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Code Generation Part I Chapter 8 (1st ed. Ch.9)

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Presentation on theme: "Code Generation Part I Chapter 8 (1st ed. Ch.9)"— Presentation transcript:

1 Code Generation Part I Chapter 8 (1st ed. Ch.9)
COP5621 Compiler Construction Copyright Robert van Engelen, Florida State University,

2 Position of a Code Generator in the Compiler Model
Source program Target program Intermediate code Intermediate code Front-End Code Optimizer Code Generator Lexical error Syntax error Semantic error Symbol Table

3 Code Generation Code produced by compiler must be correct
Source-to-target program transformation should be semantics preserving Code produced by compiler should be of high quality Effective use of target machine resources Heuristic techniques should be used to generate good but suboptimal code, because generating optimal code is undecidable

4 Target Program Code The back-end code generator of a compiler may generate different forms of code, depending on the requirements: Absolute machine code (executable code) Relocatable machine code (object files for linker) Assembly language (facilitates debugging) Byte code forms for interpreters (e.g. JVM)

5 The Target Machine Implementing code generation requires thorough understanding of the target machine architecture and its instruction set Our (hypothetical) machine: Byte-addressable (word = 4 bytes) Has n general purpose registers R0, R1, …, Rn-1 Two-address instructions of the form op source, destination

6 The Target Machine: Op-codes and Address Modes
Op-codes (op), for example MOV (move content of source to destination) ADD (add content of source to destination) SUB (subtract content of source from dest.) Address modes Mode Form Address Added Cost Absolute M 1 Register R Indexed c(R) c+contents(R) Indirect register *R contents(R) Indirect indexed *c(R) contents(c+contents(R)) Literal #c N/A

7 Instruction Costs Machine is a simple, non-super-scalar processor with fixed instruction costs Realistic machines have deep pipelines, I-cache, D-cache, etc. Define the cost of instruction = 1 + cost(source-mode) + cost(destination-mode)

8 Examples Instruction Operation Cost MOV R0,R1 Store content(R0) into register R1 1 MOV R0,M Store content(R0) into memory location M 2 MOV M,R0 Store content(M) into register R0 2 MOV 4(R0),M Store contents(4+contents(R0)) into M 3 MOV *4(R0),M Store contents(contents(4+contents(R0))) into M 3 MOV #1,R0 Store 1 into R ADD 4(R0),*12(R1) Add contents(4+contents(R0)) to value at location contents(12+contents(R1)) 3

9 Instruction Selection
Instruction selection is important to obtain efficient code Suppose we translate three-address code x:=y+z to: MOV y,R0 ADD z,R0 MOV R0,x MOV a,R0 ADD #1,R0 MOV R0,a a:=a+1 Cost = 6 Better Best ADD #1,a INC a Cost = 3 Cost = 2

10 Instruction Selection: Utilizing Addressing Modes
Suppose we translate a:=b+c into MOV b,R0 ADD c,R0 MOV R0,a Assuming addresses of a, b, and c are stored in R0, R1, and R2 MOV *R1,*R0 ADD *R2,*R0 Assuming R1 and R2 contain values of b and c ADD R2,R1 MOV R1,a

11 Need for Global Machine-Specific Code Optimizations
Suppose we translate three-address code x:=y+z to: MOV y,R0 ADD z,R0 MOV R0,x Then, we translate a:=b+c d:=a+e to: MOV a,R0 ADD b,R0 MOV R0,a MOV a,R0 ADD e,R0 MOV R0,d Redundant

12 Register Allocation and Assignment
Efficient utilization of the limited set of registers is important to generate good code Registers are assigned by Register allocation to select the set of variables that will reside in registers at a point in the code Register assignment to pick the specific register that a variable will reside in Finding an optimal register assignment in general is NP-complete

13 Example t:=a*b t:=t+a t:=t/d t:=a*b t:=t+a t:=t/d { R1=t }
{ R0=a, R1=t } MOV a,R1 MUL b,R1 ADD a,R1 DIV d,R1 MOV R1,t MOV a,R0 MOV R0,R1 MUL b,R1 ADD R0,R1 DIV d,R1 MOV R1,t

14 Choice of Evaluation Order
When instructions are independent, their evaluation order can be changed MOV a,R0 ADD b,R0 MOV R0,t1 MOV c,R1 ADD d,R1 MOV e,R0 MUL R1,R0 MOV t1,R1 SUB R0,R1 MOV R1,t4 t1:=a+b t2:=c+d t3:=e*t2 t4:=t1-t3 a+b-(c+d)*e MOV c,R0 ADD d,R0 MOV e,R1 MUL R0,R1 MOV a,R0 ADD b,R0 SUB R1,R0 MOV R0,t4 reorder t2:=c+d t3:=e*t2 t1:=a+b t4:=t1-t3

15 Generating Code for Stack Allocation of Activation Records
t1 := a + b param t1 param c t2 := call foo,2 … func foo … return t1 100: ADD #16,SP 108: MOV a,R0 116: ADD b,R0 124: MOV R0,4(SP) 132: MOV c,8(SP) 140: MOV #156,*SP 148: GOTO : MOV 12(SP),R0 164: SUB #16,SP 172: … 500: … 564: MOV R0,12(SP) 572: GOTO *SP Push frame Store a+b Store c Store return address Jump to foo Get return value Remove frame Store return value Return to caller Note: Language and machine dependent Here we assume C-like implementation with SP and no FP

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