From 4d7e602155ade053bfbc00b1657d668d7ed630a7 Mon Sep 17 00:00:00 2001 From: Edwin Eefting Date: Sun, 23 Apr 2017 20:46:02 +0200 Subject: [PATCH] now no longer a submodule. lib/Adafruit_NeoPixel, upstream version v1.0.6 --- .gitmodules | 3 - lib/Adafruit_NeoPixel | 1 - .../.github/ISSUE_TEMPLATE.md | 46 + .../.github/PULL_REQUEST_TEMPLATE.md | 26 + lib/Adafruit_NeoPixel/.travis.yml | 11 + lib/Adafruit_NeoPixel/Adafruit_NeoPixel.cpp | 1730 +++++++++++++++++ lib/Adafruit_NeoPixel/Adafruit_NeoPixel.h | 181 ++ lib/Adafruit_NeoPixel/COPYING | 165 ++ lib/Adafruit_NeoPixel/README.md | 11 + lib/Adafruit_NeoPixel/esp8266.c | 67 + .../RGBWstrandtest/.esp8266.test.skip | 0 .../RGBWstrandtest/RGBWstrandtest.ino | 263 +++ .../examples/buttoncycler/.esp8266.test.skip | 0 .../examples/buttoncycler/buttoncycler.ino | 165 ++ .../examples/simple/.esp8266.test.skip | 0 .../examples/simple/simple.ino | 47 + .../examples/strandtest/.esp8266.test.skip | 0 .../examples/strandtest/strandtest.ino | 134 ++ lib/Adafruit_NeoPixel/keywords.txt | 29 + lib/Adafruit_NeoPixel/library.properties | 9 + 20 files changed, 2884 insertions(+), 4 deletions(-) delete mode 160000 lib/Adafruit_NeoPixel create mode 100644 lib/Adafruit_NeoPixel/.github/ISSUE_TEMPLATE.md create mode 100644 lib/Adafruit_NeoPixel/.github/PULL_REQUEST_TEMPLATE.md create mode 100644 lib/Adafruit_NeoPixel/.travis.yml create mode 100644 lib/Adafruit_NeoPixel/Adafruit_NeoPixel.cpp create mode 100644 lib/Adafruit_NeoPixel/Adafruit_NeoPixel.h create mode 100644 lib/Adafruit_NeoPixel/COPYING create mode 100644 lib/Adafruit_NeoPixel/README.md create mode 100644 lib/Adafruit_NeoPixel/esp8266.c create mode 100644 lib/Adafruit_NeoPixel/examples/RGBWstrandtest/.esp8266.test.skip create mode 100644 lib/Adafruit_NeoPixel/examples/RGBWstrandtest/RGBWstrandtest.ino create mode 100644 lib/Adafruit_NeoPixel/examples/buttoncycler/.esp8266.test.skip create mode 100644 lib/Adafruit_NeoPixel/examples/buttoncycler/buttoncycler.ino create mode 100644 lib/Adafruit_NeoPixel/examples/simple/.esp8266.test.skip create mode 100644 lib/Adafruit_NeoPixel/examples/simple/simple.ino create mode 100644 lib/Adafruit_NeoPixel/examples/strandtest/.esp8266.test.skip create mode 100644 lib/Adafruit_NeoPixel/examples/strandtest/strandtest.ino create mode 100644 lib/Adafruit_NeoPixel/keywords.txt create mode 100644 lib/Adafruit_NeoPixel/library.properties diff --git a/.gitmodules b/.gitmodules index 687fcb743..7f5bdc3bc 100644 --- a/.gitmodules +++ b/.gitmodules @@ -1,6 +1,3 @@ -[submodule "lib/Adafruit_NeoPixel"] - path = lib/Adafruit_NeoPixel - url = https://github.com/adafruit/Adafruit_NeoPixel.git [submodule "lib/ArduinoJson"] path = lib/ArduinoJson url = https://github.com/bblanchon/ArduinoJson.git diff --git a/lib/Adafruit_NeoPixel b/lib/Adafruit_NeoPixel deleted file mode 160000 index f02a5a461..000000000 --- a/lib/Adafruit_NeoPixel +++ /dev/null @@ -1 +0,0 @@ -Subproject commit f02a5a461b7fba5024500c559380e947f4c7842c diff --git a/lib/Adafruit_NeoPixel/.github/ISSUE_TEMPLATE.md b/lib/Adafruit_NeoPixel/.github/ISSUE_TEMPLATE.md new file mode 100644 index 000000000..f0e26146f --- /dev/null +++ b/lib/Adafruit_NeoPixel/.github/ISSUE_TEMPLATE.md @@ -0,0 +1,46 @@ +Thank you for opening an issue on an Adafruit Arduino library repository. To +improve the speed of resolution please review the following guidelines and +common troubleshooting steps below before creating the issue: + +- **Do not use GitHub issues for troubleshooting projects and issues.** Instead use + the forums at http://forums.adafruit.com to ask questions and troubleshoot why + something isn't working as expected. In many cases the problem is a common issue + that you will more quickly receive help from the forum community. GitHub issues + are meant for known defects in the code. If you don't know if there is a defect + in the code then start with troubleshooting on the forum first. + +- **If following a tutorial or guide be sure you didn't miss a step.** Carefully + check all of the steps and commands to run have been followed. Consult the + forum if you're unsure or have questions about steps in a guide/tutorial. + +- **For Arduino projects check these very common issues to ensure they don't apply**: + + - For uploading sketches or communicating with the board make sure you're using + a **USB data cable** and **not** a **USB charge-only cable**. It is sometimes + very hard to tell the difference between a data and charge cable! Try using the + cable with other devices or swapping to another cable to confirm it is not + the problem. + + - **Be sure you are supplying adequate power to the board.** Check the specs of + your board and plug in an external power supply. In many cases just + plugging a board into your computer is not enough to power it and other + peripherals. + + - **Double check all soldering joints and connections.** Flakey connections + cause many mysterious problems. See the [guide to excellent soldering](https://learn.adafruit.com/adafruit-guide-excellent-soldering/tools) for examples of good solder joints. + + - **Ensure you are using an official Arduino or Adafruit board.** We can't + guarantee a clone board will have the same functionality and work as expected + with this code and don't support them. + +If you're sure this issue is a defect in the code and checked the steps above +please fill in the following fields to provide enough troubleshooting information. +You may delete the guideline and text above to just leave the following details: + +- Arduino board: **INSERT ARDUINO BOARD NAME/TYPE HERE** + +- Arduino IDE version (found in Arduino -> About Arduino menu): **INSERT ARDUINO + VERSION HERE** + +- List the steps to reproduce the problem below (if possible attach a sketch or + copy the sketch code in too): **LIST REPRO STEPS BELOW** diff --git a/lib/Adafruit_NeoPixel/.github/PULL_REQUEST_TEMPLATE.md b/lib/Adafruit_NeoPixel/.github/PULL_REQUEST_TEMPLATE.md new file mode 100644 index 000000000..7b641eb86 --- /dev/null +++ b/lib/Adafruit_NeoPixel/.github/PULL_REQUEST_TEMPLATE.md @@ -0,0 +1,26 @@ +Thank you for creating a pull request to contribute to Adafruit's GitHub code! +Before you open the request please review the following guidelines and tips to +help it be more easily integrated: + +- **Describe the scope of your change--i.e. what the change does and what parts + of the code were modified.