1 CS/COE0447 Computer Organization & Assembly Language Chapter 2 Part 3.
CS/COE0447 Computer Organization & Assembly Language
description
Transcript of CS/COE0447 Computer Organization & Assembly Language
1
CS/COE0447
Computer Organization & Assembly Language
Chapter 5 Part 3
2
Single-cycle Implementation of MIPS
• Our first implementation of MIPS used a single long clock cycle for every instruction
• Every instruction began on one up (or, down) clock edge and ended on the next up (or, down) clock edge
• This approach is not practical as it is much slower than a multicycle implementation where different instruction classes can take different numbers of cycles– in a single-cycle implementation every instruction must take
the same amount of time as the slowest instruction– in a multicycle implementation this problem is avoided by
allowing quicker instructions to use fewer cycles
• Even though the single-cycle approach is not practical it was simpler and useful to understand first
• Now we are covering a multicycle implementation of MIPS
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A Multi-cycle Datapath
• A single memory unit for both instructions and data• Single ALU rather than ALU & two adders• Registers added after every major functional unit to hold
the output until it is used in a subsequent clock cycle
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Multi-Cycle ControlWhat we need to cover
• Adding registers after every functional unit– Need to modify the “instruction execution” slides to reflect this
• Breaking instruction execution down into cycles– What can be done during the same cycle? What requires a
cycle? – Need to modify the “instruction execution” slides again– Timing
• Control signal values – What they are per cycle, per instruction– Finite state machine which determines signals based on
instruction type + which cycle it is
• Putting it all together
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Execution: single-cycle (reminder)
• add– Fetch instruction and add 4 to PC add $t2,$t1,$t0– Read two source registers $t1 and $t0– Add two values $t1 + $t0– Store result to the destination register $t1 + $t0 $t2
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A Multi-cycle Datapath
•For add:•Instruction is stored in the instruction register (IR)•Values read from rs and rt are stored in A and B •Result of ALU is stored in ALUOut
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Multi-Cycle Execution: R-type
• Instruction fetch– IR <= Memory[PC]; sub $t0,$t1,$t2
– PC <= PC + 4;
• Decode instruction/register read– A <= Reg[IR[25:21]]; rs
– B <= Reg[IR[20:16]]; rt
– ALUOut <= PC + (sign-extend(IR[15:0])<<2); later
• Execution– ALUOut <= A op B; op = add, sub, and, or,…
• Completion– Reg[IR[15:11]] <= ALUOut; $t0 <= ALU result
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Execution: single-cycle (reminder)
• lw (load word) – Fetch instruction and add 4 to PC lw $t0,-12($t1)– Read the base register $t1– Sign-extend the immediate offset fff4 fffffff4– Add two values to get address X = fffffff4 + $t1– Access data memory with the computed address M[X]– Store the memory data to the destination register $t0
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A Multi-cycle Datapath
•For lw: lw $t0, -12($t1)•Instruction is stored in the IR•Contents of rs stored in A $t1•Output of ALU (address of memory location to be read) stored in ALUOut•Value read from memory is stored in the memory data register (MDR)
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Multi-cycle Execution: lw• Instruction fetch
– IR <= Memory[PC]; lw $t0,-12($t1)– PC <= PC + 4;
• Instruction Decode/register read– A <= Reg[IR[25:21]]; rs– B <= Reg[IR[20:16]];– ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• Execution– ALUOut <= A + sign-extend(IR[15:0]); $t1 + -12 (sign extended)
• Memory Access– MDR <= Memory[ALUOut]; M[$t1 + -12]
• Write-back– Load: Reg[IR[20:16]] <= MDR; $t0 <= M[$t1 + -12]
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Execution: single-cycle (reminder)
• sw – Fetch instruction and add 4 to PC sw $t0,-4($t1)– Read the base register $t1– Read the source register $t0– Sign-extend the immediate offset fffc fffffffc– Add two values to get address X = fffffffc + $t1– Store the contents of the source register to the compu
ted address $t0 Memory[X]
