125 lines
4.6 KiB
Python
125 lines
4.6 KiB
Python
"""Holographic scanline/sweep/noise overlay — the same visual treatment as
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orbit-menu's hologram effect, adapted for astro-menu's rectangular panel
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instead of orbit-menu's circular canvas: no radial vignette mask here, since
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the panel's own Cairo-drawn module borders (lib/border.py) already bound it —
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covering the full rectangle reads as one continuous "HUD screen" rather than
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tinting past its own edges.
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Owns its own animation clock (advanced by window.py's tick callback via
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.tick(dt)) and a persistent particle list for the noise specs, exactly like
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orbit-menu's _update_hologram_particles: each spec keeps its position/color
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for a real randomized lifetime (fade in, hold, fade out) instead of every
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spec teleporting to a new position every frame.
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"""
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from __future__ import annotations
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import math
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import random
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import cairo
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import gi
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gi.require_version("Gtk", "4.0")
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from gi.repository import Gtk # noqa: E402
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# Same CyberQueer violet/magenta/red combo as orbit-menu's hologram overlay.
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_VIOLET = (0x50 / 255, 0x18 / 255, 0xDD / 255)
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_MAGENTA = (0.92, 0.0, 0.65)
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_ACCENT = (0xE4 / 255, 0x00 / 255, 0x46 / 255)
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class HologramOverlay:
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SCANLINE_GAP = 4.0
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SCANLINE_ALPHA = 0.16 # fixed grid — kept clearly visible, not just a faint texture
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SWEEP_PERIOD = 3.4 # seconds for one top-to-bottom pass
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SWEEP_HALF_HEIGHT = 90.0
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NOISE_COUNT = 95 # specs alive at once (each with its own lifetime)
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NOISE_COLORS = [_MAGENTA, _ACCENT]
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NOISE_LIFETIME = (0.5, 1.4)
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NOISE_FADE_IN = 0.2
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NOISE_FADE_OUT = 0.35
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NOISE_ALPHA_RANGE = (0.10, 0.34)
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def __init__(self, enabled: bool = True) -> None:
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self.enabled = enabled
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self._sat_time = 0.0
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self._particles: list[dict] = []
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self.widget = Gtk.DrawingArea()
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self.widget.set_can_target(False) # never steals clicks from content underneath
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self.widget.add_css_class("astro-hologram")
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self.widget.set_hexpand(True)
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self.widget.set_vexpand(True)
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self.widget.set_halign(Gtk.Align.FILL)
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self.widget.set_valign(Gtk.Align.FILL)
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self.widget.set_draw_func(self._draw_frame)
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def tick(self, dt: float) -> None:
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if not self.enabled:
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return
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self._sat_time += dt
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self.widget.queue_draw()
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# -- drawing --------------------------------------------------------------
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def _draw_frame(self, _area, cr, width: float, height: float) -> None:
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if not self.enabled or width <= 0 or height <= 0:
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return
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r, g, b = _VIOLET
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cr.save()
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cr.set_source_rgba(r, g, b, self.SCANLINE_ALPHA)
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cr.set_line_width(1.0)
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y = 0.0
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while y < height:
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cr.move_to(0, y)
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cr.line_to(width, y)
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y += self.SCANLINE_GAP
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cr.stroke()
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cr.restore()
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phase = (self._sat_time % self.SWEEP_PERIOD) / self.SWEEP_PERIOD
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sweep_y = phase * height
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hh = self.SWEEP_HALF_HEIGHT
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grad = cairo.LinearGradient(0, sweep_y - hh, 0, sweep_y + hh)
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grad.add_color_stop_rgba(0.0, r, g, b, 0.0)
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grad.add_color_stop_rgba(0.5, r, g, b, 0.07)
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grad.add_color_stop_rgba(1.0, r, g, b, 0.0)
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cr.set_source(grad)
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cr.rectangle(0, sweep_y - hh, width, hh * 2)
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cr.fill()
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flicker = 0.012 + 0.007 * math.sin(self._sat_time * 11.0)
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cr.set_source_rgba(r, g, b, max(0.0, flicker))
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cr.paint()
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self._draw_noise(cr, width, height)
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def _draw_noise(self, cr, width: float, height: float) -> None:
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now = self._sat_time
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self._particles = [p for p in self._particles if now - p["birth"] < p["life"]]
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while len(self._particles) < self.NOISE_COUNT:
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self._particles.append({
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"x": random.uniform(0, width),
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"y": random.uniform(0, height),
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"w": random.uniform(1.0, 2.6),
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"h": random.uniform(1.0, 2.0),
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"color": random.choice(self.NOISE_COLORS),
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"peak_alpha": random.uniform(*self.NOISE_ALPHA_RANGE),
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"birth": now,
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"life": random.uniform(*self.NOISE_LIFETIME),
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})
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for p in self._particles:
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t = (now - p["birth"]) / p["life"]
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if t < self.NOISE_FADE_IN:
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envelope = t / self.NOISE_FADE_IN
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elif t > 1.0 - self.NOISE_FADE_OUT:
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envelope = max(0.0, (1.0 - t) / self.NOISE_FADE_OUT)
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else:
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envelope = 1.0
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r, g, b = p["color"]
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cr.set_source_rgba(r, g, b, p["peak_alpha"] * envelope)
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cr.rectangle(p["x"], p["y"], p["w"], p["h"])
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cr.fill()
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