from copy import copy
from ply import lex, yacc
import astor
+import ast
from soc.decoder.power_decoder import create_pdecode
from nmigen.back.pysim import Simulator, Delay
from nmigen import Module, Signal
-from soc.decoder.pseudo.lexer import IndentLexer
-
-# I use the Python AST
-#from compiler import ast
-import ast
+from soc.decoder.pseudo.parser import GardenSnakeCompiler
+from soc.decoder.selectable_int import SelectableInt, selectconcat
+from soc.decoder.isa.caller import GPR, Mem
-# Helper function
-def Assign(left, right):
- names = []
- if isinstance(left, ast.Name):
- # Single assignment on left
- return ast.Assign([ast.Name(left.id, ast.Store())], right)
- elif isinstance(left, ast.Tuple):
- # List of things - make sure they are Name nodes
- names = []
- for child in left.getChildren():
- if not isinstance(child, ast.Name):
- raise SyntaxError("that assignment not supported")
- names.append(child.name)
- ass_list = [ast.AssName(name, 'OP_ASSIGN') for name in names]
- return ast.Assign([ast.AssTuple(ass_list)], right)
- else:
- raise SyntaxError("Can't do that yet")
-
-
-## I implemented INDENT / DEDENT generation as a post-processing filter
-
-# The original lex token stream contains WS and NEWLINE characters.
-# WS will only occur before any other tokens on a line.
-
-# I have three filters. One tags tokens by adding two attributes.
-# "must_indent" is True if the token must be indented from the
-# previous code. The other is "at_line_start" which is True for WS
-# and the first non-WS/non-NEWLINE on a line. It flags the check so
-# see if the new line has changed indication level.
-
-
-## No using Python's approach because Ply supports precedence
-
-# comparison: expr (comp_op expr)*
-# arith_expr: term (('+'|'-') term)*
-# term: factor (('*'|'/'|'%'|'//') factor)*
-# factor: ('+'|'-'|'~') factor | power
-# comp_op: '<'|'>'|'=='|'>='|'<='|'<>'|'!='|'in'|'not' 'in'|'is'|'is' 'not'
-
-def make_lt_compare(arg):
- (left, right) = arg
- return ast.Compare(left, [ast.Lt()], [right])
-def make_gt_compare(arg):
- (left, right) = arg
- return ast.Compare(left, [ast.Gt()], [right])
-def make_eq_compare(arg):
- (left, right) = arg
- return ast.Compare(left, [ast.Eq()], [right])
-
-
-binary_ops = {
- "+": ast.Add(),
- "-": ast.Sub(),
- "*": ast.Mult(),
- "/": ast.Div(),
- "<": make_lt_compare,
- ">": make_gt_compare,
- "=": make_eq_compare,
-}
-unary_ops = {
- "+": ast.Add,
- "-": ast.Sub,
- }
-def check_concat(node): # checks if the comparison is already a concat
- print (node)
- if not isinstance(node, ast.Call):
- return [node]
- if node[0].id != 'concat':
- return node
- return node[1]
-
-
-########## Parser (tokens -> AST) ######
-
-# also part of Ply
-#import yacc
-
-class PowerParser:
-
- precedence = (
- ("left", "EQ", "GT", "LT"),
- ("left", "PLUS", "MINUS"),
- ("left", "MULT", "DIV"),
- )
-
- def __init__(self):
- self.gprs = {}
- for rname in ['RA', 'RB', 'RC', 'RT', 'RS']:
- self.gprs[rname] = None
- self.read_regs = []
- self.write_regs = []
-
- # The grammar comments come from Python's Grammar/Grammar file
-
- ## NB: compound_stmt in single_input is followed by extra NEWLINE!
