1 ;;; calc-vec.el --- vector functions for Calc
3 ;; Copyright (C) 1990-1993, 2001-2016 Free Software Foundation, Inc.
5 ;; Author: David Gillespie <daveg@synaptics.com>
7 ;; This file is part of GNU Emacs.
9 ;; GNU Emacs is free software: you can redistribute it and/or modify
10 ;; it under the terms of the GNU General Public License as published by
11 ;; the Free Software Foundation, either version 3 of the License, or
12 ;; (at your option) any later version.
14 ;; GNU Emacs is distributed in the hope that it will be useful,
15 ;; but WITHOUT ANY WARRANTY; without even the implied warranty of
16 ;; MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 ;; GNU General Public License for more details.
19 ;; You should have received a copy of the GNU General Public License
20 ;; along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>.
26 ;; This file is autoloaded from calc-ext.el.
31 ;; Declare functions which are defined elsewhere.
32 (declare-function math-read-expr-level
"calc-aent" (exp-prec &optional exp-term
))
35 (defun calc-display-strings (n)
38 (message (if (calc-change-mode 'calc-display-strings n t t
)
39 "Displaying vectors of integers as quoted strings"
40 "Displaying vectors of integers normally"))))
46 (let* ((nn (if n
1 2))
47 (mode (if n
(prefix-numeric-value n
) (calc-top-n 1)))
48 (mode (if (and (Math-vectorp mode
) (cdr mode
)) (cdr mode
)
49 (if (integerp mode
) mode
50 (error "Packing mode must be an integer or vector of integers"))))
51 (num (calc-pack-size mode
))
52 (items (calc-top-list num nn
)))
53 (calc-enter-result (+ nn num -
1) "pack" (calc-pack-items mode items
)))))
55 (defun calc-pack-size (mode)
59 (or (integerp (car mode
)) (error "Vector of integers expected"))
60 (setq size
(* size
(calc-pack-size (car mode
)))
63 (error "Zero dimensions not allowed")
66 (t (or (cdr (assq mode
'((-3 .
3) (-13 .
1) (-14 .
3) (-15 .
6))))
69 (defun calc-pack-items (mode items
)
72 (let* ((size (calc-pack-size (cdr mode
)))
77 (setq p
(nthcdr (1- size
) items
)
82 (setq new
(cons (calc-pack-items (cdr mode
) row
) new
)))
83 (calc-pack-items (car mode
) (nreverse new
)))
84 (calc-pack-items (car mode
) items
)))
88 (if (and (math-objvecp (car items
))
89 (math-objvecp (nth 1 items
))
90 (math-objvecp (nth 2 items
)))
91 (if (and (math-num-integerp (car items
))
92 (math-num-integerp (nth 1 items
)))
93 (if (math-realp (nth 2 items
))
95 (error "Seconds must be real"))
96 (error "Hours and minutes must be integers"))
97 (math-normalize (list '+
99 (if (eq calc-angle-mode
'rad
)
103 (list '* (nth 1 items
) '(hms 0 1 0)))
104 (list '* (nth 2 items
) '(hms 0 0 1))))))
106 (if (math-realp (car items
))
108 (if (eq (car-safe (car items
)) 'date
)
110 (if (math-objvecp (car items
))
111 (error "Date value must be real")
112 (cons 'calcFunc-date items
)))))
113 ((memq mode
'(-14 -
15))
115 (while (and p
(math-objvecp (car p
)))
116 (or (math-integerp (car p
))
117 (error "Components must be integers"))
120 (cons 'calcFunc-date items
)
121 (list 'date
(math-dt-to-date items
)))))
122 ((or (eq (car-safe (car items
)) 'vec
)
123 (eq (car-safe (nth 1 items
)) 'vec
))
124 (let* ((x (car items
))
125 (vx (eq (car-safe x
) 'vec
))
127 (vy (eq (car-safe y
) 'vec
))
129 (n (1- (length (if vx x y
)))))
131 (/= n
(1- (length y
)))
132 (error "Vectors must be the same length"))
133 (while (>= (setq n
(1- n
)) 0)
134 (setq z
(cons (calc-pack-items
136 (list (if vx
(car (setq x
(cdr x
))) x
)
137 (if vy
(car (setq y
(cdr y
))) y
)))
139 (cons 'vec
(nreverse z
))))
141 (if (and (math-realp (car items
)) (math-realp (nth 1 items
)))
143 (if (and (math-objectp (car items
)) (math-objectp (nth 1 items
)))
144 (error "Components must be real"))
145 (math-normalize (list '+ (car items
)
146 (list '* (nth 1 items
) '(cplx 0 1))))))
148 (if (and (math-realp (car items
)) (math-anglep (nth 1 items
)))
150 (if (and (math-objectp (car items
)) (math-objectp (nth 1 items
)))
151 (error "Components must be real"))
152 (math-normalize (list '* (car items
)
153 (if (math-anglep (nth 1 items
))
154 (list 'polar
1 (nth 1 items
))
164 (let ((x (car items
))
165 (sigma (nth 1 items
)))
166 (if (or (math-scalarp x
) (not (math-objvecp x
)))
167 (if (or (math-anglep sigma
) (not (math-objvecp sigma
)))
168 (math-make-sdev x sigma
)
169 (error "Error component must be real"))
170 (error "Mean component must be real or complex"))))
172 (let ((a (car items
))
174 (if (and (math-anglep a
) (math-anglep m
))
177 (error "Modulus must be positive"))
178 (if (and (math-objectp a
) (math-objectp m
))
179 (error "Components must be real"))
180 (list 'calcFunc-makemod a m
))))
181 ((memq mode
'(-6 -
7 -
8 -
9))
182 (let ((lo (car items
))
184 (if (and (or (math-anglep lo
) (eq (car lo
) 'date
)
185 (not (math-objvecp lo
)))
186 (or (math-anglep hi
) (eq (car hi
) 'date
)
187 (not (math-objvecp hi
))))
188 (math-make-intv (+ mode
9) lo hi
)
189 (error "Components must be real"))))
191 (if (math-zerop (nth 1 items
))
192 (error "Denominator must not be zero")
193 (if (and (math-integerp (car items
)) (math-integerp (nth 1 items
)))
194 (math-normalize (cons 'frac items
))
195 (if (and (math-objectp (car items
)) (math-objectp (nth 1 items
)))
196 (error "Components must be integers"))
197 (cons 'calcFunc-fdiv items
))))
198 ((memq mode
'(-11 -
12))
199 (if (and (math-realp (car items
)) (math-integerp (nth 1 items
)))
200 (calcFunc-scf (math-float (car items
)) (nth 1 items
))
201 (if (and (math-objectp (car items
)) (math-objectp (nth 1 items
)))
202 (error "Components must be integers"))
205 (list 'calcFunc-float
(car items
))
208 (error "Invalid packing mode: %d" mode
))))
210 (defvar calc-unpack-with-type nil
)
211 (defun calc-unpack (mode)
214 (let ((calc-unpack-with-type t
))
215 (calc-pop-push-record-list 1 "unpk" (calc-unpack-item
217 (prefix-numeric-value mode
))
220 (defun calc-unpack-type (item)
