diff options
| author | Stefan Monnier | 2024-03-11 16:12:26 -0400 |
|---|---|---|
| committer | Stefan Monnier | 2024-04-18 15:28:36 -0400 |
| commit | 126be02077520a943252d0d219bb7677466d0168 (patch) | |
| tree | f762237714f11b303c708f93f09a8dc72426bb2a /doc/lispref | |
| parent | 7842af6095db4384898725fb4a14ebaa11379a34 (diff) | |
| download | emacs-scratch/interpreted-function.tar.gz emacs-scratch/interpreted-function.zip | |
Use a dedicated type to represent interpreted-function valuesscratch/interpreted-function
Change `function` so that when evaluating #'(lambda ...)
we return an object of type `interpreted-function` rather than
a list starting with one of `lambda` or `closure`.
The new type reuses the existing PVEC_CLOSURE (nee PVEC_COMPILED)
tag and tries to align the corresponding elements:
- the arglist, the docstring, and the interactive-form go in the
same slots as for byte-code functions.
- the body of the function goes in the slot used for the bytecode string.
- the lexical context goes in the slot used for the constants of
bytecoded functions.
The first point above means that `help-function-arglist`,
`documentation`, and `interactive-form`s don't need to
distinguish interpreted and bytecode functions any more.
Main benefits of the change:
- We can now reliably distinguish a list from a function value.
- `cl-defmethod` can dispatch on `interactive-function` and `closure`.
Dispatch on `function` also works now for interpreted functions but still
won't work for functions represented as lists or as symbols, of course.
- Function values are now self-evaluating. That was alrready the case
when byte-compiled, but not when interpreted since
(eval '(closure ...)) signals a void-function error.
That also avoids false-positive warnings about "don't quote your lambdas"
when doing things like `(mapcar ',func ...)`.
* src/eval.c (Fmake_interpreted_closure): New function.
(Ffunction): Use it and change calling convention of
`Vinternal_make_interpreted_closure_function`.
(FUNCTIONP, Fcommandp, eval_sub, funcall_general, funcall_lambda)
(Ffunc_arity, lambda_arity): Simplify.
(funcall_lambda): Adjust to new representation.
(syms_of_eval): `defsubr` the new function. Remove definition of `Qclosure`.
* lisp/emacs-lisp/cconv.el (cconv-make-interpreted-closure):
Change calling convention and use `make-interpreted-closure`.
* src/data.c (Fcl_type_of): Distinguish `byte-code-function`s from
`interpreted-function`s.
(Fclosurep, finterpreted_function_p): New functions.
(Fbyte_code_function_p): Don't be confused by `interpreted-function`s.
(Finteractive_form, Fcommand_modes): Simplify.
(syms_of_data): Define new type symbols and `defsubr` the two
new functions.
* lisp/emacs-lisp/cl-print.el (cl-print-object) <interpreted-function>:
New method.
* lisp/emacs-lisp/oclosure.el (oclosure): Refine the parent
to be `closure`.
(oclosure--fix-type, oclosure-type): Simplify.
(oclosure--copy, oclosure--get, oclosure--set): Adjust to
new representation.
* src/callint.c (Fcall_interactively): Adjust to new representation.
* src/lread.c (bytecode_from_rev_list):
* lisp/simple.el (function-documentation):
* lisp/help.el (help-function-arglist): Remove the old `closure` case
and adjust the byte-code case so it handles `interpreted-function`s.
* lisp/emacs-lisp/cl-preloaded.el (closure): New type.
(byte-code-function): Add it as a parent.
(interpreted-function): Adjust parent (the type itself was already
added earlier by accident).
* lisp/emacs-lisp/bytecomp.el (byte-compile--reify-function): Adjust to
new representation.
(byte-compile): Use `interpreted-function-p`.
* lisp/emacs-lisp/byte-opt.el (byte-compile-inline-expand): Adjust to
new representation.
(side-effect-free-fns): Add `interpreted-function-p` and `closurep`.
* src/profiler.c (trace_hash, ffunction_equal): Simplify.
* lisp/profiler.el (profiler-function-equal): Simplify.
* lisp/emacs-lisp/nadvice.el (advice--interactive-form-1):
Use `interpreted-function-p`; adjust to new representation; and take
advantage of the fact that function values are now self-evaluating.
* lisp/emacs-lisp/lisp-mode.el (closure):
Remove `lisp-indent-function` property.
* lisp/emacs-lisp/disass.el (disassemble-internal): Adjust to
new representation.
