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514 lines
13 KiB
C
514 lines
13 KiB
C
/*
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** SGI FREE SOFTWARE LICENSE B (Version 2.0, Sept. 18, 2008)
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** Copyright (C) [dates of first publication] Silicon Graphics, Inc.
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** All Rights Reserved.
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**
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** Permission is hereby granted, free of charge, to any person obtaining a copy
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** of this software and associated documentation files (the "Software"), to deal
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** in the Software without restriction, including without limitation the rights
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** to use, copy, modify, merge, publish, distribute, sublicense, and/or sell copies
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** of the Software, and to permit persons to whom the Software is furnished to do so,
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** subject to the following conditions:
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**
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** The above copyright notice including the dates of first publication and either this
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** permission notice or a reference to http://oss.sgi.com/projects/FreeB/ shall be
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** included in all copies or substantial portions of the Software.
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**
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** THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR IMPLIED,
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** INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, FITNESS FOR A
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** PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL SILICON GRAPHICS, INC.
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** BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT,
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** TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE
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** OR OTHER DEALINGS IN THE SOFTWARE.
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**
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** Except as contained in this notice, the name of Silicon Graphics, Inc. shall not
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** be used in advertising or otherwise to promote the sale, use or other dealings in
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** this Software without prior written authorization from Silicon Graphics, Inc.
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*/
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/*
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** Author: Eric Veach, July 1994.
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*/
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//#include "tesos.h"
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#include <stddef.h>
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#include <assert.h>
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#include "../Include/tesselator.h"
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#include "priorityq.h"
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#define INIT_SIZE 32
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#define TRUE 1
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#define FALSE 0
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#ifdef FOR_TRITE_TEST_PROGRAM
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#define LEQ(x,y) (*pq->leq)(x,y)
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#else
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/* Violates modularity, but a little faster */
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#include "geom.h"
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#define LEQ(x,y) VertLeq((TESSvertex *)x, (TESSvertex *)y)
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#endif
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/* Include all the code for the regular heap-based queue here. */
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/* The basic operations are insertion of a new key (pqInsert),
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* and examination/extraction of a key whose value is minimum
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* (pqMinimum/pqExtractMin). Deletion is also allowed (pqDelete);
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* for this purpose pqInsert returns a "handle" which is supplied
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* as the argument.
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*
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* An initial heap may be created efficiently by calling pqInsert
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* repeatedly, then calling pqInit. In any case pqInit must be called
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* before any operations other than pqInsert are used.
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*
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* If the heap is empty, pqMinimum/pqExtractMin will return a NULL key.
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* This may also be tested with pqIsEmpty.
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*/
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/* Since we support deletion the data structure is a little more
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* complicated than an ordinary heap. "nodes" is the heap itself;
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* active nodes are stored in the range 1..pq->size. When the
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* heap exceeds its allocated size (pq->max), its size doubles.
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* The children of node i are nodes 2i and 2i+1.
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*
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* Each node stores an index into an array "handles". Each handle
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* stores a key, plus a pointer back to the node which currently
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* represents that key (ie. nodes[handles[i].node].handle == i).
