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((!"foo") ? (void)0 : __assert("!"foo."", __FILE__, __LINE__))
Reported by Nelson Beebee.
* src/output.c, src/vcg.c: Replace `assert (!"it succeeded")' with
`#define it_succeeded 0' and `assert (it_succeeded)'.
909 lines
25 KiB
C
909 lines
25 KiB
C
/* VCG description handler for Bison.
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Copyright 2001 Free Software Foundation, Inc.
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This file is part of Bison, the GNU Compiler Compiler.
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Bison is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 2, or (at your option)
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any later version.
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Bison is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with Bison; see the file COPYING. If not, write to
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the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
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Boston, MA 02111-1307, USA. */
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#include "system.h"
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#include "vcg.h"
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#include "vcg_defaults.h"
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#include "quotearg.h"
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/* Return an unambiguous printable representated, allocated in slot 0,
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for NAME, suitable for C strings. */
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static char const *
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quote (char const *name)
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{
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return quotearg_n_style (0, c_quoting_style, name);
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}
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/* Initialize a graph with the default values. */
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void
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new_graph (graph_t *g)
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{
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g->title = G_TITLE;
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g->label = G_LABEL;
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g->infos[0] = G_INFOS1;
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g->infos[1] = G_INFOS2;
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g->infos[2] = G_INFOS3;
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g->color = G_COLOR;
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g->textcolor = G_TEXTCOLOR;
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g->bordercolor = G_BORDERCOLOR;
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g->width = G_WIDTH;
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g->height = G_HEIGHT;
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g->borderwidth = G_BORDERWIDTH;
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g->x = G_X;
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g->y = G_Y;
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g->folding = G_FOLDING;
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g->shrink = G_SHRINK;
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g->stretch = G_STRETCH;
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g->textmode = G_TEXTMODE;
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g->shape = G_SHAPE;
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g->vertical_order = G_VERTICAL_ORDER;
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g->horizontal_order = G_HORIZONTAL_ORDER;
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g->xmax = G_XMAX; /* Not output. */
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g->ymax = G_YMAX; /* Not output. */
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g->xbase = G_XBASE;
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g->ybase = G_YBASE;
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g->xspace = G_XSPACE;
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g->yspace = G_YSPACE;
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g->xlspace = G_XLSPACE; /* Not output. */
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g->xraster = G_XRASTER;
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g->yraster = G_YRASTER;
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g->xlraster = G_XLRASTER;
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g->hidden = G_HIDDEN; /* No default value. */
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g->classname = G_CLASSNAME; /* No class name association. */
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g->layoutalgorithm = G_LAYOUTALGORITHM;
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g->layout_downfactor = G_LAYOUT_DOWNFACTOR;
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g->layout_upfactor = G_LAYOUT_UPFACTOR;
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g->layout_nearfactor = G_LAYOUT_NEARFACTOR;
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g->layout_splinefactor = G_LAYOUT_SPLINEFACTOR;
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g->late_edge_labels = G_LATE_EDGE_LABELS;
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g->display_edge_labels = G_DISPLAY_EDGE_LABELS;
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g->dirty_edge_labels = G_DIRTY_EDGE_LABELS;
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g->finetuning = G_FINETUNING;
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g->ignore_singles = G_IGNORE_SINGLES;
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g->straight_phase = G_STRAIGHT_PHASE;
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g->priority_phase = G_PRIORITY_PHASE;
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g->manhattan_edges = G_MANHATTAN_EDGES;
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g->smanhattan_edges = G_SMANHATTAN_EDGES;
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g->near_edges = G_NEAR_EDGES;
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g->orientation = G_ORIENTATION;
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g->node_alignement = G_NODE_ALIGNEMENT;
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g->port_sharing = G_PORT_SHARING;
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g->arrow_mode = G_ARROW_MODE;
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g->treefactor = G_TREEFACTOR;
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g->spreadlevel = G_SPREADLEVEL;
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g->crossing_weight = G_CROSSING_WEIGHT;
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g->crossing_phase2 = G_CROSSING_PHASE2;
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g->crossing_optimization = G_CROSSING_OPTIMIZATION;
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g->view = G_VIEW;
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g->edges = G_EDGES;
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g->nodes = G_NODES;
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g->splines = G_SPLINES;
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g->bmax = G_BMAX;
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g->cmin = G_CMIN;
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g->cmax = G_CMAX;
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g->pmin = G_PMIN;
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g->pmax = G_PMAX;
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g->rmin = G_RMIN;
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g->rmax = G_RMAX;
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g->smax = G_SMAX;
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g->node_list = G_NODE_LIST;
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g->edge_list = G_EDGE_LIST;
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new_edge(&g->edge);
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new_node(&g->node);
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}
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/* Initialize a node with the defalut values. */
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void
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new_node (node_t *node)
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{
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node->title = N_TITLE;
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node->label = N_LABEL;
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node->locx = N_LOCX; /* Default unspcified. */
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node->locy = N_LOCY; /* Default unspcified. */
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node->vertical_order = N_VERTICAL_ORDER; /* Default unspcified. */
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node->horizontal_order = N_HORIZONTAL_ORDER; /* Default unspcified. */
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node->width = N_WIDTH; /* We assume that we can't define it now. */
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node->height = N_HEIGHT; /* Also. */
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node->shrink = N_SHRINK;
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node->stretch = N_STRETCH;
