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1;;; -*- Mode: Lisp -*-
2;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;
3;;;
4;;; Copyright (C) 1999, 2002, 2009, 2015 Marek Rychlik <rychlik@u.arizona.edu>
5;;;
6;;; This program is free software; you can redistribute it and/or modify
7;;; it under the terms of the GNU General Public License as published by
8;;; the Free Software Foundation; either version 2 of the License, or
9;;; (at your option) any later version.
10;;;
11;;; This program is distributed in the hope that it will be useful,
12;;; but WITHOUT ANY WARRANTY; without even the implied warranty of
13;;; MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14;;; GNU General Public License for more details.
15;;;
16;;; You should have received a copy of the GNU General Public License
17;;; along with this program; if not, write to the Free Software
18;;; Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
19;;;
20;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;
21
22(defpackage "MONOM"
23 (:use :cl :ring)
24 (:export "MONOM"
25 "EXPONENT"
26 "MONOM-DIMENSION"
27 "MONOM-EXPONENTS"
28 "MAKE-MONOM-VARIABLE")
29 (:documentation
30 "This package implements basic operations on monomials.
31DATA STRUCTURES: Conceptually, monomials can be represented as lists:
32
33 monom: (n1 n2 ... nk) where ni are non-negative integers
34
35However, lists may be implemented as other sequence types, so the
36flexibility to change the representation should be maintained in the
37code to use general operations on sequences whenever possible. The
38optimization for the actual representation should be left to
39declarations and the compiler.
40
41EXAMPLES: Suppose that variables are x and y. Then
42
43 Monom x*y^2 ---> (1 2) "))
44
45(in-package :monom)
46
47(proclaim '(optimize (speed 3) (space 0) (safety 0) (debug 0)))
48
49(deftype exponent ()
50 "Type of exponent in a monomial."
51 'fixnum)
52
53(defclass monom ()
54 ((exponents :initarg :exponents :accessor monom-exponents
55 :documentation "The powers of the variables."))
56 ;; default-initargs are not needed, they are handled by SHARED-INITIALIZE
57 ;;(:default-initargs :dimension 'foo :exponents 'bar :exponent 'baz)
58 (:documentation
59 "Implements a monomial, i.e. a product of powers
60of variables, like X*Y^2."))
61
62(defmethod print-object ((self monom) stream)
63 (print-unreadable-object (self stream :type t :identity t)
64 (with-accessors ((dimension monom-dimension) (exponents monom-exponents))
65 self
66 (format stream "DIMENSION=~A EXPONENTS=~A"
67 dimension exponents))))
68
69;; The following INITIALIZE-INSTANCE method allows instance
70;; initialization in a style similar to MAKE-ARRAY, e.g.
71;;
72;; (MAKE-INSTANCE :EXPONENTS '(1 2 3)) --> #<MONOM DIMENSION=3 EXPONENTS=#(1 2 3)>
73;; (MAKE-INSTANCE :DIMENSION 3) --> #<MONOM DIMENSION=3 EXPONENTS=#(0 0 0)>
74;; (MAKE-INSTANCE :DIMENSION 3 :EXPONENT 7) --> #<MONOM DIMENSION=3 EXPONENTS=#(7 7 7)>
75;;
76(defmethod initialize-instance :after ((self monom)
77 &key
78 (dimension 0 dimension-supplied-p)
79 (exponents nil exponents-supplied-p)
80 (exponent 0 exponent-supplied-p)
81 &allow-other-keys
82 )
83 (when dimension-supplied-p
84 (when (and (slot-boundp self 'dimension)
85 (/= (slot-value self 'dimension) dimension))
86 (warn "Changing MONOM DIMENSION from ~A to ~A."
87 (slot-value self 'dimension) dimension))
88 (setf (slot-value self 'dimension) dimension))
89
90 (when exponents-supplied-p
91 (let ((dim (length exponents)))
92 (when (and (slot-boundp self 'dimension)
93 (/= (slot-value self 'dimension) dim))
94 (warn "Changing slot DIMENSION ~A to match the length of EXPONENTS ~A"
95 (slot-value self 'dimension) (length exponents)))
96 (setf (slot-value self 'dimension) dim
97 (slot-value self 'exponents) (make-array dim :initial-contents exponents)
98 (slot-value self 'dimension) (length exponents))))
99
100 ;; when all exponents are to be identical
101 (if exponent-supplied-p
102 (when (slot-boundp self 'exponents)
103 (warn "Ignoring argument EXPONENT, as slot EXPONENTS already bound."))
