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Assembly Language Review Being able to repeat on the Blackfin the things we were able to do on the MIPS 9/19/2015 Review of 50% OF ENCM369 in 50 minutes1.

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Presentation on theme: "Assembly Language Review Being able to repeat on the Blackfin the things we were able to do on the MIPS 9/19/2015 Review of 50% OF ENCM369 in 50 minutes1."— Presentation transcript:

1 Assembly Language Review Being able to repeat on the Blackfin the things we were able to do on the MIPS 9/19/2015 Review of 50% OF ENCM369 in 50 minutes1

2 Assembly code things to review 50% of ENCM369 in 50 minutes YOU ALREADY KNOW HOW TO DO THESE THINGS ON THE MIPS Able to ADD and SUBTRACT the contents of two data registers Able to perform bitwise AND operations, and perform bitwise OR operations the contents of two data registers Able to place a (small) required value or bit pattern into a data register Able to place a (large) required value or bit pattern into a data register Being able to write a simple “void” function (function does stuff but does not return a result) Being able to write a simple “int” function (function does stuff and returns a result in a specified register) Being able to ADD and SUBTRACT the contents of two memory locations IF YOU CAN DO THE SAME THING ON THE BLACKFIN – THEN THAT’S 50% OF THE LABS AND 50% OF EXAMS MATERIAL ACED 9/19/2015 2 / 28

3 Able to ADD and SUBTRACT the contents of two data registers It makes sense to ADD and SUBTRACT “values” stored in data registers Blackfin DATA registers R0, R1, R2 and R3 R0 = R1 + R2;// Addition e.g. 4 + 6  10 (Decimal number) 0x14 + 0x16  0x2A (Hexadecimal number) R3 = R1 – R2;// Subtraction e.g. 4 - 6  8 (Decimal number) 0x14 - 0x16  0xFFFFFFFE (Hexadecimal number) 9/19/2015 Review of 50% OF ENCM369 in 50 minutes3 / 28

4 Able to perform bitwise AND and OR operations on data registers It makes sense to perform OR and AND operations on “bit- patterns” stored in data registers. NEVER perform ADD and SUBTRACT operations on “bit- patterns” stored in data registers. WILL THIS BE EXAMINED? THIS CAUSES A CODE DEFECT CODE DEFECT -- your test may (accidently) get the correct answer, but your production code fails at apparently random times. Blackfin DATA registers R0, R1, R2 and R3 R0 = R1 & R2;// Bitwise AND e.g. B11001100 & B01010101  B01000100 R3 = R1 | R2;// Bitwise OR e.g. B11001100 | B01010101  B11011101 9/19/2015 Review of 50% OF ENCM369 in 50 minutes4 / 28

5 KEY EMBEDDED SYSTEM OPERATION FOR CONTROLLING EMBEDDED DEVICES For each corresponding bit in each register do 0 & 0 = 0; 1 & 0 = 0; 0 & 1 = 0; 1 & 1 = 1 R1 = 0xCC = B 1100 1100 R2 = 0x55 = B 0101 0101 R0 = R1 & R2;// Bitwise AND R1 = B 1 1 0 0 1 1 0 0 R2 = B 0 1 0 1 0 1 0 1 R0 = B 0 1 0 0 0 1 0 0 = 0x44 Able to perform bitwise AND operations on data registers 9/19/2015 Review of 50% OF ENCM369 in 50 minutes5 / 28

6 Able to perform bitwise OR operations on data registers KEY EMBEDDED SYSTEM OPERATION FOR CONTROLLING EMBEDDED DEVICES For each corresponding bit in each register do 0 | 0 = 0; 1 | 0 = 1; 0 | 1 = 0; 1 | 1 = 1 R1 = 0xCC = B 1100 1100 R2 = 0x55 = B 0101 0101 R0 = R1 | R2;// Bitwise OR R1 = B 1 1 0 0 1 1 0 0 R2 = B 0 1 0 1 0 1 0 1 R0 = B 1 1 0 1 1 1 0 1 = 0xDD 9/19/2015 Review of 50% OF ENCM369 in 50 minutes6 / 28

