Hw9: done 2 and 3 (without explaination)
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3
.gitignore
vendored
3
.gitignore
vendored
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@ -1,3 +1,6 @@
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*.ijvm
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*.mic1
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# ---> TeX
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# ---> TeX
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## Core latex/pdflatex auxiliary files:
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## Core latex/pdflatex auxiliary files:
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*.aux
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*.aux
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22
Homework 9/ex2.jas
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22
Homework 9/ex2.jas
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.constant
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OBJREF 0x40
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.end-constant
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.main
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LDC_W OBJREF
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IN
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INVOKEVIRTUAL even
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HALT
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.end-main
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.method even(x)
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.var
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.end-var
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ILOAD x
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JIFEVEN even
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BIPUSH 0x00
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IRETURN // odd
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even:
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BIPUSH 0x01
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IRETURN // even
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.end-method
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26
Homework 9/ijvm.conf
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Homework 9/ijvm.conf
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// configuration file for IJVM Assembler
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0x10 BIPUSH byte // Push byte onto stack
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0x59 DUP // Copy top word on stack; push onto stack
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0xA7 GOTO label // Unconditional jump
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0x60 IADD // Pop two words from stack; push their sum
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0x7E IAND // Pop two words from stack; push Boolean AND
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0x99 IFEQ label // Pop word from stack; branch if it is zero
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0x9B IFLT label // Pop word from stack; branch if it is less than zero
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0x9F IF_ICMPEQ label // Pop two words from stack; branch if equal
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0x84 IINC varnum const // Add a constant to a local variable
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0x15 ILOAD varnum // Push local variable onto stack
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0xB6 INVOKEVIRTUAL offset // Invoke a method
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0xB0 IOR // Pop two words from stack; push Boolean OR
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0xAC IRETURN // Return from method with integer value
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0x36 ISTORE varnum // Pop word from stack; store in local variable
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0x64 ISUB // Pop two words from stack; push their difference
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0x13 LDC_W index // Push constant from constant pool onto stack
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0x00 NOP // Do nothing
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0x57 POP // Delete word on top of stack
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0x5F SWAP // Swap the two top words on the stack
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0xC4 WIDE // Prefix instruction; next instruction has 16-bit index
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0xFF HALT // halt the simulator
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0xFE ERR // print ERROR and halt
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0xFD OUT // Pop a word from the stack and use the low order 8-bits as an ASCI character to display on screen
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0xFC IN // Read a character from standard input and put it in the low order 8-bits of a word pushed onto the stack
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0x42 JIFEVEN label
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242
Homework 9/mic1ijvm.mal
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242
Homework 9/mic1ijvm.mal
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// note that this is nearly identical to the example
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// given in Tanenbaum. Note:
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//
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// 1) SlashSlash-style ("//") comment characters have been added.
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//
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// 2) "nop" has been added as a pseudo-instruction to indicate that
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// nothing should be done except goto the next instruction. It
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// is a do-nothing sub-instruction that allows us to have MAL
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// statements without a label.
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//
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// 3) instructions are "anchored" to locations in the control
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// store as defined below with the ".label" pseudo-instruction
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//
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// 4) a default instruction may be specified using the ".default"
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// pseudo-instruction. This instruction is placed in all
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// unused locations of the control store by the mic1 MAL assembler.
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//
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// labeled statements are "anchored" at the specified control store address
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.label nop1 0x00
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.label bipush1 0x10
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.label ldc_w1 0x13
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.label iload1 0x15
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.label wide_iload1 0x115
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.label istore1 0x36
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.label wide_istore1 0x136
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.label pop1 0x57
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.label dup1 0x59
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.label swap1 0x5F
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.label iadd1 0x60
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.label isub1 0x64
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.label iand1 0x7E