* lisp/emacs-lisp/edebug.el (edebug--strip-instrumentation):
Use `interpreted-function-p`.
* lisp/emacs-lisp/comp-common.el (comp-known-type-specifiers):
Add `closurep` and `interpreted-function-p`.
* test/lisp/help-fns-tests.el (help-fns-test-lisp-defun): Adjust to
more precise type info in `describe-function`.
* test/lisp/erc/resources/erc-d/erc-d-tests.el (erc-d--render-entries):
Use `interpreted-function-p`.
* test/lisp/emacs-lisp/macroexp-resources/vk.el (vk-f4, vk-f5):
Don't hardcode function values.
* doc/lispref/functions.texi (Anonymous Functions): Don't suggest that
function values are lists. Reword "self-quoting" to reflect the
fact that #' doesn't return the exact same object. Update examples
with the new shape of the return value.
* doc/lispref/variables.texi (Lexical Binding):
* doc/lispref/lists.texi (Rearrangement):
* doc/lispref/control.texi (Handling Errors): Update examples to reflect
new representation of function values.
Diffstat (limited to 'doc/lispref')
| -rw-r--r-- | doc/lispref/compile.texi | 61 | ||||
| -rw-r--r-- | doc/lispref/control.texi | 2 | ||||
| -rw-r--r-- | doc/lispref/elisp.texi | 4 | ||||
| -rw-r--r-- | doc/lispref/functions.texi | 36 | ||||
| -rw-r--r-- | doc/lispref/lists.texi | 4 | ||||
| -rw-r--r-- | doc/lispref/objects.texi | 38 | ||||
| -rw-r--r-- | doc/lispref/sequences.texi | 2 | ||||
| -rw-r--r-- | doc/lispref/variables.texi | 2 |
8 files changed, 97 insertions, 52 deletions
diff --git a/doc/lispref/compile.texi b/doc/lispref/compile.texi index 00602198da5..3fbf39b349d 100644 --- a/doc/lispref/compile.texi +++ b/doc/lispref/compile.texi | |||
| @@ -37,7 +37,7 @@ variable binding for @code{no-byte-compile} into it, like this: | |||
| 37 | * Docs and Compilation:: Dynamic loading of documentation strings. | 37 | * Docs and Compilation:: Dynamic loading of documentation strings. |
| 38 | * Eval During Compile:: Code to be evaluated when you compile. | 38 | * Eval During Compile:: Code to be evaluated when you compile. |
| 39 | * Compiler Errors:: Handling compiler error messages. | 39 | * Compiler Errors:: Handling compiler error messages. |
| 40 | * Byte-Code Objects:: The data type used for byte-compiled functions. | 40 | * Closure Objects:: The data type used for byte-compiled functions. |
| 41 | * Disassembly:: Disassembling byte-code; how to read byte-code. | 41 | * Disassembly:: Disassembling byte-code; how to read byte-code. |
| 42 | @end menu | 42 | @end menu |
| 43 | 43 | ||
| @@ -120,7 +120,7 @@ replacing the previous definition with the compiled one. The function | |||
| 120 | definition of @var{symbol} must be the actual code for the function; | 120 | definition of @var{symbol} must be the actual code for the function; |
| 121 | @code{byte-compile} does not handle function indirection. The return | 121 | @code{byte-compile} does not handle function indirection. The return |
| 122 | value is the byte-code function object which is the compiled | 122 | value is the byte-code function object which is the compiled |
| 123 | definition of @var{symbol} (@pxref{Byte-Code Objects}). | 123 | definition of @var{symbol} (@pxref{Closure Objects}). |
| 124 | 124 | ||
| 125 | @example | 125 | @example |
| 126 | @group | 126 | @group |
| @@ -487,21 +487,22 @@ string for details. | |||
| 487 | using @code{error}. If so, set @code{byte-compile-error-on-warn} to a | 487 | using @code{error}. If so, set @code{byte-compile-error-on-warn} to a |
| 488 | non-@code{nil} value. | 488 | non-@code{nil} value. |
| 489 | 489 | ||
| 490 | @node Byte-Code Objects | 490 | @node Closure Objects |
| 491 | @section Byte-Code Function Objects | 491 | @section Closure Function Objects |
| 492 | @cindex compiled function | 492 | @cindex compiled function |
| 493 | @cindex byte-code function | 493 | @cindex byte-code function |
| 494 | @cindex byte-code object | 494 | @cindex byte-code object |
| 495 | 495 | ||
| 496 | Byte-compiled functions have a special data type: they are | 496 | Byte-compiled functions use a special data type: they are closures. |
