1 Commits

Author SHA1 Message Date
7547efe7fd Remove random patterns 2025-08-28 23:05:08 +12:00
7 changed files with 513 additions and 1106 deletions

View File

@@ -7,13 +7,8 @@ name = "pypi"
mpremote = "*" mpremote = "*"
pyserial = "*" pyserial = "*"
esptool = "*" esptool = "*"
watchfiles = "*"
uvicorn = "*"
[dev-packages] [dev-packages]
[requires] [requires]
python_version = "3.12" python_version = "3.12"
[scripts]
dev = 'watchfiles "./dev.py /dev/ttyACM0 src reset follow"'

747
Pipfile.lock generated
View File

@@ -1,7 +1,7 @@
{ {
"_meta": { "_meta": {
"hash": { "hash": {
"sha256": "53809b70ded7a2b3e577a8a4263fbadbb722d1e8d92eb016e134b0776fd40f6b" "sha256": "8b14bb293b7e7117ffc89c2bc92d7aa2290e8f68be7fc0f073f2b3f7f959ef71"
}, },
"pipfile-spec": 6, "pipfile-spec": 6,
"requires": { "requires": {
@@ -16,152 +16,152 @@
] ]
}, },
"default": { "default": {
"anyio": { "argcomplete": {
"hashes": [ "hashes": [
"sha256:3f3fae35c96039744587aa5b8371e7e8e603c0702999535961dd336026973ba6", "sha256:65b3133a29ad53fb42c48cf5114752c7ab66c1c38544fdf6460f450c09b42591",
"sha256:60e474ac86736bbfd6f210f7a61218939c318f43f9972497381f1c5e930ed3d1" "sha256:d0519b1bc867f5f4f4713c41ad0aba73a4a5f007449716b16f385f2166dc6adf"
], ],
"markers": "python_version >= '3.9'", "markers": "sys_platform != 'win32'",
"version": "==4.10.0" "version": "==3.6.2"
}, },
"bitarray": { "bitarray": {
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"hashes": [ "hashes": [
@@ -466,159 +397,13 @@
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],
"index": "pypi",
"markers": "python_version >= '3.9'",
"version": "==1.1.0"
} }
}, },
"develop": {} "develop": {}

View File

@@ -6,4 +6,4 @@ s = Settings()
name = s.get('name', 'led') name = s.get('name', 'led')
password = s.get("ap_password", "") password = s.get("ap_password", "")
# wifi.ap(name, password) wifi.ap(name, password)

View File

@@ -1,6 +1,5 @@
import asyncio import asyncio
import aioespnow import aioespnow
import patterns
from settings import Settings from settings import Settings
from web import web from web import web
from patterns import Patterns from patterns import Patterns
@@ -11,12 +10,9 @@ import time
import wifi import wifi
import json import json
from p2p import p2p from p2p import p2p
import espnow
import network
def main(): async def main():
settings = Settings() settings = Settings()
print(settings)
patterns = Patterns(settings["led_pin"], settings["num_leds"], selected=settings["pattern"]) patterns = Patterns(settings["led_pin"], settings["num_leds"], selected=settings["pattern"])
if settings["color_order"] == "rbg": color_order = (1, 5, 3) if settings["color_order"] == "rbg": color_order = (1, 5, 3)
@@ -26,43 +22,31 @@ def main():
patterns.set_brightness(int(settings["brightness"])) patterns.set_brightness(int(settings["brightness"]))
patterns.set_delay(int(settings["delay"])) patterns.set_delay(int(settings["delay"]))
sta_if = network.WLAN(network.STA_IF) async def tick():
sta_if.active(True) while True:
patterns.tick()
e = espnow.ESPNow() await asyncio.sleep_ms(1)
e.active(True)
w = web(settings, patterns)
print(settings)
# start the server in a bacakground task
print("Starting")
server = asyncio.create_task(w.start_server(host="0.0.0.0", port=80))
wdt = machine.WDT(timeout=10000) wdt = machine.WDT(timeout=10000)
wdt.feed() wdt.feed()
asyncio.create_task(tick())
asyncio.create_task(p2p(settings, patterns))
while True: while True:
patterns.tick()
wdt.feed()
host, msg = e.recv(0)
if msg:
try:
data = json.loads(msg)
print(data)
defaults = data.get("d", {}) #print(time.localtime())
bar = data.get(settings.get("name"), {}) gc.collect()
for i in range(20):
wdt.feed()
await asyncio.sleep_ms(1000)
patterns.set_brightness(bar.get("brightness", defaults.get("brightness", 100))) # cleanup before ending the application
patterns.set_delay(bar.get("delay", defaults.get("delay", 100))) await server
colors = bar.get("colors", defaults.get("colors", ["#000000", "#000000"]))
patterns.colors = [tuple(int(color[i:i+2], 16) for i in settings.color_order) for color in colors]
patterns.select(bar.get("pattern", defaults.get("pattern", "off")))
patterns.n1 = bar.get("n1", defaults.get("n1", 0))
patterns.n2 = bar.get("n2", defaults.get("n2", 58))
patterns.on_width = bar.get("on_width", defaults.get("on_width", 1))
patterns.off_width = bar.get("off_width", defaults.get("off_width", 2))
patterns.oneshot = bar.get("oneshot", defaults.get("oneshot", False))
patterns.beat = bar.get("beat", defaults.get("beat", False))
patterns.beat_mode = bar.get("beat_mode", defaults.get("beat_mode", False))
patterns.auto = bar.get("auto", defaults.get("auto", True))
except: asyncio.run(main())
print(f"Failed to load espnow data {msg}")
continue
main()