- # file_input: (NEWLINE | stmt)* ENDMARKER
-
- def p_file_input_end(self, p):
- """file_input_end : file_input ENDMARKER"""
- print ("end", p[1])
- p[0] = p[1]
-
- def p_file_input(self, p):
- """file_input : file_input NEWLINE
- | file_input stmt
- | NEWLINE
- | stmt"""
- if isinstance(p[len(p)-1], str):
- if len(p) == 3:
- p[0] = p[1]
- else:
- p[0] = [] # p == 2 --> only a blank line
- else:
- if len(p) == 3:
- p[0] = p[1] + p[2]
- else:
- p[0] = p[1]
-
-
- # funcdef: [decorators] 'def' NAME parameters ':' suite
- # ignoring decorators
- def p_funcdef(self, p):
- "funcdef : DEF NAME parameters COLON suite"
- p[0] = ast.FunctionDef(p[2], p[3], p[5], ())
-
- # parameters: '(' [varargslist] ')'
- def p_parameters(self, p):
- """parameters : LPAR RPAR
- | LPAR varargslist RPAR"""
- if len(p) == 3:
- args=[]
- else:
- args = p[2]
- p[0] = ast.arguments(args=args, vararg=None, kwarg=None, defaults=[])
-
-
- # varargslist: (fpdef ['=' test] ',')* ('*' NAME [',' '**' NAME] |
- # '**' NAME) |
- # highly simplified
- def p_varargslist(self, p):
- """varargslist : varargslist COMMA NAME
- | NAME"""
- if len(p) == 4:
- p[0] = p[1] + p[3]
- else:
- p[0] = [p[1]]
-
- # stmt: simple_stmt | compound_stmt
- def p_stmt_simple(self, p):
- """stmt : simple_stmt"""
- # simple_stmt is a list
- p[0] = p[1]
-
- def p_stmt_compound(self, p):
- """stmt : compound_stmt"""
- p[0] = [p[1]]
-
- # simple_stmt: small_stmt (';' small_stmt)* [';'] NEWLINE
- def p_simple_stmt(self, p):
- """simple_stmt : small_stmts NEWLINE
- | small_stmts SEMICOLON NEWLINE"""
- p[0] = p[1]
-
- def p_small_stmts(self, p):
- """small_stmts : small_stmts SEMICOLON small_stmt
- | small_stmt"""
- if len(p) == 4:
- p[0] = p[1] + [p[3]]
- else:
- p[0] = [p[1]]
-
- # small_stmt: expr_stmt | print_stmt | del_stmt | pass_stmt | flow_stmt |
- # import_stmt | global_stmt | exec_stmt | assert_stmt
- def p_small_stmt(self, p):
- """small_stmt : flow_stmt
- | break_stmt
- | expr_stmt"""
- if isinstance(p[1], ast.Call):
- p[0] = ast.Expr(p[1])
- else:
- p[0] = p[1]
-
- # expr_stmt: testlist (augassign (yield_expr|testlist) |
- # ('=' (yield_expr|testlist))*)
- # augassign: ('+=' | '-=' | '*=' | '/=' | '%=' | '&=' | '|=' | '^=' |
- # '<<=' | '>>=' | '**=' | '//=')
- def p_expr_stmt(self, p):
- """expr_stmt : testlist ASSIGN testlist
- | testlist """
- if len(p) == 2:
- # a list of expressions
- #p[0] = ast.Discard(p[1])
- p[0] = p[1]
- else:
- if p[1].id in self.gprs:
- self.write_regs.append(p[1].id) # add to list of regs to write
- p[0] = Assign(p[1], p[3])
-
- def p_flow_stmt(self, p):
- "flow_stmt : return_stmt"
- p[0] = p[1]
-
- # return_stmt: 'return' [testlist]
- def p_return_stmt(self, p):
- "return_stmt : RETURN testlist"
- p[0] = ast.Return(p[2])
-
-
- def p_compound_stmt(self, p):
- """compound_stmt : if_stmt
- | while_stmt
- | for_stmt
- | funcdef
- """
- p[0] = p[1]
-
- def p_break_stmt(self, p):
- """break_stmt : BREAK
- """
- p[0] = ast.Break()
-
- def p_for_stmt(self, p):
- """for_stmt : FOR test EQ test TO test COLON suite
- """
- p[0] = ast.While(p[2], p[4], [])
- # auto-add-one (sigh) due to python range
- start = p[4]
- end = ast.BinOp(p[6], ast.Add(), ast.Constant(1))
- it = ast.Call(ast.Name("range"), [start, end], [])
- p[0] = ast.For(p[2], it, p[8], [])
-
- def p_while_stmt(self, p):
- """while_stmt : DO WHILE test COLON suite ELSE COLON suite
- | DO WHILE test COLON suite
- """
- if len(p) == 6:
- p[0] = ast.While(p[3], p[5], [])
- else:
- p[0] = ast.While(p[3], p[5], p[8])
-
- def p_if_stmt(self, p):