| 497 | @dfn{byte-code function objects}. Whenever such an object appears as | 497 | Closures are used both for byte-compiled Lisp functions as well as for |
| 498 | a function to be called, Emacs uses the byte-code interpreter to | 498 | interpreted Lisp functions. Whenever such an object appears as |
| 499 | execute the byte-code. | 499 | a function to be called, Emacs uses the appropriate interpreter to |
| 500 | execute either the byte-code or the non-compiled Lisp code. | ||
| 500 | 501 | ||
| 501 | Internally, a byte-code function object is much like a vector; its | 502 | Internally, a closure is much like a vector; its |
| 502 | elements can be accessed using @code{aref}. Its printed | 503 | elements can be accessed using @code{aref}. Its printed |
| 503 | representation is like that for a vector, with an additional @samp{#} | 504 | representation is like that for a vector, with an additional @samp{#} |
| 504 | before the opening @samp{[}. It must have at least four elements; | 505 | before the opening @samp{[}. It must have at least three elements; |
| 505 | there is no maximum number, but only the first six elements have any | 506 | there is no maximum number, but only the first six elements have any |
| 506 | normal use. They are: | 507 | normal use. They are: |
| 507 | 508 | ||
| @@ -515,20 +516,28 @@ zero to 6, and the maximum number of arguments in bits 8 to 14. If | |||
| 515 | the argument list uses @code{&rest}, then bit 7 is set; otherwise it's | 516 | the argument list uses @code{&rest}, then bit 7 is set; otherwise it's |
| 516 | cleared. | 517 | cleared. |
| 517 | 518 | ||
| 518 | If @var{argdesc} is a list, the arguments will be dynamically bound | 519 | When the closure is a byte-code function, |
| 520 | if @var{argdesc} is a list, the arguments will be dynamically bound | ||
| 519 | before executing the byte code. If @var{argdesc} is an integer, the | 521 | before executing the byte code. If @var{argdesc} is an integer, the |
| 520 | arguments will be instead pushed onto the stack of the byte-code | 522 | arguments will be instead pushed onto the stack of the byte-code |
| 521 | interpreter, before executing the code. | 523 | interpreter, before executing the code. |
| 522 | 524 | ||
| 523 | @item byte-code | 525 | @item code |
| 524 | The string containing the byte-code instructions. | 526 | For interpreted functions, this element is the (non-empty) list of Lisp |
| 527 | forms that make up the function's body. For byte-compiled functions, it | ||
| 528 | is the string containing the byte-code instructions. | ||
| 525 | 529 | ||
| 526 | @item constants | 530 | @item constants |
| 527 | The vector of Lisp objects referenced by the byte code. These include | 531 | For byte-compiled functions, this holds the vector of Lisp objects |
| 528 | symbols used as function names and variable names. | 532 | referenced by the byte code. These include symbols used as function |
| 533 | names and variable names. | ||
| 534 | For interpreted functions, this is @code{nil} if the function is using the old | ||
| 535 | dynamically scoped dialect of Emacs Lisp, and otherwise it holds the | ||
| 536 | function's lexical environment. | ||
| 529 | 537 | ||
| 530 | @item stacksize | 538 | @item stacksize |
| 531 | The maximum stack size this function needs. | 539 | The maximum stack size this function needs. This element is left unused |
| 540 | for interpreted functions. | ||
| 532 | 541 | ||
| 533 | @item docstring | 542 | @item docstring |
| 534 | The documentation string (if any); otherwise, @code{nil}. The value may | 543 | The documentation string (if any); otherwise, @code{nil}. The value may |
| @@ -558,8 +567,8 @@ representation. It is the definition of the command | |||
| 558 | @code{make-byte-code}: | 567 | @code{make-byte-code}: |
| 559 | 568 | ||
| 560 | @defun make-byte-code &rest elements | 569 | @defun make-byte-code &rest elements |