221 (cond ((eq (car-safe item
) 'vec
)
223 ((eq (car-safe item
) 'intv
)
226 (or (cdr (assq (car-safe item
) '( (cplx . -
1) (polar . -
2)
227 (hms . -
3) (sdev . -
4) (mod . -
5)
228 (frac . -
10) (float . -
11)
230 (error "Argument must be a composite object")))))
232 (defun calc-unpack-item (mode item
)
234 (if (or (and (not (memq (car-safe item
) '(frac float cplx polar vec
238 (eq (car-safe item
) 'var
))
239 (error "Argument must be a composite object or function call"))
240 (if (eq (car item
) 'intv
)
246 (setq item
(list item
))
248 (setq type
(calc-unpack-type (car item
))
249 dims
(cons type dims
)
250 new
(calc-unpack-item nil
(car item
)))
251 (while (setq item
(cdr item
))
252 (or (= (calc-unpack-type (car item
)) type
)
253 (error "Inconsistent types or dimensions in vector elements"))
254 (setq new
(append new
(calc-unpack-item nil
(car item
)))))
257 (if (cdr dims
) (setq dims
(list (cons 'vec
(nreverse dims
)))))
258 (cond ((eq calc-unpack-with-type
'pair
)
259 (list (car dims
) (cons 'vec item
)))
260 (calc-unpack-with-type
263 ((eq calc-unpack-with-type
'pair
)
264 (let ((calc-unpack-with-type nil
))
265 (list mode
(cons 'vec
(calc-unpack-item mode item
)))))
267 (if (eq (car-safe item
) 'hms
)
269 (error "Argument must be an HMS form")))
271 (if (eq (car-safe item
) 'date
)
273 (error "Argument must be a date form")))
275 (if (eq (car-safe item
) 'date
)
276 (math-date-to-dt (math-floor (nth 1 item
)))
277 (error "Argument must be a date form")))
279 (if (eq (car-safe item
) 'date
)
280 (append (math-date-to-dt (nth 1 item
))
281 (and (not (math-integerp (nth 1 item
)))
283 (error "Argument must be a date form")))
284 ((eq (car-safe item
) 'vec
)
288 (while (setq item
(cdr item
))
289 (setq res
(calc-unpack-item mode
(car item
))
291 y
(cons (nth 1 res
) y
)))
292 (list (cons 'vec
(nreverse x
))
293 (cons 'vec
(nreverse y
)))))
295 (if (eq (car-safe item
) 'cplx
)
297 (if (eq (car-safe item
) 'polar
)
298 (cdr (math-complex item
))
299 (if (Math-realp item
)
301 (error "Argument must be a complex number")))))
303 (if (or (memq (car-safe item
) '(cplx polar
))
305 (cdr (math-polar item
))
306 (error "Argument must be a complex number")))
308 (if (eq (car-safe item
) 'sdev
)
312 (if (eq (car-safe item
) 'mod
)
314 (error "Argument must be a modulo form")))
315 ((memq mode
'(-6 -
7 -
8 -
9))
316 (if (eq (car-safe item
) 'intv
)
320 (if (eq (car-safe item
) 'frac
)
322 (if (Math-integerp item
)
324 (error "Argument must be a rational number"))))
326 (if (eq (car-safe item
) 'float
)
327 (list (nth 1 item
) (math-normalize (nth 2 item
)))
328 (error "Expected a floating-point number")))
330 (if (eq (car-safe item
) 'float
)
331 (list (calcFunc-mant item
) (calcFunc-xpon item
))
332 (error "Expected a floating-point number")))
334 (error "Invalid unpacking mode: %d" mode
))))
339 (calc-enter-result 1 "diag" (if n
340 (list 'calcFunc-diag
(calc-top-n 1)
341 (prefix-numeric-value n
))
342 (list 'calcFunc-diag
(calc-top-n 1))))))
344 (defun calc-ident (n)
345 (interactive "NDimension of identity matrix = ")
347 (calc-enter-result 0 "idn" (if (eq n
0)
349 (list 'calcFunc-idn
1
350 (prefix-numeric-value n
))))))
352 (defun calc-index (n &optional stack
)
353 (interactive "NSize of vector = \nP")
356 (calc-enter-result 3 "indx" (cons 'calcFunc-index
(calc-top-list-n 3)))
357 (calc-enter-result 0 "indx" (list 'calcFunc-index
358 (prefix-numeric-value n
))))))
360 (defun calc-build-vector (n)
361 (interactive "NSize of vector = ")
363 (calc-enter-result 1 "bldv" (list 'calcFunc-cvec
365 (prefix-numeric-value n
)))))
367 (defun calc-cons (arg)
370 (if (calc-is-hyperbolic)
371 (calc-binary-op "rcns" 'calcFunc-rcons arg
)
372 (calc-binary-op "cons" 'calcFunc-cons arg
))))
375 (defun calc-head (arg)
378 (if (calc-is-inverse)
379 (if (calc-is-hyperbolic)
380 (calc-unary-op "rtai" 'calcFunc-rtail arg
)
381 (calc-unary-op "tail" 'calcFunc-tail arg
))
382 (if (calc-is-hyperbolic)
383 (calc-unary-op "rhed" 'calcFunc-rhead arg
)
384 (calc-unary-op "head" 'calcFunc-head arg
)))))
386 (defun calc-tail (arg)
391 (defun calc-vlength (arg)
394 (if (calc-is-hyperbolic)
395 (calc-unary-op "dims" 'calcFunc-mdims arg
)
396 (calc-unary-op "len" 'calcFunc-vlen arg
))))
398 (defun calc-arrange-vector (n)
399 (interactive "NNumber of columns = ")
401 (calc-enter-result 1 "arng" (list 'calcFunc-arrange
(calc-top-n 1)
402 (prefix-numeric-value n
)))))
404 (defun calc-vector-find (arg)
407 (let ((func (cons 'calcFunc-find
(calc-top-list-n 2))))
410 (if arg
(append func
(list (prefix-numeric-value arg
))) func
)))))
412 (defun calc-subvector ()
415 (if (calc-is-inverse)
416 (calc-enter-result 3 "rsvc" (cons 'calcFunc-rsubvec
417 (calc-top-list-n 3)))
418 (calc-enter-result 3 "svec" (cons 'calcFunc-subvec
(calc-top-list-n 3))))))
420 (defun calc-reverse-vector (arg)
423 (calc-unary-op "rev" 'calcFunc-rev arg
)))
425 (defun calc-mask-vector (arg)
428 (calc-binary-op "vmsk" 'calcFunc-vmask arg
)))
430 (defun calc-expand-vector (arg)
433 (if (calc-is-hyperbolic)
434 (calc-enter-result 3 "vexp" (cons 'calcFunc-vexp
(calc-top-list-n 3)))
435 (calc-binary-op "vexp" 'calcFunc-vexp arg
))))
440 (if (calc-is-inverse)
441 (calc-enter-result 1 "rsrt" (list 'calcFunc-rsort
(calc-top-n 1)))
442 (calc-enter-result 1 "sort" (list 'calcFunc-sort
(calc-top-n 1))))))
447 (if (calc-is-inverse)
448 (calc-enter-result 1 "rgrd" (list 'calcFunc-rgrade
(calc-top-n 1)))
449 (calc-enter-result 1 "grad" (list 'calcFunc-grade
(calc-top-n 1))))))
451 (defun calc-histogram (n)
454 (setq n
(math-read-expr (read-string "Centers of bins: "))))
456 (if calc-hyperbolic-flag
457 (calc-enter-result 2 "hist" (list 'calcFunc-histogram
461 (calc-enter-result 1 "hist" (list 'calcFunc-histogram
465 (defun calc-transpose (arg)
468 (calc-unary-op "trn" 'calcFunc-trn arg
)))
470 (defun calc-conj-transpose (arg)
473 (calc-unary-op "ctrn" 'calcFunc-ctrn arg