- """if_stmt : IF test COLON suite ELSE COLON suite
- | IF test COLON suite
- """
- if len(p) == 5:
- p[0] = ast.If(p[2], p[4], [])
- else:
- p[0] = ast.If(p[2], p[4], p[7])
-
- def p_suite(self, p):
- """suite : simple_stmt
- | NEWLINE INDENT stmts DEDENT"""
- if len(p) == 2:
- p[0] = p[1]
- else:
- p[0] = p[3]
-
-
- def p_stmts(self, p):
- """stmts : stmts stmt
- | stmt"""
- if len(p) == 3:
- p[0] = p[1] + p[2]
- else:
- p[0] = p[1]
-
- def p_comparison(self, p):
- """comparison : comparison PLUS comparison
- | comparison MINUS comparison
- | comparison MULT comparison
- | comparison DIV comparison
- | comparison LT comparison
- | comparison EQ comparison
- | comparison GT comparison
- | PLUS comparison
- | MINUS comparison
- | comparison APPEND comparison
- | power"""
- if len(p) == 4:
- print (list(p))
- if p[2] == '||':
- l = check_concat(p[1]) + check_concat(p[3])
- p[0] = ast.Call(ast.Name("concat"), l, [])
- elif p[2] in ['<', '>', '=']:
- p[0] = binary_ops[p[2]]((p[1],p[3]))
- else:
- p[0] = ast.BinOp(p[1], binary_ops[p[2]], p[3])
- elif len(p) == 3:
- p[0] = unary_ops[p[1]](p[2])
- else:
- p[0] = p[1]
-
- # power: atom trailer* ['**' factor]
- # trailers enables function calls (and subscripts).
- # I only allow one level of calls
- # so this is 'trailer'
- def p_power(self, p):
- """power : atom
- | atom trailer"""
- if len(p) == 2:
- p[0] = p[1]
- else:
- if p[2][0] == "CALL":
- #p[0] = ast.Expr(ast.Call(p[1], p[2][1], []))
- p[0] = ast.Call(p[1], p[2][1], [])
- #if p[1].id == 'print':
- # p[0] = ast.Printnl(ast.Tuple(p[2][1]), None, None)
- #else:
- # p[0] = ast.CallFunc(p[1], p[2][1], None, None)
- else:
- print (p[2][1])
- #raise AssertionError("not implemented %s" % p[2][0])
- subs = p[2][1]
- if len(subs) == 1:
- idx = subs[0]
- else:
- idx = ast.Slice(subs[0], subs[1], None)
- p[0] = ast.Subscript(p[1], idx)
-
- def p_atom_name(self, p):
- """atom : NAME"""
- p[0] = ast.Name(p[1], ctx=ast.Load())
-
- def p_atom_number(self, p):
- """atom : BINARY
- | NUMBER
- | STRING"""
- p[0] = ast.Constant(p[1])
-
- #'[' [listmaker] ']' |
-
- def p_atom_listmaker(self, p):
- """atom : LBRACK listmaker RBRACK"""
- p[0] = p[2]
-
- def p_listmaker(self, p):
- """listmaker : test COMMA listmaker
- | test
- """
- if len(p) == 2:
- p[0] = ast.List([p[1]])
- else:
- p[0] = ast.List([p[1]] + p[3].nodes)
-
- def p_atom_tuple(self, p):
- """atom : LPAR testlist RPAR"""
- print ("tuple", p[2])
- if isinstance(p[2], ast.Name):
- print ("tuple name", p[2].id)
- if p[2].id in self.gprs:
- self.read_regs.append(p[2].id) # add to list of regs to read
- #p[0] = ast.Subscript(ast.Name("GPR"), ast.Str(p[2].id))
- #return
- p[0] = p[2]
-
- # trailer: '(' [arglist] ')' | '[' subscriptlist ']' | '.' NAME
- def p_trailer(self, p):
- """trailer : trailer_arglist
- | trailer_subscript
- """
- p[0] = p[1]
-
- def p_trailer_arglist(self, p):
- "trailer_arglist : LPAR arglist RPAR"
- p[0] = ("CALL", p[2])
-
- def p_trailer_subscript(self, p):
- "trailer_subscript : LBRACK subscript RBRACK"
- p[0] = ("SUBS", p[2])
-
- #subscript: '.' '.' '.' | test | [test] ':' [test]
-
- def p_subscript(self, p):
- """subscript : test COLON test
- | test
- """
- if len(p) == 4:
- p[0] = [p[1], p[3]]
- else:
- p[0] = [p[1]]
-
-
- # testlist: test (',' test)* [',']
- # Contains shift/reduce error
- def p_testlist(self, p):
- """testlist : testlist_multi COMMA
- | testlist_multi """
- if len(p) == 2:
- p[0] = p[1]
- else:
- # May need to promote singleton to tuple
- if isinstance(p[1], list):
- p[0] = p[1]
- else:
- p[0] = [p[1]]
- # Convert into a tuple?