| 561 | This function constructs and returns a byte-code function object | 570 | This function constructs and returns a closure which represents the |
| 562 | with @var{elements} as its elements. | 571 | byte-code function object with @var{elements} as its elements. |
| 563 | @end defun | 572 | @end defun |
| 564 | 573 | ||
| 565 | You should not try to come up with the elements for a byte-code | 574 | You should not try to come up with the elements for a byte-code |
| @@ -567,6 +576,20 @@ function yourself, because if they are inconsistent, Emacs may crash | |||
| 567 | when you call the function. Always leave it to the byte compiler to | 576 | when you call the function. Always leave it to the byte compiler to |
| 568 | create these objects; it makes the elements consistent (we hope). | 577 | create these objects; it makes the elements consistent (we hope). |
| 569 | 578 | ||
| 579 | The primitive way to create an interpreted function is with | ||
| 580 | @code{make-interpreted-closure}: | ||
| 581 | |||
| 582 | @defun make-interpreted-closure args body env &optional docstring iform | ||
| 583 | This function constructs and returns a closure representing the | ||
| 584 | interpreted function with arguments @var{args} and whose body is made of | ||
| 585 | @var{body} which must be a non-@code{nil} list of Lisp forms. @var{env} is the | ||
| 586 | lexical environment in the same form as used with @code{eval} | ||
| 587 | (@pxref{Eval}). The documentation @var{docstring} if non-@code{nil} should be | ||
| 588 | a string, and the interactive form @var{iform} if non-@code{nil} should be of | ||
| 589 | the form @w{@code{(interactive @var{arg-descriptor})}} (@pxref{Using | ||
| 590 | Interactive}). | ||
| 591 | @end defun | ||
| 592 | |||
| 570 | @node Disassembly | 593 | @node Disassembly |
| 571 | @section Disassembled Byte-Code | 594 | @section Disassembled Byte-Code |
| 572 | @cindex disassembled byte-code | 595 | @cindex disassembled byte-code |
| @@ -595,7 +618,7 @@ name of an existing buffer. Then the output goes there, at point, and | |||
| 595 | point is left before the output. | 618 | point is left before the output. |
| 596 | 619 | ||
| 597 | The argument @var{object} can be a function name, a lambda expression | 620 | The argument @var{object} can be a function name, a lambda expression |
| 598 | (@pxref{Lambda Expressions}), or a byte-code object (@pxref{Byte-Code | 621 | (@pxref{Lambda Expressions}), or a byte-code object (@pxref{Closure |
| 599 | Objects}). If it is a lambda expression, @code{disassemble} compiles | 622 | Objects}). If it is a lambda expression, @code{disassemble} compiles |
| 600 | it and disassembles the resulting compiled code. | 623 | it and disassembles the resulting compiled code. |
| 601 | @end deffn | 624 | @end deffn |
diff --git a/doc/lispref/control.texi b/doc/lispref/control.texi index f9f3389c398..46024e2fdee 100644 --- a/doc/lispref/control.texi +++ b/doc/lispref/control.texi | |||
| @@ -2411,7 +2411,7 @@ point where we signaled the original error: | |||
| 2411 | @group | 2411 | @group |
| 2412 | Debugger entered--Lisp error: (error "Oops") | 2412 | Debugger entered--Lisp error: (error "Oops") |
| 2413 | signal(error ("Oops")) | 2413 | signal(error ("Oops")) |
| 2414 | (closure (t) (err) (signal 'error (cdr err)))((user-error "Oops")) | 2414 | #f(lambda (err) [t] (signal 'error (cdr err)))((user-error "Oops")) |
| 2415 | user-error("Oops") | 2415 | user-error("Oops") |
| 2416 | @dots{} | 2416 | @dots{} |
| 2417 | eval((handler-bind ((user-error (lambda (err) @dots{} | 2417 | eval((handler-bind ((user-error (lambda (err) @dots{} |
diff --git a/doc/lispref/elisp.texi b/doc/lispref/elisp.texi index ec93a0b9c8a..339272d1f05 100644 --- a/doc/lispref/elisp.texi +++ b/doc/lispref/elisp.texi | |||
| @@ -323,7 +323,7 @@ Programming Types | |||
| 323 | * Macro Type:: A method of expanding an expression into another | 323 | * Macro Type:: A method of expanding an expression into another |
| 324 | expression, more fundamental but less pretty. | 324 | expression, more fundamental but less pretty. |
