Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

FYI: I have edited this significantly since my first edition. This simulation has been reduced from taking 14 hours to 14 minutes.

I am new to programming but I have made a simulation that tries to follow asexual replication in an organism and quantify the differences in chromosome number between the parent and daughter organisms. The simulation runs extremely slow. It takes about 6 hours to complete. I wanted to know what would be the best way to make the simulation run faster.

These digital organisms have x number of chromosomes. Unlike most organisms the chromosomes are all independent of each other so they have equal chance of being transfered into either daughter organism.

In this case, the distribution of chromosomes into a daughter cell follows a binomial distribution with probability of 0.5.

The function sim_repo takes a matrix of digital organisms with a known number of chromosomes and puts them through 12 generations of replication. It duplicates these chromosomes and then uses the rbinom function to randomly generate a number. This number is then assigned to a daughter cell. As no chromosomes are lost during asexual reproduction the other daughter cell receives the remaining chromosomes. This is then repeated for G number of generations. Then a single value is sampled from each row in the matrix.

 sim_repo = function( x1, G=12, k=1, t=25, h=1000 ) {

            # x1 is the list of copy numbers for a somatic chromosome
            # G is the number of generations, default is 12
            # k is the transfer size, default is 1
            # t is the number of transfers, default is 25
            # h is the number of times to replicate, default is 1000

            dup <- x1 * 2 # duplicate the initial somatic chromosome copy number for replication
            pop <- 1 # set generation time
            set.seed(11)
            z <- matrix(rbinom(n=rep(1,length(dup)),size = as.vector(dup),prob = 0.5),nrow = nrow(dup)) # amount of somatic chromosome is distributed to one of the daughter cells
            z1 <- dup - z # as no somatic chromosomes are lost, the other daughter cells receives the remainder somatic chromosomes
            x1 <- cbind(z, z1) # put both in a matrix

            for ( pop in 1:G ) { # this loop does the replication for each cell in each generation
                pop <- 1 + pop # number of generations.  This is a count for the for loop
                dup <- x1 * 2 # double the somatic chromosomes for replication
                set.seed(11)
                z <- matrix(rbinom(n=rep(1,length(dup)),size = as.vector(dup),prob = 0.5),nrow = nrow(dup)) # amount of somatic c hromosomes distributed to one of the daughter cells
                z1 <- dup - z # as no somatic chromosomes are lost, the other daughter cells receives the remainder somatic chromosomes
                x1 <- cbind(z, z1) # put both in a matrix
                }

            # the following for loop randomly selects one cell in the population that was created
            # the output is a matrix of 1 column
            x1 <- matrix(apply(x1, 1, sample, size=k), ncol=1)
            x1
    }

I my research I am interested in the change in variance in the chromosomes of the initial ancestral organisms and the final time point in this simulation. The following function represents transferring a cell into a new living environment. It takes the output from the function sim_rep and uses that to generate more generations. It then finds the variance among the rows in the first and last matrix columns and finds the difference between them.

    # The following function is mostly the same as I talked about in the description.
    # The only difference is I changed some aspects to take into account I am using
    # matrices and not lists.
    # The function outputs the difference between the intial variance component between
    # 'cell lines' with the final variance after t number of transfers

sim_exp = function( x1, G=12, k=1, t=25, h=1000 ) {

    xn <- matrix(NA, nrow(x1), t)  
    x <- x1
    xn[,1] <- x1
    for ( l in 2:t ) {
        x <- sim_repo( x, G, k, t, h )
        xn[, l] <- x
    }

    colvar <- matrix(apply(xn,2,var),ncol=ncol(xn))
    ivar <- colvar[,1]
    fvar <- colvar[,ncol(xn)]
    deltavar <- fvar - ivar
    deltavar
}  

I need to replicate this simulation h number of times. Thus I made the following function that will call the function sim_exp h number of times.

sim_1000 = function( x1, G=12, k=1, t=25, h=1000 ) {
    xn <- vector(length=h)
    for ( l in 2:h ) {
        x <- sim_exp( x1, G, k, t, h )
        xn[l] <- x
    }
        xn
}

When I call the sim_exp function with a value like 6 values it takes about 52 seconds to complete.

 x1 <- matrix(data=c(100,100,100,100,100,100),ncol=1)
 system.time(sim_1000(x1,h=1))
   user  system elapsed 
  1.280   0.105   1.369 

If I can get it faster then I could complete more of these simulations and apply a selection model on the simulation.

