Performance

Performance CSE 313:Computer Architecture

Performance Evaluation is a key component in the iterative architecture design process Performance is crucial to system design Also important in many other cases Purchasing a computer Evaluating new technologies Writing software Implementing an instruction set Designing a new architecture Need to quantify performance CSE 313:Computer Architecture

Performance What is performance? Performance Metrics How to evaluate and summarize performance? Performance Pitfalls CSE 313:Computer Architecture

Airplane Example Which one is the fastest for transporting 1 passenger? Which one is the fastest for transporting 5000 passengers? CSE 313:Computer Architecture

Response Time (latency)/ Execution Time — How long does it take for my job to run?— How long does it take to execute a job?— How long must I wait for the database query? Throughput— How many jobs can the machine run at once?— What is the average execution rate?— How much work is getting done? If we upgrade a machine with a new processor what do we improve? If we add a new machine to the lab what do we improve? Computer Performance: TIME, TIME, TIME CSE 313:Computer Architecture

For some program running on machine X, PerformanceX = 1 / Execution timeX "X is n times faster than Y“ (speedup) PerformanceX / PerformanceY = n = Execution time y/Execution time x Hard Real Time/soft real time Embedded System and DVD playback Book's Definition of Performance CSE 313:Computer Architecture

Example Machine A runs a program in 20 seconds Machine B runs the same program in 25 seconds How much faster is A than B? Performance ratio 25 / 20 = 1.25 A is 1.25 times faster than B. (the speedup of A over B is 1.25) CSE 313:Computer Architecture

Time Elapsed time/Wall Clock time/response time Counts everything (disk and memory accesses, I/O, operating system overhead etc.) A useful number, but often not good for comparison purposes Time sharing among multiple programs CPU time/CPU Execution Time Doesn’t count I/O or time spent in running other programs Can be broken into system CPU time and user CPU time Our focus: user CPU time CPU time spent in executing the lines of code that are “in” our program CPU performance System Performance CSE 313:Computer Architecture

Clock Cycles Instead of reporting execution time in seconds, we often use cycles seconds = cycles * seconds / cycle Clock “ticks” indicate when to start activities (one abstraction): cycle time = time between ticks = seconds per cycle clock rate (frequency) = cycles per second (1 Hz. = 1 cycle/sec)A 2 Ghz. clock has a 1 / 2×109 = 0.5 nano-second (ns) cycle time time CSE 313:Computer Architecture

So, to improve performance (everything else being equal) you can either________ the # of required cycles for a program, or________ the clock cycle time or, said another way, ________ the clock rate. How to Improve Performance CPU time = # of Cycles * Clock cycle time = # of Cycles / Clock rate CSE 313:Computer Architecture

Our favorite program runs in 8 seconds on computer A, which has a 4 GHz. clock. We are trying to help a computer designer build a new machine B, that will run this program in 4 seconds. The designer can use new (or perhaps more expensive) technology to substantially increase the clock rate, but has informed us that this increase will affect the rest of the CPU design, causing machine B to require 1.2 times as many clock cycles as machine A for the same program. What clock rate should we tell the designer to target?" Don't Panic, you can easily work this out from basic principles Example CSE 313:Computer Architecture

How many cycles are required for a program? Can we assume that # of cycles = # of instructions? 1st instruction 2nd instruction 3rd instruction ... 4th 5th 6th time This assumption is incorrect,different instructions take different amounts of time on different machines. CSE 313:Computer Architecture

Different numbers of cycles for different instructions Multiplication takes more time than addition Floating point operations take longer than integer ones Accessing memory takes more time than accessing registers CSE 313:Computer Architecture

Measure Clock Cycles CPU clock cycles/program is not an intuitive or easily determined value Clock cycles = # instructions * average clock cycles per instruction Cycles per instruction (CPI) is often used Time = # instructions * CPI * clock cycle time CPI is an average since the number of cycles per instruction varies from instruction to instruction CPI varies by application, as well as among implementation with the same instruction set Number of cycles for each instruction Frequency of instructions (instruction mix) Memory access time CSE 313:Computer Architecture

CPI Example It takes a program of 1,000,000 instructions 1.2ms to run on computer A. Computer A has a clock rate of 2 GHz. What is the CPI of the program on computer A? CSE 313:Computer Architecture

CPI Example Suppose we have two implementations of the same instruction set architecture (ISA). For some program,Machine A has a clock cycle time of 1 ns. and a CPI of 2.0 Machine B has a clock cycle time of 2 ns. and a CPI of 1.2 Which machine is faster for this program, and by how much? CSE 313:Computer Architecture