View File

@@ -1,80 +1,168 @@
from machine import Pin
from neopixel import NeoPixel
import utime import utime
import random import random
from patterns_base import PatternBase # Import PatternBase
class Patterns(PatternBase): # Inherit from PatternBase class Patterns:
def __init__(self, pin, num_leds, color1=(0,0,0), color2=(0,0,0), brightness=127, selected="rainbow_cycle", delay=100): def __init__(self, pin, num_leds, color1=(0,0,0), color2=(0,0,0), brightness=127, selected="rainbow_cycle", delay=100):
super().__init__(pin, num_leds, color1, color2, brightness, selected, delay) # Call parent constructor self.n = NeoPixel(Pin(pin, Pin.OUT), num_leds)
self.num_leds = num_leds
# Pattern-specific initializations self.pattern_step = 0
self.on_width = 1 # Default on width self.last_update = utime.ticks_ms()
self.off_width = 2 # Default off width (so total segment is 3, matching original behavior) self.delay = delay
self.n1 = 0 # Default start of fill range self.brightness = brightness
self.n2 = self.num_leds - 1 # Default end of fill range
self.oneshot = False # New: One-shot flag for patterns like fill_range
self.patterns = { self.patterns = {
"off": self.off, "off": self.off,
"on" : self.on, "on" : self.on,
"color_wipe": self.color_wipe, "rainbow_cycle": self.rainbow_cycle_step,
"rainbow_cycle": self.rainbow_cycle, "theater_chase": self.theater_chase_step,
"theater_chase": self.theater_chase, "blink": self.blink_step,
"blink": self.blink, "color_transition": self.color_transition_step, # Added new pattern
"color_transition": self.color_transition, # Added new pattern "flicker": self.flicker_step,
"flicker": self.flicker,
"scanner": self.scanner, # New: Single direction scanner
"bidirectional_scanner": self.bidirectional_scanner, # New: Bidirectional scanner
"fill_range": self.fill_range, # New: Fill from n1 to n2
"n_chase": self.n_chase, # New: N1 on, N2 off repeating chase
"alternating": self.alternating, # New: N1 on/off, N2 off/on alternating chase
"external": None,
"pulse": self.pulse
} }
# Beat-related functionality removed self.selected = selected
# self.selected is already initialized in PatternBase, but we need to ensure it uses our patterns dict
# self.selected = selected # Handled by PatternBase
# Ensure colors list always starts with at least two for robust transition handling # Ensure colors list always starts with at least two for robust transition handling
# self.colors handled by PatternBase self.colors = [color1, color2] if color1 != color2 else [color1, (255, 255, 255)] # Fallback if initial colors are same
if not self.colors: # Ensure at least one color exists
self.colors = [(0, 0, 0)]
self.transition_duration = delay * 50 # Default transition duration
self.hold_duration = delay * 10 # Default hold duration at each color
self.transition_step = 0 # Current step in the transition
self.current_color_idx = 0 # Index of the color currently being held/transitioned from
self.current_color = self.colors[self.current_color_idx] # The actual blended color
self.hold_start_time = utime.ticks_ms() # Time when the current color hold started
# Transition attributes handled by PatternBase
# Scanner attributes handled by PatternBase
# self.run handled by PatternBase
def sync(self): def sync(self):
super().sync() # Call parent sync self.pattern_step=0
# Reset pattern_step for theater_chase when chase_width changes self.last_update = utime.ticks_ms() - self.delay
if self.selected == "theater_chase" or self.selected == "fill_range" or self.selected == "n_chase" or self.selected == "alternating": if self.selected == "color_transition":
self.pattern_step = 0 self.transition_step = 0
self.current_color_idx = 0
self.current_color = self.colors[self.current_color_idx]
self.hold_start_time = utime.ticks_ms() # Reset hold time
self.tick() self.tick()
def set_on_width(self, on_width): def set_pattern_step(self, step):
self.on_width = on_width self.pattern_step = step
def set_off_width(self, off_width): def tick(self):
self.off_width = off_width if self.patterns[self.selected]:
self.patterns[self.selected]()
def set_on_off_width(self, on_width, off_width):
self.on_width = on_width
self.off_width = off_width
self.sync()
def set_fill_range(self, n1, n2): def update_num_leds(self, pin, num_leds):
self.n1 = n1 self.n = NeoPixel(Pin(pin, Pin.OUT), num_leds)
self.n2 = n2 self.num_leds = num_leds
self.sync() self.pattern_step = 0