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*/
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#define pqHeapMinimum(pq) ((pq)->handles[(pq)->nodes[1].handle].key)
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#define pqHeapIsEmpty(pq) ((pq)->size == 0)
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/* really pqHeapNewPriorityQHeap */
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PriorityQHeap *pqHeapNewPriorityQ( TESSalloc* alloc, int size, int (*leq)(PQkey key1, PQkey key2) )
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{
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PriorityQHeap *pq = (PriorityQHeap *)alloc->memalloc( alloc->userData, sizeof( PriorityQHeap ));
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if (pq == NULL) return NULL;
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pq->size = 0;
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pq->max = size;
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pq->nodes = (PQnode *)alloc->memalloc( alloc->userData, (size + 1) * sizeof(pq->nodes[0]) );
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if (pq->nodes == NULL) {
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alloc->memfree( alloc->userData, pq );
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return NULL;
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}
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pq->handles = (PQhandleElem *)alloc->memalloc( alloc->userData, (size + 1) * sizeof(pq->handles[0]) );
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if (pq->handles == NULL) {
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alloc->memfree( alloc->userData, pq->nodes );
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alloc->memfree( alloc->userData, pq );
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return NULL;
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}
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pq->initialized = FALSE;
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pq->freeList = 0;
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pq->leq = leq;
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pq->nodes[1].handle = 1; /* so that Minimum() returns NULL */
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pq->handles[1].key = NULL;
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return pq;
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}
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/* really pqHeapDeletePriorityQHeap */
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void pqHeapDeletePriorityQ( TESSalloc* alloc, PriorityQHeap *pq )
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{
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alloc->memfree( alloc->userData, pq->handles );
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alloc->memfree( alloc->userData, pq->nodes );
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alloc->memfree( alloc->userData, pq );
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}
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static void FloatDown( PriorityQHeap *pq, int curr )
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{
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PQnode *n = pq->nodes;
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PQhandleElem *h = pq->handles;
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PQhandle hCurr, hChild;
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int child;
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hCurr = n[curr].handle;
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for( ;; ) {
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child = curr << 1;
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if( child < pq->size && LEQ( h[n[child+1].handle].key,
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h[n[child].handle].key )) {
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++child;
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}
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assert(child <= pq->max);
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hChild = n[child].handle;
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if( child > pq->size || LEQ( h[hCurr].key, h[hChild].key )) {
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n[curr].handle = hCurr;
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h[hCurr].node = curr;
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break;
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}
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n[curr].handle = hChild;
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h[hChild].node = curr;
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curr = child;
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}
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}
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static void FloatUp( PriorityQHeap *pq, int curr )
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{
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PQnode *n = pq->nodes;
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PQhandleElem *h = pq->handles;
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PQhandle hCurr, hParent;
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int parent;
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hCurr = n[curr].handle;
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for( ;; ) {
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parent = curr >> 1;
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hParent = n[parent].handle;
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if( parent == 0 || LEQ( h[hParent].key, h[hCurr].key )) {
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n[curr].handle = hCurr;
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h[hCurr].node = curr;
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break;
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}
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n[curr].handle = hParent;
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h[hParent].node = curr;
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curr = parent;
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}
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}
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/* really pqHeapInit */
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void pqHeapInit( PriorityQHeap *pq )
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{
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int i;
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/* This method of building a heap is O(n), rather than O(n lg n). */
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for( i = pq->size; i >= 1; --i ) {
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FloatDown( pq, i );
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}
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pq->initialized = TRUE;
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}
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/* really pqHeapInsert */
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/* returns INV_HANDLE iff out of memory */
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PQhandle pqHeapInsert( TESSalloc* alloc, PriorityQHeap *pq, PQkey keyNew )
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{
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int curr;
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PQhandle free;
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curr = ++ pq->size;
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if( (curr*2) > pq->max ) {
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if (!alloc->memrealloc)
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{
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return INV_HANDLE;
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}
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else
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{
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PQnode *saveNodes= pq->nodes;
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PQhandleElem *saveHandles= pq->handles;
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// If the heap overflows, double its size.
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pq->max <<= 1;
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pq->nodes = (PQnode *)alloc->memrealloc( alloc->userData, pq->nodes,
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(size_t)((pq->max + 1) * sizeof( pq->nodes[0] )));
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if (pq->nodes == NULL) {
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pq->nodes = saveNodes; // restore ptr to free upon return