)))
475 (defun calc-cross (arg)
478 (calc-binary-op "cros" 'calcFunc-cross arg
)))
480 (defun calc-kron (arg)
483 (calc-binary-op "kron" 'calcFunc-kron arg
)))
485 (defun calc-remove-duplicates (arg)
488 (calc-unary-op "rdup" 'calcFunc-rdup arg
)))
490 (defun calc-set-union (arg)
493 (calc-binary-op "unio" 'calcFunc-vunion arg
'(vec) 'calcFunc-rdup
)))
495 (defun calc-set-intersect (arg)
498 (calc-binary-op "intr" 'calcFunc-vint arg
'(vec) 'calcFunc-rdup
)))
500 (defun calc-set-difference (arg)
503 (calc-binary-op "diff" 'calcFunc-vdiff arg
'(vec) 'calcFunc-rdup
)))
505 (defun calc-set-xor (arg)
508 (calc-binary-op "xor" 'calcFunc-vxor arg
'(vec) 'calcFunc-rdup
)))
510 (defun calc-set-complement (arg)
513 (calc-unary-op "cmpl" 'calcFunc-vcompl arg
)))
515 (defun calc-set-floor (arg)
518 (calc-unary-op "vflr" 'calcFunc-vfloor arg
)))
520 (defun calc-set-enumerate (arg)
523 (calc-unary-op "enum" 'calcFunc-venum arg
)))
525 (defun calc-set-span (arg)
528 (calc-unary-op "span" 'calcFunc-vspan arg
)))
530 (defun calc-set-cardinality (arg)
533 (calc-unary-op "card" 'calcFunc-vcard arg
)))
535 (defun calc-unpack-bits (arg)
538 (if (calc-is-inverse)
539 (calc-unary-op "bpck" 'calcFunc-vpack arg
)
540 (calc-unary-op "bupk" 'calcFunc-vunpack arg
))))
542 (defun calc-pack-bits (arg)
545 (calc-unpack-bits arg
))
548 (defun calc-rnorm (arg)
551 (calc-unary-op "rnrm" 'calcFunc-rnorm arg
)))
553 (defun calc-cnorm (arg)
556 (calc-unary-op "cnrm" 'calcFunc-cnorm arg
)))
558 (defun calc-mrow (n &optional nn
)
559 (interactive "NRow number: \nP")
562 (calc-enter-result 2 "mrow" (cons 'calcFunc-mrow
(calc-top-list-n 2)))
563 (setq n
(prefix-numeric-value n
))
565 (calc-enter-result 1 "getd" (list 'calcFunc-getdiag
(calc-top-n 1)))
567 (calc-enter-result 1 "rrow" (list 'calcFunc-mrrow
568 (calc-top-n 1) (- n
)))
569 (calc-enter-result 1 "mrow" (list 'calcFunc-mrow
570 (calc-top-n 1) n
)))))))
572 (defun calc-mcol (n &optional nn
)
573 (interactive "NColumn number: \nP")
576 (calc-enter-result 2 "mcol" (cons 'calcFunc-mcol
(calc-top-list-n 2)))
577 (setq n
(prefix-numeric-value n
))
579 (calc-enter-result 1 "getd" (list 'calcFunc-getdiag
(calc-top-n 1)))
581 (calc-enter-result 1 "rcol" (list 'calcFunc-mrcol
582 (calc-top-n 1) (- n
)))
583 (calc-enter-result 1 "mcol" (list 'calcFunc-mcol
584 (calc-top-n 1) n
)))))))
589 (defun calcFunc-mdims (m)
591 (math-reject-arg m
'vectorp
))
592 (cons 'vec
(math-mat-dimens m
)))
595 ;;; Apply a function elementwise to vector A. [V X V; N X N] [Public]
596 (defun math-map-vec (f a
)
598 (cons 'vec
(mapcar f
(cdr a
)))
601 (defun math-dimension-error ()
602 (calc-record-why "*Dimension error")
603 (signal 'wrong-type-argument nil
))
606 ;;; Build a vector out of a list of objects. [Public]
607 (defun calcFunc-vec (&rest objs
)
611 ;;; Build a constant vector or matrix. [Public]
612 (defun calcFunc-cvec (obj &rest dims
)
613 (math-make-vec-dimen obj dims
))
615 (defun math-make-vec-dimen (obj dims
)
617 (if (natnump (car dims
))
619 (not (math-numberp obj
)))
620 (cons 'vec
(copy-sequence
621 (make-list (car dims
)
622 (math-make-vec-dimen obj
(cdr dims
)))))
623 (cons 'vec
(make-list (car dims
) obj
)))
624 (math-reject-arg (car dims
) 'fixnatnump
))
627 (defun calcFunc-head (vec)
628 (if (and (Math-vectorp vec
)
631 (calc-record-why 'vectorp vec
)
632 (list 'calcFunc-head vec
)))
634 (defun calcFunc-tail (vec)
635 (if (and (Math-vectorp vec
)
637 (cons 'vec
(cdr (cdr vec
)))
638 (calc-record-why 'vectorp vec
)
639 (list 'calcFunc-tail vec
)))
641 (defun calcFunc-cons (head tail
)
642 (if (Math-vectorp tail
)
643 (cons 'vec
(cons head
(cdr tail
)))
644 (calc-record-why 'vectorp tail
)
645 (list 'calcFunc-cons head tail
)))
647 (defun calcFunc-rhead (vec)
648 (if (and (Math-vectorp vec
)
650 (let ((vec (copy-sequence vec
)))
651 (setcdr (nthcdr (- (length vec
) 2) vec
) nil
)
653 (calc-record-why 'vectorp vec
)
654 (list 'calcFunc-rhead vec
)))
656 (defun calcFunc-rtail (vec)
657 (if (and (Math-vectorp vec
)
659 (nth (1- (length vec
)) vec
)
660 (calc-record-why 'vectorp vec
)
661 (list 'calcFunc-rtail vec
)))
663 (defun calcFunc-rcons (head tail
)
664 (if (Math-vectorp head
)
665 (append head
(list tail
))
666 (calc-record-why 'vectorp head
)
667 (list 'calcFunc-rcons head tail
)))
671 ;;; Apply a function elementwise to vectors A and B. [O X O O] [Public]
672 (defun math-map-vec-2 (f a b
)
676 (while (setq a
(cdr a
))
678 (math-dimension-error))
679 (setq v
(cons (funcall f
(car a
) (car b
)) v
)))
680 (if a
(math-dimension-error))
681 (cons 'vec
(nreverse v
)))
683 (while (setq a
(cdr a
))
684 (setq v
(cons (funcall f
(car a
) b
) v
)))
685 (cons 'vec
(nreverse v
))))
688 (while (setq b
(cdr b
))
689 (setq v
(cons (funcall f a
(car b
)) v
)))
690 (cons 'vec
(nreverse v
)))
695 ;;; "Reduce" a function over a vector (left-associatively). [O X V] [Public]
696 (defun math-reduce-vec (f a
)
699 (let ((accum (car (setq a
(cdr a
)))))
700 (while (setq a
(cdr a
))
701 (setq accum
(funcall f accum
(car a
))))
706 ;;; Reduce a function over the columns of matrix A. [V X V] [Public]
707 (defun math-reduce-cols (f a
)
709 (cons 'vec
(math-reduce-cols-col-step f
(cdr a
) 1 (length (nth 1 a
))))
712 (defun math-reduce-cols-col-step (f a col cols
)
714 (cons (math-reduce-cols-row-step f
(nth col
(car a
)) col
(cdr a
))
715 (math-reduce-cols-col-step f a
(1+ col
) cols
))))
717 (defun math-reduce-cols-row-step (f tot col a
)
719 (math-reduce-cols-row-step f
720 (funcall f tot
(nth col
(car a
)))
727 (defun math-dot-product (a b
)
728 (if (setq a
(cdr a
) b
(cdr b
))
729 (let ((accum (math-mul (car a
) (car b
))))
730 (while (setq a
(cdr a
) b
(cdr b
))
731 (setq accum
(math-add accum
(math-mul (car a
) (car b
)))))
736 ;;; Return the number of elements in vector V. [Public]
737 (defun calcFunc-vlen (v)
742 (list 'calcFunc-vlen v
))))
744 ;;; Get the Nth row of a matrix.