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.label iinc1 0x84
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.label ifeq1 0x99
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.label iflt1 0x9B
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.label if_icmpeq1 0x9F
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.label goto1 0xA7
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.label ireturn1 0xAC
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.label ior1 0xB0
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.label invokevirtual1 0xB6
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.label wide1 0xC4
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.label halt1 0xFF
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.label err1 0xFE
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.label out1 0xFD
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.label in1 0xFC
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.label jifeven1 0x42
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// default instruction to place in any unused addresses of the control store
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.default goto err1
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Main1 PC = PC + 1; fetch; goto (MBR) // MBR holds opcode; get next byte; dispatch
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nop1 goto Main1 // Do nothing
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iadd1 MAR = SP = SP - 1; rd // Read in next-to-top word on stack
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iadd2 H = TOS // H = top of stack
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iadd3 MDR = TOS = MDR + H; wr; goto Main1 // Add top two words; write to top of stack
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isub1 MAR = SP = SP - 1; rd // Read in next-to-top word on stack
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isub2 H = TOS // H = top of stack
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isub3 MDR = TOS = MDR - H; wr; goto Main1 // Do subtraction; write to top of stack
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iand1 MAR = SP = SP - 1; rd // Read in next-to-top word on stack
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iand2 H = TOS // H = top of stack
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iand3 MDR = TOS = MDR AND H; wr; goto Main1 // Do AND; write to new top of stack
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ior1 MAR = SP = SP - 1; rd // Read in next-to-top word on stack
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ior2 H = TOS // H = top of stack
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ior3 MDR = TOS = MDR OR H; wr; goto Main1 // Do OR; write to new top of stack
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dup1 MAR = SP = SP + 1 // Increment SP and copy to MAR
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dup2 MDR = TOS; wr; goto Main1 // Write new stack word
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pop1 MAR = SP = SP - 1; rd // Read in next-to-top word on stack
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pop2 // Wait for new TOS to be read from memory
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pop3 TOS = MDR; goto Main1 // Copy new word to TOS
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swap1 MAR = SP - 1; rd // Set MAR to SP - 1; read 2nd word from stack
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swap2 MAR = SP // Set MAR to top word
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swap3 H = MDR; wr // Save TOS in H; write 2nd word to top of stack
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swap4 MDR = TOS // Copy old TOS to MDR
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swap5 MAR = SP - 1; wr // Set MAR to SP - 1; write as 2nd word on stack
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swap6 TOS = H; goto Main1 // Update TOS
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bipush1 SP = MAR = SP + 1 // MBR = the byte to push onto stack
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bipush2 PC = PC + 1; fetch // Increment PC, fetch next opcode
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bipush3 MDR = TOS = MBR; wr; goto Main1 // Sign-extend constant and push on stack
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iload1 H = LV // MBR contains index; copy LV to H
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iload2 MAR = MBRU + H; rd // MAR = address of local variable to push
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iload3 MAR = SP = SP + 1 // SP points to new top of stack; prepare write
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iload4 PC = PC + 1; fetch; wr // Inc PC; get next opcode; write top of stack
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iload5 TOS = MDR; goto Main1 // Update TOS
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istore1 H = LV // MBR contains index; Copy LV to H
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istore2 MAR = MBRU + H // MAR = address of local variable to store into
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istore3 MDR = TOS; wr // Copy TOS to MDR; write word
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istore4 SP = MAR = SP - 1; rd // Read in next-to-top word on stack
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istore5 PC = PC + 1; fetch // Increment PC; fetch next opcode
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istore6 TOS = MDR; goto Main1 // Update TOS
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wide1 PC = PC + 1; fetch; goto (MBR OR 0x100) // Multiway branch with high bit set
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wide_iload1 PC = PC + 1; fetch // MBR contains 1st index byte; fetch 2nd
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wide_iload2 H = MBRU << 8 // H = 1st index byte shifted left 8 bits
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wide_iload3 H = MBRU OR H // H = 16-bit index of local variable
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wide_iload4 MAR = LV + H; rd; goto iload3 // MAR = address of local variable to push
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wide_istore1 PC = PC + 1; fetch // MBR contains 1st index byte; fetch 2nd
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wide_istore2 H = MBRU << 8 // H = 1st index byte shifted left 8 bits
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wide_istore3 H = MBRU OR H // H = 16-bit index of local variable
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wide_istore4 MAR = LV + H; goto istore3 // MAR = address of local variable to store into
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ldc_w1 PC = PC + 1; fetch // MBR contains 1st index byte; fetch 2nd
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ldc_w2 H = MBRU << 8 // H = 1st index byte << 8
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ldc_w3 H = MBRU OR H // H = 16-bit index into constant pool
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ldc_w4 MAR = H + CPP; rd; goto iload3 // MAR = address of constant in pool
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iinc1 H = LV // MBR contains index; Copy LV to H
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iinc2 MAR = MBRU + H; rd // Copy LV + index to MAR; Read variable
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iinc3 PC = PC + 1; fetch // Fetch constant
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iinc4 H = MDR // Copy variable to H
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iinc5 PC = PC + 1; fetch // Fetch next opcode
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iinc6 MDR = MBR + H; wr; goto Main1 // Put sum in MDR; update variable
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goto1 OPC = PC - 1 // Save address of opcode.
