1 / 58

High-Performance Grid Computing and Research Networking

High-Performance Grid Computing and Research Networking. Algorithms on a Ring (II). Presented by Yuming Zhang (Minton) Instructor: S. Masoud Sadjadi http://www.cs.fiu.edu/~sadjadi/Teaching/ sadjadi At cs Dot fiu Dot edu. Acknowledgements.

dwayne
Download Presentation

High-Performance Grid Computing and Research Networking

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. High-Performance Grid Computing and Research Networking Algorithms on a Ring (II) Presented by Yuming Zhang (Minton) Instructor: S. Masoud Sadjadi http://www.cs.fiu.edu/~sadjadi/Teaching/ sadjadi At cs Dot fiu Dot edu

  2. Acknowledgements • The content of many of the slides in this lecture notes have been adopted from the online resources prepared previously by the people listed below. Many thanks! • Henri Casanova • Principles of High Performance Computing • http://navet.ics.hawaii.edu/~casanova • henric@hawaii.edu

  3. Stencil Application t+1 t+1 t Simplification C[i][j]t+1 = F(C[i-1][j]t+1 + C[i][j-1]t+1) • We’ve talked about stencil applications in the context of shared-memory programs • We found that we had to cut the matrix in “small” blocks • On a ring the same basic idea applies, but let’s do it step-by-step t+1 t+1 t t 0 1 2 3 4 5 6 t 1 2 3 4 5 6 7 2 3 4 5 6 7 8 C[i][j]t+1 = F(C[i-1][j]t+1 + C[i][j-1]t+1 +C[i+1][j]t + C[i][j+1]t ) 3 4 5 6 7 8 9 4 5 6 7 8 9 10 5 6 7 8 9 10 11 6 7 8 9 10 11 12

  4. 40x40 Example with p=1 • Recap sequential code • Example with n=40 and p=1 • Row after row • Wave front

  5. 3x3 Example with p=9 0,0 0,1 0,2 1,0 1,1 1,2 2,0 2,1 2,2

  6. 3x3 Example with p=9 t3 t1 t4 t4 t4 t4 t4 t0 t2 t1 t2 t4 t4 t4 t3 t0 t4 t2 t4 t4 t4 t3 t0 t1 0,0 0,0 0,0 0,0 0,0 0,0 0,0 0,0 0,0 0,1 0,1 0,1 0,1 0,1 0,1 0,1 0,1 0,1 0,2 0,2 0,2 0,2 0,2 0,2 0,2 0,2 0,2 t4 t1 t4 t4 t3 t2 t4 t0 t4 t2 t4 t4 t1 t3 t0 t0 t4 t4 t1 t2 t3 1,0 1,0 1,0 1,0 1,0 1,0 1,0 1,0 1,0 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,2 1,2 1,2 1,2 1,2 1,2 1,2 1,2 1,2 2 1 5 3 4 6 7 8 9 t4 t0 t4 t4 t1 t3 t2 t2 t1 t4 t4 t0 t3 t0 t1 t4 t3 t2 2,0 2,0 2,0 2,0 2,0 2,0 2,0 2,0 2,0 2,1 2,1 2,1 2,1 2,1 2,1 2,1 2,1 2,1 2,2 2,2 2,2 2,2 2,2 2,2 2,2 2,2 2,2 0,0 0,1 0,2 Step 1,0 1,1 1,2 0 2,0 2,1 2,2

  7. Stencil Application • Let us, for now, consider that the domain is of size nxn and that we have p=n processors • Each processor is responsible for computing one row of the domain (at each iteration) • One first simple idea is to have each processor send each cell value to its neighbor as soon as that cell value is computed • Basic principle #1: do communication as early as possible to get your “neighbors” started as early as possible • Remember that one of the goals of a parallel program is to reduce idle time on the processors • We call this algorithm the Greedy algorithm, and seek an evaluation of its performance