- if isinstance(p[0], list):
- p[0] = ast.Tuple(p[0])
-
- def p_testlist_multi(self, p):
- """testlist_multi : testlist_multi COMMA test
- | test"""
- if len(p) == 2:
- # singleton
- p[0] = p[1]
- else:
- if isinstance(p[1], list):
- p[0] = p[1] + [p[3]]
- else:
- # singleton -> tuple
- p[0] = [p[1], p[3]]
-
-
- # test: or_test ['if' or_test 'else' test] | lambdef
- # as I don't support 'and', 'or', and 'not' this works down to 'comparison'
- def p_test(self, p):
- "test : comparison"
- p[0] = p[1]
-
-
-
- # arglist: (argument ',')* (argument [',']| '*' test [',' '**' test]
- # | '**' test)
- # XXX INCOMPLETE: this doesn't allow the trailing comma
- def p_arglist(self, p):
- """arglist : arglist COMMA argument
- | argument"""
- if len(p) == 4:
- p[0] = p[1] + [p[3]]
- else:
- p[0] = [p[1]]
-
- # argument: test [gen_for] | test '=' test # Really [keyword '='] test
- def p_argument(self, p):
- "argument : test"
- p[0] = p[1]
-
- def p_error(self, p):
- #print "Error!", repr(p)
- raise SyntaxError(p)
-
-
-class GardenSnakeParser(PowerParser):
- def __init__(self, lexer = None):
- PowerParser.__init__(self)
- if lexer is None:
- lexer = IndentLexer(debug=1)
- self.lexer = lexer
- self.tokens = lexer.tokens
- self.parser = yacc.yacc(module=self, start="file_input_end",
- debug=False, write_tables=False)
-
- self.sd = create_pdecode()
-
- def parse(self, code):
- self.lexer.input(code)
- result = self.parser.parse(lexer = self.lexer, debug=False)
- return ast.Module(result)
-
-
-###### Code generation ######
-
-#from compiler import misc, syntax, pycodegen
-
-class GardenSnakeCompiler(object):
- def __init__(self):
- self.parser = GardenSnakeParser()
- def compile(self, code, mode="exec", filename="<string>"):
- tree = self.parser.parse(code)
- print ("snake")
- pprint(tree)
- return tree
- #misc.set_filename(filename, tree)
- return compile(tree, mode="exec", filename="<string>")
- #syntax.check(tree)
- gen = pycodegen.ModuleCodeGenerator(tree)
- code = gen.getCode()
- return code
####### Test code #######
cnttzd = """
n <- 0
do while n < 64
- if (RS)[63-n] = 0b1 then
+ print (n)
+ if (RS)[63-n] = 0b1 then
leave
- n <- n + 1
+ n <- n + 1
RA <- EXTZ64(n)
print (RA)
"""
-#code = testreg
-code = cnttzd
-#code = bpermd
+cmpi = """
+if a < EXTS(SI) then
+ c <- 0b100
+else if a > EXTS(SI) then
+ c <- 0b010
+"""
+
+cmpi = """
+RA[0:1] <- 0b11
+"""
-lexer = IndentLexer(debug=1)
-# Give the lexer some input
-print ("code")
-print (code)
-lexer.input(code)
+cmpi = """
+in_range <- ((x | y) &
+ (a | b))
+in_range <- (x + y) - (a + b)
+"""
-# Tokenize
-while True:
- tok = lexer.token()
- if not tok:
- break # No more input
- print(tok)
+cmpi = """
+(RA)[0:1] <- 1
+src1 <- EXTZ((RA)[56:63])
+CR[4*BF+32] <- 0b0
+in_range <- src21lo <= src1 & src1 <= src21hi
+"""
+
+cmpeqb = """
+src1 <- GPR[RA]
+src1 <- src1[0:56]
+"""
+
+addpcis = """
+D <- d0||d1||d2
+"""
+
+testmul = """
+x <- [0] * 16
+RT <- (RA) + EXTS(SI || [0]*16)
+"""
+
+testgetzero = """
+RS <- (RA|0)
+RS <- RS + 1
+print(RS)
+"""
+
+testcat = """
+RT <- (load_data[56:63] || load_data[48:55]
+ || load_data[40:47] || load_data[32:39]
+ || load_data[24:31] || load_data[16:23]