def set_oneshot(self, oneshot_value): def set_delay(self, delay):
self.oneshot = oneshot_value self.delay = delay
if self.oneshot: # Reset pattern step if enabling one-shot # Update transition duration and hold duration when delay changes
self.pattern_step = 0 self.transition_duration = self.delay * 50
self.sync() self.hold_duration = self.delay * 10
def set_brightness(self, brightness):
self.brightness = brightness
def set_color1(self, color):
if len(self.colors) > 0:
self.colors[0] = color
if self.selected == "color_transition":
# If the first color is changed, potentially reset transition
# to start from this new color if we were about to transition from it
if self.current_color_idx == 0:
self.transition_step = 0
self.current_color = self.colors[0]
self.hold_start_time = utime.ticks_ms()
else:
self.colors.append(color)
def set_color2(self, color):
if len(self.colors) > 1:
self.colors[1] = color
elif len(self.colors) == 1:
self.colors.append(color)
else: # List is empty
self.colors.append((0,0,0)) # Dummy color
self.colors.append(color)
def set_colors(self, colors):
if colors and len(colors) >= 2:
self.colors = colors
if self.selected == "color_transition":
self.sync() # Reset transition if new color list is provided
elif colors and len(colors) == 1:
self.colors = [colors[0], (255,255,255)] # Add a default second color
if self.selected == "color_transition":
print("Warning: 'color_transition' requires at least two colors. Adding a default second color.")
self.sync()
else:
print("Error: set_colors requires a list of at least one color.")
self.colors = [(0,0,0), (255,255,255)] # Fallback
if self.selected == "color_transition":
self.sync()
def set_color(self, num, color):
# Changed: More robust index check
if 0 <= num < len(self.colors):
self.colors[num] = color
# If the changed color is part of the current or next transition,
# restart the transition for smoother updates
if self.selected == "color_transition":
current_from_idx = self.current_color_idx
current_to_idx = (self.current_color_idx + 1) % len(self.colors)
if num == current_from_idx or num == current_to_idx:
# If we change a color involved in the current transition,
# it's best to restart the transition state for smoothness.
self.transition_step = 0
self.current_color_idx = current_from_idx # Stay at the current starting color
self.current_color = self.colors[self.current_color_idx]
self.hold_start_time = utime.ticks_ms() # Reset hold
return True
elif num == len(self.colors): # Allow setting a new color at the end
self.colors.append(color)
return True
return False
def add_color(self, color):
self.colors.append(color)
if self.selected == "color_transition" and len(self.colors) == 2:
# If we just added the second color needed for transition
self.sync()
def del_color(self, num):
# Changed: More robust index check and using del for lists
if 0 <= num < len(self.colors):
del self.colors[num]
# If the color being deleted was part of the current transition,
# re-evaluate the current_color_idx
if self.selected == "color_transition":
if len(self.colors) < 2: # Need at least two colors for transition
print("Warning: Not enough colors for 'color_transition'. Switching to 'on'.")
self.select("on") # Or some other default
else:
# Adjust index if it's out of bounds after deletion or was the one transitioning from
self.current_color_idx %= len(self.colors)
self.transition_step = 0
self.current_color = self.colors[self.current_color_idx]
self.hold_start_time = utime.ticks_ms()
return True
return False
def apply_brightness(self, color, brightness_override=None):
effective_brightness = brightness_override if brightness_override is not None else self.brightness
return tuple(int(c * effective_brightness / 255) for c in color)
def select(self, pattern): def select(self, pattern):
if pattern in self.patterns: if pattern in self.patterns:
super().select(pattern) # Use parent select to set self.selected and self.transition_step self.selected = pattern
self.run = True # Set run flag self.sync() # Reset pattern state when selecting a new pattern
if pattern == "color_transition": if pattern == "color_transition":
if len(self.colors) < 2: if len(self.colors) < 2:
print("Warning: 'color_transition' requires at least two colors. Switching to 'on'.") print("Warning: 'color_transition' requires at least two colors. Switching to 'on'.")
@@ -89,73 +177,82 @@ class Patterns(PatternBase): # Inherit from PatternBase