104 (cond
105 ((slot-boundp self 'dimension)
106 (let ((dim (slot-value self 'dimension)))
107 (setf (slot-value self 'exponents)
108 (make-array (list dim) :initial-element (if exponent-supplied-p exponent 0)
109 :element-type 'exponent))))
110 (t
111 (error "Slot DIMENSION is unbound, but must be known if EXPONENT is supplied.")))))
112
113(defmethod r-equalp ((m1 monom) (m2 monom))
114 "Returns T iff monomials M1 and M2 have identical
115EXPONENTS."
116 (equalp (monom-exponents m1) (monom-exponents m2)))
117
118(defmethod r-coeff ((m monom))
119 "A MONOM can be treated as a special case of TERM,
120where the coefficient is 1."
121 1)
122
123(defmethod r-elt ((m monom) index)
124 "Return the power in the monomial M of variable number INDEX."
125 (with-slots (exponents)
126 m
127 (elt exponents index)))
128
129(defmethod (setf r-elt) (new-value (m monom) index)
130 "Return the power in the monomial M of variable number INDEX."
131 (with-slots (exponents)
132 m
133 (setf (elt exponents index) new-value)))
134
135(defmethod r-total-degree ((m monom) &optional (start 0) (end (monom-dimension m)))
136 "Return the todal degree of a monomoal M. Optinally, a range
137of variables may be specified with arguments START and END."
138 (declare (type fixnum start end))
139 (with-slots (exponents)
140 m
141 (reduce #'+ exponents :start start :end end)))
142
143
144(defmethod r-sugar ((m monom) &aux (start 0) (end (monom-dimension m)))
145 "Return the sugar of a monomial M. Optinally, a range
146of variables may be specified with arguments START and END."
147 (declare (type fixnum start end))
148 (r-total-degree m start end))
149
150(defmethod multiply-by ((self monom) (other monom))
151 (with-slots ((exponents1 exponents) (dimension1 dimension))
152 self
153 (with-slots ((exponents2 exponents) (dimension2 dimension))
154 other
155 (unless (= dimension1 dimension2)
156 (error "Incompatible dimensions: ~A and ~A.~%" dimension1 dimension2))
157 (map-into exponents1 #'+ exponents1 exponents2)))
158 self)
159
160(defmethod divide-by ((self monom) (other monom))
161 (with-slots ((exponents1 exponents) (dimension1 dimension))
162 self
163 (with-slots ((exponents2 exponents) (dimension2 dimension))
164 other
165 (unless (= dimension1 dimension2)
166 (error "Incompatible dimensions: ~A and ~A.~%" dimension1 dimension2))
167 (map-into exponents1 #'- exponents1 exponents2)))
168 self)
169
170(defmethod copy-instance :around ((object monom) &rest initargs &key &allow-other-keys)
171 "An :AROUNT method for COPY-INSTANCE. The primary method is a shallow copy,
172 while for monomials we typically need a fresh copy of the
173 exponents."
174 (declare (ignore object initargs))
175 (let ((copy (call-next-method)))
176 (setf (monom-exponents copy) (copy-seq (monom-exponents copy)))
177 copy))
178
179(defmethod r* ((m1 monom) (m2 monom))
180 "Non-destructively multiply monomial M1 by M2."
181 (multiply-by (copy-instance m1) (copy-instance m2)))
182
183(defmethod r/ ((m1 monom) (m2 monom))
184 "Non-destructively divide monomial M1 by monomial M2."
185 (divide-by (copy-instance m1) (copy-instance m2)))
186
187(defmethod r-divides-p ((m1 monom) (m2 monom))
188 "Returns T if monomial M1 divides monomial M2, NIL otherwise."
189 (with-slots ((exponents1 exponents))
190 m1
191 (with-slots ((exponents2 exponents))
192 m2
193 (every #'<= exponents1 exponents2))))
194
195
196(defmethod r-divides-lcm-p ((m1 monom) (m2 monom) (m3 monom))
197 "Returns T if monomial M1 divides LCM(M2,M3), NIL otherwise."
198 (every #'(lambda (x y z) (<= x (max y z)))
199 m1 m2 m3))
200
201
202(defmethod r-lcm-divides-lcm-p ((m1 monom) (m2 monom) (m3 monom) (m4 monom))
203 "Returns T if monomial MONOM-LCM(M1,M2) divides MONOM-LCM(M3,M4), NIL otherwise."