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node->folding = N_FOLDING; /* No explicit default value. */
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node->shape = N_SHAPE;
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node->textmode = N_TEXTMODE;
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node->borderwidth = N_BORDERWIDTH;
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node->color = N_COLOR;
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node->textcolor = N_TEXTCOLOR;
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node->bordercolor = N_BORDERCOLOR;
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node->infos[0] = N_INFOS1;
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node->infos[1] = N_INFOS2;
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node->infos[2] = N_INFOS3;
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node->next = N_NEXT;
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}
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/* Initialize a edge with the defalut values. */
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void
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new_edge (edge_t *edge)
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{
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edge->type = E_EDGE_TYPE;
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edge->sourcename = E_SOURCENAME;
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edge->targetname = E_TARGETNAME;
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edge->label = E_LABEL;
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edge->linestyle = E_LINESTYLE;
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edge->thickness = E_THICKNESS;
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edge->class = E_CLASS;
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edge->color = E_COLOR;
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edge->textcolor = E_TEXTCOLOR;
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edge->arrowcolor = E_ARROWCOLOR;
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edge->backarrowcolor = E_BACKARROWCOLOR;
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edge->arrowsize = E_ARROWSIZE;
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edge->backarrowsize = E_BACKARROWSIZE;
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edge->arrowstyle = E_ARROWSTYLE;
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edge->backarrowstyle = E_BACKARROWSTYLE;
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edge->priority = E_PRIORITY;
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edge->anchor = E_ANCHOR;
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edge->horizontal_order = E_HORIZONTAL_ORDER;
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edge->next = E_NEXT;
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}
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/*----------------------------------------------.
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| Get functions. |
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| Return string corresponding to an enum value. |
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`----------------------------------------------*/
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static const char *
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get_color_str (enum color_e c)
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{
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switch (c)
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{
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case white: return "white";
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case blue: return "blue";
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case red: return "red";
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case green: return "green";
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case yellow: return "yellow";
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case magenta: return "magenta";
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case cyan: return "cyan";
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case darkgrey: return "darkgrey";
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case darkblue: return "darkblue";
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case darkred: return "darkred";
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case darkgreen: return "darkgreen";
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case darkyellow: return "darkyellow";
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case darkmagenta: return "darkmagenta";
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case darkcyan: return "darkcyan";
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case gold: return "gold";
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case lightgrey: return "lightgrey";
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case lightblue: return "lightblue";
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case lightred: return "lightred";
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case lightgreen: return "lightgreen";
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case lightyellow: return "lightyellow";
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case lightmagenta: return "lightmagenta";
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case lightcyan: return "lightcyan";
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case lilac: return "lilac";
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case turquoise: return "turquoise";
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case aquamarine: return "aquamarine";
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case khaki: return "khaki";
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case purple: return "purple";
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case yellowgreen: return "yellowgreen";
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case pink: return "pink";
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case orange: return "orange";
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case orchid: return "orchid";
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case black: return "black";
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default:
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#define A_known_default_color 0
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assert (A_known_default_color);
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}
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return NULL;
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}
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static const char *
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get_textmode_str (enum textmode_e t)
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{
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switch (t)
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{
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case centered: return "center";
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case left_justify: return "left_justify";
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case right_justify: return "right_justify";
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default:
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#define A_known_text_mode 0
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assert (A_known_text_mode);
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}
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return NULL;
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}
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static const char *
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get_shape_str (enum shape_e s)
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{
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switch (s)
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{
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case box: return "box";
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case rhomb: return "rhomb";
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case ellipse: return "ellipse";
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case triangle: return "triangle";
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default:
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#define A_known_shape 0
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assert (A_known_shape);
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}
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return NULL;
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}
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static const char *
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get_layoutalgorithm_str (enum layoutalgorithm_e l)
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{
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switch (l)
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{
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case normal: return "normal";
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case maxdepth: return "maxdepth";
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case mindepth: return "mindepth";
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case maxdepthslow: return "maxdepthslow";
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case mindepthslow: return "mindepthslow";