| 325 | * Primitive Function Type:: A function written in C, callable from Lisp. | 325 | * Primitive Function Type:: A function written in C, callable from Lisp. |
| 326 | * Byte-Code Type:: A function written in Lisp, then compiled. | 326 | * Closure Type:: A function written in Lisp, then compiled. |
| 327 | * Record Type:: Compound objects with programmer-defined types. | 327 | * Record Type:: Compound objects with programmer-defined types. |
| 328 | * Type Descriptors:: Objects holding information about types. | 328 | * Type Descriptors:: Objects holding information about types. |
| 329 | * Autoload Type:: A type used for automatically loading seldom-used | 329 | * Autoload Type:: A type used for automatically loading seldom-used |
| @@ -657,7 +657,7 @@ Byte Compilation | |||
| 657 | * Docs and Compilation:: Dynamic loading of documentation strings. | 657 | * Docs and Compilation:: Dynamic loading of documentation strings. |
| 658 | * Eval During Compile:: Code to be evaluated when you compile. | 658 | * Eval During Compile:: Code to be evaluated when you compile. |
| 659 | * Compiler Errors:: Handling compiler error messages. | 659 | * Compiler Errors:: Handling compiler error messages. |
| 660 | * Byte-Code Objects:: The data type used for byte-compiled functions. | 660 | * Closure Objects:: The data type used for byte-compiled functions. |
| 661 | * Disassembly:: Disassembling byte-code; how to read byte-code. | 661 | * Disassembly:: Disassembling byte-code; how to read byte-code. |
| 662 | 662 | ||
| 663 | Native Compilation | 663 | Native Compilation |
diff --git a/doc/lispref/functions.texi b/doc/lispref/functions.texi index ff635fc54b2..c57de08460f 100644 --- a/doc/lispref/functions.texi +++ b/doc/lispref/functions.texi | |||
| @@ -130,7 +130,7 @@ it also encloses an environment of lexical variable bindings. | |||
| 130 | 130 | ||
| 131 | @item byte-code function | 131 | @item byte-code function |
| 132 | A function that has been compiled by the byte compiler. | 132 | A function that has been compiled by the byte compiler. |
| 133 | @xref{Byte-Code Type}. | 133 | @xref{Closure Type}. |
| 134 | 134 | ||
| 135 | @item autoload object | 135 | @item autoload object |
| 136 | @cindex autoload object | 136 | @cindex autoload object |
| @@ -227,6 +227,16 @@ Compilation}), or natively-compiled (@pxref{Native Compilation}), or | |||
| 227 | a function loaded from a dynamic module (@pxref{Dynamic Modules}). | 227 | a function loaded from a dynamic module (@pxref{Dynamic Modules}). |
| 228 | @end defun | 228 | @end defun |
| 229 | 229 | ||
| 230 | @defun interpreted-function-p object | ||
| 231 | This function returns @code{t} if @var{object} is an interpreted function. | ||
| 232 | @end defun | ||
| 233 | |||
| 234 | @defun closurep object | ||
| 235 | This function returns @code{t} if @var{object} is a closure, which is | ||
| 236 | a particular kind of function object. Currently closures are used | ||
| 237 | for all byte-code functions and all interpreted functions. | ||
| 238 | @end defun | ||
| 239 | |||
| 230 | @defun subr-arity subr | 240 | @defun subr-arity subr |
| 231 | This works like @code{func-arity}, but only for built-in functions and | 241 | This works like @code{func-arity}, but only for built-in functions and |
| 232 | without symbol indirection. It signals an error for non-built-in | 242 | without symbol indirection. It signals an error for non-built-in |
| @@ -1136,8 +1146,7 @@ Functions}). @xref{describe-symbols example}, for a realistic example | |||
| 1136 | of this. | 1146 | of this. |
| 1137 | 1147 | ||
| 1138 | When defining a lambda expression that is to be used as an anonymous | 1148 | When defining a lambda expression that is to be used as an anonymous |
| 1139 | function, you can in principle use any method to construct the list. | 1149 | function, you should use the @code{lambda} macro, or the |
| 1140 | But typically you should use the @code{lambda} macro, or the | ||