My input will look like the following x1, a matrix with each ancestral organism on its own row:

x1 <- matrix(data=c(100,100,100,100,100,100),ncol=1) # a matrix of 6 organisms

When I run:

a <- sim_repo(x1, G=12, k=1)

My expected output will be:

 a
     [,1]
[1,]  137
[2,]   82
[3,]   89
[4,]  135
[5,]   89
[6,]  109

 system.time(sim_repo(x1))
   user  system elapsed 
  1.969   0.059   2.010 

When I call the sim_exp function,

b <- sim_exp(x1, G=12, k=1, t=25)

it calls the sim_repo function G times and outputs:

 b
[1] 18805.47

When I call the sim_1000 function, I will normally set h to 1000, but here I will set it at 2. So here sim_1000 will call sim_exp and replicate it 2 times.

c <- sim_1000(x1, G=12, k=1, t=25, h=2)
c
[1] 18805.47 18805.47
share|improve this question
    
At a first glance, I'd bet the biggest reason why your code is slow is that you do not pre-allocate your objects: in particular, the cbind() inside sim_exp() and c() inside sim_1000() must be pretty expensive. –  flodel Mar 7 '12 at 2:20
    
@flodel, thanks for the hint. Do you have an example how to preallocate in my code? For example, in sim_exp() would I make a matrix of the same number of columns and rows as I expect in the final output but fill the values with NULL? –  Kevin Mar 7 '12 at 2:50
    
A chapter in The R Inferno is devoted just to this: burns-stat.com/pages/Tutor/R_inferno.pdf –  Alex Reynolds Mar 7 '12 at 3:01
    
Yes @Kev. Outside the loop: xn <- matrix(NA, nrow(x1), t) and inside the loop: xn[, l] <- x. Throughout your code, look for similar situations were objects are growing via successive calls to c() or cbind() and use the same idea. Hopefully you'll see a big speed improvement. –  flodel Mar 7 '12 at 3:10
    
@Kev - flodel is putting you on the right path here with preallocation. I'm also not sure you need your calls to apply(...,c(1,2),...). It looks like you can simply multiply those values together. It would be easier to help out if you gave some sample input data and expected output. Would let people develop alternatives and double check that output is still right. –  Chase Mar 7 '12 at 3:18

1 Answer 1

up vote 7 down vote accepted

As mentioned by others in the comments, if we look only at the function sim_repo, and replace the line:

dup <- apply(x1, c(1,2),"*",2)

with

dup <- x1 * 2

the lines

z <- apply(dup,c(1,2),rbinom,n=1,prob=0.5)

with

z <- matrix(rbinom(n=rep(1,length(dup)),size = as.vector(dup),prob = 0.5),nrow = nrow(dup))

and the inner for loop with

x1 <- matrix(apply(x1,1,sample,size = 1), ncol=1)

I get a, well, large speed increase:

system.time(sim_exp(x1))
   user  system elapsed 
  0.655   0.017   0.686 
> system.time(sim_expOld(x1))
   user  system elapsed 
 21.445   0.128  21.530 

And I verified that it's doing the same thing:

set.seed(123)
out1 <- sim_exp(x1)

set.seed(123)
out2 <- sim_expOld(x1)

all.equal(out1,out2)
> TRUE

And that's not even delving into the pre-allocation, which might actually be hard without completely redesigning things, given the way you've structured your code.

And that's also not even beginning to look at whether you really need all three functions...

share|improve this answer
    
I need to use your computer. I am still getting: system.time(sim_exp(x1, G=12, k=1, t=25, h=1 )) user system elapsed 23.598 0.767 24.390 –  Kevin Mar 7 '12 at 5:05
    
@Kev My computer isn't fast. It's a one year old macbook air. With the slower of the two processor options. It's more likely you just haven't gotten the code modifications quite right. –  joran Mar 7 '12 at 5:15
    
you are right, forgot the apply in that for loop. –  Kevin Mar 7 '12 at 6:09
    
I wanted to say thanks for the help. My simulation now runs the 1000 replicates at about 13 minutes. This is a great lesson on just because something works, doesn't mean it is efficient. I will be able to run a lot of simulations now. –  Kevin Mar 7 '12 at 6:15
    
@Kev Glad it worked out! –  joran Mar 7 '12 at 12:49

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.