+ || load_data[8:15] || load_data[0:7])
+"""
+
+testgpr = """
+GPR(5) <- x
+"""
+testmem = """
+a <- (RA|0)
+b <- (RB|0)
+RA <- MEM(RB, 2)
+EA <- a + 1
+MEM(EA, 1) <- (RS)[56:63]
+RB <- RA
+RA <- EA
+"""
+
+testgprslice = """
+MEM(EA, 4) <- GPR(r)[32:63]
+#x <- x[0][32:63]
+"""
+
+testdo = r"""
+do i = 0 to 7
+ print(i)
+"""
+
+testcond = """
+ctr_ok <- BO[2] | ((CTR[M:63] != 0) ^ BO[3])
+cond_ok <- BO[0] | ¬(CR[BI+32] ^ BO[1])
+"""
+
+lswx = """
+if RA = 0 then EA <- 0
+else EA <- (RA)
+if NB = 0 then n <- 32
+else n <- NB
+r <- RT - 1
+i <- 32
+do while n > 0
+ if i = 32 then
+ r <- (r + 1) % 32
+ GPR(r) <- 0
+ GPR(r)[i:i+7] <- MEM(EA, 1)
+ i <- i + 8
+ if i = 64 then i <- 32
+ EA <- EA + 1
+ n <- n - 1
+"""
+
+_lswx = """
+GPR(r)[x] <- 1
+"""
+
+switchtest = """
+switch (n)
+ case(1): x <- 5
+ case(2): fallthrough
+ case(3):
+ x <- 3
+ case(4): fallthrough
+ default:
+ x <- 9
+"""
+
+hextest = """
+RT <- 0x0001_a000_0000_0000
+"""
+
+code = hextest
+#code = lswx
+#code = testcond
+#code = testdo
+#code = _bpermd
+#code = testmul
+#code = testgetzero
+#code = testcat
+#code = testgpr
+#code = testmem
+#code = testgprslice
+#code = testreg
+#code = cnttzd
+#code = cmpi
+#code = cmpeqb
+#code = addpcis
+#code = bpermd
-#sys.exit(0)
def tolist(num):
l = []
for i in range(64):
- l.append(1 if (num & (1<<i)) else 0)
+ l.append(1 if (num & (1 << i)) else 0)
l.reverse()
return l
def get_reg_hex(reg):
- report = ''.join(map(str, reg))
- return hex(int('0b%s' % report, 2))
-
-
-gsc = GardenSnakeCompiler()
-class GPR(dict):
- def __init__(self, sd, regfile):
- dict.__init__(self)
- self.sd = sd
- self.regfile = regfile
- for i in range(32):
- self[i] = [0] * 64
-
- def set_form(self, form):
- self.form = form
-
- def ___getitem__(self, attr):
- print ("GPR getitem", attr)
- getform = self.sd.sigforms[self.form]
- rnum = getattr(getform, attr)
- print ("GPR get", rnum, rnum, dir(rnum))
- l = list(rnum)
- print (l[0]._as_const())
- #for x in rnum:
- #print (x, x.value, dir(x))
- #print (x.value, dir(x.value))
- print (list(rnum))
- return self.regfile[rnum]
-
-
-gsc.regfile = {}
-for i in range(32):
- gsc.regfile[i] = 0
-gsc.gpr = GPR(gsc.parser.sd, gsc.regfile)
-
-_compile = gsc.compile
+ return hex(reg.value)
+
+
+def convert_to_python(pcode, form, incl_carry):
+
+ print("form", form)
+ gsc = GardenSnakeCompiler(form=form, incl_carry=incl_carry)
+
+ tree = gsc.compile(pcode, mode="exec", filename="string")
+ tree = ast.fix_missing_locations(tree)
+ regsused = {'read_regs': gsc.parser.read_regs,
+ 'write_regs': gsc.parser.write_regs,
+ 'uninit_regs': gsc.parser.uninit_regs,
+ 'special_regs': gsc.parser.special_regs,
+ 'op_fields': gsc.parser.op_fields}
+ return astor.to_source(tree), regsused
+
def test():
+
+ gsc = GardenSnakeCompiler(debug=True)
+
+ gsc.regfile = {}
+ for i in range(32):
+ gsc.regfile[i] = i
+ gsc.gpr = GPR(gsc.parser.sd, gsc.regfile)
+ gsc.mem = Mem()
+
+ _compile = gsc.compile
+
tree = _compile(code, mode="single", filename="string")
- import ast
tree = ast.fix_missing_locations(tree)
- print ( ast.dump(tree) )
+ print(ast.dump(tree))
- print ("astor dump")
- print (astor.dump_tree(tree))
- print ("to source")
+ print("astor dump")
