mirror of
https://github.com/subsurface/subsurface.git
synced 2024-11-28 05:00:20 +00:00
96f5bea1ac
This is a bit more natural, and makes it much easier to do scale independence. In particular, I want to make it possible to grow and shrink the graph, and this should make it particularly simple to react by giving more or fewer minmax points. Signed-off-by: Linus Torvalds <torvalds@linux-foundation.org>
492 lines
11 KiB
C
492 lines
11 KiB
C
#include <stdio.h>
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#include <stdlib.h>
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#include <stdarg.h>
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#include <time.h>
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#include "dive.h"
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#include "display.h"
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#include "divelist.h"
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int selected_dive = 0;
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#define ROUND_UP(x,y) ((((x)+(y)-1)/(y))*(y))
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/*
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* When showing dive profiles, we scale things to the
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* current dive. However, we don't scale past less than
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* 30 minutes or 90 ft, just so that small dives show
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* up as such.
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*/
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static int round_seconds_up(int seconds)
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{
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return MAX(30*60, ROUND_UP(seconds, 60*10));
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}
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static int round_depth_up(depth_t depth)
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{
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unsigned mm = depth.mm;
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/* Minimum 30m */
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return MAX(30000, ROUND_UP(mm+3000, 10000));
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}
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typedef struct {
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double r,g,b;
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enum {CENTER,LEFT} allign;
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} text_render_options_t;
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static void plot_text(cairo_t *cr, text_render_options_t *tro,
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double x, double y, const char *fmt, ...)
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{
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cairo_text_extents_t extents;
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char buffer[80];
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va_list args;
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va_start(args, fmt);
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vsnprintf(buffer, sizeof(buffer), fmt, args);
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va_end(args);
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cairo_text_extents(cr, buffer, &extents);
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if (tro->allign == CENTER)
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x -= extents.width/2 + extents.x_bearing;
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y += extents.height * 1.2;
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cairo_move_to(cr, x, y);
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cairo_text_path(cr, buffer);
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cairo_set_source_rgb(cr, 0, 0, 0);
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cairo_stroke(cr);
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cairo_move_to(cr, x, y);
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cairo_set_source_rgb(cr, tro->r, tro->g, tro->b);
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cairo_show_text(cr, buffer);
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}
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/*
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* Find the next maximum point in a 10-minute window.
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*
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* We exit early if we hit "enough" of a depth reversal,
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* which is roughly 10 feet.
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*/
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static struct sample *next_minmax(struct sample *sample, struct sample *end, int minmax)
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{
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const int enough = 3000;
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struct sample *result;
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int timelimit, depthlimit;
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if (sample >= end)
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return 0;
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timelimit = 24*60*60;
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depthlimit = sample->depth.mm;
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result = NULL;
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for (;;) {
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int time, depth;
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sample++;
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if (sample >= end)
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return NULL;
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time = sample->time.seconds;
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depth = sample->depth.mm;
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if (time > timelimit)
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break;
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if (minmax) {
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if (depth <= depthlimit) {
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if (depthlimit - depth > enough)
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break;
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continue;
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}
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} else {
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if (depth >= depthlimit) {
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if (depth - depthlimit > enough)
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break;
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continue;
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}
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}
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result = sample;
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depthlimit = depth;
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/* Look up to ten minutes into the future */
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timelimit = time + 600;
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}
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return result;
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}
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/* Scale to 0,0 -> maxx,maxy */
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#define SCALE(x,y) (x)*maxx/scalex,(y)*maxy/scaley
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void plot_text_samples(struct dive *dive, cairo_t *cr,
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double maxx, double maxy,
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double scalex, double scaley,
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struct sample *a, struct sample *b)
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{
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struct sample *max, *min;
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if (b < a)
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return;
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if (b->time.seconds - a->time.seconds < 3*60)
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return;
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max = next_minmax(a, b, 1);
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if (max) {
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text_render_options_t tro = {1.0, 0.2, 0.2, CENTER};
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int sec = max->time.seconds;
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depth_t depth = max->depth;
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const char *fmt;
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double d;
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min = next_minmax(max, b, 0);
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plot_text_samples(dive, cr, maxx, maxy, scalex, scaley, a, max);
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if (min) {
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plot_text_samples(dive, cr, maxx, maxy, scalex, scaley, max, min);
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plot_text_samples(dive, cr, maxx, maxy, scalex, scaley, min, b);
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} else
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plot_text_samples(dive, cr, maxx, maxy, scalex, scaley, max, b);
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switch (output_units.length) {
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case METERS:
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d = depth.mm / 1000.0;
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fmt = "%.1f";
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break;
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case FEET:
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d = to_feet(depth);
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fmt = "%.0f";
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break;
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}
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plot_text(cr, &tro, SCALE(sec, depth.mm), fmt, d);
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return;
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}
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}
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static void plot_depth_text(struct dive *dive, cairo_t *cr,
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double maxx, double maxy)
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{
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struct sample *sample, *end;
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double scalex, scaley;
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int maxtime, maxdepth;
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/* Get plot scaling limits */
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maxtime = round_seconds_up(dive->duration.seconds);
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maxdepth = round_depth_up(dive->maxdepth);
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scalex = maxtime;
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scaley = maxdepth;
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cairo_set_font_size(cr, 14);
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cairo_set_source_rgb(cr, 1, 0.2, 0.2);
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/*
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* We never take the last sample into account.