# of Instructions Example A compiler designer is trying to decide between two code sequences for a particular machine. Based on the hardware implementation, there are three different classes of instructions: Class A, Class B, and Class C, and they require 1, 2, and 3 cycles respectively. The first code sequence has 5 instructions: 2 of A, 1 of B, and 2 of CThe second sequence has 6 instructions: 4 of A, 1 of B, and 1 of C.Which sequence will be faster? How much faster?What is the CPI for each sequence? CSE 313:Computer Architecture

CPI Variability Different instruction types require different number of cycles per instruction CPI is often reported for classes of instructions where CPIiis the CPI for the instruction in class i and Ii is the count of instructions in class i CSE 313:Computer Architecture

Computing CPI To compute the overall average CPI use Where Pi is the percentage (frequency) of instruction in class i CSE 313:Computer Architecture

Computing CPI Example Average CPI is 1 x 50% + 2 x 20% + 2 x 20% + 2 x 10% = 0.5 + 0.4 + 0.4 +0.2 = 1.5 CSE 313:Computer Architecture

Tradeoffs Instruction count, CPI, and clock cycle present tradeoffs RISC – reduced instruction set computer (MIPS) Simple instructions Higher instruction counts for an application Lower CPI CISC – complex instruction set computer (IA-32) More complex instructions Lower instruction counts for an application Higher CPI CSE 313:Computer Architecture

Understanding Program Performance CSE 313:Computer Architecture

MIPS MIPS (millions instructions per second) Is it a good measure for performance? CSE 313:Computer Architecture

Two different compilers are being tested for a 1 GHz. machine with three different classes of instructions: Class A, Class B, and Class C, which require 1, 2, and 3 cycles (respectively). Both compilers are used to produce code for a large piece of software.The first compiler's code uses 5 billion Class A instructions, 1 billion Class B instructions, and 1 billion Class C instructions.The second compiler's code uses 10 billion Class A instructions, 1 billion Class B instructions, and 1 billion Class C instructions. Which sequence will be faster according to MIPS? Which sequence will be faster according to execution time? MIPS example CSE 313:Computer Architecture

Performance Performance is determined by execution time Do any of the other variables equal performance? # of cycles to execute program? # of instructions in program? # of cycles per second? average # of cycles per instruction? average # of instructions per second? Common pitfall: thinking one of the variables is indicative of performance when it really isn’t. CSE 313:Computer Architecture

A given program will require some number of instructions (machine instructions) some number of cycles some number of seconds We have a vocabulary that relates these quantities: cycle time (seconds per cycle) clock rate (cycles per second) CPI (cycles per instruction) a floating point intensive application might have a higher CPI MIPS (millions of instructions per second)this would be higher for a program using simple instructions Now that we understand Performance CSE 313:Computer Architecture

Example If two machines have the same ISA which of the following quantities will always be identical for a same program and compiler? clock rate # of instructions CPI execution time MIPS CSE 313:Computer Architecture

Example Consider a program on a computer of two classes of instructions A: CPI = 2, frequency = 40% B: CPI = 4, frequency = 60% What’s the CPI of this machine? If the CPI of the instruction class B is reduced to 3 without changing clock rate, how much faster is the new machine? What’s its CPI? If we can also reduce the number of class A instructions to 50% of the original for the program, how much faster is the new machine? What’s its CPI? • CPI = 2 * 40% + 4 * 60% = 3.2 • CPI = 2 * 40% + 3 * 60% = 2.6. Because both have the same number of instructions and clock rate, the ratio of execution time is the ratio of the CPI. The speedup is 3.2 / 2.6 = 1.23 times faster • Assume originally there are I instructions, then the number of cycles is 3.2*I. The number of cycles after reducing CPI of B and instructions of A is 2 * 0.2 * I + 3 * 0.6 * I = 2.2 *I So the speedup is 3.2 / 2.2 = 1.45 The CPI of the new machine is 2.2 * I / 0.8 * I = 2.75 We can not compute CPI as 2 * 20% + 3 * 60% = 2.2. Why? CSE 313:Computer Architecture

Tools for EvaluatingPerformance Estimations Area/delay estimate Analysis Queuing theory Simulations ISA execution, circuit, gate Benchmarks CSE 313:Computer Architecture

Performance best determined by running real applications Use programs typical of expected workload Or, typical of expected class of applications e.g., compilers/editors, scientific applications, graphics, etc. Not always feasible Small benchmarks nice for architects and designers easy to standardize can be abused SPEC (System Performance Evaluation Cooperative) companies have agreed on a set of real program and inputs valuable indicator of performance (and compiler technology) require upgraded to current software applications: SPEC ’89, SPEC ’92, SPEC ’95, SPEC ’2000 (www.spec.org) can still be abused Benchmarks CSE 313:Computer Architecture