| 1141 | @code{function} special form, or the @code{#'} read syntax: | 1150 | @code{function} special form, or the @code{#'} read syntax: |
| 1142 | 1151 | ||
| 1143 | @defmac lambda args [doc] [interactive] body@dots{} | 1152 | @defmac lambda args [doc] [interactive] body@dots{} |
| @@ -1145,17 +1154,18 @@ This macro returns an anonymous function with argument list | |||
| 1145 | @var{args}, documentation string @var{doc} (if any), interactive spec | 1154 | @var{args}, documentation string @var{doc} (if any), interactive spec |
| 1146 | @var{interactive} (if any), and body forms given by @var{body}. | 1155 | @var{interactive} (if any), and body forms given by @var{body}. |
| 1147 | 1156 | ||
| 1148 | Under dynamic binding, this macro effectively makes @code{lambda} | 1157 | For example, this macro makes @code{lambda} forms almost self-quoting: |
| 1149 | forms self-quoting: evaluating a form whose @sc{car} is @code{lambda} | 1158 | evaluating a form whose @sc{car} is @code{lambda} yields a value that is |
| 1150 | yields the form itself: | 1159 | almost like the form itself: |
| 1151 | 1160 | ||
| 1152 | @example | 1161 | @example |
| 1153 | (lambda (x) (* x x)) | 1162 | (lambda (x) (* x x)) |
| 1154 | @result{} (lambda (x) (* x x)) | 1163 | @result{} #f(lambda (x) :dynbind (* x x)) |
| 1155 | @end example | 1164 | @end example |
| 1156 | 1165 | ||
| 1157 | Note that when evaluating under lexical binding the result is a | 1166 | When evaluating under lexical binding the result is a similar |
| 1158 | closure object (@pxref{Closures}). | 1167 | closure object, where the @code{:dynbind} marker is replaced by the |
| 1168 | captured variables (@pxref{Closures}). | ||
| 1159 | 1169 | ||
| 1160 | The @code{lambda} form has one other effect: it tells the Emacs | 1170 | The @code{lambda} form has one other effect: it tells the Emacs |
| 1161 | evaluator and byte-compiler that its argument is a function, by using | 1171 | evaluator and byte-compiler that its argument is a function, by using |
| @@ -1164,8 +1174,8 @@ evaluator and byte-compiler that its argument is a function, by using | |||
| 1164 | 1174 | ||
| 1165 | @defspec function function-object | 1175 | @defspec function function-object |
| 1166 | @cindex function quoting | 1176 | @cindex function quoting |
| 1167 | This special form returns @var{function-object} without evaluating it. | 1177 | This special form returns the function value of the @var{function-object}. |
| 1168 | In this, it is similar to @code{quote} (@pxref{Quoting}). But unlike | 1178 | In many ways, it is similar to @code{quote} (@pxref{Quoting}). But unlike |
| 1169 | @code{quote}, it also serves as a note to the Emacs evaluator and | 1179 | @code{quote}, it also serves as a note to the Emacs evaluator and |
| 1170 | byte-compiler that @var{function-object} is intended to be used as a | 1180 | byte-compiler that @var{function-object} is intended to be used as a |
| 1171 | function. Assuming @var{function-object} is a valid lambda | 1181 | function. Assuming @var{function-object} is a valid lambda |
| @@ -1495,7 +1505,7 @@ distinguish between a function cell that is void and one set to | |||
| 1495 | @group | 1505 | @group |
| 1496 | (defun bar (n) (+ n 2)) | 1506 | (defun bar (n) (+ n 2)) |
| 1497 | (symbol-function 'bar) | 1507 | (symbol-function 'bar) |
| 1498 | @result{} (lambda (n) (+ n 2)) | 1508 | @result{} #f(lambda (n) [t] (+ n 2)) |
| 1499 | @end group | 1509 | @end group |
| 1500 | @group | 1510 | @group |
| 1501 | (fset 'baz 'bar) | 1511 | (fset 'baz 'bar) |
| @@ -1608,7 +1618,7 @@ argument list and body forms as the remaining elements: | |||
| 1608 | @example | 1618 | @example |
| 1609 | ;; @r{lexical binding is enabled.} | 1619 | ;; @r{lexical binding is enabled.} |
| 1610 | (lambda (x) (* x x)) | 1620 | (lambda (x) (* x x)) |
| 1611 | @result{} (closure (t) (x) (* x x)) | 1621 | @result{} #f(lambda (x) [t] (* x x)) |
| 1612 | @end example | 1622 | @end example |
| 1613 | 1623 | ||
| 1614 | @noindent | 1624 | @noindent |