** This will help us understand any risks of integrating + the code. + +- **Describe any known limitations with your change.** For example if the change + doesn't apply to a supported platform of the library please mention it. + +- **Please run any tests or examples that can exercise your modified code.** We + strive to not break users of the code and running tests/examples helps with this + process. + +Thank you again for contributing! We will try to test and integrate the change +as soon as we can, but be aware we have many GitHub repositories to manage and +can't immediately respond to every request. There is no need to bump or check in +on a pull request (it will clutter the discussion of the request). + +Also don't be worried if the request is closed or not integrated--sometimes the +priorities of Adafruit's GitHub code (education, ease of use) might not match the +priorities of the pull request. Don't fret, the open source community thrives on +forks and GitHub makes it easy to keep your changes in a forked repo. + +After reviewing the guidelines above you can delete this text from the pull request. diff --git a/lib/Adafruit_NeoPixel/.travis.yml b/lib/Adafruit_NeoPixel/.travis.yml new file mode 100644 index 000000000..f4b943074 --- /dev/null +++ b/lib/Adafruit_NeoPixel/.travis.yml @@ -0,0 +1,11 @@ +language: c +sudo: false +before_install: + - source <(curl -SLs https://raw.githubusercontent.com/adafruit/travis-ci-arduino/master/install.sh) +script: + - build_main_platforms + - build_platform trinket +notifications: + email: + on_success: change + on_failure: change diff --git a/lib/Adafruit_NeoPixel/Adafruit_NeoPixel.cpp b/lib/Adafruit_NeoPixel/Adafruit_NeoPixel.cpp new file mode 100644 index 000000000..2dd5bba9b --- /dev/null +++ b/lib/Adafruit_NeoPixel/Adafruit_NeoPixel.cpp @@ -0,0 +1,1730 @@ +/*------------------------------------------------------------------------- + Arduino library to control a wide variety of WS2811- and WS2812-based RGB + LED devices such as Adafruit FLORA RGB Smart Pixels and NeoPixel strips. + Currently handles 400 and 800 KHz bitstreams on 8, 12 and 16 MHz ATmega + MCUs, with LEDs wired for various color orders. Handles most output pins + (possible exception with upper PORT registers on the Arduino Mega). + + Written by Phil Burgess / Paint Your Dragon for Adafruit Industries, + contributions by PJRC, Michael Miller and other members of the open + source community. + + Adafruit invests time and resources providing this open source code, + please support Adafruit and open-source hardware by purchasing products + from Adafruit! + + ------------------------------------------------------------------------- + This file is part of the Adafruit NeoPixel library. + + NeoPixel is free software: you can redistribute it and/or modify + it under the terms of the GNU Lesser General Public License as + published by the Free Software Foundation, either version 3 of + the License, or (at your option) any later version. + + NeoPixel is distributed in the hope that it will be useful, + but WITHOUT ANY WARRANTY; without even the implied warranty of + MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the + GNU Lesser General Public License for more details. + + You should have received a copy of the GNU Lesser General Public + License along with NeoPixel. If not, see + . + -------------------------------------------------------------------------*/ + +#include "Adafruit_NeoPixel.h" + +// Constructor when length, pin and type are known at compile-time: +Adafruit_NeoPixel::Adafruit_NeoPixel(uint16_t n, uint8_t p, neoPixelType t) : + begun(false), brightness(0), pixels(NULL), endTime(0) +{ + updateType(t); + updateLength(n); + setPin(p); +} + +// via Michael Vogt/neophob: empty constructor is used when strand length +// isn't known at compile-time; situations where program config might be +// read from internal flash memory or an SD card, or arrive via serial +// command. If using this constructor, MUST follow up with updateType(), +// updateLength(), etc. to establish the strand type, length and pin number! +Adafruit_NeoPixel::Adafruit_NeoPixel() : +#ifdef NEO_KHZ400 + is800KHz(true), +#endif + begun(false), numLEDs(0), numBytes(0), pin(-1), brightness(0), pixels(NULL), + rOffset(1), gOffset(0), bOffset(2), wOffset(1), endTime(0) +{ +} + +Adafruit_NeoPixel::~Adafruit_NeoPixel() { + if(pixels) free(pixels); + if(pin >= 0) pinMode(pin, INPUT); +} + +void Adafruit_NeoPixel::begin(void) { + if(pin >= 0) { + pinMode(pin, OUTPUT); + digitalWrite(pin, LOW); + } + begun = true; +} + +void Adafruit_NeoPixel::updateLength(uint16_t n) { + if(pixels) free(pixels); // Free existing data (if any) + + // Allocate new data -- note: ALL PIXELS ARE CLEARED + numBytes = n * ((wOffset == rOffset) ? 3 : 4); + if((pixels = (uint8_t *)malloc(numBytes))) { + memset(pixels, 0, numBytes); + numLEDs = n; + } else { + numLEDs = numBytes = 0; + } +} + +void Adafruit_NeoPixel::updateType(neoPixelType t) { + boolean oldThreeBytesPerPixel = (wOffset == rOffset); // false if RGBW + + wOffset = (t >> 6) & 0b11; // See notes in header file + rOffset = (t >> 4) & 0b11; // regarding R/G/B/W offsets + gOffset = (t >> 2) & 0b11; + bOffset = t & 0b11; +#ifdef NEO_KHZ400 + is800KHz = (t < 256); // 400 KHz flag is 1<<8 +#endif + + // If bytes-per-pixel has changed (and pixel data was previously + // allocated), re-allocate to new size. Will clear any data. + if(pixels) { + boolean newThreeBytesPerPixel = (wOffset == rOffset); + if(newThreeBytesPerPixel != oldThreeBytesPerPixel) updateLength(numLEDs); + } +} + +#ifdef ESP8266 +// ESP8266 show() is external to enforce ICACHE_RAM_ATTR execution +extern "C" void ICACHE_RAM_ATTR espShow( + uint8_t pin, uint8_t *pixels, uint32_t numBytes, uint8_t type); +#endif // ESP8266 + +void Adafruit_NeoPixel::show(void) { + + if(!pixels) return; + + // Data latch = 50+ microsecond pause in the output stream. Rather than + // put a delay at the end of the function, the ending time is noted and + // the function will simply hold off (if needed) on issuing the + // subsequent round of data until the latch time has elapsed. This + // allows the mainline code to start generating the next frame of data + // rather than stalling for the latch. + while(!canShow()); + // endTime is a private member (rather than global var) so that mutliple + // instances on different pins can be quickly issued in succession (each + // instance doesn't delay the next). + + // In