  8. 3x3 Example with p=3 0,0 0,1 0,2 1,0 1,1 1,2 2,0 2,1 2,2

  9. 3x3 Example with p=3 t4 t2 t4 t1 t4 t0 t4 t3 t4 t3 t4 t2 t4 t4 t1 t4 t0 t4 t4 t1 t4 t2 t0 t3 0,0 0,0 0,0 0,0 0,0 0,0 0,0 0,0 0,0 0,1 0,1 0,1 0,1 0,1 0,1 0,1 0,1 0,1 0,2 0,2 0,2 0,2 0,2 0,2 0,2 0,2 0,2 P0 t2 t4 t4 t1 t0 t4 t3 t4 t3 t4 t4 t1 t4 t2 t0 t4 t3 t1 t4 t2 t0 1,0 1,0 1,0 1,0 1,0 1,0 1,0 1,0 1,0 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,1 1,2 1,2 1,2 1,2 1,2 1,2 1,2 1,2 1,2 P1 2 4 5 3 9 6 7 1 8 t0 t4 t2 t3 t4 t1 t4 t0 t3 t4 t2 t1 t4 t4 t2 t3 t0 t1 2,0 2,0 2,0 2,0 2,0 2,0 2,0 2,0 2,0 2,1 2,1 2,1 2,1 2,1 2,1 2,1 2,1 2,1 2,2 2,2 2,2 2,2 2,2 2,2 2,2 2,2 2,2 P2 0,0 0,1 0,2 Step 1,0 1,1 1,2 0 2,0 2,1 2,2

  10. Greedy Algorithm with n=p float C[n/p][n]; // for now n/p = 1 // code for only one iteration my_rank  rank(); p  num_procs(); for (j=0; j<n; j++) { if (my_rank > 0) RECV(&tmp,1); else tmp=-1; C[0][j] = update(j,tmp); // implements the stencil if (my_rank < num_procs-1) SEND(&(C[0][j]),1); } • We made a few assumptions about the implementation of the update function • At time i+j, Processor Pi does three things: • it receives c(i-1,j) from Pi-1 • it computes c(i,j) • it send c(i,j) to Pi+1 • Not technically true for P0 and Pp-1, but we don’t care for performance analysis

  11. Greedy Algorithm with n = m p • This is all well and good, but really, we almost always have more rows in the domain than processors • Example with n=40 and p=10 P0 P1 P2 P3 P4 P5 P6 P7 P8 P9

  12. Greedy Algorithm with n = m p • This is all well and good, but really, we almost always have more rows in the domain than processors • Example with n=40 and p=10 • First algorithm • P1 has to wait for 10 steps • P2 has to wait for 36 steps • … • P9 has to wait for 666 steps P0 P1 P2 P3 P4 P5

  13. Greedy Algorithm with n = m p • This is all well and good, but really, we almost always have more rows in the domain than processors • Example with n=40 and p=10 • First algorithm • P1 has to wait for 10 steps • P2 has to wait for 36 steps • … • P9 has to wait for 666 steps • Second algorithm • P1 has to wait for 4 steps • P2 has to wait for 8 steps • … • P9 has to wait for 36 steps P0 P1 P2 P3 P4 P5

  14. Greedy Algorithm • Let’s assume that we have more rows in the domain than processors; a realistic assumption! • The question is then: how do we allocate matrix rows to processors? • Similarly to what we saw in the shared memory case, we use a cyclic (i.e., interleaved) distribution • Basic Principle #2: A cyclic distribution of data among processors is a good way to achieve good load balancing • Remember that in the mat-vec and mat-mat multiply we did not use a cyclic distribution • There was no such need there because all computations were independent and we could just assign blocks of rows to processors and everybody could compute • If we did this here, all processors would be idle while processor P0 computes its block of rows, and then all processors would be idle while P1 computes its block of rows, etc. It would be a sequential execution!

  15. Cyclic Greedy Algorithm • Assumption n = m p • n=40 and p=10 P0 P1 P2 P3 P4 P5 P6 P7 P8 P9

  16. Cyclic Greedy Algorithm • Assumption n = m p • n=40 and p=10 • With Cyclic Distribution • P1 waits 1 step • P2 waits 2 steps • … • P9 waits 9 steps • Waits p-1 steps • Need to do n2/p • Finishes after p-1+n2/p steps P0 P1 P2 P3 P4 P5 P6 P7 P8 P9

  17. Cyclic Greedy Algorithm Global index If the rank or i is 0, then there is no neighbor. Local index float C[n/p][n]; // n/p > 1 ad is an integer! // code for only one iteration my_rank  rank(); p  num_procs(); for (i=0;i<n/p;i++) { for (j=0; j<n; j++) { if (my_rank+i*p > 0) RECV(&tmp,1); else tmp = -1; C[i][j] = update(i,j,tmp); if (my_rank+i*p < n-1) SEND(&(C[i][j]),1); }

  18. Cyclic Greedy Algorithm • Let us compute the execution time for this algorithm, T(n,p) • Remember that n >= p • We can assume that sending a message is done in a non-blocking fashion (while receiving is blocking) • Then when a processor sends a message at step k of the algorithm in parallel it receives a message at step k+1 • This is a reasonable assumption because the message sizes are identical • Remember that in performance analysis we make simplifying assumptions otherwise reasoning becomes overly complex • Therefore, at each algorithm step processors (i.e., at least one) do • Call update on one cell: takes time Ta • Ta: computation in Flops / machine speed in Flop/sec • Send/receive a cell value: takes time b + Tc • b: communication start-up latency • Tc: cell value size (in byte) / network bandwidth • Each steps lasts: Ta + b + Tc