diff --git a/doc/lispref/lists.texi b/doc/lispref/lists.texi index 1409e51c0d4..06472539744 100644 --- a/doc/lispref/lists.texi +++ b/doc/lispref/lists.texi | |||
| @@ -1249,7 +1249,7 @@ this is not guaranteed to happen): | |||
| 1249 | 1249 | ||
| 1250 | @group | 1250 | @group |
| 1251 | (symbol-function 'add-foo) | 1251 | (symbol-function 'add-foo) |
| 1252 | @result{} (lambda (x) (nconc '(foo) x)) | 1252 | @result{} #f(lambda (x) [t] (nconc '(foo) x)) |
| 1253 | @end group | 1253 | @end group |
| 1254 | 1254 | ||
| 1255 | @group | 1255 | @group |
| @@ -1267,7 +1267,7 @@ this is not guaranteed to happen): | |||
| 1267 | 1267 | ||
| 1268 | @group | 1268 | @group |
| 1269 | (symbol-function 'add-foo) | 1269 | (symbol-function 'add-foo) |
| 1270 | @result{} (lambda (x) (nconc '(foo 1 2 3 4) x)) | 1270 | @result{} #f(lambda (x) [t] (nconc '(foo 1 2 3 4) x)) |
| 1271 | @end group | 1271 | @end group |
| 1272 | @end smallexample | 1272 | @end smallexample |
| 1273 | @end defun | 1273 | @end defun |
diff --git a/doc/lispref/objects.texi b/doc/lispref/objects.texi index aa1e073042f..cf703aba9c8 100644 --- a/doc/lispref/objects.texi +++ b/doc/lispref/objects.texi | |||
| @@ -244,7 +244,7 @@ latter are unique to Emacs Lisp. | |||
| 244 | * Macro Type:: A method of expanding an expression into another | 244 | * Macro Type:: A method of expanding an expression into another |
| 245 | expression, more fundamental but less pretty. | 245 | expression, more fundamental but less pretty. |
| 246 | * Primitive Function Type:: A function written in C, callable from Lisp. | 246 | * Primitive Function Type:: A function written in C, callable from Lisp. |
| 247 | * Byte-Code Type:: A function written in Lisp, then compiled. | 247 | * Closure Type:: A function written in Lisp. |
| 248 | * Record Type:: Compound objects with programmer-defined types. | 248 | * Record Type:: Compound objects with programmer-defined types. |
| 249 | * Type Descriptors:: Objects holding information about types. | 249 | * Type Descriptors:: Objects holding information about types. |
| 250 | * Autoload Type:: A type used for automatically loading seldom-used | 250 | * Autoload Type:: A type used for automatically loading seldom-used |
| @@ -1458,18 +1458,24 @@ with the name of the subroutine. | |||
| 1458 | @end group | 1458 | @end group |
| 1459 | @end example | 1459 | @end example |
| 1460 | 1460 | ||
| 1461 | @node Byte-Code Type | 1461 | @node Closure Type |
| 1462 | @subsection Byte-Code Function Type | 1462 | @subsection Closure Function Type |
| 1463 | 1463 | ||
| 1464 | @dfn{Byte-code function objects} are produced by byte-compiling Lisp | 1464 | @dfn{Closures} are function objects produced when turning a function |
| 1465 | code (@pxref{Byte Compilation}). Internally, a byte-code function | 1465 | definition into a function value. Closures are used both for |
| 1466 | object is much like a vector; however, the evaluator handles this data | 1466 | byte-compiled Lisp functions as well as for interpreted Lisp functions. |
| 1467 | type specially when it appears in a function call. @xref{Byte-Code | 1467 | Closures can be produced by byte-compiling Lisp code (@pxref{Byte |
| 1468 | Objects}. | 1468 | Compilation}) or simply by evaluating a lambda expression without |
| 1469 | compiling it, resulting in an interpreted function. Internally, | ||
| 1470 | a closure is much like a vector; however, the evaluator | ||
| 1471 | handles this data type specially when it appears in a function call. | ||
| 1472 | @xref{Closure Objects}. | ||
| 1469 | 1473 | ||
| 1470 | The printed representation and read syntax for a byte-code function | 1474 | The printed representation and read syntax for a byte-code function |
| 1471 | object is like that for a vector, with an additional @samp{#} before the | 1475 | object is like that for a vector, with an additional @samp{#} before the |
| 1472 | opening @samp{[}. | 1476 | opening @samp{[}. When printed for human consumption, it is printed as |