7 Is it a bit pattern or a value? (Add, OR AND) Hints from “C++” If the code developer is consistent when writing the code then Bit patterns are normally stored as “unsigned integers” e.g. unsigned int bitPattern = 0xFFA2345FF Values are normally stored as “signed integers” e.g. signed int fooValue = -1; or int fooValue = -1; where the word “signed” is “understood”. Understood means “its there but not actually written down” (which means that it sometimes causes defects in your code – your code does not do what you expect) Note that “bitPattern = 0xFFFFFFFF” and “fooValue = -1” are STORED as the SAME bit pattern 0xFFFFFFFFF in the registers and memory of MIPS and Blackfin processor 9/19/2015 Review of 50% OF ENCM369 in 50 minutes7 / 28

8 Being able to place a required value into a data register –Part 1 Like the MIPS, the Blackfin uses 32 bit instructions – all registers are the same size to ensure maximum speed of the processor (highly pipelined instructions). The 32 bit Blackfin instruction for placing a value into a data register has two parts to have16 bits available for describing the instruction and 16 bits for describing the “signed” 16 bit value to be put into a R0 which is “signed” 32 bit data register. The processor has to be told whether to put the 16 bits in the top part or the bottom part of the register 9/19/2015 Review of 50% OF ENCM369 in 50 minutes8 / 28

9 Being able to place a required value into a data register –Part 1 The 32 bit Blackfin instruction for placing a value into a data register has two parts to have16 bits available for describing the instruction and 16 bits for describing the “signed” 16 bit value to be put into a “signed” 32 bit data register. This means that you have to use “2” 32-bit instructions to put large values into a data register (SAME AS MIPS). Examples in next slides 9/19/2015 Review of 50% OF ENCM369 in 50 minutes9 / 28

10 Placing a value into a data register Similar to MIPS, different syntax R1 = 0; legal -- 0 = 0x0000 (signed 16 bits); (becomes the signed 32 bit 0x00000000 value after auto sign extension of the 16-bit value 0x0000) R0 = 33; legal -- 33 = 0x0021 (signed 16 bits) (becomes the signed 32 bit 0x00000021 value after auto sign extension of the 16-bit value 0x0021) R2 = -1; legal -- -1 = 0xFFFF (signed 16 bits) (becomes the signed 32 bit 0xFFFFFFFF value after auto sign extension of the 16-bit value 0xFFFF) R3 = -33; legal -- -33 = 0xFFDE (signed16 bits) (becomes the signed 32 bit 0xFFFFFFDE value after auto sign extension of the 16-bit value 0xFFDE) 9/19/2015 Review of 50% OF ENCM369 in 50 minutes10 / 28

11 Placing a “large” value into a data register This approach does not work for any “large” value R1 = 40000; DOES NOT WORK WITH MIPS EITHER illegal -- as 40000 can’t be expressed as a signed 16-bit value – it is the positive 32 bit value 0x00009C40 If the assembler tried to take the bottom 16 bits of the decimal 40000 and sign extend it then this would happen “16-bit” hex value 9C40 (1001 1100 0100 0000) becomes “32-bit” hex value after sign extension 0xFFFF9C40 which is a “negative value” AND NOT WHAT YOU WANTED TO CODE Therefore it is “illegal” to try to put a 32-bit value directly into a MIPS or a Blackfin processors (and many other processors). 9/19/2015 Review of 50% OF ENCM369 in 50 minutes11 / 28