self.hold_duration = self.delay * 10 # Initialize hold duration self.hold_duration = self.delay * 10 # Initialize hold duration
return True return True
return False return False
def set(self, i, color):
self.n[i] = color
def write(self):
self.n.write()
def fill(self, color=None):
fill_color = color if color is not None else self.colors[0]
for i in range(self.num_leds):
self.n[i] = fill_color
self.n.write()
def off(self): def off(self):
self.fill((0, 0, 0)) self.fill((0, 0, 0))
return self.delay
def on(self): def on(self):
self.fill(self.apply_brightness(self.colors[0])) self.fill(self.apply_brightness(self.colors[0]))
return self.delay
def color_wipe(self): def color_wipe_step(self):
color = self.apply_brightness(self.colors[0]) color = self.apply_brightness(self.colors[0])
current_time = utime.ticks_ms() current_time = utime.ticks_ms()
if self.pattern_step < self.num_leds: if utime.ticks_diff(current_time, self.last_update) >= self.delay:
if self.pattern_step < self.num_leds:
for i in range(self.num_leds):
self.n[i] = (0, 0, 0)
self.n[self.pattern_step] = self.apply_brightness(color)
self.n.write()
self.pattern_step += 1
else:
self.pattern_step = 0
self.last_update = current_time
def rainbow_cycle_step(self):
current_time = utime.ticks_ms()
if utime.ticks_diff(current_time, self.last_update) >= self.delay/5:
def wheel(pos):
if pos < 85:
return (pos * 3, 255 - pos * 3, 0)
elif pos < 170:
pos -= 85
return (255 - pos * 3, 0, pos * 3)
else:
pos -= 170
return (0, pos * 3, 255 - pos * 3)
for i in range(self.num_leds): for i in range(self.num_leds):
self.n[i] = (0, 0, 0) rc_index = (i * 256 // self.num_leds) + self.pattern_step
self.n[self.pattern_step] = self.apply_brightness(color) self.n[i] = self.apply_brightness(wheel(rc_index & 255))
self.n.write() self.n.write()
self.pattern_step += 1 self.pattern_step = (self.pattern_step + 1) % 256
else: self.last_update = current_time
self.pattern_step = 0
self.last_update = current_time
return self.delay
def rainbow_cycle(self): def theater_chase_step(self):
current_time = utime.ticks_ms() current_time = utime.ticks_ms()
def wheel(pos): if utime.ticks_diff(current_time, self.last_update) >= self.delay:
if pos < 85: for i in range(self.num_leds):
return (pos * 3, 255 - pos * 3, 0) if (i + self.pattern_step) % 3 == 0:
elif pos < 170: self.n[i] = self.apply_brightness(self.colors[0])
pos -= 85 else:
return (255 - pos * 3, 0, pos * 3) self.n[i] = (0, 0, 0)
self.n.write()
self.pattern_step = (self.pattern_step + 1) % 3
self.last_update = current_time
def blink_step(self):
current_time = utime.ticks_ms()
if utime.ticks_diff(current_time, self.last_update) >= self.delay:
if self.pattern_step % 2 == 0:
self.fill(self.apply_brightness(self.colors[0]))
else: else:
pos -= 170 self.fill((0, 0, 0))
return (0, pos * 3, 255 - pos * 3) self.pattern_step = (self.pattern_step + 1) % 2
self.last_update = current_time
for i in range(self.num_leds): def color_transition_step(self):
rc_index = (i * 256 // self.num_leds) + self.pattern_step
self.n[i] = self.apply_brightness(wheel(rc_index & 255))
self.n.write()
self.pattern_step = (self.pattern_step + 1) % 256
self.last_update = current_time
return max(1, int(self.delay // 5))
def theater_chase(self):
current_time = utime.ticks_ms()
segment_length = self.on_width + self.off_width
for i in range(self.num_leds):
if (i + self.pattern_step) % segment_length < self.on_width:
self.n[i] = self.apply_brightness(self.colors[0])
else:
self.n[i] = (0, 0, 0)
self.n.write()
self.pattern_step = (self.pattern_step + 1) % segment_length
self.last_update = current_time
return self.delay
def blink(self):
current_time = utime.ticks_ms()
if self.pattern_step % 2 == 0:
self.fill(self.apply_brightness(self.colors[0]))
else:
self.fill((0, 0, 0))
self.pattern_step = (self.pattern_step + 1) % 2
self.last_update = current_time
return self.delay
def color_transition(self):
current_time = utime.ticks_ms() current_time = utime.ticks_ms()
# Check for hold duration first # Check for hold duration first
@@ -163,7 +260,7 @@ class Patterns(PatternBase): # Inherit from PatternBase
# Still in hold phase, just display the current solid color # Still in hold phase, just display the current solid color
self.fill(self.apply_brightness(self.current_color)) self.fill(self.apply_brightness(self.current_color))
self.last_update = current_time # Keep updating last_update to avoid skipping frames self.last_update = current_time # Keep updating last_update to avoid skipping frames