745 (defun calcFunc-mrow (mat n
) ; [Public]
747 (math-map-vec (function (lambda (x) (calcFunc-mrow mat x
))) n
)
748 (if (and (eq (car-safe n
) 'intv
) (math-constp n
))
750 (math-add (nth 2 n
) (if (memq (nth 1 n
) '(2 3)) 0 1))
751 (math-add (nth 3 n
) (if (memq (nth 1 n
) '(1 3)) 1 0)))
752 (or (and (integerp (setq n
(math-check-integer n
)))
754 (math-reject-arg n
'fixposintp
))
755 (or (Math-vectorp mat
)
756 (math-reject-arg mat
'vectorp
))
758 (math-reject-arg n
"*Index out of range")))))
760 (defun calcFunc-subscr (mat n
&optional m
)
761 (if (eq (car-safe mat
) 'var
) nil
762 (setq mat
(calcFunc-mrow mat n
))
764 (if (math-num-integerp n
)
765 (calcFunc-mrow mat m
)
766 (calcFunc-mcol mat m
))
769 ;;; Get the Nth column of a matrix.
770 (defun math-mat-col (mat n
)
771 (cons 'vec
(mapcar (function (lambda (x) (elt x n
))) (cdr mat
))))
773 (defun calcFunc-mcol (mat n
) ; [Public]
776 (math-map-vec (function (lambda (x) (calcFunc-mcol mat x
))) n
))
777 (if (and (eq (car-safe n
) 'intv
) (math-constp n
))
778 (if (math-matrixp mat
)
779 (math-map-vec (function (lambda (x) (calcFunc-mrow x n
))) mat
)
780 (calcFunc-mrow mat n
))
781 (or (and (integerp (setq n
(math-check-integer n
)))
783 (math-reject-arg n
'fixposintp
))
784 (or (Math-vectorp mat
)
785 (math-reject-arg mat
'vectorp
))
786 (or (if (math-matrixp mat
)
787 (and (< n
(length (nth 1 mat
)))
788 (math-mat-col mat n
))
790 (math-reject-arg n
"*Index out of range")))))
792 ;;; Remove the Nth row from a matrix.
793 (defun math-mat-less-row (mat n
)
797 (math-mat-less-row (cdr mat
) (1- n
)))))
799 (defun calcFunc-mrrow (mat n
) ; [Public]
800 (and (integerp (setq n
(math-check-integer n
)))
803 (math-mat-less-row mat n
)))
805 ;;; Remove the Nth column from a matrix.
806 (defun math-mat-less-col (mat n
)
807 (cons 'vec
(mapcar (function (lambda (x) (math-mat-less-row x n
)))
810 (defun calcFunc-mrcol (mat n
) ; [Public]
811 (and (integerp (setq n
(math-check-integer n
)))
813 (if (math-matrixp mat
)
814 (and (< n
(length (nth 1 mat
)))
815 (math-mat-less-col mat n
))
816 (math-mat-less-row mat n
))))
818 (defun calcFunc-getdiag (mat) ; [Public]
819 (if (math-square-matrixp mat
)
820 (cons 'vec
(math-get-diag-step (cdr mat
) 1))
821 (calc-record-why 'square-matrixp mat
)
822 (list 'calcFunc-getdiag mat
)))
824 (defun math-get-diag-step (row n
)
826 (cons (nth n
(car row
))
827 (math-get-diag-step (cdr row
) (1+ n
)))))
829 (defun math-transpose (mat) ; [Public]
831 (col (length (nth 1 mat
))))
832 (while (> (setq col
(1- col
)) 0)
833 (setq m
(cons (math-mat-col mat col
) m
)))
836 (defun calcFunc-trn (mat)
837 (if (math-vectorp mat
)
838 (if (math-matrixp mat
)
840 (math-col-matrix mat
))
841 (if (math-numberp mat
)
843 (math-reject-arg mat
'matrixp
))))
845 (defun calcFunc-ctrn (mat)
846 (calcFunc-conj (calcFunc-trn mat
)))
848 (defun calcFunc-pack (mode els
)
849 (or (Math-vectorp els
) (math-reject-arg els
'vectorp
))
850 (if (and (Math-vectorp mode
) (cdr mode
))
851 (setq mode
(cdr mode
))
852 (or (integerp mode
) (math-reject-arg mode
'fixnump
)))
854 (if (= (calc-pack-size mode
) (1- (length els
)))
855 (calc-pack-items mode
(cdr els
))
856 (math-reject-arg els
"*Wrong number of elements"))
857 (error (math-reject-arg els
(nth 1 err
)))))
859 (defun calcFunc-unpack (mode thing
)
860 (or (integerp mode
) (math-reject-arg mode
'fixnump
))
862 (cons 'vec
(calc-unpack-item mode thing
))
863 (error (math-reject-arg thing
(nth 1 err
)))))
865 (defun calcFunc-unpackt (mode thing
)
866 (let ((calc-unpack-with-type 'pair
))
867 (calcFunc-unpack mode thing
)))
869 (defun calcFunc-arrange (vec cols
) ; [Public]
870 (setq cols
(math-check-fixnum cols t
))
871 (if (math-vectorp vec
)
872 (let* ((flat (math-flatten-vector vec
))
877 (while (>= (length flat
) cols
)
878 (setq next
(nthcdr cols flat
))
879 (setcdr (nthcdr (1- cols
) flat
) nil
)
880 (setq mat
(nconc mat
(list (cons 'vec flat
)))
883 (setq mat
(nconc mat
(list (cons 'vec flat
)))))
886 (defun math-flatten-vector (vec) ; [L V]
887 (if (math-vectorp vec
)
888 (apply 'append
(mapcar 'math-flatten-vector
(cdr vec
)))
891 (defun calcFunc-vconcat (a b
)
892 (math-normalize (list '| a b
)))
894 (defun calcFunc-vconcatrev (a b
)
895 (math-normalize (list '| b a
)))
897 (defun calcFunc-append (v1 v2
)
898 (if (and (math-vectorp v1
) (math-vectorp v2
))
900 (list 'calcFunc-append v1 v2
)))
902 (defun calcFunc-appendrev (v1 v2
)
903 (calcFunc-append v2 v1
))
906 ;;; Copy a matrix. [Public]
907 (defun math-copy-matrix (m)
908 (if (math-vectorp (nth 1 m
))
909 (cons 'vec
(mapcar 'copy-sequence
(cdr m
)))
912 ;;; Convert a scalar or vector into an NxN diagonal matrix. [Public]
913 (defun calcFunc-diag (a &optional n
)
914 (and n
(not (integerp n
))
915 (setq n
(math-check-fixnum n
)))
917 (if (and n