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case maxdegree: return "maxdegree";
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case mindegree: return "mindegree";
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case maxindegree: return "maxindegree";
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case minindegree: return "minindegree";
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case maxoutdegree: return "maxoutdegree";
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case minoutdegree: return "minoutdegree";
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case minbackward: return "minbackward";
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case dfs: return "dfs";
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case tree: return "tree";
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default:
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#define A_known_layout_algorithm 0
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assert (A_known_layout_algorithm);
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}
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return NULL;
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}
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static const char *
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get_decision_str (enum decision_e d)
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{
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switch (d)
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{
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case no: return "no";
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case yes: return "yes";
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default:
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#define Either_yes_nor_no 0
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assert (Either_yes_nor_no);
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}
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return NULL;
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}
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static const char *
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get_orientation_str (enum orientation_e o)
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{
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switch (o)
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{
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case top_to_bottom: return "top_to_bottom";
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case bottom_to_top: return "bottom_to_top";
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case left_to_right: return "left_to_right";
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case right_to_left: return "right_to_left";
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default:
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#define A_knownn_orientation 0
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assert (A_knownn_orientation);
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}
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return NULL;
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}
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static const char *
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get_node_alignement_str (enum alignement_e a)
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{
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switch (a)
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{
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case center: return "center";
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case top: return "top";
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case bottom: return "bottom";
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default:
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#define A_known_alignement 0
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assert (A_known_alignement);
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}
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return NULL;
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}
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static const char *
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get_arrow_mode_str (enum arrow_mode_e a)
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{
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switch (a)
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{
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case fixed: return "fixed";
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case free_a: return "free";
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default:
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#define A_known_arrow_mode 0
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assert (A_known_arrow_mode);
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}
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return NULL;
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}
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static const char *
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get_crossing_type_str (enum crossing_type_e c)
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{
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switch (c)
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{
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case bary: return "bary";
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case median: return "median";
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case barymedian: return "barymedian";
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case medianbary: return "medianbary";
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default:
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#define A_known_crossing_type 0
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assert (A_known_crossing_type);
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}
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return NULL;
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}
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static const char *
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get_view_str (enum view_e v)
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{
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switch (v)
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{
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case normal_view: return "normal_view";
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case cfish: return "cfish";
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case pfish: return "pfish";
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case fcfish: return "fcfish";
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case fpfish: return "fpfish";
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default:
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#define A_known_view 0
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assert (A_known_view);
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}
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return NULL;
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}
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static const char *
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get_linestyle_str (enum linestyle_e l)
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{
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switch (l)
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{
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case continuous: return "continuous";
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case dashed: return "dashed";
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case dotted: return "dotted";
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case invisible: return "invisible";
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default:
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#define A_known_line_style 0
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assert (A_known_line_style);
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}
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return NULL;
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}
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static const char *
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get_arrowstyle_str (enum arrowstyle_e a)
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{
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switch (a)
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{
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case solid: return "solid";
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case line: return "line";
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case none: return "none";
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default:
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#define A_known_arrow_style 0
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assert (A_known_arrow_style);
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}
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return NULL;
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}
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/*----------------------------.