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* It should be a surface event anyway, although
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* there are buggy cases where it isn't..
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*/
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sample = dive->sample;
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end = dive->sample + dive->samples - 1;
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plot_text_samples(dive, cr, maxx, maxy, scalex, scaley, sample, end);
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}
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static void plot_depth_profile(struct dive *dive, cairo_t *cr,
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double maxx, double maxy)
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{
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double scalex, scaley;
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int begins, sec, depth;
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int i, samples;
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struct sample *sample;
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int maxtime, maxdepth, marker;
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samples = dive->samples;
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if (!samples)
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return;
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cairo_set_line_width(cr, 2);
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/* Get plot scaling limits */
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maxtime = round_seconds_up(dive->duration.seconds);
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maxdepth = round_depth_up(dive->maxdepth);
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/* Time markers: every 5 min */
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scalex = maxtime;
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scaley = 1.0;
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for (i = 5*60; i < maxtime; i += 5*60) {
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cairo_move_to(cr, SCALE(i, 0));
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cairo_line_to(cr, SCALE(i, 1));
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}
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/* Depth markers: every 30 ft or 10 m*/
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scalex = 1.0;
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scaley = maxdepth;
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switch (output_units.length) {
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case METERS: marker = 10000; break;
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case FEET: marker = 9144; break; /* 30 ft */
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}
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cairo_set_source_rgba(cr, 1, 1, 1, 0.5);
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for (i = marker; i < maxdepth; i += marker) {
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cairo_move_to(cr, SCALE(0, i));
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cairo_line_to(cr, SCALE(1, i));
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}
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cairo_stroke(cr);
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/* Show mean depth */
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cairo_set_source_rgba(cr, 1, 0.2, 0.2, 0.40);
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cairo_move_to(cr, SCALE(0, dive->meandepth.mm));
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cairo_line_to(cr, SCALE(1, dive->meandepth.mm));
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cairo_stroke(cr);
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scalex = maxtime;
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sample = dive->sample;
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cairo_set_source_rgba(cr, 1, 0.2, 0.2, 0.80);
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begins = sample->time.seconds;
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cairo_move_to(cr, SCALE(sample->time.seconds, sample->depth.mm));
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for (i = 1; i < dive->samples; i++) {
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sample++;
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sec = sample->time.seconds;
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if (sec <= maxtime) {
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depth = sample->depth.mm;
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cairo_line_to(cr, SCALE(sec, depth));
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}
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}
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scaley = 1.0;
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cairo_line_to(cr, SCALE(MIN(sec,maxtime), 0));
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cairo_line_to(cr, SCALE(begins, 0));
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cairo_close_path(cr);
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cairo_set_source_rgba(cr, 1, 0.2, 0.2, 0.20);
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cairo_fill_preserve(cr);
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cairo_set_source_rgba(cr, 1, 0.2, 0.2, 0.80);
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cairo_stroke(cr);
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}
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/* gets both the actual start and end pressure as well as the scaling factors */
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static int get_cylinder_pressure_range(struct dive *dive, double *scalex, double *scaley,
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pressure_t *startp, pressure_t *endp)
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{
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int i;
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int min, max;
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*scalex = round_seconds_up(dive->duration.seconds);
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max = 0;
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min = 5000000;
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if (startp)
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startp->mbar = endp->mbar = 0;
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for (i = 0; i < dive->samples; i++) {
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int mbar;
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struct sample *sample = dive->sample + i;
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/* FIXME! We only track cylinder 0 right now */
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if (sample->cylinderindex)
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continue;
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mbar = sample->cylinderpressure.mbar;
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if (!mbar)
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continue;
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if (mbar < min)
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min = mbar;
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if (mbar > max)
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max = mbar;
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}
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if (startp)
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startp->mbar = max;
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if (endp)
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endp->mbar = min;
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if (!max)
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return 0;
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*scaley = max * 1.5;
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return 1;
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}
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static void plot_cylinder_pressure(struct dive *dive, cairo_t *cr,
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double maxx, double maxy)
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{
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int i, sec = -1;
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double scalex, scaley;
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if (!get_cylinder_pressure_range(dive, &scalex, &scaley, NULL, NULL))
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return;
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cairo_set_source_rgba(cr, 0.2, 1.0, 0.2, 0.80);
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cairo_move_to(cr, SCALE(0, dive->cylinder[0].start.mbar));
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for (i = 1; i < dive->samples; i++) {
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int mbar;
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struct sample *sample = dive->sample + i;
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mbar = sample->cylinderpressure.mbar;
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if (!mbar)
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continue;
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sec = sample->time.seconds;
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if (sec <= dive->duration.seconds)
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cairo_line_to(cr, SCALE(sec, mbar));
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}
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/*
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* We may have "surface time" events, in which case we don't go
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* back to dive duration
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*/
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if (sec < dive->duration.seconds)
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cairo_line_to(cr, SCALE(dive->duration.seconds, dive->cylinder[0].end.mbar));
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cairo_stroke(cr);
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}
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/*
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* Return air usage (in liters).