204 (declare (type monom m1 m2 m3 m4))
205 (every #'(lambda (x y z w) (<= (max x y) (max z w)))
206 m1 m2 m3 m4))
207
208(defmethod r-lcm-equal-lcm-p (m1 m2 m3 m4)
209 "Returns T if monomial LCM(M1,M2) equals LCM(M3,M4), NIL otherwise."
210 (with-slots ((exponents1 exponents))
211 m1
212 (with-slots ((exponents2 exponents))
213 m2
214 (with-slots ((exponents3 exponents))
215 m3
216 (with-slots ((exponents4 exponents))
217 m4
218 (every
219 #'(lambda (x y z w) (= (max x y) (max z w)))
220 exponents1 exponents2 exponents3 exponents4))))))
221
222(defmethod r-divisible-by-p ((m1 monom) (m2 monom))
223 "Returns T if monomial M1 is divisible by monomial M2, NIL otherwise."
224 (with-slots ((exponents1 exponents))
225 m1
226 (with-slots ((exponents2 exponents))
227 m2
228 (every #'>= exponents1 exponents2))))
229
230(defmethod r-rel-prime-p ((m1 monom) (m2 monom))
231 "Returns T if two monomials M1 and M2 are relatively prime (disjoint)."
232 (with-slots ((exponents1 exponents))
233 m1
234 (with-slots ((exponents2 exponents))
235 m2
236 (every #'(lambda (x y) (zerop (min x y))) exponents1 exponents2))))
237
238
239(defmethod r-lcm ((m1 monom) (m2 monom))
240 "Returns least common multiple of monomials M1 and M2."
241 (with-slots ((exponents1 exponents) (dimension1 dimension))
242 m1
243 (with-slots ((exponents2 exponents))
244 m2
245 (let* ((exponents (copy-seq exponents1))
246 (dimension dimension1))
247 (map-into exponents #'max exponents1 exponents2)
248 (make-instance 'monom :dimension dimension :exponents exponents)))))
249
250
251(defmethod r-gcd ((m1 monom) (m2 monom))
252 "Returns greatest common divisor of monomials M1 and M2."
253 (with-slots ((exponents1 exponents) (dimension1 dimension))
254 m1
255 (with-slots ((exponents2 exponents))
256 m2
257 (let* ((exponents (copy-seq exponents1))
258 (dimension dimension1))
259 (map-into exponents #'min exponents1 exponents2)
260 (make-instance 'monom :dimension dimension :exponents exponents)))))
261
262(defmethod r-depends-p ((m monom) k)
263 "Return T if the monomial M depends on variable number K."
264 (declare (type fixnum k))
265 (with-slots (exponents)
266 m
267 (plusp (elt exponents k))))
268
269(defmethod left-tensor-product-by ((self monom) (other monom))
270 (with-slots ((exponents1 exponents) (dimension1 dimension))
271 self
272 (with-slots ((exponents2 exponents) (dimension2 dimension))
273 other
274 (setf dimension1 (+ dimension1 dimension2)
275 exponents1 (concatenate 'vector exponents2 exponents1))))
276 self)
277
278(defmethod right-tensor-product-by ((self monom) (other monom))
279 (with-slots ((exponents1 exponents) (dimension1 dimension))
280 self
281 (with-slots ((exponents2 exponents) (dimension2 dimension))
282 other
283 (setf dimension1 (+ dimension1 dimension2)
284 exponents1 (concatenate 'vector exponents1 exponents2))))
285 self)
286
287(defmethod left-contract ((self monom) k)
288 "Drop the first K variables in monomial M."
289 (declare (fixnum k))
290 (with-slots (dimension exponents)
291 self
292 (setf dimension (- dimension k)
293 exponents (subseq exponents k)))
294 self)
295
296(defun make-monom-variable (nvars pos &optional (power 1)
297 &aux (m (make-instance 'monom :dimension nvars)))
298 "Construct a monomial in the polynomial ring
299RING[X[0],X[1],X[2],...X[NVARS-1]] over the (unspecified) ring RING
300which represents a single variable. It assumes number of variables
301NVARS and the variable is at position POS. Optionally, the variable
302may appear raised to power POWER. "
303 (declare (type fixnum nvars pos power) (type monom m))
304 (with-slots (exponents)
305 m
306 (setf (elt exponents pos) power)
307 m))
308
309(defmethod r->list ((m monom))
310 "A human-readable representation of a monomial M as a list of exponents."
311 (coerce (monom-exponents m) 'list))
312
313(defmethod r-dimension ((self monom))
314 (monom-dimension self))
315
316(defmethod r-exponents ((self monom))
317 (monom-exponents self))
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