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A Multi-cycle Datapath
•For sw: sw $t0, -12($t1)•Instruction is stored in the IR•Contents of rs stored in A $t1•Output of ALU (address of memory location to be written) stored in ALUOut
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Multi-cycle Execution: sw• Instruction fetch
– IR <= Memory[PC]; sw $t0,-12($t1)
– PC <= PC + 4;
• Decode/register read– A <= Reg[IR[25:21]]; rs
– B <= Reg[IR[20:16]]; rt
– ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• Execution– ALUOut <= A + sign-extend(IR[15:0]); $t1 + -12 (sign extended)
• Memory Access– Memory[ALUOut] <= B; M[$t1 + -12] <= $t0
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Execution: single-cycle (reminder)
• beq– Fetch instruction and add 4 to PC beq $t0,$t1,L
• Assume that L is +3 instructions away
– Read two source registers $t0,$t1– Sign Extend the immediate, and shift it left by 2
• 0x0003 0x0000000c
– Perform the test, and update the PC if it is true • If $t0 == $t1, the PC = PC + 0x0000000c• [we will follow what Mars does, so this is not
Immediate == 0x0002; PC = PC + 4 + 0x00000008]
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A Multi-cycle Datapath
•For beq beq $t0,$t1,label•Instruction stored in IR•Registers rs and rt are stored in A and B•Result of ALU (rs – rt) is stored in ALUOut
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Multi-cycle execution: beq
• Instruction fetch– IR <= Memory[PC]; beq $t0,$t1,label– PC <= PC + 4;
• Decode/register read– A <= Reg[IR[25:21]]; rs– B <= Reg[IR[20:16]]; rt – ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• PC + #bytes away label is (negative for backward branches, positive for forward branches)
• Execution– if (A == B) then PC <= ALUOut;
• if $t0 == $t1 perform branch• Note: the ALU is used to evaluate A == B; we’ll see that this does n
ot clash with the use of the ALU above.
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Execution: single-cycle (reminder)
• j– Fetch instruction and add 4 to PC– Take the 26-bit immediate field– Shift left by 2 (to make 28-bit immediate)– Get 4 bits from the current PC and attach to
the left of the immediate– Assign the value to PC
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A Multi-cycle Datapath
•For j•No accesses to registers or memory; no need for ALU
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Multi-cycle execution: j
• Instruction fetch– IR <= Memory[PC]; j label– PC <= PC + 4;
• Decode/register read– A <= Reg[IR[25:21]];– B <= Reg[IR[20:16]];– ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• Execution– PC <= {PC[31:28],IR[25:0],”00”};
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Multi-Cycle ControlWhat we need to cover
• Adding registers after every functional unit– Need to modify the “instruction execution” slides to reflect this
• Breaking instruction execution down into cycles – What can be done during the same cycle? What requires a
cycle? – Need to modify the “instruction execution” slides again– Timing
• Control signal values – What they are per cycle, per instruction– Finite state machine which determines signals based on
instruction type + which cycle it is
• Putting it all together
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• Break up the instructions into steps– each step takes one clock cycle– balance the amount of work to be done in each step/cycle so that they are
about equal– restrict each cycle to use at most once each major functional unit so that
such units do not have to be replicated– functional units can be shared between different cycles within one
instruction
• Between steps/cycles– At the end of one cycle store data to be used in later cycles of the same
instruction• need to introduce additional internal (programmer-invisible) registers for this
purpose
– Data to be used in later instructions are stored in programmer-visible state elements: the register file, PC, memory
Multicycle Approach
Operations
•These take time:•Memory (read/write); register file (read/write); ALU operations
•The other connections and logical elements have no latency (for our purposes)
Operations
•Before: we had separate memories for instructions and data, and we hadextra adders for incrementing the PC and calculating the branch address. Nowwe have just one memory and just one ALU.