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| Add functions. |
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| Edge and Nodes int a graph. |
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`----------------------------*/
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void
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add_node (graph_t *graph, node_t *node)
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{
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node->next = graph->node_list;
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graph->node_list = node;
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}
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void
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add_edge (graph_t *graph, edge_t *edge)
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{
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edge->next = graph->edge_list;
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graph->edge_list = edge;
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}
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void
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add_classname (graph_t *g, int val, const char *name)
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{
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struct classname_s *classname;
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classname = XMALLOC (struct classname_s, 1);
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classname->no = val;
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classname->name = name;
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classname->next = g->classname;
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g->classname = classname;
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}
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void
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add_infoname (graph_t *g, int integer, const char *string)
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{
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struct infoname_s *infoname;
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infoname = XMALLOC (struct infoname_s, 1);
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infoname->integer = integer;
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infoname->string = string;
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infoname->next = g->infoname;
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g->infoname = infoname;
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}
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/* Build a colorentry struct and add it to the list. */
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void
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add_colorentry (graph_t *g, int color_idx, int red_cp,
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int green_cp, int blue_cp)
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{
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struct colorentry_s *ce;
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ce = XMALLOC (struct colorentry_s, 1);
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ce->color_index = color_idx;
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ce->red_cp = red_cp;
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ce->green_cp = green_cp;
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ce->blue_cp = blue_cp;
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ce->next = g->colorentry;
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g->colorentry = ce;
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}
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/*-------------------------------------.
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| Open and close functions (formatted) |
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`-------------------------------------*/
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void
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open_edge(edge_t *edge, FILE *fout)
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{
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switch (edge->type)
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{
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case normal_edge:
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fputs ("\tedge: {\n", fout);
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break;
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case back_edge:
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fputs ("\tbackedge: {\n", fout);
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break;
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case near_edge:
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fputs ("\tnearedge: {\n", fout);
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break;