+ print(astor.dump_tree(tree))
+ print("to source")
source = astor.to_source(tree)
- print (source)
+ print(source)
- #sys.exit(0)
+ # sys.exit(0)
# Set up the GardenSnake run-time environment
def print_(*args):
- print ("args", args)
- print ("-->", " ".join(map(str,args)))
+ print("args", args)
+ print("-->", " ".join(map(str, args)))
- def listconcat(l1, l2):
- return l1 + l2
-
- from soc.decoder.helpers import (EXTS64, EXTZ64, ROTL64, ROTL32, MASK,)
+ from soc.decoder.helpers import (EXTS64, EXTZ64, ROTL64, ROTL32, MASK,
+ trunc_div, trunc_rem)
d = {}
d["print"] = print_
d["EXTS64"] = EXTS64
d["EXTZ64"] = EXTZ64
- d["concat"] = listconcat
+ d["trunc_div"] = trunc_div
+ d["trunc_rem"] = trunc_rem
+ d["SelectableInt"] = SelectableInt
+ d["concat"] = selectconcat
d["GPR"] = gsc.gpr
+ d["MEM"] = gsc.mem
+ d["memassign"] = gsc.mem.memassign
form = 'X'
gsc.gpr.set_form(form)
getform = gsc.parser.sd.sigforms[form]._asdict()
#print ("getform", form)
- #for k, f in getform.items():
- #print (k, f)
- #d[k] = getform[k]
+ # for k, f in getform.items():
+ #print (k, f)
+ #d[k] = getform[k]
compiled_code = compile(source, mode="exec", filename="<string>")
comb = m.d.comb
instruction = Signal(32)
- m.submodules.decode = decode = gsc.parser.sd
+ m.submodules.decode = decode = gsc.parser.sd
comb += decode.raw_opcode_in.eq(instruction)
sim = Simulator(m)
yield instruction.eq(ins) # raw binary instr.
yield Delay(1e-6)
+ # uninitialised regs, drop them into dict for function
+ for rname in gsc.parser.uninit_regs:
+ d[rname] = SelectableInt(0, 64) # uninitialised (to zero)
+ print("uninitialised", rname, hex(d[rname].value))
+
# read regs, drop them into dict for function
for rname in gsc.parser.read_regs:
regidx = yield getattr(decode.sigforms['X'], rname)
- d[rname] = gsc.gpr[regidx]
- print ("read reg", rname, regidx, get_reg_hex(d[rname]))
+ d[rname] = gsc.gpr[regidx] # contents of regfile
+ d["_%s" % rname] = regidx # actual register value
+ print("read reg", rname, regidx, hex(d[rname].value))
- exec (compiled_code, d)
- print ("Done")
+ exec(compiled_code, d) # code gets executed here in dict "d"
+ print("Done")
- print (d.keys())
+ print(d.keys()) # shows the variables that may have been created
- print (decode.sigforms['X'])
+ print(decode.sigforms['X'])
x = yield decode.sigforms['X'].RS
ra = yield decode.sigforms['X'].RA
- print ("RA", ra, d['RA'])
- print ("RS", x)
+ rb = yield decode.sigforms['X'].RB
+ print("RA", ra, d['RA'])
+ print("RB", rb, d['RB'])
+ print("RS", x)
for wname in gsc.parser.write_regs:
reg = getform[wname]
- print ("write regs", wname, d[wname], reg)
regidx = yield reg
- gsc.gpr[regidx] = tolist(d[wname])
+ print("write regs", regidx, wname, d[wname], reg)
+ gsc.gpr[regidx] = d[wname]
sim.add_process(process)
with sim.write_vcd("simulator.vcd", "simulator.gtkw",
- traces=[decode.ports()]):
+ traces=decode.ports()):
sim.run()
- for i in range(len(gsc.gpr)):
- print ("regfile", i, get_reg_hex(gsc.gpr[i]))
+ gsc.gpr.dump()
+
+ for i in range(0, len(gsc.mem.mem), 16):
+ hexstr = []
+ for j in range(16):
+ hexstr.append("%02x" % gsc.mem.mem[i+j])
+ hexstr = ' '.join(hexstr)
+ print("mem %4x" % i, hexstr)
if __name__ == '__main__':