(/= (length a
) (1+ n
)))
918 (list 'calcFunc-diag a n
)
920 (if (and n
(/= (length (elt a
1)) (1+ n
)))
921 (list 'calcFunc-diag a n
)
923 (cons 'vec
(math-diag-step (cdr a
) 0 (1- (length a
))))))
925 (cons 'vec
(math-diag-step (make-list n a
) 0 n
))
926 (list 'calcFunc-diag a
))))
928 (defun calcFunc-idn (a &optional n
)
931 (math-reject-arg a
'numberp
)
933 (if (integerp calc-matrix-mode
)
934 (calcFunc-idn a calc-matrix-mode
)
935 (list 'calcFunc-idn a
))))
937 (defun math-mimic-ident (a m
)
938 (if (math-square-matrixp m
)
939 (calcFunc-idn a
(1- (length m
)))
942 (cons 'vec
(mapcar (function (lambda (x)
944 (math-mimic-ident a x
)
947 (math-dimension-error))
950 (defun math-diag-step (a n m
)
953 (nconc (make-list n
0)
955 (make-list (1- (- m n
)) 0))))
956 (math-diag-step (cdr a
) (1+ n
) m
))
959 ;;; Create a vector of consecutive integers. [Public]
960 (defun calcFunc-index (n &optional start incr
)
961 (if (math-messy-integerp n
)
962 (math-float (calcFunc-index (math-trunc n
) start incr
))
963 (and (not (integerp n
))
964 (setq n
(math-check-fixnum n
)))
969 (while (>= (setq n
(1- n
)) 0)
970 (setq vec
(cons start vec
)
971 start
(math-add start
(or incr
1))))
972 (while (<= (setq n
(1+ n
)) 0)
973 (setq vec
(cons start vec
)
974 start
(math-mul start
(or incr
2)))))
975 (setq vec
(nreverse vec
)))
978 (setq vec
(cons n vec
)
982 (setq vec
(cons i vec
)
986 ;;; Find an element in a vector.
987 (defun calcFunc-find (vec x
&optional start
)
988 (setq start
(if start
(math-check-fixnum start t
) 1))
989 (if (< start
1) (math-reject-arg start
'posp
))
990 (setq vec
(nthcdr start vec
))
992 (while (and vec
(not (Math-equal x
(car vec
))))
997 ;;; Return a subvector of a vector.
998 (defun calcFunc-subvec (vec start
&optional end
)
999 (setq start
(math-check-fixnum start t
)
1000 end
(math-check-fixnum (or end
0) t
))
1001 (or (math-vectorp vec
) (math-reject-arg vec
'vectorp
))
1002 (let ((len (1- (length vec
))))
1004 (setq start
(+ len start
1)))
1006 (setq end
(+ len end
1)))
1007 (if (or (> start len
)
1010 (setq vec
(nthcdr start vec
))
1012 (let ((chop (nthcdr (- end start
1) (setq vec
(copy-sequence vec
)))))
1016 ;;; Remove a subvector from a vector.
1017 (defun calcFunc-rsubvec (vec start
&optional end
)
1018 (setq start
(math-check-fixnum start t
)
1019 end
(math-check-fixnum (or end
0) t
))
1020 (or (math-vectorp vec
) (math-reject-arg vec
'vectorp
))
1021 (let ((len (1- (length vec
))))
1023 (setq start
(+ len start
1)))
1025 (setq end
(+ len end
1)))
1026 (if (or (> start len
)
1029 (let ((tail (nthcdr end vec
))
1030 (chop (nthcdr (1- start
) (setq vec
(copy-sequence vec
)))))
1032 (append vec tail
)))))
1034 ;;; Reverse the order of the elements of a vector.
1035 (defun calcFunc-rev (vec)
1036 (if (math-vectorp vec
)
1037 (cons 'vec
(reverse (cdr vec
)))
1038 (math-reject-arg vec
'vectorp
)))
1040 ;;; Compress a vector according to a mask vector.
1041 (defun calcFunc-vmask (mask vec
)
1042 (if (math-numberp mask
)
1043 (if (math-zerop mask
)
1046 (or (math-vectorp mask
) (math-reject-arg mask
'vectorp
))
1047 (or (math-constp mask
) (math-reject-arg mask
'constp
))
1048 (or (math-vectorp vec
) (math-reject-arg vec
'vectorp
))
1049 (or (= (length mask
) (length vec
)) (math-dimension-error))
1051 (while (setq mask
(cdr mask
) vec
(cdr vec
))
1052 (or (math-zerop (car mask
))
1053 (setq new
(cons (car vec
) new
))))
1054 (cons 'vec
(nreverse new
)))))
1056 ;;; Expand a vector according to a mask vector.
1057 (defun calcFunc-vexp (mask vec
&optional filler
)
1058 (or (math-vectorp mask
) (math-reject-arg mask
'vectorp
))
1059 (or (math-constp mask
) (math-reject-arg mask
'constp
))
1060 (or (math-vectorp vec
) (math-reject-arg vec
'vectorp
))
1062 (fvec (and filler
(math-vectorp filler
))))
1063 (while (setq mask
(cdr mask
))
1064 (if (math-zerop (car mask
))
1065 (setq new
(cons (or (if fvec
1066 (car (setq filler
(cdr filler
)))
1070 new
(cons (or (car vec
) (car mask
)) new
))))
1071 (cons 'vec
(nreverse new
))))
1074 ;;; Compute the row and column norms of a vector or matrix. [Public]
1075 (defun calcFunc-rnorm (a)
1076 (if (and (Math-vectorp a
)
1078 (if (math-matrixp a
)
1079 (math-reduce-vec 'math-max
(math-map-vec 'calcFunc-cnorm a
))
1080 (math-reduce-vec 'math-max
(math-map-vec 'math-abs a
)))
1081 (calc-record-why 'vectorp a
)
1082 (list 'calcFunc-rnorm a
)))
1084 (defun calcFunc-cnorm (a)
1085 (if (and (Math-vectorp a
)
1087 (if (math-matrixp a
)
1088 (math-reduce-vec 'math-max
1089 (math-reduce-cols 'math-add-abs a
))
1090 (math-reduce-vec 'math-add-abs a
))
1091 (calc-record-why 'vectorp a
)
1092 (list 'calcFunc-cnorm a
)))
1094 (defun math-add-abs (a b
)
1095 (math-add (math-abs a
) (math-abs b
)))
1098 ;;; Sort the elements of a vector into increasing order.