order to make this code runtime-configurable to work with any pin, + // SBI/CBI instructions are eschewed in favor of full PORT writes via the + // OUT or ST instructions. It relies on two facts: that peripheral + // functions (such as PWM) take precedence on output pins, so our PORT- + // wide writes won't interfere, and that interrupts are globally disabled + // while data is being issued to the LEDs, so no other code will be + // accessing the PORT. The code takes an initial 'snapshot' of the PORT + // state, computes 'pin high' and 'pin low' values, and writes these back + // to the PORT register as needed. + + noInterrupts(); // Need 100% focus on instruction timing + +#ifdef __AVR__ +// AVR MCUs -- ATmega & ATtiny (no XMEGA) --------------------------------- + + volatile uint16_t + i = numBytes; // Loop counter + volatile uint8_t + *ptr = pixels, // Pointer to next byte + b = *ptr++, // Current byte value + hi, // PORT w/output bit set high + lo; // PORT w/output bit set low + + // Hand-tuned assembly code issues data to the LED drivers at a specific + // rate. There's separate code for different CPU speeds (8, 12, 16 MHz) + // for both the WS2811 (400 KHz) and WS2812 (800 KHz) drivers. The + // datastream timing for the LED drivers allows a little wiggle room each + // way (listed in the datasheets), so the conditions for compiling each + // case are set up for a range of frequencies rather than just the exact + // 8, 12 or 16 MHz values, permitting use with some close-but-not-spot-on + // devices (e.g. 16.5 MHz DigiSpark). The ranges were arrived at based + // on the datasheet figures and have not been extensively tested outside + // the canonical 8/12/16 MHz speeds; there's no guarantee these will work + // close to the extremes (or possibly they could be pushed further). + // Keep in mind only one CPU speed case actually gets compiled; the + // resulting program isn't as massive as it might look from source here. + +// 8 MHz(ish) AVR --------------------------------------------------------- +#if (F_CPU >= 7400000UL) && (F_CPU <= 9500000UL) + +#ifdef NEO_KHZ400 // 800 KHz check needed only if 400 KHz support enabled + if(is800KHz) { +#endif + + volatile uint8_t n1, n2 = 0; // First, next bits out + + // Squeezing an 800 KHz stream out of an 8 MHz chip requires code + // specific to each PORT register. + + // 10 instruction clocks per bit: HHxxxxxLLL + // OUT instructions: ^ ^ ^ (T=0,2,7) + + // PORTD OUTPUT ---------------------------------------------------- + +#if defined(PORTD) + #if defined(PORTB) || defined(PORTC) || defined(PORTF) + if(port == &PORTD) { + #endif // defined(PORTB/C/F) + + hi = PORTD | pinMask; + lo = PORTD & ~pinMask; + n1 = lo; + if(b & 0x80) n1 = hi; + + // Dirty trick: RJMPs proceeding to the next instruction are used + // to delay two clock cycles in one instruction word (rather than + // using two NOPs). This was necessary in order to squeeze the + // loop down to exactly 64 words -- the maximum possible for a + // relative branch. + + asm volatile( + "headD:" "\n\t" // Clk Pseudocode + // Bit 7: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi + "mov %[n2] , %[lo]" "\n\t" // 1 n2 = lo + "out %[port] , %[n1]" "\n\t" // 1 PORT = n1 + "rjmp .+0" "\n\t" // 2 nop nop + "sbrc %[byte] , 6" "\n\t" // 1-2 if(b & 0x40) + "mov %[n2] , %[hi]" "\n\t" // 0-1 n2 = hi + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo + "rjmp .+0" "\n\t" // 2 nop nop + // Bit 6: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi + "mov %[n1] , %[lo]" "\n\t" // 1 n1 = lo + "out %[port] , %[n2]" "\n\t" // 1 PORT = n2 + "rjmp .+0" "\n\t" // 2 nop nop + "sbrc %[byte] , 5" "\n\t" // 1-2 if(b & 0x20) + "mov %[n1] , %[hi]" "\n\t" // 0-1 n1 = hi + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo + "rjmp .+0" "\n\t" // 2 nop nop + // Bit 5: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi + "mov %[n2] , %[lo]" "\n\t" // 1 n2 = lo + "out %[port] , %[n1]" "\n\t" // 1 PORT = n1 + "rjmp .+0" "\n\t" // 2 nop nop + "sbrc %[byte] , 4" "\n\t" // 1-2 if(b & 0x10) + "mov %[n2] , %[hi]" "\n\t" // 0-1 n2 = hi + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo + "rjmp .+0" "\n\t" // 2 nop nop + // Bit 4: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi + "mov %[n1] , %[lo]" "\n\t" // 1 n1 = lo + "out %[port] , %[n2]" "\n\t" // 1 PORT = n2 + "rjmp .+0" "\n\t" // 2 nop nop + "sbrc %[byte] , 3" "\n\t" // 1-2 if(b & 0x08) + "mov %[n1] , %[hi]" "\n\t" // 0-1 n1 = hi + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo + "rjmp .+0" "\n\t" // 2 nop nop + // Bit 3: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi + "mov %[n2] , %[lo]" "\n\t" // 1 n2 = lo + "out %[port] , %[n1]" "\n\t" // 1 PORT = n1 + "rjmp .+0" "\n\t" // 2 nop nop + "sbrc %[byte] , 2" "\n\t" // 1-2 if(b & 0x04) + "mov %[n2] , %[hi]" "\n\t" // 0-1 n2 = hi + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo + "rjmp .+0" "\n\t" // 2 nop nop + // Bit 2: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi + "mov %[n1] , %[lo]" "\n\t" // 1 n1 = lo + "out %[port] , %[n2]" "\n\t" // 1 PORT = n2 + "rjmp .+0" "\n\t" // 2 nop nop + "sbrc %[byte] , 1" "\n\t" // 1-2 if(b & 0x02) + "mov %[n1] , %[hi]" "\n\t" // 0-1 n1 = hi + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo + "rjmp .+0" "\n\t" // 2 nop nop + // Bit 1: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi + "mov %[n2] , %[lo]" "\n\t" // 1 n2 = lo + "out %[port] , %[n1]" "\n\t" // 1 PORT = n1 + "rjmp .+0" "\n\t" // 2 nop nop + "sbrc %[byte] , 0" "\n\t" // 1-2 if(b & 0x01) + "mov %[n2] , %[hi]" "\n\t" // 0-1 n2 = hi + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo + "sbiw %[count], 1" "\n\t" // 2 i-- (don't act on Z flag yet) + // Bit 0: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi + "mov %[n1] , %[lo]" "\n\t" // 1 n1 = lo + "out %[port] , %[n2]" "\n\t" // 1 PORT = n2 + "ld %[byte] , %a[ptr]+" "\n\t" // 2 b = *ptr++ + "sbrc %[byte] , 7" "\n\t" // 1-2 if(b & 0x80) + "mov %[n1] , %[hi]" "\n\t" // 0-1 n1 = hi + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo + "brne headD" "\n" // 2 while(i) (Z flag set above) + : [byte] "+r" (b), + [n1] "+r" (n1), + [n2] "+r" (n2), + [count] "+w" (i) + : [port] "I" (_SFR_IO_ADDR(PORTD)), + [ptr] "e" (ptr), + [hi] "r" (hi), + [lo] "r" (lo)); + + #if defined(PORTB) || defined(PORTC) || defined(PORTF) + } else // other PORT(s) + #endif // defined(PORTB/C/F) +#endif // defined(PORTD) + + // PORTB OUTPUT ---------------------------------------------------- + +#if defined(PORTB) + #if defined(PORTD) || defined(PORTC) || defined(PORTF) + if(port == &PORTB) { + #endif // defined(PORTD/C/F) + + // Same as above, just switched to PORTB and stripped of comments. + hi = PORTB | pinMask; + lo = PORTB & ~pinMask; + n1 = lo; + if(b & 0x80) n1 = hi; + + asm volatile( + "headB:" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 6" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 5" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 4" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 3" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 2" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 1" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 0" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "sbiw %[count], 1" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "ld %[byte] , %a[ptr]+" "\n\t" + "sbrc %[byte] , 7" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "brne headB" "\n" + : [byte] "+r" (b), [n1] "+r" (n1), [n2] "+r" (n2), [count] "+w" (i) + : [port] "I" (_SFR_IO_ADDR(PORTB)), [ptr] "e" (ptr), [hi] "r" (hi), + [lo] "r" (lo)); + + #if defined(PORTD) || defined(PORTC) || defined(PORTF) + } + #endif + #if defined(PORTC) || defined(PORTF) + else + #endif // defined(PORTC/F) +#endif // defined(PORTB) + + // PORTC OUTPUT ---------------------------------------------------- + +#if defined(PORTC) + #if defined(PORTD) || defined(PORTB) || defined(PORTF) + if(port == &PORTC) { + #endif // defined(PORTD/B/F) + + // Same as above, just switched to PORTC and stripped of comments. + hi = PORTC | pinMask; + lo = PORTC & ~pinMask; + n1 = lo; + if(b & 0x80) n1 = hi; + + asm volatile( + "headC:" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 6" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 5" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 4" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 3" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 2" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 1" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 0" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "sbiw %[count], 1" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "ld %[byte] , %a[ptr]+" "\n\t" + "sbrc %[byte] , 7" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "brne headC" "\n" + : [byte] "+r" (b), [n1] "+r" (n1), [n2] "+r" (n2), [count] "+w" (i) + : [port] "I" (_SFR_IO_ADDR(PORTC)), [ptr] "e" (ptr), [hi] "r" (hi), + [lo] "r" (lo)); + + #if defined(PORTD) || defined(PORTB) || defined(PORTF) + } + #endif // defined(PORTD/B/F) + #if defined(PORTF) + else + #endif +#endif // defined(PORTC) + + // PORTF OUTPUT ---------------------------------------------------- + +#if defined(PORTF) + #if defined(PORTD) || defined(PORTB) || defined(PORTC) + if(port == &PORTF) { + #endif // defined(PORTD/B/C) + + hi = PORTF | pinMask; + lo = PORTF & ~pinMask; + n1 = lo; + if(b & 0x80) n1 = hi; + + asm volatile( + "headF:" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 6" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 5" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 4" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 3" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 2" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 1" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "rjmp .+0" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n2] , %[lo]" "\n\t" + "out %[port] , %[n1]" "\n\t" + "rjmp .+0" "\n\t" + "sbrc %[byte] , 0" "\n\t" + "mov %[n2] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "sbiw %[count], 1" "\n\t" + "out %[port] , %[hi]" "\n\t" + "mov %[n1] , %[lo]" "\n\t" + "out %[port] , %[n2]" "\n\t" + "ld %[byte] , %a[ptr]+" "\n\t" + "sbrc %[byte] , 7" "\n\t" + "mov %[n1] , %[hi]" "\n\t" + "out %[port] , %[lo]" "\n\t" + "brne headF" "\n" + : [byte] "+r" (b), [n1] "+r" (n1), [n2] "+r" (n2), [count] "+w" (i) + : [port] "I" (_SFR_IO_ADDR(PORTF)), [ptr] "e" (ptr), [hi] "r" (hi), + [lo] "r" (lo)); + + #if defined(PORTD) || defined(PORTB) || defined(PORTC) + } + #endif // defined(PORTD/B/C) +#endif // defined(PORTF) + +#ifdef NEO_KHZ400 + } else { // end 800 KHz, do 400 KHz + + // Timing is more relaxed; unrolling the inner loop for each bit is + // not necessary. Still using the peculiar RJMPs as 2X NOPs, not out + // of need but just to trim the code size down a little. + // This 400-KHz-datastream-on-8-MHz-CPU code is not quite identical + // to the 800-on-16 code later -- the hi/lo timing between WS2811 and + // WS2812 is not simply a 2:1 scale! + + // 20 inst. clocks per bit: HHHHxxxxxxLLLLLLLLLL + // ST instructions: ^ ^ ^ (T=0,4,10) + + volatile uint8_t next, bit; + + hi = *port | pinMask; + lo = *port & ~pinMask; + next = lo; + bit = 8; + + asm volatile( + "head20:" "\n\t" // Clk Pseudocode (T = 0) + "st %a[port], %[hi]" "\n\t" // 2 PORT = hi (T = 2) + "sbrc %[byte] , 7" "\n\t" // 1-2 if(b & 128) + "mov %[next], %[hi]" "\n\t" // 0-1 next = hi (T = 4) + "st %a[port], %[next]" "\n\t" // 2 PORT = next (T = 6) + "mov %[next] , %[lo]" "\n\t" // 1 next = lo (T = 7) + "dec %[bit]" "\n\t" // 1 bit-- (T = 8) + "breq nextbyte20" "\n\t" // 1-2 if(bit == 0) + "rol %[byte]" "\n\t" // 1 b <<= 1 (T = 10) + "st %a[port], %[lo]" "\n\t" // 2 PORT = lo (T = 12) + "rjmp .+0" "\n\t" // 2 nop nop (T = 14) + "rjmp .+0" "\n\t" // 2 nop nop (T = 16) + "rjmp .+0" "\n\t" // 2 nop nop (T = 18) + "rjmp head20" "\n\t" // 2 -> head20 (next bit out) + "nextbyte20:" "\n\t" // (T = 10) + "st %a[port], %[lo]" "\n\t" // 2 PORT = lo (T = 12) + "nop" "\n\t" // 1 nop (T = 13) + "ldi %[bit] , 8" "\n\t" // 1 bit = 8 (T = 14) + "ld %[byte] , %a[ptr]+" "\n\t" // 2 b = *ptr++ (T = 16) + "sbiw %[count], 1" "\n\t" // 2 i-- (T = 18) + "brne head20" "\n" // 2 if(i != 0) -> (next byte) + : [port] "+e" (port), + [byte] "+r" (b), + [bit] "+r" (bit), + [next] "+r" (next), + [count] "+w" (i) + : [hi] "r" (hi), + [lo] "r" (lo), + [ptr] "e" (ptr)); + } +#endif // NEO_KHZ400 + +// 12 MHz(ish) AVR -------------------------------------------------------- +#elif (F_CPU >= 11100000UL) && (F_CPU <= 14300000UL) + +#ifdef NEO_KHZ400 // 800 KHz check needed only if 400 KHz support enabled + if(is800KHz) { +#endif + + // In the 12 MHz case, an optimized 800 KHz datastream (no dead time + // between bytes) requires a PORT-specific loop similar to the 8 MHz + // code (but a little more relaxed in this case). + + // 15 instruction clocks per