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return INV_HANDLE;
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}
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pq->handles = (PQhandleElem *)alloc->memrealloc( alloc->userData, pq->handles,
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(size_t) ((pq->max + 1) * sizeof( pq->handles[0] )));
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if (pq->handles == NULL) {
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pq->handles = saveHandles; // restore ptr to free upon return
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return INV_HANDLE;
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}
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}
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}
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if( pq->freeList == 0 ) {
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free = curr;
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} else {
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free = pq->freeList;
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pq->freeList = pq->handles[free].node;
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}
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pq->nodes[curr].handle = free;
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pq->handles[free].node = curr;
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pq->handles[free].key = keyNew;
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if( pq->initialized ) {
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FloatUp( pq, curr );
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}
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assert(free != INV_HANDLE);
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return free;
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}
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/* really pqHeapExtractMin */
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PQkey pqHeapExtractMin( PriorityQHeap *pq )
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{
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PQnode *n = pq->nodes;
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PQhandleElem *h = pq->handles;
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PQhandle hMin = n[1].handle;
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PQkey min = h[hMin].key;
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if( pq->size > 0 ) {
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n[1].handle = n[pq->size].handle;
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h[n[1].handle].node = 1;
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h[hMin].key = NULL;
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h[hMin].node = pq->freeList;
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pq->freeList = hMin;
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if( -- pq->size > 0 ) {
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FloatDown( pq, 1 );
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}
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}
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return min;
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}
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/* really pqHeapDelete */
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void pqHeapDelete( PriorityQHeap *pq, PQhandle hCurr )
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{
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PQnode *n = pq->nodes;
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PQhandleElem *h = pq->handles;
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int curr;
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assert( hCurr >= 1 && hCurr <= pq->max && h[hCurr].key != NULL );
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curr = h[hCurr].node;
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n[curr].handle = n[pq->size].handle;
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h[n[curr].handle].node = curr;
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if( curr <= -- pq->size ) {
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if( curr <= 1 || LEQ( h[n[curr>>1].handle].key, h[n[curr].handle].key )) {
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FloatDown( pq, curr );
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} else {
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FloatUp( pq, curr );
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}
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}
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h[hCurr].key = NULL;
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h[hCurr].node = pq->freeList;
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pq->freeList = hCurr;
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}
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/* Now redefine all the function names to map to their "Sort" versions. */
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/* really tessPqSortNewPriorityQ */
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PriorityQ *pqNewPriorityQ( TESSalloc* alloc, int size, int (*leq)(PQkey key1, PQkey key2) )
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{
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PriorityQ *pq = (PriorityQ *)alloc->memalloc( alloc->userData, sizeof( PriorityQ ));
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if (pq == NULL) return NULL;
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pq->heap = pqHeapNewPriorityQ( alloc, size, leq );
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if (pq->heap == NULL) {
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alloc->memfree( alloc->userData, pq );
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return NULL;
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}
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// pq->keys = (PQkey *)memAlloc( INIT_SIZE * sizeof(pq->keys[0]) );
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pq->keys = (PQkey *)alloc->memalloc( alloc->userData, size * sizeof(pq->keys[0]) );
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if (pq->keys == NULL) {
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pqHeapDeletePriorityQ( alloc, pq->heap );
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alloc->memfree( alloc->userData, pq );
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return NULL;
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}
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pq->size = 0;
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pq->max = size; //INIT_SIZE;
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pq->initialized = FALSE;
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pq->leq = leq;
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return pq;
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}
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/* really tessPqSortDeletePriorityQ */
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void pqDeletePriorityQ( TESSalloc* alloc, PriorityQ *pq )
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{
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assert(pq != NULL);
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if (pq->heap != NULL) pqHeapDeletePriorityQ( alloc, pq->heap );
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if (pq->order != NULL) alloc->memfree( alloc->userData, pq->order );
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if (pq->keys != NULL) alloc->memfree( alloc->userData, pq->keys );
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alloc->memfree( alloc->userData, pq );
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}
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#define LT(x,y) (! LEQ(y,x))
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#define GT(x,y) (! LEQ(x,y))
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#define Swap(a,b) if(1){PQkey *tmp = *a; *a = *b; *b = tmp;}else
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/* really tessPqSortInit */
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int pqInit( TESSalloc* alloc, PriorityQ *pq )
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{
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PQkey **p, **r, **i, **j, *piv;
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struct { PQkey **p, **r; } Stack[50], *top = Stack;
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unsigned int seed = 2016473283;
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/* Create an array of indirect pointers to the keys, so that we
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* the handles we have returned are still valid.