1099 (defun calcFunc-sort (vec) ; [Public]
1100 (if (math-vectorp vec
)
1101 (cons 'vec
(sort (copy-sequence (cdr vec
)) 'math-beforep
))
1102 (math-reject-arg vec
'vectorp
)))
1104 (defun calcFunc-rsort (vec) ; [Public]
1105 (if (math-vectorp vec
)
1106 (cons 'vec
(nreverse (sort (copy-sequence (cdr vec
)) 'math-beforep
)))
1107 (math-reject-arg vec
'vectorp
)))
1109 ;; The variable math-grade-vec is local to calcFunc-grade and
1110 ;; calcFunc-rgrade, but is used by math-grade-beforep, which is called
1111 ;; by calcFunc-grade and calcFunc-rgrade.
1112 (defvar math-grade-vec
)
1114 (defun calcFunc-grade (math-grade-vec)
1115 (if (math-vectorp math-grade-vec
)
1116 (let* ((len (1- (length math-grade-vec
))))
1117 (cons 'vec
(sort (cdr (calcFunc-index len
)) 'math-grade-beforep
)))
1118 (math-reject-arg math-grade-vec
'vectorp
)))
1120 (defun calcFunc-rgrade (math-grade-vec)
1121 (if (math-vectorp math-grade-vec
)
1122 (let* ((len (1- (length math-grade-vec
))))
1123 (cons 'vec
(nreverse (sort (cdr (calcFunc-index len
))
1124 'math-grade-beforep
))))
1125 (math-reject-arg math-grade-vec
'vectorp
)))
1127 (defun math-grade-beforep (i j
)
1128 (math-beforep (nth i math-grade-vec
) (nth j math-grade-vec
)))
1131 ;;; Compile a histogram of data from a vector.
1132 (defun calcFunc-histogram (vec wts
&optional n
)
1133 (or n
(setq n wts wts
1))
1134 (or (Math-vectorp vec
)
1135 (math-reject-arg vec
'vectorp
))
1136 (if (Math-vectorp wts
)
1137 (or (= (length vec
) (length wts
))
1138 (math-dimension-error)))
1140 (let ((res (make-vector n
0))
1142 (wvec (Math-vectorp wts
))
1145 (while (setq vp
(cdr vp
))
1148 (setq bin
(math-floor bin
)))
1152 (math-add (aref res bin
)
1153 (if wvec
(car (setq wp
(cdr wp
))) wts
)))))
1154 (cons 'vec
(append res nil
))))
1155 ((Math-vectorp n
) ;; n is a vector of midpoints
1156 (let* ((bds (math-vector-avg n
))
1157 (res (make-vector (1- (length n
)) 0))
1159 (wvec (Math-vectorp wts
))
1164 (let ((tbds (cdr bds
))
1166 (while (and tbds
(Math-lessp (car tbds
) num
))
1168 (setq tbds
(cdr tbds
)))
1170 (math-add (aref res i
)
1171 (if wvec
(car (setq wp
(cdr wp
))) wts
))))
1173 (cons 'vec
(append res nil
))))
1175 (math-reject-arg n
"*Expecting an integer or vector"))))
1177 ;;; Replace a vector [a b c ...] with a vector of averages
1178 ;;; [(a+b)/2 (b+c)/2 ...]
1179 (defun math-vector-avg (vec)
1180 (let ((vp (sort (copy-sequence (cdr vec
)) 'math-beforep
))
1182 (while (and vp
(cdr vp
))
1183 (setq res
(cons (math-div (math-add (car vp
) (cadr vp
)) 2) res
)
1185 (cons 'vec
(reverse res
))))
1190 (defun calcFunc-vunion (a b
)
1191 (if (Math-objectp a
)
1192 (setq a
(list 'vec a
))
1193 (or (math-vectorp a
) (math-reject-arg a
'vectorp
)))
1194 (if (Math-objectp b
)
1196 (or (math-vectorp b
) (math-reject-arg b
'vectorp
))
1198 (calcFunc-rdup (append a b
)))
1200 (defun calcFunc-vint (a b
)
1201 (if (and (math-simple-set a
) (math-simple-set b
))
1203 (setq a
(cdr (calcFunc-rdup a
)))
1204 (setq b
(cdr (calcFunc-rdup b
)))
1205 (let ((vec (list 'vec
)))
1207 (if (math-beforep (car a
) (car b
))
1209 (if (Math-equal (car a
) (car b
))
1210 (setq vec
(cons (car a
) vec
)
1214 (calcFunc-vcompl (calcFunc-vunion (calcFunc-vcompl a
)
1215 (calcFunc-vcompl b
)))))
1217 (defun calcFunc-vdiff (a b
)
1218 (if (and (math-simple-set a
) (math-simple-set b
))
1220 (setq a
(cdr (calcFunc-rdup a
)))
1221 (setq b
(cdr (calcFunc-rdup b
)))
1222 (let ((vec (list 'vec
)))
1224 (while (and b
(math-beforep (car b
) (car a
)))
1226 (if (and b
(Math-equal (car a
) (car b
)))
1229 (setq vec
(cons (car a
) vec
)
1232 (calcFunc-vcompl (calcFunc-vunion (calcFunc-vcompl a
) b
))))
1234 (defun calcFunc-vxor (a b
)
1235 (if (and (math-simple-set a
) (math-simple-set b
))
1237 (setq a
(cdr (calcFunc-rdup a
)))
1238 (setq b
(cdr (calcFunc-rdup b
)))
1239 (let ((vec (list 'vec
)))
1243 (math-beforep (car a
) (car b
))))
1244 (setq vec
(cons (car a
) vec
)
1246 (if (and a
(Math-equal (car a
) (car b
)))
1248 (setq vec
(cons (car b
) vec
)))
1251 (let ((ca (calcFunc-vcompl a
))
1252 (cb (calcFunc-vcompl b
)))
1253 (calcFunc-vunion (calcFunc-vcompl (calcFunc-vunion ca b
))
1254 (calcFunc-vcompl (calcFunc-vunion a cb
))))))
1256 (defun calcFunc-vcompl (a)
1257 (setq a
(math-prepare-set a
))
1258 (let ((vec (list 'vec
))
1259 (prev '(neg (var inf var-inf
)))
1261 (while (setq a
(cdr a
))
1262 (or (and (equal (nth 2 (car a
)) '(neg (var inf var-inf
)))
1263 (memq (nth 1 (car a
)) '(2 3)))
1264 (setq vec
(cons (list 'intv
1266 (if (memq (nth 1 (car a
)) '(0 1)) 1 0))
1270 (setq prev
(nth 3 (car a
))
1271 closed
(if (memq (nth 1 (car a
)) '(0 2)) 2 0)))
1272 (or (and (equal prev
'(var inf var-inf
))
1274 (setq vec
(cons (list 'intv
(+ closed
1)
1275 prev
'(var inf var-inf
))
1277 (math-clean-set (nreverse vec
))))
1279 (defun calcFunc-vspan (a)
1280 (setq a
(math-prepare-set a
))
1282 (let ((last (nth (1- (length a
)) a
)))
1283 (math-make-intv (+ (logand (nth 1 (nth 1 a
)) 2)
1284 (logand (nth 1 last
) 1))
1289 (defun calcFunc-vfloor (a &optional always-vec
)
1290 (setq a
(math-prepare-set a
))
1291 (let ((vec (list 'vec
)) (p a
) (prev nil
) b mask
)
1292 (while (setq p
(cdr p
))
1293 (setq mask
(nth 1 (car p
))
1296 (and (memq mask
'(0 1))
1297 (not (math-infinitep a
))
1298 (setq mask
(logior mask
2))
1299 (math-num-integerp a
)
1300 (setq a
(math-add a
1)))
1301 (setq a
(math-ceiling a
))
