alltypes(X, fun="K", ..., dataname=NULL,verb=FALSE,envelope=FALSE,reuse=TRUE)
"ppp"
or "lpp"
.
"F"
, "G"
, "J"
, "K"
, "L"
, "pcf"
,
"Gcross"
, "Jcross"
, "Kcross"
, "Lcross"
,
"Gdot"
, "Jdot"
, "Kdot"
, "Ldot"
.
envelope
if appropriate)
plot.fasp()
in forming the title of the plot.
If not supplied it defaults to the parsing of the argument
supplied as X
in the call.
verb
is
true then terse ``progress reports'' (just the values of the
mark indices) are printed out when the calculations for that
combination of marks are completed.
envelope
is true, then simulation envelopes
of the summary function will also be computed. See Details.
reuse=TRUE
) or on different, independent sets of simulated
patterns (reuse=FALSE
).
"fasp"
,
see fasp.object
). This can be plotted
using plot.fasp
.If the pattern is not marked, the resulting ``array'' has dimensions
$1 x 1$. Otherwise the following is true:If fun="F"
,
the function array has dimensions $m * 1$
where $m$ is the number of different marks in the point pattern.
The entry at position [i,1]
in this array
is the result of applying Fest
to the
points of type i
only.If fun
is "Gdot"
, "Jdot"
, "Kdot"
or "Ldot"
, the function array
again has dimensions $m * 1$.
The entry at position [i,1]
in this array
is the result of Gdot(X, i)
, Jdot(X, i)
Kdot(X, i)
or Ldot(X, i)
respectively.If fun
is "Gcross"
, "Jcross"
, "Kcross"
or "Lcross"
(or their abbreviations "G"
, "J"
, "K"
or "L"
),
the function array has dimensions $m * m$.
The [i,j]
entry of the function array
(for $i != j$) is the
result of applying the function Gcross
,
Jcross
, Kcross
orLcross
to
the pair of types (i,j)
. The diagonal
[i,i]
entry of the function array is the result of
applying the univariate function Gest
,
Jest
, Kest
or Lest
to the
points of type i
only.If envelope=FALSE
, then
each function entry fns[[i]]
retains the format
of the output of the relevant estimating routine
Fest
, Gest
, Jest
,
Kest
, Lest
, Gcross
,
Jcross
,Kcross
, Lcross
,
Gdot
, Jdot
, Kdot
or
Ldot
The default formulae for plotting these functions are
cbind(km,theo) ~ r
for F, G, and J functions, and
cbind(trans,theo) ~ r
for K and L functions.If envelope=TRUE
, then each function entry fns[[i]]
has the same format as the output of the envelope
command.
"fasp"
) amenable to plotting
by plot.fasp()
. The argument fun
specifies the summary function that will
be evaluated for each type of point, or for each pair of types.
It may be either an R function or a character string.
Suppose that the points have possible types $1,2,\ldots,m$
and let $X[i]$ denote the pattern of points of type $i$ only.
If fun="F"
then this routine
calculates, for each possible type $i$,
an estimate of the Empty Space Function $F[i](r)$ of
$X[i]$. See Fest
for explanation of the empty space function.
The estimate is computed by applying Fest
to $X[i]$ with the optional arguments ...
.
If fun
is
"Gcross"
, "Jcross"
, "Kcross"
or "Lcross"
,
the routine calculates, for each pair of types $(i,j)$,
an estimate of the ``i
-toj
'' cross-type function
$G[i,j](r)$,
$J[i,j](r)$,
$K[i,j](r)$ or
$L[i,j](r)$ respectively describing the
dependence between
$X[i]$ and $X[j]$.
See Gcross
, Jcross
, Kcross
or Lcross
respectively for explanation of these
functions.
The estimate is computed by applying the relevant function
(Gcross
etc)
to X
using each possible value of the arguments i,j
,
together with the optional arguments ...
.
If fun
is "pcf"
the routine calculates
the cross-type pair correlation function pcfcross
between each pair of types.
If fun
is
"Gdot"
, "Jdot"
, "Kdot"
or "Ldot"
,
the routine calculates, for each type $i$,
an estimate of the ``i
-to-any'' dot-type function
$G[i.](r)$,
$J[i.](r)$ or
$K[i.](r)$ or
$L[i.](r)$ respectively describing the
dependence between $X[i]$ and $X$.
See Gdot
, Jdot
, Kdot
or Ldot
respectively for explanation of these functions.
The estimate is computed by applying the relevant function
(Gdot
etc)
to X
using each possible value of the argument i
,
together with the optional arguments ...
.
The letters "G"
, "J"
, "K"
and "L"
are interpreted as abbreviations for Gcross
,
Jcross
, Kcross
and Lcross
respectively, assuming the point pattern is
marked. If the point pattern is unmarked, the appropriate
function Fest
, Jest
,
Kest
or Lest
is invoked instead.
If envelope=TRUE
, then as well as computing the value of the
summary function for each combination of types, the algorithm also
computes simulation envelopes of the summary function for each
combination of types. The arguments ...
are passed to the function
envelope
to control the number of
simulations, the random process generating the simulations,
the construction of envelopes, and so on.
plot.fasp
,
fasp.object
,
Fest
,
Gest
,
Jest
,
Kest
,
Lest
,
Gcross
,
Jcross
,
Kcross
,
Lcross
,
Gdot
,
Jdot
,
Kdot
,
envelope
.
# bramblecanes (3 marks).
bram <- bramblecanes
bF <- alltypes(bram,"F",verb=TRUE)
plot(bF)
if(interactive()) {
plot(alltypes(bram,"G"))
plot(alltypes(bram,"Gdot"))
}
# Swedishpines (unmarked).
swed <- swedishpines
plot(alltypes(swed,"K"))
plot(alltypes(amacrine, "pcf"), ylim=c(0,1.3))
# A setting where you might REALLY want to use dataname:
## Not run:
# xxx <- alltypes(ppp(Melvin$x,Melvin$y,
# window=as.owin(c(5,20,15,50)),marks=clyde),
# fun="F",verb=TRUE,dataname="Melvin")
# ## End(Not run)
# envelopes
bKE <- alltypes(bram,"K",envelope=TRUE,nsim=19)
## Not run:
# bFE <- alltypes(bram,"F",envelope=TRUE,nsim=19,global=TRUE)
# ## End(Not run)
# extract one entry
as.fv(bKE[1,1])
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