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Five Execution Steps
• Each takes one cycle• In one cycle, there can be at most one
memory access, at most one register access, and at most one ALU operation
• But, you can have a memory access, an ALU op, and/or a register access, as long as there is no contention for resources
• Changes to registers are made at the end of the clock cycle
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Step 1: Instruction Fetch
• Access memory w/ PC to fetch instruction and store it in Instruction Register (IR)
• Increment PC by 4 – We can do this because the ALU is not being
used for something else this cycle
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Step 2: Decode and Reg. Read
• Read registers rs and rt– We read both of them regardless of necessity
• Compute the branch address in case the instruction is a branch– We can do this because the ALU is not busy– ALUOut will keep the target address
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Step 3: Various Actions
• ALU performs one of three functions based on instruction type
• Memory reference– ALUOut <= A + sign-extend(IR[15:0]);
• R-type– ALUOut <= A op B;
• Branch:– if (A==B) PC <= ALUOut;
• Jump:– PC <= {PC[31:28],IR[25:0],2’b00};
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Step 4: Memory Access…
• If the instruction is memory reference– MDR <= Memory[ALUOut]; // if it is a load– Memory[ALUOut] <= B; // if it is a st
ore• Store is complete!
• If the instruction is R-type– Reg[IR[15:11]] <= ALUOut;
• Now the instruction is complete!
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Step 5: Register Write Back
• Only the lw instruction reaches this step– Reg[IR[20:16]] <= MDR;
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Summary of Instruction Execution
Step nameAction for R-type
instructionsAction for memory-reference
instructionsAction for branches
Action for jumps
Instruction fetch IR = Memory[PC]PC = PC + 4
Instruction A = Reg [IR[25-21]]decode/register fetch B = Reg [IR[20-16]]
ALUOut = PC + (sign-extend (IR[15-0]) << 2)
Execution, address ALUOut = A op B ALUOut = A + sign-extend if (A ==B) then PC = PC [31-28] IIcomputation, branch/ (IR[15-0]) PC = ALUOut (IR[25-0]<<2)jump completion
Memory access or R-type Reg [IR[15-11]] = Load: MDR = Memory[ALUOut]completion ALUOut or
Store: Memory [ALUOut] = B
Memory read completion Load: Reg[IR[20-16]] = MDR
1: IF
2: ID
3: EX
4: MEM
5: WB
Step
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Multicycle Execution Step (1):Instruction Fetch
IR = Memory[PC];PC = PC + 4;
4PC + 4
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (2):Instruction Decode & Register
FetchA = Reg[IR[25-21]]; (A = Reg[rs])B = Reg[IR[20-15]]; (B = Reg[rt])ALUOut = (PC + sign-extend(IR[15-0]) << 2)
BranchTarget
Address
Reg[rs]
Reg[rt]
PC + 4
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (3):Memory Reference Instructions
ALUOut = A + sign-extend(IR[15-0]);
Mem.Address
Reg[rs]
Reg[rt]
PC + 4
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (3):ALU Instruction (R-Type)
ALUOut = A op B
R-TypeResult
Reg[rs]
Reg[rt]
PC + 4
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (3):Branch Instructions
if (A == B) PC = ALUOut;
BranchTarget
Address
Reg[rs]
Reg[rt]
BranchTarget
Address
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (3):Jump Instruction
PC = PC[31-28] concat (IR[25-0] << 2)
JumpAddress
Reg[rs]
Reg[rt]
BranchTarget
Address
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (4):Memory Access - Read (lw)
MDR = Memory[ALUOut];
Mem.Data
PC + 4
Reg[rs]
Reg[rt]
Mem.Address
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (4):Memory Access - Write (sw)
Memory[ALUOut] = B;
PC + 4
Reg[rs]
Reg[rt]
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (4):ALU Instruction (R-Type)
Reg[IR[15:11]] = ALUOUT
R-TypeResult
Reg[rs]
Reg[rt]
PC + 4
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
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Multicycle Execution Step (5):Memory Read Completion (lw)
Reg[IR[20-16]] = MDR;
PC + 4
Reg[rs]
Reg[rt]Mem.Data
Mem.Address
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