1302 (and (memq mask
'(0 2))
1303 (not (math-infinitep b
))
1304 (setq mask
(logior mask
1))
1305 (math-num-integerp b
)
1306 (setq b
(math-sub b
1)))
1307 (setq b
(math-floor b
))
1308 (if (and prev
(Math-equal (math-sub a
1) (nth 3 prev
)))
1309 (setcar (nthcdr 3 prev
) b
)
1310 (or (Math-lessp b a
)
1311 (setq vec
(cons (setq prev
(list 'intv mask a b
)) vec
)))))
1312 (setq vec
(nreverse vec
))
1313 (math-clean-set vec always-vec
)))
1315 (defun calcFunc-vcard (a)
1316 (setq a
(calcFunc-vfloor a t
))
1317 (or (math-constp a
) (math-reject-arg a
"*Set must be finite"))
1319 (while (setq a
(cdr a
))
1320 (if (eq (car-safe (car a
)) 'intv
)
1321 (setq count
(math-add count
(math-sub (nth 3 (car a
))
1323 (setq count
(math-add count
1)))
1326 (defun calcFunc-venum (a)
1327 (setq a
(calcFunc-vfloor a t
))
1328 (or (math-constp a
) (math-reject-arg a
"*Set must be finite"))
1329 (let* ((prev a
) (this (cdr prev
)) this-val next this-last
)
1331 (setq next
(cdr this
)
1332 this-val
(car this
))
1333 (if (eq (car-safe this-val
) 'intv
)
1335 (setq this
(cdr (calcFunc-index (math-add
1336 (math-sub (nth 3 this-val
)
1340 (setq this-last
(last this
))
1341 (setcdr this-last next
)
1343 (setq prev this-last
))
1348 (defun calcFunc-vpack (a)
1349 (setq a
(calcFunc-vfloor a t
))
1351 (math-negp (if (eq (car-safe (nth 1 a
)) 'intv
)
1354 (math-reject-arg (nth 1 a
) 'posp
))
1356 (while (setq a
(cdr a
))
1357 (if (eq (car-safe (car a
)) 'intv
)
1358 (if (equal (nth 3 (car a
)) '(var inf var-inf
))
1359 (setq accum
(math-sub accum
1360 (math-power-of-2 (nth 2 (car a
)))))
1361 (setq accum
(math-add accum
1363 (math-power-of-2 (1+ (nth 3 (car a
))))
1364 (math-power-of-2 (nth 2 (car a
)))))))
1365 (setq accum
(math-add accum
(math-power-of-2 (car a
))))))
1368 (defun calcFunc-vunpack (a &optional w
)
1369 (or (math-num-integerp a
) (math-reject-arg a
'integerp
))
1370 (if w
(setq a
(math-clip a w
)))
1371 (if (math-messy-integerp a
) (setq a
(math-trunc a
)))
1372 (let* ((calc-number-radix 2)
1373 (calc-twos-complement-mode nil
)
1375 (aa (if neg
(math-sub -
1 a
) a
))
1379 (math-format-bignum-binary (cdr aa
))
1380 (math-format-binary aa
))))
1381 (zero (if neg ?
1 ?
0))
1382 (one (if neg ?
0 ?
1))
1385 (pos (1- len
)) pos2
)
1387 (if (eq (aref str pos
) zero
)
1390 (while (and (>= pos
0) (eq (aref str pos
) one
))
1391 (setq pos
(1- pos
)))
1392 (setq vec
(cons (if (= pos
(1- pos2
))
1394 (list 'intv
3 (- len pos2
1) (- len pos
2)))
1397 (setq vec
(cons (list 'intv
2 len
'(var inf var-inf
)) vec
)))
1398 (math-clean-set (nreverse vec
))))
1400 (defun calcFunc-rdup (a)
1401 (if (math-simple-set a
)
1403 (and (Math-objectp a
) (setq a
(list 'vec a
)))
1404 (or (math-vectorp a
) (math-reject-arg a
'vectorp
))
1405 (setq a
(sort (copy-sequence (cdr a
)) 'math-beforep
))
1408 (if (Math-equal (car p
) (nth 1 p
))
1409 (setcdr p
(cdr (cdr p
)))
1412 (math-clean-set (math-prepare-set a
))))
1414 (defun math-prepare-set (a)
1415 (if (Math-objectp a
)
1416 (setq a
(list 'vec a
))
1417 (or (math-vectorp a
) (math-reject-arg a
'vectorp
))
1418 (setq a
(cons 'vec
(sort (copy-sequence (cdr a
)) 'math-beforep
))))
1421 ;; Convert all elements to non-empty intervals.
1423 (if (eq (car-safe (nth 1 p
)) 'intv
)
1424 (if (math-intv-constp (nth 1 p
))
1425 (if (and (memq (nth 1 (nth 1 p
)) '(0 1 2))
1426 (Math-equal (nth 2 (nth 1 p
)) (nth 3 (nth 1 p
))))
1427 (setcdr p
(cdr (cdr p
)))
1429 (math-reject-arg (nth 1 p
) 'constp
))
1430 (or (Math-anglep (nth 1 p
))
1431 (eq (car (nth 1 p
)) 'date
)
1432 (equal (nth 1 p
) '(var inf var-inf
))
1433 (equal (nth 1 p
) '(neg (var inf var-inf
)))
1434 (math-reject-arg (nth 1 p
) 'realp
))
1435 (setcar (cdr p
) (list 'intv
3 (nth 1 p
) (nth 1 p
)))
1438 ;; Combine redundant intervals.
1440 (while (cdr (cdr p
))
1441 (if (or (memq (setq res
(math-compare (nth 3 (nth 1 p
))
1445 (memq (nth 1 (nth 1 p
)) '(0 2))
1446 (memq (nth 1 (nth 2 p
)) '(0 1))))
1448 (setq res
(math-compare (nth 3 (nth 1 p
)) (nth 3 (nth 2 p
))))
1449 (setcdr p
(cons (list 'intv
1450 (+ (logand (logior (nth 1 (nth 1 p
))
1457 (logand (logior (if (memq res
'(1 0 2))
1458 (nth 1 (nth 1 p
)) 0)
1459 (if (memq res
'(-1 0 2))
1460 (nth 1 (nth 2 p
)) 0))
1466 (cdr (cdr (cdr p
))))))))
1469 (defun math-clean-set (a &optional always-vec
)
1472 (if (and (eq (car-safe (nth 1 p
)) 'intv
)
1473 (Math-equal (nth 2 (nth 1 p
)) (nth 3 (nth 1 p
))))
1474 (setcar (cdr p
) (nth 2 (nth 1 p
))))
1476 (if (and (not (cdr (cdr a
)))
1477 (eq (car-safe (nth 1 a
)) 'intv
)
1482 (defun math-simple-set (a)
1483 (or (and (Math-objectp a
)
1484 (not (eq (car-safe a
) 'intv
)))
1485 (and (Math-vectorp a
)
1487 (while (and (setq a
(cdr a
))
1488 (not (eq (car-safe (car a
)) 'intv
))))
1494 ;;; Compute a right-handed vector cross product. [O O O] [Public]
1495 (defun calcFunc-cross (a b
)
1496 (if (and (eq (car-safe a
) 'vec
)
1498 (if (and (eq (car-safe b
) 'vec
)
1501 (math-sub (math-mul (nth 2 a
) (nth 3 b
))
1502 (math-mul (nth 3 a
) (nth 2 b
)))
1503 (math-sub (math-mul (nth 3 a
) (nth 1 b
))
1504 (math-mul (nth 1 a
) (nth 3 b
)))
1505 (math-sub (math-mul (nth 1 a
) (nth 2 b
))
1506 (math-mul (nth 2 a
) (nth 1 b
))))
1507 (math-reject-arg b
"*Three-vector expected"))
1508 (math-reject-arg a
"*Three-vector expected")))
1511 ;;; Compute a Kronecker product
1512 (defun calcFunc-kron (x y
&optional nocheck
)
1513 "The Kronecker product of objects X and Y.