12 Placing a “large” value into a data register If the assembler tried to take the bottom 16 bits of the decimal 40000 and sign extend it then this would happen “16-bit” hex value 9C40 (1001 1100 0100 0000) becomes “32-bit” hex value after sign extension 0xFFFF9C40 which is a “negative value” “illegal” just as it would be in MIPS // Want to do R1 = 40000 // Instead must do operation in two steps as with MIPS #include R1.L = lo(40000); // Tell assembler to put “bottom” // 16-bits into “low” part of R1 register R1.H = hi(40000); // Tell assembler to put “top” // 16-bits into “high” part of R1 register 9/19/2015 12 / 28

13 Placing a “large” value into a data register A common error in the laboratory and exams is getting this two step thing “wrong”. Forgetting the second step is easy to do – just as easy to forget on Blackfin as on MIPS // Want to do R1 = 41235 – always need two MIPS or Blackfin instructions R1.L = lo(41235); // “bottom” 16-bits into “low” part of R1 register R1.H = hi(41325); // “top” 16-bits into “high” part of R1 register THIS SECOND STEP IS OFTEN A FORGOTTEN SECOND STEP RECOMMENDED SYNTAX TO AVOID “CODE DEFECTS” #define LARGEVALUE 41235// C++ - like syntax R1.L = lo(LARGEVALUE) ; R1.H = hi(LARGEVALUE) ; Yes – you CAN put multiple Blackfin assembly language instructions on one line 9/19/2015 Review of 50% OF ENCM369 in 50 minutes13 / 28

14 A “void” function returns NO VALUE extern “C” void Simple_VoidASM(void) #include.section program;.global _Simple_VoidASM; _Simple_VoidASM: _Simple_VoidASM.END: RTS; // Simple example Blackfin ASM function. Stays the same in final 9/19/2015 Review of 50% OF ENCM369 in 50 minutes14 / 28 Things in red were cut-and-pasted using the editor to save Lab. time

15 A simple “int” function return a value extern “C” int Simple_IntASM(void) #include.section program;.global _Simple_IntASM; _Simple_IntASM: R0 = 7; // Return “7” _Simple_IntASM.END: RTS; 9/19/2015 Review of 50% OF ENCM369 in 50 minutes15 / 28 Things in red were cut-and-pasted using the editor // Simple example Blackfin ASM function. Stays the same in final

16 Being able to ADD and SUBTRACT the contents of two memory locations Let’s set up a practical situation A “background” code thread is putting values into an array. Processor could be MIPS or Blackfin For “background” thread read “interrupt service routine” or ISR. ISR work “in parallel” with the “foreground” thread that is doing the major work on the microprocessor Write a subroutine (returns int) that adds together the first two values of this shared array 9/19/2015 Review of 50% OF ENCM369 in 50 minutes16 / 28

17 Start with a copy of the “int” function extern “C” int Simple_IntASM(void) #include.section program;.global _Simple_IntASM; _Simple_IntASM: R0 = 7; // Return “7” _SimpleInt_ASM.END: RTS; 9/19/2015 Review of 50% OF ENCM369 in 50 minutes17 / 28 Things in red were cut-and-pasted using the editor

18 Modify to be extern “C” int AddArrayValuesASM(void) #include.section program;.global _AddArrayValuesASM; _AddArrayValuesASM: R0 = 7; // Return “7” _AddArrayValuesASM.END: RTS; 9/19/2015 Review of 50% OF ENCM369 in 50 minutes18 / 28 Things in red were cut-and-pasted using the editor

19 Add a “data” array in assembly code #include.section L1_data;.byte4 _fooArray[42]; // Syntax for building an array // of 32-bit values.section program;.global _AddArrayValuesASM; _AddArrayValuesASM : R0 = 7; // Return “7” _AddArrayValuesASM.END: RTS; 9/19/2015 Review of 50% OF ENCM369 in 50 minutes19 / 28 Things in red were cut-and-pasted using the editor Bonus marks in exams possible for ‘valid’ references to the ‘Hitch Hikers Guide’ and ‘Dr. Who’