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case bent_near_edge:
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fputs ("\tbentnearedge: {\n", fout);
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break;
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default:
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fputs ("\tedge: {\n", fout);
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}
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}
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void
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close_edge(FILE *fout)
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{
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fputs ("\t}\n", fout);
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}
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void
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open_node(FILE *fout)
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{
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fputs ("\tnode: {\n", fout);
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}
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void
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close_node(FILE *fout)
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{
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fputs ("\t}\n", fout);
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}
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void
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open_graph(FILE *fout)
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{
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fputs ("graph: {\n", fout);
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}
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void
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close_graph(graph_t *graph, FILE *fout)
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{
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fputc ('\n', fout);
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/* FIXME: Unallocate nodes and edges if required. */
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{
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node_t *node;
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|
for (node = graph->node_list; node; node = node->next)
|
|
{
|
|
open_node (fout);
|
|
output_node (node, fout);
|
|
close_node (fout);
|
|
}
|
|
}
|
|
|
|
fputc ('\n', fout);
|
|
|
|
{
|
|
edge_t *edge;
|
|
|
|
for (edge = graph->edge_list; edge; edge = edge->next)
|
|
{
|
|
open_edge (edge, fout);
|
|
output_edge (edge, fout);
|
|
close_edge (fout);
|
|
}
|
|
}
|
|
|
|
fputs ("}\n", fout);
|
|
}
|
|
|
|
/*-------------------------------------------.
|
|
| Output functions (formatted) in file FOUT |
|
|
`-------------------------------------------*/
|
|
|
|
void
|
|
output_node (node_t *node, FILE *fout)
|
|
{
|
|
if (node->title != N_TITLE)
|
|
fprintf (fout, "\t\ttitle:\t%s\n", quote (node->title));
|
|
if (node->label != N_LABEL)
|
|
fprintf (fout, "\t\tlabel:\t%s\n", quote (node->label));
|
|
|
|
if ((node->locx != N_LOCX) && (node->locy != N_LOCY))
|
|
fprintf (fout, "\t\tloc { x: %d y: %d }\t\n", node->locx, node->locy);
|
|
|
|
if (node->vertical_order != N_VERTICAL_ORDER)
|
|
fprintf (fout, "\t\tvertical_order:\t%d\n", node->vertical_order);
|
|
if (node->horizontal_order != N_HORIZONTAL_ORDER)
|
|
fprintf (fout, "\t\thorizontal_order:\t%d\n", node->horizontal_order);
|
|
|
|
if (node->width != N_WIDTH)
|
|
fprintf (fout, "\t\twidth:\t%d\n", node->width);
|
|
if (node->height != N_HEIGHT)
|
|
fprintf (fout, "\t\theight:\t%d\n", node->height);
|
|
|
|
if (node->shrink != N_SHRINK)
|
|
fprintf (fout, "\t\tshrink:\t%d\n", node->shrink);
|
|
if (node->stretch != N_STRETCH)
|
|
fprintf (fout, "\t\tstretch:\t%d\n", node->stretch);
|
|
|
|
if (node->folding != N_FOLDING)
|
|
fprintf (fout, "\t\tfolding:\t%d\n", node->folding);
|
|
|
|
if (node->textmode != N_TEXTMODE)
|
|
fprintf (fout, "\t\ttextmode:\t%s\n",
|
|
get_textmode_str (node->textmode));
|
|
|
|
if (node->shape != N_SHAPE)
|
|
fprintf (fout, "\t\tshape:\t%s\n", get_shape_str (node->shape));
|
|
|
|
if (node->borderwidth != N_BORDERWIDTH)
|
|
fprintf (fout, "\t\tborderwidth:\t%d\n", node->borderwidth);
|
|
|
|
if (node->color != N_COLOR)
|
|
fprintf (fout, "\t\tcolor:\t%s\n", get_color_str (node->color));
|
|
if (node->textcolor != N_TEXTCOLOR)
|
|
fprintf (fout, "\t\ttextcolor:\t%s\n",
|
|
get_color_str (node->textcolor));
|
|
if (node->bordercolor != N_BORDERCOLOR)
|
|
fprintf (fout, "\t\tbordercolor:\t%s\n",
|
|
get_color_str (node->bordercolor));
|
|
|
|
{
|
|
int i;
|
|
for (i = 0; i < 3; ++i)
|
|
if (node->infos[i])
|
|
fprintf (fout, "\t\tinfo%d:\t%s\n",
|
|
i, quote (node->infos[i]));
|
|
}
|
|
}
|
|
|
|
void
|
|
output_edge (edge_t *edge, FILE *fout)
|
|
{
|
|
/* FIXME: SOURCENAME and TARGETNAME are mandatory
|
|