bit: HHHHxxxxxxLLLLL + // OUT instructions: ^ ^ ^ (T=0,4,10) + + volatile uint8_t next; + + // PORTD OUTPUT ---------------------------------------------------- + +#if defined(PORTD) + #if defined(PORTB) || defined(PORTC) || defined(PORTF) + if(port == &PORTD) { + #endif // defined(PORTB/C/F) + + hi = PORTD | pinMask; + lo = PORTD & ~pinMask; + next = lo; + if(b & 0x80) next = hi; + + // Don't "optimize" the OUT calls into the bitTime subroutine; + // we're exploiting the RCALL and RET as 3- and 4-cycle NOPs! + asm volatile( + "headD:" "\n\t" // (T = 0) + "out %[port], %[hi]" "\n\t" // (T = 1) + "rcall bitTimeD" "\n\t" // Bit 7 (T = 15) + "out %[port], %[hi]" "\n\t" + "rcall bitTimeD" "\n\t" // Bit 6 + "out %[port], %[hi]" "\n\t" + "rcall bitTimeD" "\n\t" // Bit 5 + "out %[port], %[hi]" "\n\t" + "rcall bitTimeD" "\n\t" // Bit 4 + "out %[port], %[hi]" "\n\t" + "rcall bitTimeD" "\n\t" // Bit 3 + "out %[port], %[hi]" "\n\t" + "rcall bitTimeD" "\n\t" // Bit 2 + "out %[port], %[hi]" "\n\t" + "rcall bitTimeD" "\n\t" // Bit 1 + // Bit 0: + "out %[port] , %[hi]" "\n\t" // 1 PORT = hi (T = 1) + "rjmp .+0" "\n\t" // 2 nop nop (T = 3) + "ld %[byte] , %a[ptr]+" "\n\t" // 2 b = *ptr++ (T = 5) + "out %[port] , %[next]" "\n\t" // 1 PORT = next (T = 6) + "mov %[next] , %[lo]" "\n\t" // 1 next = lo (T = 7) + "sbrc %[byte] , 7" "\n\t" // 1-2 if(b & 0x80) (T = 8) + "mov %[next] , %[hi]" "\n\t" // 0-1 next = hi (T = 9) + "nop" "\n\t" // 1 (T = 10) + "out %[port] , %[lo]" "\n\t" // 1 PORT = lo (T = 11) + "sbiw %[count], 1" "\n\t" // 2 i-- (T = 13) + "brne headD" "\n\t" // 2 if(i != 0) -> (next byte) + "rjmp doneD" "\n\t" + "bitTimeD:" "\n\t" // nop nop nop (T = 4) + "out %[port], %[next]" "\n\t" // 1 PORT = next (T = 5) + "mov %[next], %[lo]" "\n\t" // 1 next = lo (T = 6) + "rol %[byte]" "\n\t" // 1 b <<= 1 (T = 7) + "sbrc %[byte], 7" "\n\t" // 1-2 if(b & 0x80) (T = 8) + "mov %[next], %[hi]" "\n\t" // 0-1 next = hi (T = 9) + "nop" "\n\t" // 1 (T = 10) + "out %[port], %[lo]" "\n\t" // 1 PORT = lo (T = 11) + "ret" "\n\t" // 4 nop nop nop nop (T = 15) + "doneD:" "\n" + : [byte] "+r" (b), + [next] "+r" (next), + [count] "+w" (i) + : [port] "I" (_SFR_IO_ADDR(PORTD)), + [ptr] "e" (ptr), + [hi] "r" (hi), + [lo] "r" (lo)); + + #if defined(PORTB) || defined(PORTC) || defined(PORTF) + } else // other PORT(s) + #endif // defined(PORTB/C/F) +#endif // defined(PORTD) + + // PORTB OUTPUT ---------------------------------------------------- + +#if defined(PORTB) + #if defined(PORTD) || defined(PORTC) || defined(PORTF) + if(port == &PORTB) { + #endif // defined(PORTD/C/F) + + hi = PORTB | pinMask; + lo = PORTB & ~pinMask; + next = lo; + if(b & 0x80) next = hi; + + // Same as above, just set for PORTB & stripped of comments + asm volatile( + "headB:" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeB" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeB" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeB" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeB" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeB" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeB" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeB" "\n\t" + "out %[port] , %[hi]" "\n\t" + "rjmp .+0" "\n\t" + "ld %[byte] , %a[ptr]+" "\n\t" + "out %[port] , %[next]" "\n\t" + "mov %[next] , %[lo]" "\n\t" + "sbrc %[byte] , 7" "\n\t" + "mov %[next] , %[hi]" "\n\t" + "nop" "\n\t" + "out %[port] , %[lo]" "\n\t" + "sbiw %[count], 1" "\n\t" + "brne headB" "\n\t" + "rjmp doneB" "\n\t" + "bitTimeB:" "\n\t" + "out %[port], %[next]" "\n\t" + "mov %[next], %[lo]" "\n\t" + "rol %[byte]" "\n\t" + "sbrc %[byte], 7" "\n\t" + "mov %[next], %[hi]" "\n\t" + "nop" "\n\t" + "out %[port], %[lo]" "\n\t" + "ret" "\n\t" + "doneB:" "\n" + : [byte] "+r" (b), [next] "+r" (next), [count] "+w" (i) + : [port] "I" (_SFR_IO_ADDR(PORTB)), [ptr] "e" (ptr), [hi] "r" (hi), + [lo] "r" (lo)); + + #if defined(PORTD) || defined(PORTC) || defined(PORTF) + } + #endif + #if defined(PORTC) || defined(PORTF) + else + #endif // defined(PORTC/F) +#endif // defined(PORTB) + + // PORTC OUTPUT ---------------------------------------------------- + +#if defined(PORTC) + #if defined(PORTD) || defined(PORTB) || defined(PORTF) + if(port == &PORTC) { + #endif // defined(PORTD/B/F) + + hi = PORTC | pinMask; + lo = PORTC & ~pinMask; + next = lo; + if(b & 0x80) next = hi; + + // Same as above, just set for PORTC & stripped of comments + asm volatile( + "headC:" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port] , %[hi]" "\n\t" + "rjmp .+0" "\n\t" + "ld %[byte] , %a[ptr]+" "\n\t" + "out %[port] , %[next]" "\n\t" + "mov %[next] , %[lo]" "\n\t" + "sbrc %[byte] , 7" "\n\t" + "mov %[next] , %[hi]" "\n\t" + "nop" "\n\t" + "out %[port] , %[lo]" "\n\t" + "sbiw %[count], 1" "\n\t" + "brne headC" "\n\t" + "rjmp doneC" "\n\t" + "bitTimeC:" "\n\t" + "out %[port], %[next]" "\n\t" + "mov %[next], %[lo]" "\n\t" + "rol %[byte]" "\n\t" + "sbrc %[byte], 7" "\n\t" + "mov %[next], %[hi]" "\n\t" + "nop" "\n\t" + "out %[port], %[lo]" "\n\t" + "ret" "\n\t" + "doneC:" "\n" + : [byte] "+r" (b), [next] "+r" (next), [count] "+w" (i) + : [port] "I" (_SFR_IO_ADDR(PORTC)), [ptr] "e" (ptr), [hi] "r" (hi), + [lo] "r" (lo)); + + #if defined(PORTD) || defined(PORTB) || defined(PORTF) + } + #endif // defined(PORTD/B/F) + #if defined(PORTF) + else + #endif +#endif // defined(PORTC) + + // PORTF OUTPUT ---------------------------------------------------- + +#if defined(PORTF) + #if defined(PORTD) || defined(PORTB) || defined(PORTC) + if(port == &PORTF) { + #endif // defined(PORTD/B/C) + + hi = PORTF | pinMask; + lo = PORTF & ~pinMask; + next = lo; + if(b & 0x80) next = hi; + + // Same as above, just set for PORTF & stripped of comments + asm volatile( + "headF:" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port], %[hi]" "\n\t" + "rcall bitTimeC" "\n\t" + "out %[port] , %[hi]" "\n\t" + "rjmp .