  19. Cyclic Greedy Algorithm • Each step takes time: Ta + b + Tc • How many steps are there? • We’ve done this for the shared-memory version (sort of) • It takes p-1 steps before processor Pp-1 can start computing • Then it computes n2/p cells • Therefore there are p-1+n2/p steps • T(n,p) = (p-1+n2/p) (Ta + Tc + b) • This formula points to a big problem: a large component of the execution time is caused by the communication start-up time b • In practice b can be as large or larger than Ta + Tc! • The reason is: we send many small messages • A bunch of SEND(...,1)! • Therefore we can fix it by sending larger messages • What we need to do is augment the granularity of the algorithm • Basic Principle #3: Sending large messages reduces communication overhead • Conflicts with principle #1

  20. Higher Granularity • As opposed to sending a cell value as soon as it is computed, compute k cell values and send them all in bulk • We assume that k divides n • As opposed to having each processor hold n/p non contiguous rows of the domain, have each processor hold blocks of r consecutive rows • We assume that p*r divides n

  21. Higher Granularity k r • Assumption n = m p • n=40 and p=10 • R=2 and k=5 P0 P1 P2 P3 P4 P5 P6 P7 P8 P9

  22. Idle processors? • In the previous picture, it may be that, after it finishes computing its first block row, processor P0 has to wait for data from Pp-1 • Processor P0 computes its first block row in n/k algorithm steps • Processor Pp-1 computes the first subblock of its first block row after p algorithm steps • Therefore, P0 is not idle if n/k >= p, or n >= kp • If n < kp: idle time, which is not a good idea • If n > kp: processors need to receive and store values for a while before being able to use them

  23. Higher Granularity k P8 r P9 • Assumption n = m p • n=40 and p=10 • R=2 and k=5 • n<kp • 40<5x10 P0 P1 P2 P3 P4 P5 P6 P7

  24. Cyclic Greedy Algorithm • Assumption n = m p • n=40 and p=10 • R=1 and k=1 • n<kp • 40<1x10 P0 P1 P2 P3 P4 P5 P6 P7 P8 P9

  25. Higher Granularity • Assumption n = m p • n=40 and p=10 • R=2 and k=4 • n=kp • 40=4x10 k P0 P1 P2 P3 P4 P5 P6 P7 P8 r P9

  26. Higher Granularity • Assumption n = m p • n=40 and p=10 • R=4 and k=5 • n=kp • 40=4x10 k P0 P1 P2 P3 P4 P5 r P6 P7 P8 P9

  27. Performance Analysis • Very similar to what we did before • Each step takes time: krTa + kTc + b • time to compute kr cells • time to send k cells • There are p -1 + n2 /(pkr) steps • p-1 steps before processor Pp-1 can start any computation • Then Pp-1 has to compute (n2/kr)/p blocks • T(n,p,k,r) = (p-1+n2/(pkr)) (krTa + kTc + b) • Compare to: T(n,p) = (p-1+n2/p) (Ta + Tc + b) • We traded off Principle #1 for Principle #3, which is probably better in practice • Values of k and r can be experimented with to find what works best in practice • Note that optimal values can be computed

  28. Solving Linear Systems of Eq. • Method for solving Linear Systems • The need to solve linear systems arises in an estimated 75% of all scientific computing problems [Dahlquist 1974] • Gaussian Elimination is perhaps the most well-known method • based on the fact that the solution of a linear system is invariant under scaling and under row additions • One can multiply a row of the matrix by a constant as long as one multiplies the corresponding element of the right-hand side by the same constant • One can add a row of the matrix to another one as long as one adds the corresponding elements of the right-hand side • Idea: scale and add equations so as to transform matrix A in an upper triangular matrix: ? x ? = ? ? ? ? equation n-i has i unknowns, with

  29. Gaussian Elimination x = Substract row 1 from rows 2 and 3 x = Multiple row 3 by 3 and add row 2 x = -5x3 = 10 x3 = -2 -3x2 + x3 = 4 x2 = -2 x1 + x2 + x3 = 0 x1 = 4 Solving equations in reverse order (backsolving)

  30. Gaussian Elimination • The algorithm goes through the matrix from the top-left corner to the bottom-right corner • the ith step eliminates non-zero sub-diagonal elements in column i, substracting the ith row scaled by aji/aii from row j, for j=i+1,..,n. values already computed i pivot row 0 to be zeroed values yet to be updated i