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*/
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/*
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pq->order = (PQkey **)memAlloc( (size_t)
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(pq->size * sizeof(pq->order[0])) );
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*/
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pq->order = (PQkey **)alloc->memalloc( alloc->userData,
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(size_t)((pq->size+1) * sizeof(pq->order[0])) );
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/* the previous line is a patch to compensate for the fact that IBM */
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/* machines return a null on a malloc of zero bytes (unlike SGI), */
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/* so we have to put in this defense to guard against a memory */
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/* fault four lines down. from fossum@austin.ibm.com. */
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if (pq->order == NULL) return 0;
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p = pq->order;
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r = p + pq->size - 1;
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for( piv = pq->keys, i = p; i <= r; ++piv, ++i ) {
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*i = piv;
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}
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/* Sort the indirect pointers in descending order,
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* using randomized Quicksort
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*/
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top->p = p; top->r = r; ++top;
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while( --top >= Stack ) {
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p = top->p;
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r = top->r;
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while( r > p + 10 ) {
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seed = seed * 1539415821 + 1;
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i = p + seed % (r - p + 1);
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piv = *i;
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*i = *p;
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*p = piv;
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i = p - 1;
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j = r + 1;
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do {
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do { ++i; } while( GT( **i, *piv ));
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do { --j; } while( LT( **j, *piv ));
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Swap( i, j );
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} while( i < j );
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Swap( i, j ); /* Undo last swap */
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if( i - p < r - j ) {
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top->p = j+1; top->r = r; ++top;
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r = i-1;
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} else {
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top->p = p; top->r = i-1; ++top;
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p = j+1;
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}
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}
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/* Insertion sort small lists */
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for( i = p+1; i <= r; ++i ) {
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piv = *i;
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for( j = i; j > p && LT( **(j-1), *piv ); --j ) {
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*j = *(j-1);
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}
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*j = piv;
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}
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}
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pq->max = pq->size;
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pq->initialized = TRUE;
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pqHeapInit( pq->heap ); /* always succeeds */
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#ifndef NDEBUG
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p = pq->order;
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r = p + pq->size - 1;
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for( i = p; i < r; ++i ) {
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assert( LEQ( **(i+1), **i ));
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}
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#endif
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return 1;
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}
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/* really tessPqSortInsert */
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/* returns INV_HANDLE iff out of memory */
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PQhandle pqInsert( TESSalloc* alloc, PriorityQ *pq, PQkey keyNew )
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{
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int curr;
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if( pq->initialized ) {
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return pqHeapInsert( alloc, pq->heap, keyNew );
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}
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curr = pq->size;
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if( ++ pq->size >= pq->max ) {
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if (!alloc->memrealloc)
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{
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return INV_HANDLE;
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}
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else
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{
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PQkey *saveKey= pq->keys;
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// If the heap overflows, double its size.
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pq->max <<= 1;
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pq->keys = (PQkey *)alloc->memrealloc( alloc->userData, pq->keys,
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(size_t)(pq->max * sizeof( pq->keys[0] )));
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if (pq->keys == NULL) {
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pq->keys = saveKey; // restore ptr to free upon return
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return INV_HANDLE;
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}
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}
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}
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assert(curr != INV_HANDLE);
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pq->keys[curr] = keyNew;
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/* Negative handles index the sorted array. */
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return -(curr+1);
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}
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/* really tessPqSortExtractMin */
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PQkey pqExtractMin( PriorityQ *pq )
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{
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PQkey sortMin, heapMin;
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if( pq->size == 0 ) {
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return pqHeapExtractMin( pq->heap );
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}
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sortMin = *(pq->order[pq->size-1]);
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if( ! pqHeapIsEmpty( pq->heap )) {
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heapMin = pqHeapMinimum( pq->heap );
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if( LEQ( heapMin, sortMin )) {
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return pqHeapExtractMin( pq->heap );
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}
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}
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do {
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-- pq->size;
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} while( pq->size > 0 && *(pq->order[pq->size-1]) == NULL );
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return sortMin;
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}
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/* really tessPqSortMinimum */
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PQkey pqMinimum( PriorityQ *pq )
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{
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PQkey sortMin, heapMin;
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if( pq->size == 0 ) {
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return pqHeapMinimum( pq->heap );
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}
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sortMin = *(pq->order[pq->size-1]);
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if( ! pqHeapIsEmpty( pq->heap )) {
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heapMin = pqHeapMinimum( pq->heap );
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if( LEQ( heapMin, sortMin )) {
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return heapMin;
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}
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}
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return sortMin;
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}
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/* really tessPqSortIsEmpty */
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int pqIsEmpty( PriorityQ *pq )
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{
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return (pq->size == 0) && pqHeapIsEmpty( pq->heap );
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}
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/* really tessPqSortDelete */
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void pqDelete( PriorityQ *pq, PQhandle curr )
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{
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if( curr >= 0 ) {
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pqHeapDelete( pq->heap, curr );
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return;
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}
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|
curr = -(curr+1);
|
|
assert( curr < pq->max && pq->keys[curr] != NULL );
|
|
|
|
pq->keys[curr] = NULL;
|
|
while( pq->size > 0 && *(pq->order[pq->size-1]) == NULL ) {
|
|
-- pq->size;
|
|
}
|
|
}
|