so it has to be fatal not to give these informations. */
|
|
if (edge->sourcename != E_SOURCENAME)
|
|
fprintf (fout, "\t\tsourcename:\t%s\n", quote (edge->sourcename));
|
|
if (edge->targetname != E_TARGETNAME)
|
|
fprintf (fout, "\t\ttargetname:\t%s\n", quote (edge->targetname));
|
|
|
|
if (edge->label != E_LABEL)
|
|
fprintf (fout, "\t\tlabel:\t%s\n", quote (edge->label));
|
|
|
|
if (edge->linestyle != E_LINESTYLE)
|
|
fprintf (fout, "\t\tlinestyle:\t%s\n",
|
|
quote (get_linestyle_str(edge->linestyle)));
|
|
|
|
if (edge->thickness != E_THICKNESS)
|
|
fprintf (fout, "\t\tthickness:\t%d\n", edge->thickness);
|
|
if (edge->class != E_CLASS)
|
|
fprintf (fout, "\t\tclass:\t%d\n", edge->class);
|
|
|
|
if (edge->color != E_COLOR)
|
|
fprintf (fout, "\t\tcolor:\t%s\n", get_color_str (edge->color));
|
|
if (edge->color != E_TEXTCOLOR)
|
|
fprintf (fout, "\t\ttextcolor:\t%s\n",
|
|
get_color_str (edge->textcolor));
|
|
if (edge->arrowcolor != E_ARROWCOLOR)
|
|
fprintf (fout, "\t\tarrowcolor:\t%s\n",
|
|
get_color_str (edge->arrowcolor));
|
|
if (edge->backarrowcolor != E_BACKARROWCOLOR)
|
|
fprintf (fout, "\t\tbackarrowcolor:\t%s\n",
|
|
get_color_str (edge->backarrowcolor));
|
|
|
|
if (edge->arrowsize != E_ARROWSIZE)
|
|
fprintf (fout, "\t\tarrowsize:\t%d\n", edge->arrowsize);
|
|
if (edge->backarrowsize != E_BACKARROWSIZE)
|
|
fprintf (fout, "\t\tbackarrowsize:\t%d\n", edge->backarrowsize);
|
|
|
|
if (edge->arrowstyle != E_ARROWSTYLE)
|
|
fprintf (fout, "\t\tarrowstyle:\t%s\n",
|
|
get_arrowstyle_str(edge->arrowstyle));
|
|
if (edge->backarrowstyle != E_BACKARROWSTYLE)
|
|
fprintf (fout, "\t\tbackarrowstyle:\t%s\n",
|
|
get_arrowstyle_str(edge->backarrowstyle));
|
|
|
|
if (edge->priority != E_PRIORITY)
|
|
fprintf (fout, "\t\tpriority:\t%d\n", edge->priority);
|
|
if (edge->anchor != E_ANCHOR)
|
|
fprintf (fout, "\t\tanchor:\t%d\n", edge->anchor);
|
|
if (edge->horizontal_order != E_HORIZONTAL_ORDER)
|
|
fprintf (fout, "\t\thorizontal_order:\t%d\n", edge->horizontal_order);
|
|
}
|
|
|
|
void
|
|
output_graph (graph_t *graph, FILE *fout)
|
|
{
|
|
if (graph->title)
|
|
fprintf (fout, "\ttitle:\t%s\n", quote (graph->title));
|
|
if (graph->label)
|
|
fprintf (fout, "\tlabel:\t%s\n", quote (graph->label));
|
|
|
|
{
|
|
int i;
|
|
for (i = 0; i < 3; ++i)
|
|
if (graph->infos[i])
|
|
fprintf (fout, "\tinfo%d:\t%s\n", i, quote (graph->infos[i]));
|
|
}
|
|
|
|
if (graph->color != G_COLOR)
|
|
fprintf (fout, "\tcolor:\t%s\n", get_color_str (graph->color));
|
|
if (graph->textcolor != G_TEXTCOLOR)
|
|
fprintf (fout, "\ttextcolor:\t%s\n", get_color_str (graph->textcolor));
|
|
if (graph->bordercolor != G_BORDERCOLOR)
|
|
fprintf (fout, "\tbordercolor:\t%s\n",
|
|
get_color_str (graph->bordercolor));
|
|
|
|
if (graph->width != G_WIDTH)
|
|
fprintf (fout, "\twidth:\t%d\n", graph->width);
|
|
if (graph->height != G_HEIGHT)
|
|
fprintf (fout, "\theight:\t%d\n", graph->height);
|
|
if (graph->borderwidth != G_BORDERWIDTH)
|
|
fprintf (fout, "\tborderwidth:\t%d\n", graph->borderwidth);
|
|
|
|
if (graph->x != G_X)
|
|
fprintf (fout, "\tx:\t%d\n", graph->x);
|
|
if (graph->y != G_Y)
|
|
fprintf (fout, "\ty:\t%d\n", graph->y);
|
|
|
|
if (graph->folding != G_FOLDING)
|
|
fprintf (fout, "\tfolding:\t%d\n", graph->folding);
|
|
|
|
if (graph->shrink != G_SHRINK)
|
|
fprintf (fout, "\tshrink:\t%d\n", graph->shrink);
|
|
if (graph->stretch != G_STRETCH)
|
|
fprintf (fout, "\tstretch:\t%d\n", graph->stretch);
|
|
|
|
if (graph->textmode != G_TEXTMODE)
|
|
fprintf (fout, "\ttextmode:\t%s\n",
|
|
get_textmode_str (graph->textmode));
|
|
|
|
if (graph->shape != G_SHAPE)
|
|
fprintf (fout, "\tshape:\t%s\n", get_shape_str (graph->shape));
|
|
|
|
if (graph->vertical_order != G_VERTICAL_ORDER)
|
|
fprintf (fout, "\tvertical_order:\t%d\n", graph->vertical_order);
|
|
if (graph->horizontal_order != G_HORIZONTAL_ORDER)
|
|
fprintf (fout, "\thorizontal_order:\t%d\n", graph->horizontal_order);
|
|
|
|
if (graph->xmax != G_XMAX)
|
|
fprintf (fout, "\txmax:\t%d\n", graph->xmax);
|
|
if (graph->ymax != G_YMAX)
|
|
fprintf (fout, "\tymax:\t%d\n", graph->ymax);
|
|
|
|
if (graph->xbase != G_XBASE)
|
|
fprintf (fout, "\txbase:\t%d\n", graph->xbase);
|
|
if (graph->ybase != G_YBASE)
|
|
fprintf (fout, "\tybase:\t%d\n", graph->ybase);
|
|
|
|
if (graph->xspace != G_XSPACE)
|
|
fprintf (fout, "\txspace:\t%d\n", graph->xspace);
|
|
if (graph->yspace != G_YSPACE)
|
|
fprintf (fout, "\tyspace:\t%d\n", graph->yspace);
|
|
if (graph->xlspace != G_XLSPACE)
|
|
fprintf (fout, "\txlspace:\t%d\n", graph->xlspace);
|
|
|
|
if (graph->xraster != G_XRASTER)
|
|
fprintf (fout, "\txraster:\t%d\n", graph->xraster);
|
|
if (graph->yraster != G_YRASTER)
|
|
fprintf (fout, "\tyraster:\t%d\n", graph->yraster);
|
|
if (graph->xlraster != G_XLRASTER)
|
|
fprintf (fout, "\txlraster:\t%d\n", graph->xlraster);
|
|
|
|
if (graph->hidden != G_HIDDEN)
|
|
fprintf (fout, "\thidden:\t%d\n", graph->hidden);
|
|
|
|
/* FIXME: Unallocate struct list if required.