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*/
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static double calculate_airuse(struct dive *dive)
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{
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double airuse = 0;
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int i;
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for (i = 0; i < MAX_CYLINDERS; i++) {
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cylinder_t *cyl = dive->cylinder + i;
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int size = cyl->type.size.mliter;
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double kilo_atm;
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if (!size)
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continue;
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kilo_atm = (cyl->start.mbar - cyl->end.mbar) / 1013250.0;
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/* Liters of air at 1 atm == milliliters at 1k atm*/
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airuse += kilo_atm * size;
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}
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return airuse;
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}
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static void plot_info(struct dive *dive, cairo_t *cr,
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double maxx, double maxy)
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{
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text_render_options_t tro = {0.2, 1.0, 0.2, LEFT};
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const double liters_per_cuft = 28.317;
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const char *unit;
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double airuse;
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airuse = calculate_airuse(dive);
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if (!airuse)
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return;
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/* I really need to start addign some unit setting thing */
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switch (output_units.volume) {
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case LITER:
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unit = "l";
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break;
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case CUFT:
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unit = "cuft";
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airuse /= liters_per_cuft;
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break;
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}
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plot_text(cr, &tro, maxx*0.8, maxy*0.8, "vol: %4.2f %s", airuse, unit);
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if (dive->duration.seconds) {
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double pressure = 1 + (dive->meandepth.mm / 10000.0);
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double sac = airuse / pressure * 60 / dive->duration.seconds;
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plot_text(cr, &tro, maxx*0.8, maxy*0.85, "SAC: %4.2f %s/min", sac, unit);
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}
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}
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static void plot_cylinder_pressure_text(struct dive *dive, cairo_t *cr,
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double maxx, double maxy)
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{
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double scalex, scaley;
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pressure_t startp, endp;
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cairo_set_font_size(cr, 10);
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if (get_cylinder_pressure_range(dive, &scalex, &scaley,
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&startp, &endp)) {
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int start, end;
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const char *unit = "bar";
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switch (output_units.pressure) {
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case PASCAL:
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start = startp.mbar * 100;
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end = startp.mbar * 100;
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unit = "pascal";
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break;
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case BAR:
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start = (startp.mbar + 500) / 1000;
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end = (endp.mbar + 500) / 1000;
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unit = "bar";
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break;
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case PSI:
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start = to_PSI(startp);
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end = to_PSI(endp);
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unit = "psi";
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break;
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}
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text_render_options_t tro = {0.2, 1.0, 0.2, LEFT};
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plot_text(cr, &tro, SCALE(0, startp.mbar), "%d %s", start, unit);
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plot_text(cr, &tro, SCALE(dive->duration.seconds, endp.mbar),
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"%d %s", end, unit);
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}
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}
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static void plot(cairo_t *cr, int w, int h, struct dive *dive)
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{
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double topx, topy, maxx, maxy;
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double scalex, scaley;
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topx = w / 20.0;
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topy = h / 20.0;
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maxx = (w - 2*topx);
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maxy = (h - 2*topy);
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cairo_translate(cr, topx, topy);
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/* Cylinder pressure plot */
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plot_cylinder_pressure(dive, cr, maxx, maxy);
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/* Depth profile */
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plot_depth_profile(dive, cr, maxx, maxy);
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/* Text on top of all graphs.. */
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plot_depth_text(dive, cr, maxx, maxy);
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plot_cylinder_pressure_text(dive, cr, maxx, maxy);
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/* And info box in the lower right corner.. */
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plot_info(dive, cr, maxx, maxy);
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/* Bounding box last */
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scalex = scaley = 1.0;
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cairo_set_source_rgb(cr, 1, 1, 1);
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cairo_move_to(cr, SCALE(0,0));
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cairo_line_to(cr, SCALE(0,1));
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cairo_line_to(cr, SCALE(1,1));
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cairo_line_to(cr, SCALE(1,0));
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cairo_close_path(cr);
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cairo_stroke(cr);
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}
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static gboolean expose_event(GtkWidget *widget, GdkEventExpose *event, gpointer data)
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{
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struct dive *dive = current_dive;
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cairo_t *cr;
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int w,h;
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w = widget->allocation.width;
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h = widget->allocation.height;
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cr = gdk_cairo_create(widget->window);
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cairo_set_source_rgb(cr, 0, 0, 0);
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cairo_paint(cr);
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if (dive)
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plot(cr, w, h, dive);
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cairo_destroy(cr);
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return FALSE;
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}
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GtkWidget *dive_profile_widget(void)
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{
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GtkWidget *da;
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da = gtk_drawing_area_new();
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gtk_widget_set_size_request(da, 450, 350);
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g_signal_connect(da, "expose_event", G_CALLBACK(expose_event), NULL);
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return da;
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}
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