| 1477 | a special kind of list with an additional @samp{#f} before the opening | ||
| 1478 | @samp{(}. | ||
| 1473 | 1479 | ||
| 1474 | @node Record Type | 1480 | @node Record Type |
| 1475 | @subsection Record Type | 1481 | @subsection Record Type |
| @@ -2042,10 +2048,7 @@ with references to further information. | |||
| 2042 | @xref{Buffer Basics, bufferp}. | 2048 | @xref{Buffer Basics, bufferp}. |
| 2043 | 2049 | ||
| 2044 | @item byte-code-function-p | 2050 | @item byte-code-function-p |
| 2045 | @xref{Byte-Code Type, byte-code-function-p}. | 2051 | @xref{Closure Type, byte-code-function-p}. |
| 2046 | |||
| 2047 | @item compiled-function-p | ||
| 2048 | @xref{Byte-Code Type, compiled-function-p}. | ||
| 2049 | 2052 | ||
| 2050 | @item case-table-p | 2053 | @item case-table-p |
| 2051 | @xref{Case Tables, case-table-p}. | 2054 | @xref{Case Tables, case-table-p}. |
| @@ -2056,9 +2059,15 @@ with references to further information. | |||
| 2056 | @item char-table-p | 2059 | @item char-table-p |
| 2057 | @xref{Char-Tables, char-table-p}. | 2060 | @xref{Char-Tables, char-table-p}. |
| 2058 | 2061 | ||
| 2062 | @item closurep | ||
| 2063 | @xref{What Is a Function, closurep}. | ||
| 2064 | |||
| 2059 | @item commandp | 2065 | @item commandp |
| 2060 | @xref{Interactive Call, commandp}. | 2066 | @xref{Interactive Call, commandp}. |
| 2061 | 2067 | ||
| 2068 | @item compiled-function-p | ||
| 2069 | @xref{Closure Type, compiled-function-p}. | ||
| 2070 | |||
| 2062 | @item condition-variable-p | 2071 | @item condition-variable-p |
| 2063 | @xref{Condition Variables, condition-variable-p}. | 2072 | @xref{Condition Variables, condition-variable-p}. |
| 2064 | 2073 | ||
| @@ -2098,6 +2107,9 @@ with references to further information. | |||
| 2098 | @item integerp | 2107 | @item integerp |
| 2099 | @xref{Predicates on Numbers, integerp}. | 2108 | @xref{Predicates on Numbers, integerp}. |
| 2100 | 2109 | ||
| 2110 | @item interpreted-function-p | ||
| 2111 | @xref{What Is a Function, interpreted-function-p}. | ||
| 2112 | |||
| 2101 | @item keymapp | 2113 | @item keymapp |
| 2102 | @xref{Creating Keymaps, keymapp}. | 2114 | @xref{Creating Keymaps, keymapp}. |
| 2103 | 2115 | ||
diff --git a/doc/lispref/sequences.texi b/doc/lispref/sequences.texi index c9e47624878..4c5525f10c5 100644 --- a/doc/lispref/sequences.texi +++ b/doc/lispref/sequences.texi | |||
| @@ -1583,7 +1583,7 @@ nonempty vector that is not @code{eq} to any existing vector. | |||
| 1583 | 1583 | ||
| 1584 | The @code{vconcat} function also allows byte-code function objects as | 1584 | The @code{vconcat} function also allows byte-code function objects as |
| 1585 | arguments. This is a special feature to make it easy to access the entire | 1585 | arguments. This is a special feature to make it easy to access the entire |
| 1586 | contents of a byte-code function object. @xref{Byte-Code Objects}. | 1586 | contents of a byte-code function object. @xref{Closure Objects}. |
| 1587 | 1587 | ||
| 1588 | For other concatenation functions, see @code{mapconcat} in @ref{Mapping | 1588 | For other concatenation functions, see @code{mapconcat} in @ref{Mapping |
| 1589 | Functions}, @code{concat} in @ref{Creating Strings}, and @code{append} | 1589 | Functions}, @code{concat} in @ref{Creating Strings}, and @code{append} |
diff --git a/doc/lispref/variables.texi b/doc/lispref/variables.texi index 4d61d461deb..16b6b52e5f1 100644 --- a/doc/lispref/variables.texi +++ b/doc/lispref/variables.texi | |||
| @@ -1079,7 +1079,7 @@ Here is an example: | |||
| 1079 | (let ((x 0)) ; @r{@code{x} is lexically bound.} | 1079 | (let ((x 0)) ; @r{@code{x} is lexically bound.} |
| 1080 | (setq my-ticker (lambda () | 1080 | (setq my-ticker (lambda () |
| 1081 | (setq x (1+ x))))) | 1081 | (setq x (1+ x))))) |
| 1082 | @result{} (closure ((x . 0)) () | 1082 | @result{} #f(lambda () [(x 0)] |
| 1083 | (setq x (1+ x))) | 1083 | (setq x (1+ x))) |
| 1084 | 1084 | ||
| 1085 | (funcall my-ticker) | 1085 | (funcall my-ticker) |