return self.delay return
# If hold duration is over, proceed with transition # If hold duration is over, proceed with transition
if utime.ticks_diff(current_time, self.last_update) >= self.delay: if utime.ticks_diff(current_time, self.last_update) >= self.delay:
@@ -171,7 +268,7 @@ class Patterns(PatternBase): # Inherit from PatternBase
if num_colors < 2: if num_colors < 2:
# Should not happen if select handles it, but as a safeguard # Should not happen if select handles it, but as a safeguard
self.select("on") self.select("on")
return self.delay return
from_color = self.colors[self.current_color_idx] from_color = self.colors[self.current_color_idx]
to_color_idx = (self.current_color_idx + 1) % num_colors to_color_idx = (self.current_color_idx + 1) % num_colors
@@ -202,234 +299,16 @@ class Patterns(PatternBase): # Inherit from PatternBase
self.hold_start_time = current_time # Start hold phase for the new color self.hold_start_time = current_time # Start hold phase for the new color
self.last_update = current_time self.last_update = current_time
return self.delay
def flicker(self): def flicker_step(self):
current_time = utime.ticks_ms() current_time = utime.ticks_ms()
base_color = self.colors[0] if utime.ticks_diff(current_time, self.last_update) >= self.delay/5:
# Increase the range for flicker_brightness_offset base_color = self.colors[0]
# Changed from self.brightness // 4 to self.brightness // 2 (or even self.brightness for max intensity) # Increase the range for flicker_brightness_offset
flicker_brightness_offset = random.randint(-int(self.brightness // 1.5), int(self.brightness // 1.5)) # Changed from self.brightness // 4 to self.brightness // 2 (or even self.brightness for max intensity)
flicker_brightness = max(0, min(255, self.brightness + flicker_brightness_offset)) flicker_brightness_offset = random.randint(-int(self.brightness // 1.5), int(self.brightness // 1.5))
flicker_brightness = max(0, min(255, self.brightness + flicker_brightness_offset))
flicker_color = self.apply_brightness(base_color, brightness_override=flicker_brightness) flicker_color = self.apply_brightness(base_color, brightness_override=flicker_brightness)
self.fill(flicker_color) self.fill(flicker_color)
self.last_update = current_time
return max(1, int(self.delay // 5))
def scanner(self):
"""
Mimics a 'Knight Rider' style scanner, moving in one direction.
"""
current_time = utime.ticks_ms()
self.fill((0, 0, 0)) # Clear all LEDs
# Calculate the head and tail position
head_pos = self.pattern_step
color = self.apply_brightness(self.colors[0])
# Draw the head
if 0 <= head_pos < self.num_leds:
self.n[head_pos] = color
# Draw the trailing pixels with decreasing brightness
for i in range(1, self.scanner_tail_length + 1):
tail_pos = head_pos - i
if 0 <= tail_pos < self.num_leds:
# Calculate fading color for tail
# Example: linear fade from full brightness to off
fade_factor = 1.0 - (i / (self.scanner_tail_length + 1))
faded_color = tuple(int(c * fade_factor) for c in color)
self.n[tail_pos] = faded_color
self.n.write()
self.pattern_step += 1
if self.pattern_step >= self.num_leds + self.scanner_tail_length:
self.pattern_step = 0 # Reset to start
self.last_update = current_time
return self.delay
def bidirectional_scanner(self):
"""
Mimics a 'Knight Rider' style scanner, moving back and forth.
"""
current_time = utime.ticks_ms()
self.fill((0, 0, 0)) # Clear all LEDs
color = self.apply_brightness(self.colors[0])
# Calculate the head position based on direction
head_pos = self.pattern_step
# Draw the head
if 0 <= head_pos < self.num_leds:
self.n[head_pos] = color
# Draw the trailing pixels with decreasing brightness
for i in range(1, self.scanner_tail_length + 1):
tail_pos = head_pos - (i * self.scanner_direction)
if 0 <= tail_pos < self.num_leds:
fade_factor = 1.0 - (i / (self.scanner_tail_length + 1))
faded_color = tuple(int(c * fade_factor) for c in color)
self.n[tail_pos] = faded_color
self.n.write()
self.pattern_step += self.scanner_direction
# Change direction if boundaries are reached
if self.scanner_direction == 1 and self.pattern_step >= self.num_leds:
self.scanner_direction = -1
self.pattern_step = self.num_leds - 1 # Start moving back from the last LED
elif self.scanner_direction == -1 and self.pattern_step < 0:
self.scanner_direction = 1
self.pattern_step = 0 # Start moving forward from the first LED