+0" "\n\t" + "ld %[byte] , %a[ptr]+" "\n\t" + "out %[port] , %[next]" "\n\t" + "mov %[next] , %[lo]" "\n\t" + "sbrc %[byte] , 7" "\n\t" + "mov %[next] , %[hi]" "\n\t" + "nop" "\n\t" + "out %[port] , %[lo]" "\n\t" + "sbiw %[count], 1" "\n\t" + "brne headF" "\n\t" + "rjmp doneC" "\n\t" + "bitTimeC:" "\n\t" + "out %[port], %[next]" "\n\t" + "mov %[next], %[lo]" "\n\t" + "rol %[byte]" "\n\t" + "sbrc %[byte], 7" "\n\t" + "mov %[next], %[hi]" "\n\t" + "nop" "\n\t" + "out %[port], %[lo]" "\n\t" + "ret" "\n\t" + "doneC:" "\n" + : [byte] "+r" (b), [next] "+r" (next), [count] "+w" (i) + : [port] "I" (_SFR_IO_ADDR(PORTF)), [ptr] "e" (ptr), [hi] "r" (hi), + [lo] "r" (lo)); + + #if defined(PORTD) || defined(PORTB) || defined(PORTC) + } + #endif // defined(PORTD/B/C) +#endif // defined(PORTF) + +#ifdef NEO_KHZ400 + } else { // 400 KHz + + // 30 instruction clocks per bit: HHHHHHxxxxxxxxxLLLLLLLLLLLLLLL + // ST instructions: ^ ^ ^ (T=0,6,15) + + volatile uint8_t next, bit; + + hi = *port | pinMask; + lo = *port & ~pinMask; + next = lo; + bit = 8; + + asm volatile( + "head30:" "\n\t" // Clk Pseudocode (T = 0) + "st %a[port], %[hi]" "\n\t" // 2 PORT = hi (T = 2) + "sbrc %[byte] , 7" "\n\t" // 1-2 if(b & 128) + "mov %[next], %[hi]" "\n\t" // 0-1 next = hi (T = 4) + "rjmp .+0" "\n\t" // 2 nop nop (T = 6) + "st %a[port], %[next]" "\n\t" // 2 PORT = next (T = 8) + "rjmp .+0" "\n\t" // 2 nop nop (T = 10) + "rjmp .+0" "\n\t" // 2 nop nop (T = 12) + "rjmp .+0" "\n\t" // 2 nop nop (T = 14) + "nop" "\n\t" // 1 nop (T = 15) + "st %a[port], %[lo]" "\n\t" // 2 PORT = lo (T = 17) + "rjmp .+0" "\n\t" // 2 nop nop (T = 19) + "dec %[bit]" "\n\t" // 1 bit-- (T = 20) + "breq nextbyte30" "\n\t" // 1-2 if(bit == 0) + "rol %[byte]" "\n\t" // 1 b <<= 1 (T = 22) + "rjmp .+0" "\n\t" // 2 nop nop (T = 24) + "rjmp .+0" "\n\t" // 2 nop nop (T = 26) + "rjmp .+0" "\n\t" // 2 nop nop (T = 28) + "rjmp head30" "\n\t" // 2 -> head30 (next bit out) + "nextbyte30:" "\n\t" // (T = 22) + "nop" "\n\t" // 1 nop (T = 23) + "ldi %[bit] , 8" "\n\t" // 1 bit = 8 (T = 24) + "ld %[byte] , %a[ptr]+" "\n\t" // 2 b = *ptr++ (T = 26) + "sbiw %[count], 1" "\n\t" // 2 i-- (T = 28) + "brne head30" "\n" // 1-2 if(i != 0) -> (next byte) + : [port] "+e" (port), + [byte] "+r" (b), + [bit] "+r" (bit), + [next] "+r" (next), + [count] "+w" (i) + : [hi] "r" (hi), + [lo] "r" (lo), + [ptr] "e" (ptr)); + } +#endif // NEO_KHZ400 + +// 16 MHz(ish) AVR -------------------------------------------------------- +#elif (F_CPU >= 15400000UL) && (F_CPU <= 19000000L) + +#ifdef NEO_KHZ400 // 800 KHz check needed only if 400 KHz support enabled + if(is800KHz) { +#endif + + // WS2811 and WS2812 have different hi/lo duty cycles; this is + // similar but NOT an exact copy of the prior 400-on-8 code. + + // 20 inst. clocks per bit: HHHHHxxxxxxxxLLLLLLL + // ST instructions: ^ ^ ^ (T=0,5,13) + + volatile uint8_t next, bit; + + hi = *port | pinMask; + lo = *port & ~pinMask; + next = lo; + bit = 8; + + asm volatile( + "head20:" "\n\t" // Clk Pseudocode (T = 0) + "st %a[port], %[hi]" "\n\t" // 2 PORT = hi (T = 2) + "sbrc %[byte], 7" "\n\t" // 1-2 if(b & 128) + "mov %[next], %[hi]" "\n\t" // 0-1 next = hi (T = 4) + "dec %[bit]" "\n\t" // 1 bit-- (T = 5) + "st %a[port], %[next]" "\n\t" // 2 PORT = next (T = 7) + "mov %[next] , %[lo]" "\n\t" // 1 next = lo (T = 8) + "breq nextbyte20" "\n\t" // 1-2 if(bit == 0) (from dec above) + "rol %[byte]" "\n\t" // 1 b <<= 1 (T = 10) + "rjmp .+0" "\n\t" // 2 nop nop (T = 12) + "nop" "\n\t" // 1 nop (T = 13) + "st %a[port], %[lo]" "\n\t" // 2 PORT = lo (T = 15) + "nop" "\n\t" // 1 nop (T = 16) + "rjmp .+0" "\n\t" // 2 nop nop (T = 18) + "rjmp head20" "\n\t" // 2 -> head20 (next bit out) + "nextbyte20:" "\n\t" // (T = 10) + "ldi %[bit] , 8" "\n\t" // 1 bit = 8 (T = 11) + "ld %[byte] , %a[ptr]+" "\n\t" // 2 b = *ptr++ (T = 13) + "st %a[port], %[lo]" "\n\t" // 2 PORT = lo (T = 15) + "nop" "\n\t" // 1 nop (T = 16) + "sbiw %[count], 1" "\n\t" // 2 i-- (T = 18) + "brne head20" "\n" // 2 if(i != 0) -> (next byte) + : [port] "+e" (port), + [byte] "+r" (b), + [bit] "+r" (bit), + [next] "+r" (next), + [count] "+w" (i) + : [ptr] "e" (ptr), + [hi] "r" (hi), + [lo] "r" (lo)); + +#ifdef NEO_KHZ400 + } else { // 400 KHz + + // The 400 KHz clock on 16 MHz MCU is the most 'relaxed' version. + + // 40 inst. clocks per bit: HHHHHHHHxxxxxxxxxxxxLLLLLLLLLLLLLLLLLLLL + // ST instructions: ^ ^ ^ (T=0,8,20) + + volatile uint8_t next, bit; + + hi = *port | pinMask; + lo = *port & ~pinMask; + next = lo; + bit = 8; + + asm volatile( + "head40:" "\n\t" // Clk Pseudocode (T = 0) + "st %a[port], %[hi]" "\n\t" // 2 PORT = hi (T = 2) + "sbrc %[byte] , 7" "\n\t" // 1-2 if(b & 128) + "mov %[next] , %[hi]" "\n\t" // 0-1 next = hi (T = 4) + "rjmp .+0" "\n\t" // 2 nop nop (T = 6) + "rjmp .+0" "\n\t" // 2 nop nop (T = 8) + "st %a[port], %[next]" "\n\t" // 2 PORT = next (T = 10) + "rjmp .+0" "\n\t" // 2 nop nop (T = 12) + "rjmp .+0" "\n\t" // 2 nop nop (T = 14) + "rjmp .+0" "\n\t" // 2 nop nop (T = 16) + "rjmp .+0" "\n\t" // 2 nop nop (T = 18) + "rjmp .+0" "\n\t" // 2 nop nop (T = 20) + "st %a[port], %[lo]" "\n\t" // 2 PORT = lo (T = 22) + "nop" "\n\t" // 1 nop (T = 23) + "mov %[next] , %[lo]" "\n\t" // 1 next = lo (T = 24) + "dec %[bit]" "\n\t" // 1 bit-- (T = 25) + "breq nextbyte40" "\n\t" // 1-2 if(bit == 0) + "rol %[byte]" "\n\t" // 1 b <<= 1 (T = 27) + "nop" "\n\t" // 1 nop (T = 28) + "rjmp .+0" "\n\t" // 2 nop nop (T = 30) + "rjmp .+0" "\n\t" // 2 nop nop (T = 32) + "rjmp .+0" "\n\t" // 2 nop nop (T = 34) + "rjmp .+0" "\n\t" // 2 nop nop (T = 36) + "rjmp .+0" "\n\t" // 2 nop nop (T = 38) + "rjmp head40" "\n\t" // 2 -> head40 (next bit out) + "nextbyte40:" "\n\t" // (T = 27) + "ldi %[bit] , 8" "\n\t" // 1 bit = 8 (T = 28) + "ld %[byte] , %a[ptr]+" "\n\t" // 2 b = *ptr++ (T = 30) + "rjmp .+0" "\n\t" // 2 nop nop (T = 32) + "st %a[port], %[lo]" "\n\t" // 2 PORT = lo (T = 34) + "rjmp .+0" "\n\t" // 2 nop nop (T = 36) + "sbiw %[count], 1" "\n\t" // 2 i-- (T = 38) + "brne head40" "\n" // 1-2 if(i != 0) -> (next byte) + : [port] "+e" (port), + [byte] "+r" (b), + [bit] "+r" (bit), + [next] "+r" (next), + [count] "+w" (i) + : [ptr] "e" (ptr), + [hi] "r" (hi), + [lo] "r" (lo)); + } +#endif // NEO_KHZ400 + +#else + #error "CPU SPEED NOT SUPPORTED" +#endif // end F_CPU ifdefs on __AVR__ + +// END AVR ---------------------------------------------------------------- + + +#elif defined(__arm__) + +// ARM MCUs -- Teensy 3.0, 3.1, LC, Arduino Due --------------------------- + +#if defined(__MK20DX128__) || defined(__MK20DX256__) // Teensy 3.0 & 3.1 +#define CYCLES_800_T0H (F_CPU / 4000000) +#define CYCLES_800_T1H (F_CPU / 1250000) +#define CYCLES_800 (F_CPU / 800000) +#define CYCLES_400_T0H (F_CPU / 2000000) +#define CYCLES_400_T1H (F_CPU / 833333) +#define CYCLES_400 (F_CPU / 400000) + + uint8_t *p = pixels, + *end = p + numBytes, pix, mask; + volatile uint8_t *set = portSetRegister(pin), + *clr = portClearRegister(pin); + uint32_t cyc; + + ARM_DEMCR |= ARM_DEMCR_TRCENA; + ARM_DWT_CTRL |= ARM_DWT_CTRL_CYCCNTENA; + +#ifdef NEO_KHZ400 // 800 KHz check needed only if 400 KHz support enabled + if(is800KHz) { +#endif + cyc = ARM_DWT_CYCCNT + CYCLES_800; + while(p < end) { + pix = *p++; + for(mask = 0x80; mask; mask >>= 1) { + while(ARM_DWT_CYCCNT - cyc < CYCLES_800); + cyc = ARM_DWT_CYCCNT; + *set = 1; + if(pix & mask) { + while(ARM_DWT_CYCCNT - cyc < CYCLES_800_T1H); + } else { + while(ARM_DWT_CYCCNT - cyc < CYCLES_800_T0H); + } + *clr = 1; + } + } + while(ARM_DWT_CYCCNT - cyc < CYCLES_800); +#ifdef NEO_KHZ400 + } else { // 400 kHz bitstream + cyc = ARM_DWT_CYCCNT + CYCLES_400; + while(p < end) { + pix = *p++; + for(mask = 0x80; mask; mask >>= 1) { + while(ARM_DWT_CYCCNT - cyc < CYCLES_400); + cyc = ARM_DWT_CYCCNT; + *set = 1; + if(pix & mask) { + while(ARM_DWT_CYCCNT - cyc < CYCLES_400_T1H); + } else { + while(ARM_DWT_CYCCNT - cyc < CYCLES_400_T0H); + } + *clr = 1; + } + } + while(ARM_DWT_CYCCNT - cyc < CYCLES_400); + } +#endif // NEO_KHZ400 + +#elif defined(__MKL26Z64__) // Teensy-LC + +#if F_CPU == 48000000 + uint8_t *p = pixels, + pix, count, dly, + bitmask = digitalPinToBitMask(pin); + volatile uint8_t *reg = portSetRegister(pin); + uint32_t num = numBytes; + asm volatile( + "L%=_begin:" "\n\t" + "ldrb %[pix], [%[p], #0]" "\n\t" + "lsl %[pix], #24" "\n\t" + "movs %[count], #7" "\n\t" + "L%=_loop:" "\n\t" + "lsl %[pix], #1" "\n\t" + "bcs L%=_loop_one" "\n\t" + "L%=_loop_zero:" + "strb %[bitmask], [%[reg], #0]" "\n\t" + "movs %[dly], #4" "\n\t" + "L%=_loop_delay_T0H:" "\n\t" + "sub %[dly], #1" "\n\t" + "bne L%=_loop_delay_T0H" "\n\t" + "strb %[bitmask], [%[reg], #4]" "\n\t" + "movs %[dly], #13" "\n\t" + "L%=_loop_delay_T0L:" "\n\t" + "sub %[dly], #1" "\n\t" + "bne L%=_loop_delay_T0L" "\n\t" + "b L%=_next" "\n\t" + "L%=_loop_one:" + "strb %[bitmask], [%[reg], #0]" "\n\t" + "movs %[dly], #13" "\n\t" + "L%=_loop_delay_T1H:" "\n\t" + "sub %[dly], #1" "\n\t" + "bne L%=_loop_delay_T1H" "\n\t" + "strb %[bitmask], [%[reg], #4]" "\n\t" + "movs %[dly], #4" "\n\t" + "L%=_loop_delay_T1L:" "\n\t" + "sub %[dly], #1" "\n\t" + "bne L%=_loop_delay_T1L" "\n\t" + "nop" "\n\t" + "L%=_next:" "\n\t" + "sub %[count], #1" "\n\t" + "bne L%=_loop" "\n\t" + "lsl %[pix], #1" "\n\t" + "bcs L%=_last_one" "\n\t" + "L%=_last_zero:" + "strb %[bitmask], [%[reg], #0]" "\n\t" + "movs %[dly], #4" "\n\t" + "L%=_last_delay_T0H:" "\n\t" + "sub %[dly], #1" "\n\t" + "bne L%=_last_delay_T0H" "\n\t" + "strb %[bitmask], [%[reg], #4]" "\n\t" + "movs %[dly], #10" "\n\t" + "L%=_last_delay_T0L:" "\n\t" + "sub %[dly], #1" "\n\t" + "bne L%=_last_delay_T0L" "\n\t" + "b L%=_repeat" "\n\t" + "L%=_last_one:" + "strb %[bitmask], [%[reg], #0]" "\n\t" + "movs %[dly], #13" "\n\t" + "L%=_last_delay_T1H:" "\n\t" + "sub %[dly], #1" "\n\t" + "bne L%=_last_delay_T1H" "\n\t" + "strb %[bitmask], [%[reg], #4]" "\n\t" + "movs %[dly], #1" "\n\t" + "L%=_last_delay_T1L:" "\n\t" + "sub %[dly], #1" "\n\t" + "bne L%=_last_delay_T1L" "\n\t" + "nop" "\n\t" + "L%=_repeat:" "\n\t" + "add %[p], #1" "\n\t" + "sub %[num], #1" "\n\t" + "bne L%=_begin" "\n\t" + "L%=_done:" "\n\t" + : [p] "+r" (p), + [pix] "=&r" (pix), + [count] "=&r" (count), + [dly] "=&r" (dly), + [num] "+r" (num) + : [bitmask] "r" (bitmask), + [reg] "r" (reg) + ); +#else +#error "Sorry, only 48 MHz is supported, please set Tools > CPU Speed to 48 MHz" +#endif // F_CPU == 48000000 + +#elif defined(__SAMD21G18A__) // Arduino Zero + + // Tried this with a timer/counter, couldn't quite get adequate + // resolution. So yay, you get a load of goofball NOPs... + + uint8_t *ptr, *end, p, bitMask, portNum; + uint32_t pinMask; + + portNum = g_APinDescription[pin].ulPort; + pinMask = 1ul << g_APinDescription[pin].ulPin; + ptr = pixels; + end = ptr + numBytes; + p = *ptr++; + bitMask = 0x80; + + volatile uint32_t *set = &(PORT->Group[portNum].OUTSET.reg), + *clr = &(PORT->Group[portNum].OUTCLR.reg); + +#ifdef NEO_KHZ400 // 800 KHz check needed only if 400 KHz support enabled + if(is800KHz) { +#endif + for(;;) { + *set = pinMask; + asm("nop; nop; nop; nop; nop; nop; nop; nop;"); + if(p & bitMask) { + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop;"); + *clr = pinMask; + } else { + *clr = pinMask; + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop;"); + } + if(bitMask >>= 1) { + asm("nop; nop; nop; nop; nop; nop; nop; nop; nop;"); + } else { + if(ptr >= end) break; + p = *ptr++; + bitMask = 0x80; + } + } +#ifdef NEO_KHZ400 + } else { // 400 KHz bitstream + for(;;) { + *set = pinMask; + asm("nop; nop; nop; nop; nop; nop; nop; nop; nop; nop; nop;"); + if(p & bitMask) { + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop;"); + *clr = pinMask; + } else { + *clr = pinMask; + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop;"); + } + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;"); + if(bitMask >>= 1) { + asm("nop; nop; nop; nop; nop; nop; nop;"); + } else { + if(ptr >= end) break; + p = *ptr++; + bitMask = 0x80; + } + } + } +#endif + +#elif defined (ARDUINO_STM32_FEATHER) // FEATHER WICED (120MHz) + + // Tried this with a timer/counter, couldn't quite get adequate + // resolution. So yay, you get a load of goofball NOPs... + + uint8_t *ptr, *end, p, bitMask; + uint32_t pinMask; + + pinMask = BIT(PIN_MAP[pin].gpio_bit); + ptr = pixels; + end = ptr + numBytes; + p = *ptr++; + bitMask = 0x80; + + volatile uint16_t *set = &(PIN_MAP[pin].gpio_device->regs->BSRRL); + volatile uint16_t *clr = &(PIN_MAP[pin].gpio_device->regs->BSRRH); + +#ifdef NEO_KHZ400 // 800 KHz check needed only if 400 KHz support enabled + if(is800KHz) { +#endif + for(;;) { + if(p & bitMask) { // ONE + // High 800ns + *set = pinMask; + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop;"); + // Low 450ns + *clr = pinMask; + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop;"); + } else { // ZERO + // High 400ns + *set = pinMask; + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop;"); + // Low 850ns + *clr = pinMask; + asm("nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop; nop; nop; nop; nop;" + "nop; nop; nop; nop;"); + } + if(bitMask >>= 1) { + // Move on to the next pixel + asm("nop;"); + } else { + if(ptr >= end) break; + p = *ptr++; + bitMask = 0x80; + } + } +#ifdef NEO_KHZ400 + } else { // 400 KHz bitstream + // ToDo! + } +#endif + +#else // Other ARM architecture -- Presumed Arduino Due + + #define SCALE VARIANT_MCK / 2UL / 1000000UL + #define INST (2UL * F_CPU / VARIANT_MCK) + #define TIME_800_0 ((int)(0.40 * SCALE + 