  31. Sequential Gaussian Elimination Simple sequential algorithm // for each column i // zero it out below the diagonal by adding // multiples of row i to later rows for i = 1 to n-1 // for each row j below row i for j = i+1 to n // add a multiple of row i to row j for k = i to n A(j,k) = A(j,k) - (A(j,i)/A(i,i)) * A(i,k) • Several “tricks” that do not change the spirit of the algorithm but make implementation easier and/or more efficient • Right-hand side is typically kept in column n+1 of the matrix and one speaks of an augmented matrix • Compute the A(i,j)/A(i,i) term outside of the loop

  32. Pivoting: Motivation • A few pathological cases • Division by small numbers  round-off error in computer arithmetics • Consider the following system 0.0001x1 + x2 = 1.000 x1 + x2 = 2.000 • exact solution: x1=1.00010 and x2 = 0.99990 • say we round off after 3 digits after the decimal point • Multiply the first equation by 104 and subtract it from the second equation • (1 - 1)x1 + (1 - 104)x2 = 2 - 104 • But, in finite precision with only 3 digits: • 1 - 104 = -0.9999 E+4 ~ -0.999 E+4 • 2 - 104 = -0.9998 E+4 ~ -0.999 E+4 • Therefore, x2 = 1 and x1 = 0 (from the first equation) • Very far from the real solution!

  33. Partial Pivoting • One can just swap rows x1 + x2 = 2.000 0.0001x1 + x2 = 1.000 • Multiple the first equation by 0.0001 and subtract it from the second equation gives: (1 - 0.0001)x2 = 1 - 0.0001 0.9999 x2 = 0.9999 => x2 = 1 and then x1 = 1 • Final solution is closer to the real solution. (Magical) • Partial Pivoting • For numerical stability, one doesn’t go in order, but pick the next row in rows i to n that has the largest element in row i • This row is swapped with row i (along with elements of the right hand side) before the subtractions • the swap is not done in memory but rather one keeps an indirection array • Total Pivoting • Look for the greatest element ANYWHERE in the matrix • Swap columns • Swap rows • Numerical stability is really a difficult field

  34. Parallel Gaussian Elimination? • Assume that we have one processor per matrix element max aji needed to compute the scaling factor to find the max aji Independent computation of the scaling factor Compute Reduction Broadcast Every update needs the scaling factor and the element from the pivot row Independent computations Broadcasts Compute

  35. LU Factorization • Gaussian Elimination is simple but • What if we have to solve many Ax = b systems for different values of b? • This happens a LOT in real applications • Another method is the “LU Factorization” • Ax = b • Say we could rewrite A = L U, where L is a lower triangular matrix, and U is an upper triangular matrix O(n3) • Then Ax = b is written L U x = b • Solve L y = b O(n2) • Solve U x = y O(n2) triangular system solves are easy ? ? x ? x ? = = ? ? ? ? ? ? ? ? equation i has i unknowns equation n-i has i unknowns

  36. LU Factorization: Principle • It works just like the Gaussian Elimination, but instead of zeroing out elements, one “saves” scaling coefficients. • Magically, A = L x U ! • Should be done with pivoting as well gaussian elimination save the scaling factor gaussian elimination + save the scaling factor L = gaussian elimination + save the scaling factor U =

  37. LU Factorization • We’re going to look at the simplest possible version • No pivoting:just creates a bunch of indirections that are easy but make the code look complicated without changing the overall principle LU-sequential(A,n) { for k = 0 to n-2 { // preparing column k for i = k+1 to n-1 aik -aik / akk for j = k+1 to n-1 // Task Tkj: update of column j for i=k+1 to n-1 aij  aij + aik * akj } } stores the scaling factors k k

  38. LU Factorization • We’re going to look at the simplest possible version • No pivoting:just creates a bunch of indirections that are easy but make the code look complicated without changing the overall principle LU-sequential(A,n) { for k = 0 to n-2 { // preparing column k for i = k+1 to n-1 aik -aik / akk for j = k+1 to n-1 // Task Tkj: update of column j for i=k+1 to n-1 aij  aij + aik * akj } } update k k j i

  39. Parallel LU on a ring • Since the algorithm operates by columns from left to right, we should distribute columns to processors • Principle of the algorithm • At each step, the processor that owns column k does the “prepare”task and then broadcasts the bottom part of column k to all others • Annoying if the matrix is stored in row-major fashion • Remember that one is free to store the matrix in anyway one wants, as long as it’s coherent and that the right output is generated • After the broadcast, the other processors can then update their data. • Assume there is a function alloc(k) that returns the rank of the processor that owns column k • Basically so that we don’t clutter our program with too many global-to-local index translations • In fact, we will first write everything in terms of global indices, as to avoid all annoying index arithmetic