self.last_update = current_time
return self.delay
def fill_range(self):
"""
Fills a range of LEDs from n1 to n2 with a solid color.
If self.oneshot is True, it fills once and then turns off the LEDs.
"""
current_time = utime.ticks_ms()
if self.oneshot and self.pattern_step >= 1:
self.fill((0, 0, 0)) # Turn off LEDs if one-shot already happened
else:
color = self.apply_brightness(self.colors[0])
for i in range(self.n1, self.n2 + 1):
self.n[i] = color
self.n.write()
self.last_update = current_time self.last_update = current_time
return self.delay
self.last_update = current_time
return self.delay
def n_chase(self):
"""
A theater chase pattern using n1 for on-width and n2 for off-width.
"""
current_time = utime.ticks_ms()
segment_length = self.n1 + self.n2
if segment_length == 0: # Avoid division by zero
self.fill((0,0,0))
self.n.write()
self.last_update = current_time
return self.delay
for i in range(self.num_leds):
if (i + self.pattern_step) % segment_length < self.n1:
self.n[i] = self.apply_brightness(self.colors[0])
else:
self.n[i] = (0, 0, 0)
self.n.write()
self.pattern_step = (self.pattern_step + 1) % segment_length
self.last_update = current_time
return self.delay
def alternating(self):
"""
An alternating pattern where n1 LEDs are ON/OFF and n2 LEDs are OFF/ON globally, without moving.
"""
current_time = utime.ticks_ms()
total_segment_length = self.n1 + self.n2
if total_segment_length == 0:
self.fill((0,0,0))
self.n.write()
self.last_update = current_time
return self.delay
# current_phase will alternate between 0 and 1
current_phase = self.pattern_step % 2
for i in range(self.num_leds):
# Position within a single repeating segment (n1 + n2)
pos_in_segment = i % total_segment_length
if current_phase == 0: # State 0: n1 ON, n2 OFF
if pos_in_segment < self.n1:
self.n[i] = self.apply_brightness(self.colors[0]) # n1 is ON
else:
self.n[i] = (0, 0, 0) # n2 is OFF
else: # State 1: n1 OFF, n2 ON
if pos_in_segment < self.n1:
self.n[i] = (0, 0, 0) # n1 is OFF
else:
self.n[i] = self.apply_brightness(self.colors[0]) # n2 is ON
self.n.write()
self.pattern_step = (self.pattern_step + 1) % 2 # Toggle between 0 and 1
self.last_update = current_time
return self.delay * 2
def pulse(self):
if self.pattern_step == 0:
self.fill(self.apply_brightness(self.colors[0]))
self.pattern_step = 1
self.last_update = utime.ticks_ms()
if utime.ticks_diff(utime.ticks_ms(), self.last_update) > self.delay:
self.fill((0, 0, 0))
print(utime.ticks_diff(utime.ticks_ms(), self.last_update))
self.run = False
return self.delay
if __name__ == "__main__":
import time
from machine import WDT
wdt = WDT(timeout=2000) # Enable watchdog with a 2 second timeout
p = Patterns(pin=4, num_leds=60, color1=(255,0,0), color2=(0,0,255), brightness=127, selected="off", delay=100)
print(p.colors, p.brightness)
tests = [
("off", {"duration_ms": 500}),
("on", {"duration_ms": 500}),
("color_wipe", {"delay": 200, "duration_ms": 1000}),
("rainbow_cycle", {"delay": 100, "duration_ms": 2500}),
("theater_chase", {"on_width": 3, "off_width": 3, "delay": 1000, "duration_ms": 2500}),
("blink", {"delay": 500, "duration_ms": 2000}),
("color_transition", {"delay": 150, "colors": [(255,0,0),(0,255,0),(0,0,255)], "duration_ms": 5000}),
("flicker", {"delay": 100, "duration_ms": 2000}),
("scanner", {"delay": 150, "duration_ms": 2500}),
("bidirectional_scanner", {"delay": 50, "duration_ms": 2500}),
("fill_range", {"n1": 10, "n2": 20, "delay": 500, "duration_ms": 2000}),
("n_chase", {"n1": 5, "n2": 5, "delay": 2000, "duration_ms": 2500}),
("alternating", {"n1": 5, "n2": 5, "delay": 500, "duration_ms": 2500}),
("pulse", {"delay": 100, "duration_ms": 700}),
]
print("\n--- Running pattern self-test ---")
for name, cfg in tests:
print(f"\nPattern: {name}")
# apply simple config helpers
if "delay" in cfg:
p.set_delay(cfg["delay"])
if "on_width" in cfg:
p.set_on_width(cfg["on_width"])
if "off_width" in cfg:
p.set_off_width(cfg["off_width"])
if "n1" in cfg and "n2" in cfg:
p.set_fill_range(cfg["n1"], cfg["n2"])
if "colors" in cfg:
p.set_colors(cfg["colors"])
p.select(name)
# run per configured duration using absolute-scheduled tick(next_due_ms)
start = utime.ticks_ms()
duration_ms = cfg["duration_ms"]
delay = cfg.get("delay", 0)
next_due = utime.ticks_ms() - 1 # force immediate first call
while utime.ticks_diff(utime.ticks_ms(), start) < duration_ms:
delay = p.tick(delay)
wdt.feed()
print("\n--- Test routine finished ---")

