---------------------------------------------------------------\n");
fprintf(pFileOut, "# Shift the USER1 Instruction (b1111000010) into the Instruction Register of FPGA\n");
fprintf(pFileOut, "# User 1\n");
fprintf(pFileOut, "set result [::chipscope::csejtag_tap shift_device_ir $handle $devid $CSE_OP $CSE_ES 0 $irlength \"3C2\"]\n\n");
word_addr = 0;
for (i=0; i < filesize; i += sizeof(int))
{
fread(&word, 1, sizeof(int), pFileIn);
if (g_endianess_EB)
fprintf(pFileOut, "::chipscope::csejtag_tap shift_device_dr $handle $devid $CSE_OP $CSE_ES 0 %d \"%4.4X%8.8X\"\n", nbits_data + JTAG_ADDR_WIDTH, word_addr, to_big_endian32(word));
else
fprintf(pFileOut, "::chipscope::csejtag_tap shift_device_dr $handle $devid $CSE_OP $CSE_ES 0 %d \"%4.4X%8.8X\"\n", nbits_data + JTAG_ADDR_WIDTH, word_addr, word);
word_addr++;
}
fprintf(pFileOut, "\n");
// -------------------------------------------------------------------------
// Trailer
// -------------------------------------------------------------------------
fprintf(pFileOut, "::chipscope::csejtag_target unlock $handle\n");
fprintf(pFileOut, "::chipscope::csejtag_target close $handle\n");
fprintf(pFileOut, "::chipscope::csejtag_session destroy $handle\n");
fprintf(pFileOut, "exit\n");
return 0;
}
int main(int argc, char *argv[])
{
char *pFilenameIn;
char name_prj[1024];
char name_rom[1024];
char name_rom_v4ld[1024];
char name_rom_tcl[1024];
FILE *pFileIn;
int filesize, romsize, nbits_addr, nbits_data;
long start, end;
int word, i;
if (argc < 2)
{
fprintf(stderr, "Usage: romgen <input file> <num. word address bits> [-{EL|EB}]\n");
return 1;
}
pFilenameIn = argv[1];
nbits_addr = atoi(argv[2]);
g_endianess_EB = 0;
if (argc == 4)
{
if ((argv[3][0] == '-') && (toupper(argv[3][1]) == 'E') && (toupper(argv[3][2]) == 'B'))
g_endianess_EB = 1;
}
basename(pFilenameIn, name_prj);
sprintf(name_rom, "%s.vhd", name_prj);
sprintf(name_rom_v4ld, "%s_ld.vhd", name_prj);
sprintf(name_rom_tcl, "%s.tcl", name_prj);
SaveROM(pFilenameIn, name_rom, ARCH_NAME, ENT_NAME, nbits_addr, 32);
SaveROM_V4LD(pFilenameIn, name_rom_v4ld, ARCH_NAME, ENT_NAME, nbits_addr, 32);
SaveROM_TCL(pFilenameIn, name_rom_tcl, ARCH_NAME, ENT_NAME, nbits_addr, 32);
return 0;
}