|
|
Maybe with a little function. */
|
|
if (graph->classname != G_CLASSNAME)
|
|
{
|
|
struct classname_s *ite;
|
|
|
|
for (ite = graph->classname; ite; ite = ite->next)
|
|
fprintf (fout, "\tclassname %d :\t%s\n", ite->no, ite->name);
|
|
}
|
|
|
|
if (graph->infoname != G_INFONAME)
|
|
{
|
|
struct infoname_s *ite;
|
|
|
|
for (ite = graph->infoname; ite; ite = ite->next)
|
|
fprintf (fout, "\tinfoname %d :\t%s\n", ite->integer, ite->string);
|
|
}
|
|
|
|
if (graph->colorentry != G_COLORENTRY)
|
|
{
|
|
struct colorentry_s *ite;
|
|
|
|
for (ite = graph->colorentry; ite; ite = ite->next)
|
|
{
|
|
fprintf (fout, "\tcolorentry %d :\t%d %d %d\n",
|
|
ite->color_index,
|
|
ite->red_cp,
|
|
ite->green_cp,
|
|
ite->blue_cp);
|
|
}
|
|
}
|
|
|
|
if (graph->layoutalgorithm != G_LAYOUTALGORITHM)
|
|
fprintf (fout, "\tlayoutalgorithm:\t%s\n",
|
|
get_layoutalgorithm_str(graph->layoutalgorithm));
|
|
|
|
if (graph->layout_downfactor != G_LAYOUT_DOWNFACTOR)
|
|
fprintf (fout, "\tlayout_downfactor:\t%d\n", graph->layout_downfactor);
|
|
if (graph->layout_upfactor != G_LAYOUT_UPFACTOR)
|
|
fprintf (fout, "\tlayout_upfactor:\t%d\n", graph->layout_upfactor);
|
|
if (graph->layout_nearfactor != G_LAYOUT_NEARFACTOR)
|
|
fprintf (fout, "\tlayout_nearfactor:\t%d\n", graph->layout_nearfactor);
|
|
if (graph->layout_splinefactor != G_LAYOUT_SPLINEFACTOR)
|
|
fprintf (fout, "\tlayout_splinefactor:\t%d\n",
|
|
graph->layout_splinefactor);
|
|
|
|
if (graph->late_edge_labels != G_LATE_EDGE_LABELS)
|
|
fprintf (fout, "\tlate_edge_labels:\t%s\n",
|
|
get_decision_str(graph->late_edge_labels));
|
|
if (graph->display_edge_labels != G_DISPLAY_EDGE_LABELS)
|
|
fprintf (fout, "\tdisplay_edge_labels:\t%s\n",
|
|
get_decision_str(graph->display_edge_labels));
|
|
if (graph->dirty_edge_labels != G_DIRTY_EDGE_LABELS)
|
|
fprintf (fout, "\tdirty_edge_labels:\t%s\n",
|
|
get_decision_str(graph->dirty_edge_labels));
|
|
if (graph->finetuning != G_FINETUNING)
|
|
fprintf (fout, "\tfinetuning:\t%s\n",
|
|
get_decision_str(graph->finetuning));
|
|
if (graph->ignore_singles != G_IGNORE_SINGLES)
|
|
fprintf (fout, "\tignore_singles:\t%s\n",
|
|
get_decision_str(graph->ignore_singles));
|
|
if (graph->straight_phase != G_STRAIGHT_PHASE)
|
|
fprintf (fout, "\tstraight_phase:\t%s\n",
|
|
get_decision_str(graph->straight_phase));
|
|
if (graph->priority_phase != G_PRIORITY_PHASE)
|
|
fprintf (fout, "\tpriority_phase:\t%s\n",
|
|
get_decision_str(graph->priority_phase));
|
|
if (graph->manhattan_edges != G_MANHATTAN_EDGES)
|
|
fprintf (fout,
|
|
"\tmanhattan_edges:\t%s\n",
|
|
get_decision_str(graph->manhattan_edges));
|
