There are two main features of this package:
Each is described in a separate vignette, and a small example given below under “Getting started”. The documentation (vignettes and manual) is both included in package and available for reading online at https://mikldk.github.io/DNAtools/.
To build and install from Github using R 3.3.0 (or later) and the R
devtools package 1.11.0 (or later) run this command from
within R:
devtools::install_github("mikldk/DNAtools",
build_opts = c("--no-resave-data", "--no-manual"))You can also install the package without vignettes if needed as follows:
devtools::install_github("mikldk/DNAtools")To install on a computer without internet access:
DNAtools as a .tar.gz archive
from GitHub, transfer to the destination computer, e.g. using removable
mediadevtools and DNAtools
pre-requisites (multicool, Rcpp,
RcppParallel, RcppProgress,
Rsolnp)DNAtools in R using the
devtools::install_local() functionPlease use the issue tracker at https://github.com/mikldk/DNAtools/issues if you want to notify us of an issue or need support. If you want to contribute, please either create an issue or make a pull request.
Please read the vignettes for more elaborate explanations than those given below. The below example is meant to illustrate some of the functionality the package provides in a compact fashion.
Say that we have a reference database:
data(dbExample, package = "DNAtools")
head(dbExample)[, 2:7]
#> D16S539.1 D16S539.2 D18S51.1 D18S51.2 D19S433.1 D19S433.2
#> 1 11 11 15 21 14 14
#> 2 13 12 15 14 16 16
#> 3 9 9 13 17 14 14
#> 4 11 12 14 15 15 13
#> 5 12 12 17 12 15.2 13
#> 6 9 13 17 14 13 14
dim(dbExample)
#> [1] 1000 21We now find the allele frequencies:
allele_freqs <- lapply(1:10, function(x){
al_freq <- table(c(dbExample[[x*2]], dbExample[[1+x*2]]))/(2*nrow(dbExample))
al_freq[sort.list(as.numeric(names(al_freq)))]
})
names(allele_freqs) <- sub("\\.1", "", names(dbExample)[(1:10)*2])One could ask: What is the distribution of the number of alleles observed in a three person mixture?
The distribution of the number of alleles in a three person mixture can be calculated by this package. We focus on the D16S539 locus:
allele_freqs$D16S539
#>
#> 8 9 10 11 12 13 14
#> 0.0005 0.1910 0.0195 0.2755 0.2860 0.2255 0.0020
noa <- Pnm_locus(m = 3, theta = 0, alleleProbs = allele_freqs$D16S539)
names(noa) <- seq_along(noa)
noa
#> 1 2 3 4 5 6
#> 0.001164550 0.089551483 0.492098110 0.389529448 0.027534048 0.000122361This can be illustrated by a barchart:
Number of alleles Frequency
1
2 |||||||||
3 |||||||||||||||||||||||||||||||||||||||||||||||||
4 |||||||||||||||||||||||||||||||||||||||
5 |||
6 So it is most likely that a three person mixture on D16S539 has 3 alleles.
This can be done for all loci at once:
noa <- Pnm_all(m = 3, theta = 0, probs = allele_freqs, locuswise = TRUE)
noa
#> 1 2 3 4 5 6
#> D16S539 0.0011645502 0.089551483 0.4920981 0.3895294 0.02753405 1.223610e-04
#> D18S51 0.0002318216 0.017959845 0.1779391 0.4378291 0.31153235 5.450770e-02
#> D19S433 0.0035865859 0.089632027 0.3625087 0.3976107 0.13518050 1.148149e-02
#> D21S11 0.0038709572 0.096894566 0.3687696 0.3853717 0.13233905 1.275409e-02
#> D2S1338 0.0000431618 0.006746923 0.1068460 0.3899646 0.39812735 9.827197e-02
#> D3S1358 0.0016039659 0.078199562 0.3939623 0.4258141 0.09768694 2.733108e-03
#> D8S1179 0.0007349290 0.039905625 0.2705804 0.4539819 0.21275810 2.203902e-02
#> FGA 0.0000742453 0.010955567 0.1455096 0.4287449 0.34698332 6.773235e-02
#> TH01 0.0025373680 0.111902320 0.4515490 0.3761236 0.05783065 5.706482e-05
#> vWA 0.0008047420 0.054208046 0.3452015 0.4542519 0.13852872 7.005098e-03We can also find the convolution and thereby the total number of distinct alleles:
noa <- Pnm_all(m = 3, theta = 0, probs = allele_freqs)
noa
#> 1 2 3 4 5 6
#> 0.000000e+00 0.000000e+00 0.000000e+00 0.000000e+00 0.000000e+00 0.000000e+00
#> 7 8 9 10 11 12
#> 0.000000e+00 0.000000e+00 0.000000e+00 2.891086e-32 2.089630e-29 6.726379e-27
#> 13 14 15 16 17 18
#> 1.282439e-24 1.625439e-22 1.457361e-20 9.605595e-19 4.777072e-17 1.827088e-15
#> 19 20 21 22 23 24
#> 5.455402e-14 1.287742e-12 2.429902e-11 3.702434e-10 4.597777e-09 4.693091e-08
#> 25 26 27 28 29 30
#> 3.968035e-07 2.798451e-06 1.656443e-05 8.274188e-05 3.504602e-04 1.263902e-03
#> 31 32 33 34 35 36
#> 3.894858e-03 1.028680e-02 2.334381e-02 4.560959e-02 7.684831e-02 1.117952e-01
#> 37 38 39 40 41 42
#> 1.405269e-01 1.526853e-01 1.433854e-01 1.163205e-01 8.143643e-02 4.912883e-02
#> 43 44 45 46 47 48
#> 2.548638e-02 1.133857e-02 4.311188e-03 1.394979e-03 3.821005e-04 8.802401e-05
#> 49 50 51 52 53 54
#> 1.691803e-05 2.685887e-06 3.478319e-07 3.616152e-08 2.955716e-09 1.846961e-10
#> 55 56 57 58 59 60
#> 8.484368e-12 2.703293e-13 5.435722e-15 5.774600e-17 2.098567e-19 1.565331e-22This can be illustrated by a barchart:
Number of alleles Frequency
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32 |
33 ||
34 |||||
35 ||||||||
36 |||||||||||
37 ||||||||||||||
38 |||||||||||||||
39 ||||||||||||||
40 ||||||||||||
41 ||||||||
42 |||||
43 |||
44 |
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60 So it is most likely that a three person mixture has 38 distinct alleles on all loci combined.
Another relevant questions is how many matches and near-matches there are. This can be calculated as follows:
db_summary <- dbCompare(dbExample, hit = 6, trace = FALSE)
db_summary
#> Summary matrix
#> partial
#> match 0 1 2 3 4 5 6 7 8 9 10
#> 0 102 1368 7122 21878 44189 59463 54601 34203 13571 3281 353
#> 1 206 2114 10013 26084 43656 47418 34320 15463 4145 472
#> 2 165 1477 5710 12566 17049 14642 7570 2220 310
#> 3 72 556 1821 3250 3361 2135 719 116
#> 4 22 149 360 493 379 156 34
#> 5 6 19 44 41 26 5
#> 6 0 2 3 0 0
#> 7 0 0 0 0
#> 8 0 0 0
#> 9 0 0
#> 10 0
#>
#> Profiles with at least 6 matching loci
#> id1 id2 match partial
#> 1 153 687 6 2
#> 2 625 641 6 2
#> 3 694 855 6 2
#> 4 379 560 6 1
#> 5 422 881 6 1The hit argument returns pairs of profiles that fully match at
hit (here 6) or more loci.
The summary matrix gives the number of pairs mathcing/partially-matching at ((i,j)) loci. For example the row
partial
match 0 1 2 3 4 5 6 7 8 9 10
5 6 19 44 41 26 5 means that there are 6+19+44+41+26+5 = 141 pairs of profiles matching exactly at 5 loci. Conditional on those 5 matches, there are 6 pairs not matching on the remaining 5 loci, 19 pairs partial matching on 1 locus and not matching on the remaining 4 loci, and so on.