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goto2 PC = PC + 1; fetch // MBR = 1st byte of offset; fetch 2nd byte
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goto3 H = MBR << 8 // Shift and save signed first byte in H
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goto4 H = MBRU OR H // H = 16-bit branch offset
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goto5 PC = OPC + H; fetch // Add offset to OPC
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goto6 goto Main1 // Wait for fetch of next opcode
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iflt1 MAR = SP = SP - 1; rd // Read in next-to-top word on stack
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iflt2 OPC = TOS // Save TOS in OPC temporarily
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iflt3 TOS = MDR // Put new top of stack in TOS
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iflt4 N = OPC; if (N) goto T; else goto F // Branch on N bit
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ifeq1 MAR = SP = SP - 1; rd // Read in next-to-top word of stack
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ifeq2 OPC = TOS // Save TOS in OPC temporarily
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ifeq3 TOS = MDR // Put new top of stack in TOS
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ifeq4 Z = OPC; if (Z) goto T; else goto F // Branch on Z bit
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if_icmpeq1 MAR = SP = SP - 1; rd // Read in next-to-top word of stack
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if_icmpeq2 MAR = SP = SP - 1 // Set MAR to read in new top-of-stack
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if_icmpeq3 H = MDR; rd // Copy second stack word to H
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if_icmpeq4 OPC = TOS // Save TOS in OPC temporarily
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if_icmpeq5 TOS = MDR // Put new top of stack in TOS
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if_icmpeq6 Z = OPC - H; if (Z) goto T; else goto F // If top 2 words are equal, goto T, else goto F
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T OPC = PC - 1; fetch; goto goto2 // Same as goto1; needed for target address
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F PC = PC + 1 // Skip first offset byte
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F2 PC = PC + 1; fetch // PC now points to next opcode
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F3 goto Main1 // Wait for fetch of opcode
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invokevirtual1 PC = PC + 1; fetch // MBR = index byte 1; inc. PC, get 2nd byte
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invokevirtual2 H = MBRU << 8 // Shift and save first byte in H
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invokevirtual3 H = MBRU OR H // H = offset of method pointer from CPP
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invokevirtual4 MAR = CPP + H; rd // Get pointer to method from CPP area
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invokevirtual5 OPC = PC + 1 // Save Return PC in OPC temporarily
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invokevirtual6 PC = MDR; fetch // PC points to new method; get param count
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invokevirtual7 PC = PC + 1; fetch // Fetch 2nd byte of parameter count
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invokevirtual8 H = MBRU << 8 // Shift and save first byte in H
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invokevirtual9 H = MBRU OR H // H = number of parameters
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invokevirtual10 PC = PC + 1; fetch // Fetch first byte of # locals
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invokevirtual11 TOS = SP - H // TOS = address of OBJREF - 1
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invokevirtual12 TOS = MAR = TOS + 1 // TOS = address of OBJREF (new LV)
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invokevirtual13 PC = PC + 1; fetch // Fetch second byte of # locals
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invokevirtual14 H = MBRU << 8 // Shift and save first byte in H
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invokevirtual15 H = MBRU OR H // H = # locals
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invokevirtual16 MDR = SP + H + 1; wr // Overwrite OBJREF with link pointer
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invokevirtual17 MAR = SP = MDR; // Set SP, MAR to location to hold old PC
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invokevirtual18 MDR = OPC; wr // Save old PC above the local variables
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invokevirtual19 MAR = SP = SP + 1 // SP points to location to hold old LV
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invokevirtual20 MDR = LV; wr // Save old LV above saved PC
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invokevirtual21 PC = PC + 1; fetch // Fetch first opcode of new method.
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invokevirtual22 LV = TOS; goto Main1 // Set LV to point to LV Frame
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ireturn1 MAR = SP = LV; rd // Reset SP, MAR to get link pointer
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ireturn2 // Wait for read
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ireturn3 LV = MAR = MDR; rd // Set LV to link ptr; get old PC
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ireturn4 MAR = LV + 1 // Set MAR to read old LV
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ireturn5 PC = MDR; rd; fetch // Restore PC; fetch next opcode
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ireturn6 MAR = SP // Set MAR to write TOS
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ireturn7 LV = MDR // Restore LV
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ireturn8 MDR = TOS; wr; goto Main1 // Save return value on original top of stack
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halt1 goto halt1
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err1 OPC=H=-1
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OPC=H+OPC
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MAR=H+OPC // compute IO address
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OPC=H=1 // 1
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OPC=H=H+OPC // 10
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OPC=H=H+OPC // 100
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OPC=H=H+OPC // 1000
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OPC=H=H+OPC+1 // 10001
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OPC=H=H+OPC // 100010
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MDR=H+OPC+1;wr // 1000101 'E'
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OPC=H=1 // 1
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OPC=H=H+OPC // 10
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OPC=H=H+OPC+1 // 101
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OPC=H=H+OPC // 1010
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OPC=H=H+OPC // 10100
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OPC=H=H+OPC+1 // 101001
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MDR=H+OPC;wr // 1010010 'R'
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nop
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MDR=H+OPC;wr // 1010010 'R'
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OPC=H=1 // 1
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OPC=H=H+OPC // 10
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OPC=H=H+OPC // 100
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OPC=H=H+OPC+1 // 1001
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OPC=H=H+OPC+1 // 10011
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OPC=H=H+OPC+1 // 100111
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MDR=H+OPC+1;wr // 1001111 'O'
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OPC=H=1 // 1
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OPC=H=H+OPC // 10
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OPC=H=H+OPC+1 // 101
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OPC=H=H+OPC // 1010
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OPC=H=H+OPC // 10100
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OPC=H=H+OPC+1 // 101001
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MDR=H+OPC;wr // 1010010 'R'
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goto halt1
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out1 OPC=H=-1
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OPC=H+OPC
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MAR=H+OPC // compute OUT address
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MDR=TOS; wr // write to output
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nop
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MAR=SP=SP-1; rd // decrement stack pointer
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nop
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TOS=MDR; goto Main1
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in1 OPC=H=-1
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OPC=H+OPC
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MAR=H+OPC;rd // compute IN address ; read from input
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MAR=SP=SP+1 // increment SP; wait for read
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TOS=MDR;wr ; goto Main1 // Write
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jifeven1 H = 1
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jifeven2 Z = TOS AND H; if (Z) goto T; else goto F
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