|
if (graph->smanhattan_edges != G_SMANHATTAN_EDGES)
|
|
fprintf (fout,
|
|
"\tsmanhattan_edges:\t%s\n",
|
|
get_decision_str(graph->smanhattan_edges));
|
|
if (graph->near_edges != G_NEAR_EDGES)
|
|
fprintf (fout, "\tnear_edges:\t%s\n",
|
|
get_decision_str(graph->near_edges));
|
|
|
|
if (graph->orientation != G_ORIENTATION)
|
|
fprintf (fout, "\torientation:\t%s\n",
|
|
get_orientation_str(graph->orientation));
|
|
|
|
if (graph->node_alignement != G_NODE_ALIGNEMENT)
|
|
fprintf (fout, "\tnode_alignement:\t%s\n",
|
|
get_node_alignement_str(graph->node_alignement));
|
|
|
|
if (graph->port_sharing != G_PORT_SHARING)
|
|
fprintf (fout, "\tport_sharing:\t%s\n",
|
|
get_decision_str(graph->port_sharing));
|
|
|
|
if (graph->arrow_mode != G_ARROW_MODE)
|
|
fprintf (fout, "\tarrow_mode:\t%s\n",
|
|
get_arrow_mode_str(graph->arrow_mode));
|
|
|
|
if (graph->treefactor != G_TREEFACTOR)
|
|
fprintf (fout, "\ttreefactor:\t%f\n", graph->treefactor);
|
|
if (graph->spreadlevel != G_SPREADLEVEL)
|
|
fprintf (fout, "\tspreadlevel:\t%d\n", graph->spreadlevel);
|
|
|
|
if (graph->crossing_weight != G_CROSSING_WEIGHT)
|
|
fprintf (fout, "\tcrossing_weight:\t%s\n",
|
|
get_crossing_type_str(graph->crossing_weight));
|
|
if (graph->crossing_phase2 != G_CROSSING_PHASE2)
|
|
fprintf (fout, "\tcrossing_phase2:\t%s\n",
|
|
get_decision_str(graph->crossing_phase2));
|
|
if (graph->crossing_optimization != G_CROSSING_OPTIMIZATION)
|
|
fprintf (fout, "\tcrossing_optimization:\t%s\n",
|
|
get_decision_str(graph->crossing_optimization));
|
|
|
|
if (graph->view != G_VIEW)
|
|
fprintf (fout, "\tview:\t%s\n", get_view_str(graph->view));
|
|
|
|
if (graph->edges != G_EDGES)
|
|
fprintf (fout, "\tedges:\t%s\n", get_decision_str(graph->edges));
|
|
|
|
if (graph->nodes != G_NODES)
|
|
fprintf (fout,"\tnodes:\t%s\n", get_decision_str(graph->nodes));
|
|
|
|
if (graph->splines != G_SPLINES)
|
|
fprintf (fout, "\tsplines:\t%s\n", get_decision_str(graph->splines));
|
|
|
|
if (graph->bmax != G_BMAX)
|
|
fprintf (fout, "\tbmax:\t%d\n", graph->bmax);
|
|
if (graph->cmin != G_CMIN)
|
|
fprintf (fout, "\tcmin:\t%d\n", graph->cmin);
|
|
if (graph->cmax != G_CMAX)
|
|
fprintf (fout, "\tcmax:\t%d\n", graph->cmax);
|
|
if (graph->pmin != G_PMIN)
|
|
fprintf (fout, "\tpmin:\t%d\n", graph->pmin);
|
|
if (graph->pmax != G_PMAX)
|
|
fprintf (fout, "\tpmax:\t%d\n", graph->pmax);
|
|
if (graph->rmin != G_RMIN)
|
|
fprintf (fout, "\trmin:\t%d\n", graph->rmin);
|
|
if (graph->rmax != G_RMAX)
|
|
fprintf (fout, "\trmax:\t%d\n", graph->rmax);
|
|
if (graph->smax != G_SMAX)
|
|
fprintf (fout, "\tsmax:\t%d\n", graph->smax);
|
|
}
|