View File

@@ -1,213 +0,0 @@
from machine import Pin
from neopixel import NeoPixel
import utime
class PatternBase:
def __init__(self, pin, num_leds, color1=(0,0,0), color2=(0,0,0), brightness=127, selected="rainbow_cycle", delay=100):
self.n = NeoPixel(Pin(pin, Pin.OUT), num_leds)
self.num_leds = num_leds
self.pattern_step = 0
self.last_update = utime.ticks_ms()
self.delay = delay
self.brightness = brightness
self.patterns = {}
self.selected = selected
self.run = True
# Ensure colors list always starts with at least two for robust transition handling
self.colors = [color1, color2] if color1 != color2 else [color1, (255, 255, 255)] # Fallback if initial colors are same
if not self.colors: # Ensure at least one color exists
self.colors = [(0, 0, 0)]
self.transition_duration = delay * 50 # Default transition duration
self.hold_duration = delay * 10 # Default hold duration at each color
self.transition_step = 0 # Current step in the transition
self.current_color_idx = 0 # Index of the color currently being held/transitioned from
self.current_color = self.colors[self.current_color_idx] # The actual blended color
self.hold_start_time = utime.ticks_ms() # Time when the current color hold started
# New attributes for scanner patterns (moved from Patterns to PatternBase as they are generic enough)
self.scanner_direction = 1 # 1 for forward, -1 for backward
self.scanner_tail_length = 3 # Number of trailing pixels
# Store last pattern-returned delay to use for subsequent gating
self._last_returned_delay = None
def sync(self):
self.pattern_step=0
self.last_update = utime.ticks_ms() - self.delay
if self.selected == "color_transition":
self.transition_step = 0
self.current_color_idx = 0
self.current_color = self.colors[self.current_color_idx]
self.hold_start_time = utime.ticks_ms() # Reset hold time
# Reset scanner specific variables
self.scanner_direction = 1
# self.tick() # Tick moved to Patterns, as patterns dict is there
def set_pattern_step(self, step):
self.pattern_step = step
def tick(self, delay=0):
now =utime.ticks_ms()
if self.patterns.get(self.selected) and self.run:
if delay == 0:
self.patterns[self.selected]()
print("manual tick")
return 0
if utime.ticks_diff(now, delay) > 0:
delay = self.patterns[self.selected]()
print("auto tick")
return delay + now
else:
return delay
def update_num_leds(self, pin, num_leds):
self.n = NeoPixel(Pin(pin, Pin.OUT), num_leds)
self.num_leds = num_leds
self.pattern_step = 0
def set_delay(self, delay):
self.delay = delay
# Update transition duration and hold duration when delay changes
self.transition_duration = self.delay * 50
self.hold_duration = self.delay * 10
# Reset last returned delay so next tick recomputes
self._last_returned_delay = None
def set_brightness(self, brightness):
self.brightness = brightness
def set_color1(self, color):
if len(self.colors) > 0:
self.colors[0] = color
if self.selected == "color_transition":
# If the first color is changed, potentially reset transition
# to start from this new color if we were about to transition from it
if self.current_color_idx == 0:
self.transition_step = 0
self.current_color = self.colors[0]
self.hold_start_time = utime.ticks_ms()
else:
self.colors.append(color)
def set_color2(self, color):
if len(self.colors) > 1:
self.colors[1] = color
elif len(self.colors) == 1:
self.colors.append(color)
else: # List is empty
self.colors.append((0,0,0)) # Dummy color
self.colors.append(color)
def set_colors(self, colors):
if colors and len(colors) >= 2:
self.colors = colors
if self.selected == "color_transition":
self.sync() # Reset transition if new color list is provided
elif colors and len(colors) == 1:
self.colors = [colors[0], (255,255,255)] # Add a default second color
if self.selected == "color_transition":
print("Warning: 'color_transition' requires at least two colors. Adding a default second color.")
self.sync()
else:
print("Error: set_colors requires a list of at least one color.")
self.colors = [(0,0,0), (255,255,255)] # Fallback
if self.selected == "color_transition":
self.sync()
def set_color(self, num, color):
# Changed: More robust index check
if 0 <= num < len(self.colors):
self.colors[num] = color
# If the changed color is part of the current or next transition,
# restart the transition for smoother updates
if self.selected == "color_transition":
current_from_idx = self.current_color_idx
current_to_idx = (self.current_color_idx + 1) % len(self.colors)
if num == current_from_idx or num == current_to_idx:
# If we change a color involved in the current transition,
# it's best to restart the transition state for smoothness.
self.transition_step = 0
self.current_color_idx = current_from_idx # Stay at the current starting color
self.current_color = self.colors[self.current_color_idx]
self.hold_start_time = utime.ticks_ms() # Reset hold
return True
elif num == len(self.colors): # Allow setting a new color at the end
self.colors.append(color)
return True
return False
def add_color(self, color):
self.colors.append(color)
if self.selected == "color_transition" and len(self.colors) == 2:
# If we just added the second color needed for transition
self.sync()
def del_color(self, num):
# Changed: More robust index check and using del for lists
if 0 <= num < len(self.colors):
del self.colors[num]
# If the color being deleted was part of the current transition,
# re-evaluate the current_color_idx
if self.selected == "color_transition":
if len(self.colors) < 2: # Need at least two colors for transition
print("Warning: Not enough colors for 'color_transition'. Switching to 'on'.")
self.select("on") # Or some other default
else:
# Adjust index if it's out of bounds after deletion or was the one transitioning from
self.current_color_idx %= len(self.colors)
self.transition_step = 0
self.current_color = self.colors[self.current_color_idx]
self.hold_start_time = utime.ticks_ms()
return True
return False
def apply_brightness(self, color, brightness_override=None):
effective_brightness = brightness_override if brightness_override is not None else self.brightness
return tuple(int(c * effective_brightness / 255) for c in color)
def select(self, pattern):
# Removed self.run = True here. It should be handled by Patterns class.
if pattern in self.patterns:
self.selected = pattern
self.sync() # Reset pattern state when selecting a new pattern
# Reset last returned delay so gating can be recalculated for the new pattern
self._last_returned_delay = None
if pattern == "color_transition":
if len(self.colors) < 2:
print("Warning: 'color_transition' requires at least two colors. Switching to 'on'.")
self.selected = "on" # Fallback if not enough colors
self.sync() # Re-sync for the new pattern
else:
self.transition_step = 0
self.current_color_idx = 0 # Start from the first color in the list
self.current_color = self.colors[self.current_color_idx]
self.hold_start_time = utime.ticks_ms() # Reset hold timer
self.transition_duration = self.delay * 50 # Initialize transition duration
self.hold_duration = self.delay * 10 # Initialize hold duration
return True
return False
def set(self, i, color):
self.n[i] = color
def write(self):
self.n.write()
def fill(self, color=None):
fill_color = color if color is not None else self.colors[0]
for i in range(self.num_leds):
self.n[i] = fill_color
self.n.write()
def off(self):
self.fill((0, 0, 0))
def on(self):
self.fill(self.apply_brightness(self.colors[0]))