20 Plan to return “sum”, initialize sum to 0 #include.section L1_data;.byte4 _fooArray[42];.section program;.global _AddArrayValuesASM; _AddArrayValuesASM: #define sum_R0 R0// register int sum; (Registerize int sum) sum_R0 = 0; // sum = 0; (Initialize sum) _AddArrayValuesASM.END: RTS; 9/19/2015 Review of 50% OF ENCM369 in 50 minutes20 / 28 Things in red were cut-and-pasted using the editor

21 Place the memory address of the start of the array into a pointer register …. Other code.section L1_data;.byte4 _fooArray[2];.section program;.global _AddArrayValuesASM; _AddArrayValuesASM : #define sum_R0 R0// register int sum; sum_R0 = 0; // sum = 0; #define pointer_to_array_P1 P1// register int * pointer_to_array P1.L = lo(_fooArray); P1.H = hi(_fooArray); // pointer_to_array = &fooArray[0]; _AddArrayValuesASM.END: RTS; 9/19/2015 Review of 50% OF ENCM369 in 50 minutes21 / 28 Things in red were cut-and-pasted using the editor P1 is a POINTER register (address register)

22 Read the contents of the first array location into register R1 and add to sum_R0; …. Other code.section L1_data;.byte4 _fooArray[2];.section program;.global _AddArrayValuesASM; _AddArrayValuesASM : #define sum_R0 R0// register int sum; sum_R0 = 0; // sum = 0; #define pointer_to_array_P1 P1// register int * pointer_to_array P1L = lo(_fooArray); P1.H = hi(_fooArray); // pointer_to_array = &fooArray[0]; R1 = [pointer_to_array_P1]; // int temp = fooArray[0]; sum_R0 = sum_R0 + R1; // sum = sum + temp _AddArrayValuesASM.END: RTS; 9/19/2015 Review of 50% OF ENCM369 in 50 minutes22 / 28 Things in red were cut-and-pasted using the editor

23 Read the contents of the second array location into register R1 and add to sum_R0; …. Other code.section L1_data;.byte4 _fooArray[2];.section program;.global _AddArrayValuesASM; _AddArrayValuesASM: #define sum_R0 R0// register int sum; sum_R0 = 0; // sum = 0; #define pointer_to_array_P1 P1// register int * pointer_to_array P1.L = lo(_fooArray); P1.H = hi(_fooArray); // pointer_to_array = &fooArray[0]; R1 = [pointer_to_array_P1]; // int temp = fooArray[0]; sum_R0 = sum_R0 + R1; // sum = sum + temp R1 = [pointer_to_array_P1 + 4]; // temp = fooArray[1]; sum_R0 = sum_R0 + R1; // sum = sum + temp _AddArrayValuesASM.END: RTS; 9/19/2015 23 / 28 Things in red were cut-and-pasted using the editor

24 Add code to.ASM (assembly) file 9/19/2015 Review of 50% OF ENCM369 in 50 minutes24 / 28 TO BE FIXED CCES picture will look similar

25 Assignment 1, Q1 (from 2009) Demo answer 9/19/2015 Review of 50% OF ENCM369 in 50 minutes25 / 28 TO BE FIXED CCES picture will look similar

26 Assembly code things to review 50% of ENCM369 in 50 minutes YOU ALREADY KNOW HOW TO DO THESE THINGS ON THE MIPS Able to ADD and SUBTRACT the contents of two data registers Able to perform bitwise AND operations, and perform bitwise OR operations the contents of two data registers Able to place a (small) required value or bit pattern into a data register Able to place a (large) required value or bit pattern into a data register Being able to write a simple “void” function (function does stuff but does not return a result) Being able to write a simple “int” function (function does stuff and returns a result) in a specified resgister) Being able to ADD and SUBTRACT the contents of two memory locations IF YOU CAN DO THE SAME THING ON THE BLACKFIN – THEN THAT’S 50% OF THE LABS AND 50% OF EXAMS MATERIAL ACED 9/19/2015 26 / 28


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