1514 The objects X and Y may be scalars, vectors or matrices.
1515 The type of the result depends on the types of the operands;
1516 the product of two scalars is a scalar,
1517 of one scalar and a vector is a vector,
1518 of two vectors is a vector.
1519 of one vector and a matrix is a matrix,
1520 of two matrices is a matrix."
1522 (cond ((or (math-matrixp x
)
1524 (unless (math-matrixp x
)
1525 (setq x
(if (math-vectorp x
)
1527 (list 'vec
(list 'vec x
)))))
1528 (unless (math-matrixp y
)
1529 (setq y
(if (math-vectorp y
)
1531 (list 'vec
(list 'vec y
))))))
1532 ((or (math-vectorp x
)
1534 (unless (math-vectorp x
)
1535 (setq x
(list 'vec x
)))
1536 (unless (math-vectorp y
)
1537 (setq y
(list 'vec y
))))))
1538 (if (math-vectorp x
)
1542 (setq ret
(cons (calcFunc-kron v w t
) ret
))))
1543 (cons 'vec
(nreverse ret
)))
1547 ;; The variable math-rb-close is local to math-read-brackets, but
1548 ;; is used by math-read-vector, which is called (directly and
1549 ;; indirectly) by math-read-brackets.
1550 (defvar math-rb-close
)
1552 ;; The next few variables are local to math-read-exprs in calc-aent.el
1553 ;; and math-read-expr in calc-ext.el, but are set in functions they call.
1554 (defvar math-exp-pos
)
1555 (defvar math-exp-str
)
1556 (defvar math-exp-old-pos
)
1557 (defvar math-exp-token
)
1558 (defvar math-exp-keep-spaces
)
1559 (defvar math-expr-data
)
1561 (defun math-read-brackets (space-sep math-rb-close
)
1562 (and space-sep
(setq space-sep
(not (math-check-for-commas))))
1564 (while (eq math-exp-token
'space
)
1566 (if (or (equal math-expr-data math-rb-close
)
1567 (eq math-exp-token
'end
))
1571 (let ((save-exp-pos math-exp-pos
)
1572 (save-exp-old-pos math-exp-old-pos
)
1573 (save-exp-token math-exp-token
)
1574 (save-exp-data math-expr-data
)
1575 (vals (let ((math-exp-keep-spaces space-sep
))
1576 (if (or (equal math-expr-data
"\\dots")
1577 (equal math-expr-data
"\\ldots"))
1578 '(vec (neg (var inf var-inf
)))
1579 (catch 'syntax
(math-read-vector))))))
1582 (let ((error-exp-pos math-exp-pos
)
1583 (error-exp-old-pos math-exp-old-pos
)
1585 (setq math-exp-pos save-exp-pos
1586 math-exp-old-pos save-exp-old-pos
1587 math-exp-token save-exp-token
1588 math-expr-data save-exp-data
)
1589 (let ((math-exp-keep-spaces nil
))
1590 (setq vals2
(catch 'syntax
(math-read-vector))))
1591 (if (and (not (stringp vals2
))
1592 (or (assoc math-expr-data
'(("\\ldots") ("\\dots") (";")))
1593 (equal math-expr-data math-rb-close
)
1594 (eq math-exp-token
'end
)))
1597 (setq math-exp-pos error-exp-pos
1598 math-exp-old-pos error-exp-old-pos
)
1599 (throw 'syntax vals
)))
1600 (throw 'syntax vals
)))
1601 (if (or (equal math-expr-data
"\\dots")
1602 (equal math-expr-data
"\\ldots"))
1605 (setq vals
(if (> (length vals
) 2)
1606 (cons 'calcFunc-mul
(cdr vals
)) (nth 1 vals
)))
1607 (let ((exp2 (if (or (equal math-expr-data math-rb-close
)
1608 (equal math-expr-data
")")
1609 (eq math-exp-token
'end
))
1611 (math-read-expr-level 0))))
1614 (if (equal math-expr-data
")") 2 3)
1617 (if (not (or (equal math-expr-data math-rb-close
)
1618 (equal math-expr-data
")")
1619 (eq math-exp-token
'end
)))
1620 (throw 'syntax
"Expected `]'")))
1621 (if (equal math-expr-data
";")
1622 (let ((math-exp-keep-spaces space-sep
))
1623 (setq vals
(cons 'vec
(math-read-matrix (list vals
))))))
1624 (if (not (or (equal math-expr-data math-rb-close
)
1625 (eq math-exp-token
'end
)))
1626 (throw 'syntax
"Expected `]'")))
1627 (or (eq math-exp-token
'end
)
1631 (defun math-check-for-commas (&optional balancing
)
1633 (pos (1- math-exp-pos
)))
1634 (while (and (>= count
0)
1635 (setq pos
(string-match
1636 (if balancing
"[],[{}()<>]" "[],[{}()]")
1637 math-exp-str
(1+ pos
)))
1638 (or (/= (aref math-exp-str pos
) ?
,) (> count
0) balancing
))
1639 (cond ((memq (aref math-exp-str pos
) '(?\
[ ?\
{ ?\
( ?\
<))
1640 (setq count
(1+ count
)))
1641 ((memq (aref math-exp-str pos
) '(?\
] ?\
} ?\
) ?\
>))
1642 (setq count
(1- count
)))))
1645 (and pos
(= (aref math-exp-str pos
) ?
,)))))
1647 (defun math-read-vector ()
1648 (let* ((val (list (math-read-expr-level 0)))
1651 (while (eq math-exp-token
'space
)
1653 (and (not (eq math-exp-token
'end
))
1654 (not (equal math-expr-data
";"))
1655 (not (equal math-expr-data math-rb-close
))
1656 (not (equal math-expr-data
"\\dots"))
1657 (not (equal math-expr-data
"\\ldots"))))
1658 (if (equal math-expr-data
",")
1660 (while (eq math-exp-token
'space
)
1662 (let ((rest (list (math-read-expr-level 0))))
1667 (defun math-read-matrix (mat)
1668 (while (equal math-expr-data
";")
1670 (while (eq math-exp-token
'space
)
1672 (setq mat
(nconc mat
(list (math-read-vector)))))
1677 ;;; calc-vec.el ends here