View File

@@ -14,19 +14,14 @@ class Settings(dict):
def set_defaults(self): def set_defaults(self):
self["led_pin"] = 10 self["led_pin"] = 10
self["num_leds"] = 100 self["num_leds"] = 50
self["pattern"] = "on" self["pattern"] = "on"
self["color1"] = "#080000" self["color1"] = "#00ff00"
self["color2"] = "#ff0000" self["color2"] = "#ff0000"
self["delay"] = 100 self["delay"] = 100
self["brightness"] = 100 self["brightness"] = 10
self["on_width"] = 1 # Default on width for theater chase
self["off_width"] = 2 # Default off width for theater chase
self["n1"] = 0 # Default start of fill range
self["n2"] = 58 # Default end of fill range (assuming 59 leds for now)
self["oneshot"] = False # Default one-shot setting
self["color_order"] = "rgb" self["color_order"] = "rgb"
self["name"] = f"5" self["name"] = f"led-{ubinascii.hexlify(wifi.get_mac()).decode()}"
self["ap_password"] = "" self["ap_password"] = ""
self["id"] = 0 self["id"] = 0
@@ -52,6 +47,7 @@ class Settings(dict):
def set_settings(self, data, patterns, save): def set_settings(self, data, patterns, save):
try: try:
print(data)
for key, value in data.items(): for key, value in data.items():
print(key, value) print(key, value)
if key == "colors": if key == "colors":
@@ -74,24 +70,6 @@ class Settings(dict):
elif key == "brightness": elif key == "brightness":
brightness = int(data["brightness"]) brightness = int(data["brightness"])
patterns.set_brightness(brightness) patterns.set_brightness(brightness)
elif key == "on_width":
on_width = int(data["on_width"])
patterns.set_on_width(on_width)
elif key == "off_width":
off_width = int(data["off_width"])
on_width = int(data.get("on_width", self["on_width"]))
patterns.set_on_off_width(on_width, off_width)
elif key == "n1":
n1 = int(data["n1"])
n2 = int(data.get("n2", patterns.n2))
patterns.set_fill_range(n1, n2)
elif key == "n2":
n2 = int(data["n2"])
n1 = int(data.get("n1", patterns.n1))
patterns.set_fill_range(n1, n2)
elif key == "oneshot":
oneshot_value = bool(data["oneshot"])
patterns.set_oneshot(oneshot_value)
elif key == "name": elif key == "name":
self[key] = value self[key] = value
self.save() self.save()
@@ -112,8 +90,7 @@ class Settings(dict):
if save: if save:
self.save() self.save()
return "OK", 200 return "OK", 200
except Exception as e: except (KeyError, ValueError):
print(f"An unexpected error occurred in set_settings: {e}")
return "Bad request", 400 return "Bad request", 400
# Example usage # Example usage