is_call {rlang} | R Documentation |
Is object a call?
Description
This function tests if x
is a call. This is a
pattern-matching predicate that returns FALSE
if name
and n
are supplied and the call does not match these properties.
Usage
is_call(x, name = NULL, n = NULL, ns = NULL)
Arguments
x |
An object to test. Formulas and quosures are treated literally. |
name |
An optional name that the call should match. It is
passed to |
n |
An optional number of arguments that the call should match. |
ns |
The namespace of the call. If Can be a character vector of namespaces, in which case the call
has to match at least one of them, otherwise |
See Also
Examples
is_call(quote(foo(bar)))
# You can pattern-match the call with additional arguments:
is_call(quote(foo(bar)), "foo")
is_call(quote(foo(bar)), "bar")
is_call(quote(foo(bar)), quote(foo))
# Match the number of arguments with is_call():
is_call(quote(foo(bar)), "foo", 1)
is_call(quote(foo(bar)), "foo", 2)
# By default, namespaced calls are tested unqualified:
ns_expr <- quote(base::list())
is_call(ns_expr, "list")
# You can also specify whether the call shouldn't be namespaced by
# supplying an empty string:
is_call(ns_expr, "list", ns = "")
# Or if it should have a namespace:
is_call(ns_expr, "list", ns = "utils")
is_call(ns_expr, "list", ns = "base")
# You can supply multiple namespaces:
is_call(ns_expr, "list", ns = c("utils", "base"))
is_call(ns_expr, "list", ns = c("utils", "stats"))
# If one of them is "", unnamespaced calls will match as well:
is_call(quote(list()), "list", ns = "base")
is_call(quote(list()), "list", ns = c("base", ""))
is_call(quote(base::list()), "list", ns = c("base", ""))
# The name argument is vectorised so you can supply a list of names
# to match with:
is_call(quote(foo(bar)), c("bar", "baz"))
is_call(quote(foo(bar)), c("bar", "foo"))
is_call(quote(base::list), c("::", ":::", "$", "@"))