PC
IR
MDR
A
B
ALUOUT
41
For Reference
• The next 5 slides give the steps, one slide per instruction
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Multi-Cycle Execution: R-type
• Instruction fetch– IR <= Memory[PC]; sub $t0,$t1,$t2
– PC <= PC + 4;
• Decode instruction/register read– A <= Reg[IR[25:21]]; rs
– B <= Reg[IR[20:16]]; rt
– ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• Execution– ALUOut <= A op B; op = add, sub, and, or,…
• Completion– Reg[IR[15:11]] <= ALUOut; $t0 <= ALU result
43
Multi-cycle Execution: lw• Instruction fetch
– IR <= Memory[PC]; lw $t0,-12($t1)– PC <= PC + 4;
• Instruction Decode/register read– A <= Reg[IR[25:21]]; rs– B <= Reg[IR[20:16]];– ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• Execution– ALUOut <= A + sign-extend(IR[15:0]); $t1 + -12 (sign extended)
• Memory Access– MDR <= Memory[ALUOut]; M[$t1 + -12]
• Write-back– Load: Reg[IR[20:16]] <= MDR; $t0 <= M[$t1 + -12]
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Multi-cycle Execution: sw• Instruction fetch
– IR <= Memory[PC]; sw $t0,-12($t1)
– PC <= PC + 4;
• Decode/register read– A <= Reg[IR[25:21]]; rs
– B <= Reg[IR[20:16]]; rt
– ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• Execution– ALUOut <= A + sign-extend(IR[15:0]); $t1 + -12 (sign extended)
• Memory Access– Memory[ALUOut] <= B; M[$t1 + -12] <= $t0
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Multi-cycle execution: beq
• Instruction fetch– IR <= Memory[PC]; beq $t0,$t1,label– PC <= PC + 4;
• Decode/register read– A <= Reg[IR[25:21]]; rs– B <= Reg[IR[20:16]]; rt – ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• Execution– if (A == B) then PC <= ALUOut;
• if $t0 == $t1 perform branch
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Multi-cycle execution: j
• Instruction fetch– IR <= Memory[PC]; j label– PC <= PC + 4;
• Decode/register read– A <= Reg[IR[25:21]];– B <= Reg[IR[20:16]];– ALUOut <= PC + (sign-extend(IR[15:0])<<2);
• Execution– PC <= {PC[31:28],IR[25:0],”00”};
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Example: CPI in a multicycle CPU
• Assume– the control design of the previous slides– An instruction mix of 22% loads, 11% stores, 49% R-type operations, 16%
branches, and 2% jumps• What is the CPI assuming each step requires 1 clock cycle?
• Solution:– Number of clock cycles from previous slide for each instruction class:
• loads 5, stores 4, R-type instructions 4, branches 3, jumps 3
– CPI = CPU clock cycles / instruction count
= (instruction countclass i CPIclass i) / instruction count
= (instruction countclass I / instruction count) CPIclass I
= 0.22 5 + 0.11 4 + 0.49 4 + 0.16 3 + 0.02 3
= 4.04
48
Multi-Cycle ControlWhat we need to cover
• Adding registers after every functional unit– Need to modify the “instruction execution” slides to reflect this
• Breaking instruction execution down into cycles– What can be done during the same cycle? What requires a
cycle? – Need to modify the “instruction execution” slides again– Timing
• Control signal values – What they are per cycle, per instruction– Finite state machine which determines signals based on
instruction type + which cycle it is
• Putting it all together
49
A (Refined) Datapath fig 5.26
50
Datapath w/ Control Signals Fig 5.27
51
Final Version w/ Control Fig 5.28
52
Multicycle Control Step (1):Fetch
IR = Memory[PC];PC = PC + 4;
1
0
1
0
1
0X
0X
0010
1
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
1
0
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
53
Multicycle Control Step (2):Instruction Decode & Register
FetchA = Reg[IR[25-21]]; (A = Reg[rs])B = Reg[IR[20-15]]; (B = Reg[rt])ALUOut = (PC + sign-extend(IR[15-0]) << 2);
0
0X
0
0X
3
0X
X
010
0
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
1
0
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
54
0X
Multicycle Control Step (3):Memory Reference Instructions
ALUOut = A + sign-extend(IR[15-0]);
X
2
0
0X
0 1
X
010
0
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
1
0
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
55
Multicycle Control Step (3):ALU Instruction (R-Type)
ALUOut = A op B;
0X
X
0
0
0X
0 1
X
???