  40. LU-broadcast algorithm LU-broadcast(A,n) { q  rank() p  numprocs() for k = 0 to n-2 { if (alloc(k) == q) // preparing column k for i = k+1 to n-1 buffer[i-k-1]  aik -aik / akk broadcast(alloc(k),buffer,n-k-1) for j = k+1 to n-1 if (alloc(j) == q) // update of column j for i=k+1 to n-1 aij  aij + buffer[i-k-1] * akj } }

  41. Dealing with local indices • Assume that p divides n • Each processor needs to store r=n/p columns and its local indices go from 0 to r-1 • After step k, only columns with indices greater than k will be used • Simple idea: use a local index, l, that everyone initializes to 0 • At step k, processor alloc(k) increases its local index so that next time it will point to its next local column

  42. LU-broadcast algorithm ... double a[n-1][r-1]; q  rank() p  numprocs() l  0 for k = 0 to n-2 { if (alloc(k) == q) for i = k+1 to n-1 buffer[i-k-1]  a[i,k]  -a[i,l] / a[k,l] l  l+1 broadcast(alloc(k),buffer,n-k-1) for j = l to r-1 for i=k+1 to n-1 a[i,j]  a[i,j] + buffer[i-k-1] * a[k,j] } }

  43. What about the Alloc function? • One thing we have left completely unspecified is how to write the alloc function: how are columns distributed among processors • There are two complications: • The amount of data to process varies throughout the algorithm’s execution • At step k, columns k+1 to n-1 are updated • Fewer and fewer columns to update • The amount of computation varies among columns • e.g., column n-1 is updated more often than column 2 • Holding columns on the right of the matrix leads to much more work • There is a strong need for load balancing • All processes should do the same amount of work

  44. Bad load balancing P3 P1 P2 P4 already done already done working on it

  45. Good Load Balancing? already done already done working on it Cyclic distribution

  46. Proof that load balancing is good • The computation consists of two types of operations • column preparations • matrix element updates • There are many more updates than preparations, so we really care about good balancing of the preparations • Consider column j • Let’s count the number of updates performed by the processor holding column j • Column j is updated at steps k=0, ..., j-1 • At step k, elements i=k+1, ..., n-1 are updates • indices start at 0 • Therefore, at step k, the update of column j entails n-k-1 updates • The total number of updates for column j in the execution is:

  47. Proof that load balancing is good • Consider processor Pi, which holds columns lp+i for l=0, ... , n/p -1 • Processor Pi needs to perform this many updates: • Turns out this can be computed • separate terms • use formulas for sums of integers and sums of squares • What it all boils down to is: • This does not depend on i • Therefore it is (asymptotically) the same for all Pi processors • Therefore we have (asymptotically) perfect load balancing!

  48. Load-balanced program ... double a[n-1][r-1]; q  rank() p  numprocs() l  0 for k = 0 to n-2 { if (k == q mod p) for i = k+1 to n-1 buffer[i-k-1]  a[i,k]  -a[i,l] / a[k,l] l  l+1 broadcast(alloc(k),buffer,n-k-1) for j = l to r-1 for i=k+1 to n-1 a[i,j]  a[i,j] + buffer[i-k-1] * a[k,j] } }

  49. Performance Analysis • How long does this code take to run? • This is not an easy question because there are many tasks and many communications • A little bit of analysis shows that the execution time is the sum of three terms • n-1 communications: nxb + (n2/2)Tcomm + O(1) • n-1 column preparations: (n2/2)Tcomp + O(1) • column updates: (n3/3p)Tcomp + O(n2) • Therefore, the execution time is ~ (n3/3p)Tcomp • Note that the sequential time is: (n3 /3)Tcomp • Therefore, we have perfect asymptotic efficiency! • once again • This is good, but isn’t always the best in practice • How can we improve this algorithm?

  50. Pipelining on the Ring • So far, the algorithm we’ve used a simple broadcast • Nothing was specific to being on a ring of processors and it’s portable • in fact you could just write raw MPI that just looks like our pseudo-code and have a very limited, inefficient for small n, LU factorization that works only for some number of processors • But it’s not efficient • The n-1 communication steps are not overlapped with computations • Therefore Amdahl’s law, etc. • Turns out that on a ring, with a cyclic distribution of the columns, one can interleave pieces of the broadcast with the computation • It almost looks like inserting the source code from the broadcast code we saw at the very beginning throughout the LU code

More Related