SPEC CPU2000 CSE 313:Computer Architecture

Benchmark Games An embarrassed Intel Corp. acknowledged Friday that a bug in a software program known as a compiler had led the company to overstate the speed of its microprocessor chips on an industry benchmark by 10 percent. However, industry analysts said the coding error…was a sad commentary on a common industry practice of “cheating” on standardized performance tests…The error was pointed out to Intel two days ago by a competitor, Motorola …came in a test known as SPECint92…Intel acknowledged that it had “optimized” its compiler to improve its test scores. The company had also said that it did not like the practice but felt to compelled to make the optimizations because its competitors were doing the same thing…At the heart of Intel’s problem is the practice of “tuning” compiler programs to recognize certain computing problems in the test and then substituting special handwritten pieces of code… Saturday, January 6, 1996 New York Times CSE 313:Computer Architecture

Compare Performance Across Multiple Programs Benchmark results are often contradictory A is 10 times faster than B for program 1 B is 10 times faster than A for program 2 A is 20 times faster than C for program 1 C is 50 times faster than A for program 2 B is 2 times faster than C for program 1 C is 5 times faster than B for program 2 Each statement is correct. But we just want to know which machine is the fastest. CSE 313:Computer Architecture

Summarizing Results Use (weighted) arithmetic mean for with execution times CSE 313:Computer Architecture

Example Computer A average time = 2x60% + 16x40% = 7.6s Computer B average time = 4x60% + 4x40% = 4s Computer B is 7.6/4 = 1.9 times faster than A for the benchmark CSE 313:Computer Architecture

SPEC ‘95 Does doubling the clock rate double the performance? Can a machine with a slower clock rate have better performance? CSE 313:Computer Architecture

Amdahl's Law Execution Time After Improvement = Execution Time Unaffected +( Execution Time Affected / speedup ) CSE 313:Computer Architecture

Example Floating point instructions of a computer to run 2 times faster; but only 10% of actual time is used for floating point operations. How much faster will the computer become? The speedup resulting from an enhancement is bounded by the inverse of the fraction that is not enhanced. CSE 313:Computer Architecture

Amdahl’s Law: Corollary Principle: Make the common case fast Examples: All instructions requires an instruction fetch, only a fraction require a data fetch/store => optimize instruction access over data access Programs spend a lot of time accessing memory and exhibit spatial and temporal locality =>design a storage hierarchy such that the most frequent access are to the smallest (fastest) memories CSE 313:Computer Architecture

Example "Suppose a program runs in 100 seconds on a machine, with multiply responsible for 80 seconds of this time. How much do we have to improve the speed of multiplication if we want the program to run 4 times faster?" How about making it 5 times faster? CSE 313:Computer Architecture

Example A program takes 10 seconds to run on the current computer. The program spends 40% of its time on floating-point operations, 40% on integer operations, and 20% on I/O operations. If you can make the floating-point operations 2 times faster, what is the overall speedup of the program? If we want the whole program to run 2 times faster, how much do we need to improve the speed of integer operations, in additional to doubling the speed of floating-point operations? CSE 313:Computer Architecture

Performance is specific to a particular program/s Execution time is a consistent summary of performance For a given architecture performance increases come from: increases in clock rate (without adverse CPI affects) improvements in processor organization that lower CPI compiler enhancements that lower CPI and/or instruction count Pitfall: expecting improvement in one aspect of a machine’s performance to significantly affect the total performance References: 4.1 4.2 4.5 See Slides and solve some exercise Remember CSE 313:Computer Architecture

Performance

Performance

Presentation Transcript

PERFORMANCE

Performance

Performance

Performance

Performance

Performance

Performance

Performance

Performance

Performance*

Performance

Performance & Performance Management

PERFORMANCE

Performance

Performance and Performance Evaluation

Performance

Performance

Performance Bond / Performance Guarantee

Performance

Performance Culture Performance Toolkit

Performance Needs  Performance Technology

Performance

Performance

Presentation Transcript

PERFORMANCE

Performance

Performance

Performance

Performance

Performance

Performance

Performance

Performance

Performance*

Performance

Performance &amp; Performance Management

PERFORMANCE

Performance

Performance and Performance Evaluation

Performance

Performance

Performance Bond / Performance Guarantee

Performance

Performance Culture Performance Toolkit

Performance Needs  Performance Technology

Performance & Performance Management