0
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
1
0
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
56
1 if Zero=1
Multicycle Control Step (3):Branch Instructions
if (A == B) PC = ALUOut;
0X
X
0
0
X0 1
1
011
0
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
1
0
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
57
Multicycle Execution Step (3):Jump Instruction
PC = PC[21-28] concat (IR[25-0] << 2);
0X
X
X
0
1X
0 X
2
XXX
0
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
1
0
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
58
Multicycle Control Step (4):Memory Access - Read (lw)MDR = Memory[ALUOut];
0X
X
X
1
01
0 X
X
XXX
0
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
1
0
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
59
Multicycle Execution Steps (4)Memory Access - Write (sw)Memory[ALUOut] = B;
0X
X
X
0
01
1 X
X
XXX
0
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WDMemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
1
0
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
60
10
0X
0
X
0
XXX
X
X
1
15 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WD
MemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
0
1
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
Multicycle Control Step (4):ALU Instruction (R-Type)
Reg[IR[15:11]] = ALUOut; (Reg[Rd] = ALUOut)
61
Multicycle Execution Steps (5)Memory Read Completion (lw)
Reg[IR[20-16]] = MDR;
1
0
0
X
0
0X
0 X
X
XXX
0
5 5
RD1
RD2
RN1 RN2 WN
WD
RegWrite
Registers
Operation
ALU
3
EXTND
16 32
Zero
RD
WD
MemRead
MemoryADDR
MemWrite
5
Instruction I
32
ALUSrcB
<<2
PC
4
RegDst
5
IR
MDR
MUX
0123
MUX
0
1
MUX
0
1A
BALUOUT
0
1
2MUX
<<2 CONCAT28 32
MUX
0
1
ALUSrcA
jmpaddrI[25:0]
rd
MUX0 1
rtrs
immediate
PCSource
MemtoReg
IorD
PCWr*
IRWrite
62
Multi-Cycle ControlWhat we need to cover
• Adding registers after every functional unit– Need to modify the “instruction execution” slides to reflect this
• Breaking instruction execution down into cycles– What can be done during the same cycle? What requires a
cycle? – Need to modify the “instruction execution” slides again– Timing: Registers/memory updated at the beginning of the next
clock cycle
• Control signal values – What they are per cycle, per instruction– Finite state machine which determines signals based on
instruction type + which cycle it is • Putting it all together
63
Fig 5.28 For reference
64
State Diagram, Big Picture
65
Handling Memory Instructions
66
R-type Instruction
67
Branch and Jump
68
A FSM State Diagram
69
FSM Implementation
70
Example: Load (1)
01 0 0
1
01
00
1
00
71
Example: Load (2)
0
00
11
rs
rt
72
Example: Load (3)
10
1
00
73
Example: Load (4)
11 0
74
Example: Load (5)
1
1
0
75
Example: Jump (1)
01 0 0
1
01
00
1
00
76
Example: Jump (2)
0
00
11
77
Example: Jump (3)
1
10
78
To Summarize…
• From several building blocks, we constructed a datapath for a subset of the MIPS instruction set
• First, we analyzed instructions for functional requirements
• Second, we connected buildings blocks in a way to accommodate instructions
• Third, we refined the datapath and added controls
79
To Summarize…
• We looked at how an instruction is executed on the datapath in a pictorial way
• We looked at control signals connected to functional blocks in our datapath
• We analyzed how execution steps of an instruction change the control signals
80
To Summarize…
• We compared a single-cycle implementation and a multi-cycle implementation of our datapath
• We analyzed multi-cycle execution of instructions
• We refined multi-cycle datapath
• We designed multi-cycle control
81
To Summarize…
• We looked at the multi-cycle control scheme in detail
• Multi-cycle control can be implemented using FSM
• FSM is composed of some combinational logic and memory element
82
Summary
• Techniques described in this chapter to design datapaths and control are at the core of all modern computer architecture
• Multicycle datapaths offer two great advantages over single-cycle– functional units can be reused within a single instruction if they are
accessed in different cycles – reducing the need to replicate expensive logic
– instructions with shorter execution paths can complete quicker by consuming fewer cycles
• Modern computers, in fact, take the multicycle paradigm to a higher level to achieve greater instruction throughput: – pipelining (later class) where multiple instructions execute
simultaneously by having cycles of different instructions overlap in the datapath
– the MIPS architecture was designed to be pipelined