0.5) - (5 * INST)) + #define TIME_800_1 ((int)(0.80 * SCALE + 0.5) - (5 * INST)) + #define PERIOD_800 ((int)(1.25 * SCALE + 0.5) - (5 * INST)) + #define TIME_400_0 ((int)(0.50 * SCALE + 0.5) - (5 * INST)) + #define TIME_400_1 ((int)(1.20 * SCALE + 0.5) - (5 * INST)) + #define PERIOD_400 ((int)(2.50 * SCALE + 0.5) - (5 * INST)) + + int pinMask, time0, time1, period, t; + Pio *port; + volatile WoReg *portSet, *portClear, *timeValue, *timeReset; + uint8_t *p, *end, pix, mask; + + pmc_set_writeprotect(false); + pmc_enable_periph_clk((uint32_t)TC3_IRQn); + TC_Configure(TC1, 0, + TC_CMR_WAVE | TC_CMR_WAVSEL_UP | TC_CMR_TCCLKS_TIMER_CLOCK1); + TC_Start(TC1, 0); + + pinMask = g_APinDescription[pin].ulPin; // Don't 'optimize' these into + port = g_APinDescription[pin].pPort; // declarations above. Want to + portSet = &(port->PIO_SODR); // burn a few cycles after + portClear = &(port->PIO_CODR); // starting timer to minimize + timeValue = &(TC1->TC_CHANNEL[0].TC_CV); // the initial 'while'. + timeReset = &(TC1->TC_CHANNEL[0].TC_CCR); + p = pixels; + end = p + numBytes; + pix = *p++; + mask = 0x80; + +#ifdef NEO_KHZ400 // 800 KHz check needed only if 400 KHz support enabled + if(is800KHz) { +#endif + time0 = TIME_800_0; + time1 = TIME_800_1; + period = PERIOD_800; +#ifdef NEO_KHZ400 + } else { // 400 KHz bitstream + time0 = TIME_400_0; + time1 = TIME_400_1; + period = PERIOD_400; + } +#endif + + for(t = time0;; t = time0) { + if(pix & mask) t = time1; + while(*timeValue < period); + *portSet = pinMask; + *timeReset = TC_CCR_CLKEN | TC_CCR_SWTRG; + while(*timeValue < t); + *portClear = pinMask; + if(!(mask >>= 1)) { // This 'inside-out' loop logic utilizes + if(p >= end) break; // idle time to minimize inter-byte delays. + pix = *p++; + mask = 0x80; + } + } + while(*timeValue < period); // Wait for last bit + TC_Stop(TC1, 0); + +#endif // end Due + +// END ARM ---------------------------------------------------------------- + + +#elif defined(ESP8266) + +// ESP8266 ---------------------------------------------------------------- + + // ESP8266 show() is external to enforce ICACHE_RAM_ATTR execution + espShow(pin, pixels, numBytes, is800KHz); + +#elif defined(__ARDUINO_ARC__) + +// Arduino 101 ----------------------------------------------------------- + +#define NOPx7 { __builtin_arc_nop(); \ + __builtin_arc_nop(); __builtin_arc_nop(); \ + __builtin_arc_nop(); __builtin_arc_nop(); \ + __builtin_arc_nop(); __builtin_arc_nop(); } + + PinDescription *pindesc = &g_APinDescription[pin]; + register uint32_t loop = 8 * numBytes; // one loop to handle all bytes and all bits + register uint8_t *p = pixels; + register uint32_t currByte = (uint32_t) (*p); + register uint32_t currBit = 0x80 & currByte; + register uint32_t bitCounter = 0; + register uint32_t first = 1; + + // The loop is unusual. Very first iteration puts all the way LOW to the wire - + // constant LOW does not affect NEOPIXEL, so there is no visible effect displayed. + // During that very first iteration CPU caches instructions in the loop. + // Because of the caching process, "CPU slows down". NEOPIXEL pulse is very time sensitive + // that's why we let the CPU cache first and we start regular pulse from 2nd iteration + if (pindesc->ulGPIOType == SS_GPIO) { + register uint32_t reg = pindesc->ulGPIOBase + SS_GPIO_SWPORTA_DR; + uint32_t reg_val = __builtin_arc_lr((volatile uint32_t)reg); + register uint32_t reg_bit_high = reg_val | (1 << pindesc->ulGPIOId); + register uint32_t reg_bit_low = reg_val & ~(1 << pindesc->ulGPIOId); + + loop += 1; // include first, special iteration + while(loop--) { + if(!first) { + currByte <<= 1; + bitCounter++; + } + + // 1 is >550ns high and >450ns low; 0 is 200..500ns high and >450ns low + __builtin_arc_sr(first ? reg_bit_low : reg_bit_high, (volatile uint32_t)reg); + if(currBit) { // ~400ns HIGH (740ns overall) + NOPx7 + NOPx7 + } + // ~340ns HIGH + NOPx7 + __builtin_arc_nop(); + + // 820ns LOW; per spec, max allowed low here is 5000ns */ + __builtin_arc_sr(reg_bit_low, (volatile uint32_t)reg); + NOPx7 + NOPx7 + + if(bitCounter >= 8) { + bitCounter = 0; + currByte = (uint32_t) (*++p); + } + + currBit = 0x80 & currByte; + first = 0; + } + } else if(pindesc->ulGPIOType == SOC_GPIO) { + register uint32_t reg = pindesc->ulGPIOBase + SOC_GPIO_SWPORTA_DR; + uint32_t reg_val = MMIO_REG_VAL(reg); + register uint32_t reg_bit_high = reg_val | (1 << pindesc->ulGPIOId); + register uint32_t reg_bit_low = reg_val & ~(1 << pindesc->ulGPIOId); + + loop += 1; // include first, special iteration + while(loop--) { + if(!first) { + currByte <<= 1; + bitCounter++; + } + MMIO_REG_VAL(reg) = first ? reg_bit_low : reg_bit_high; + if(currBit) { // ~430ns HIGH (740ns overall) + NOPx7 + NOPx7 + __builtin_arc_nop(); + } + // ~310ns HIGH + NOPx7 + + // 850ns LOW; per spec, max allowed low here is 5000ns */ + MMIO_REG_VAL(reg) = reg_bit_low; + NOPx7 + NOPx7 + + if(bitCounter >= 8) { + bitCounter = 0; + currByte = (uint32_t) (*++p); + } + + currBit = 0x80 & currByte; + first = 0; + } + } + +#endif + + +// END ARCHITECTURE SELECT ------------------------------------------------ + + + interrupts(); + endTime = micros(); // Save EOD time for latch on next call +} + +// Set the output pin number +void Adafruit_NeoPixel::setPin(uint8_t p) { + if(begun && (pin >= 0)) pinMode(pin, INPUT); + pin = p; + if(begun) { + pinMode(p, OUTPUT); + digitalWrite(p, LOW); + } +#ifdef __AVR__ + port = portOutputRegister(digitalPinToPort(p)); + pinMask = digitalPinToBitMask(p); +#endif +} + +// Set pixel color from separate R,G,B components: +void Adafruit_NeoPixel::setPixelColor( + uint16_t n, uint8_t r, uint8_t g, uint8_t b) { + + if(n < numLEDs) { + if(brightness) { // See notes in setBrightness() + r = (r * brightness) >> 8; + g = (g * brightness) >> 8; + b = (b * brightness) >> 8; + } + uint8_t *p; + if(wOffset == rOffset) { // Is an RGB-type strip + p = &pixels[n * 3]; // 3 bytes per pixel + } else { // Is a WRGB-type strip + p = &pixels[n * 4]; // 4 bytes per pixel + p[wOffset] = 0; // But only R,G,B passed -- set W to 0 + } + p[rOffset] = r; // R,G,B always stored + p[gOffset] = g; + p[bOffset] = b; + } +} + +void Adafruit_NeoPixel::setPixelColor( + uint16_t n, uint8_t r, uint8_t g, uint8_t b, uint8_t w) { + + if(n < numLEDs) { + if(brightness) { // See notes in setBrightness() + r = (r * brightness) >> 8; + g = (g * brightness) >> 8; + b = (b * brightness) >> 8; + w = (w * brightness) >> 8; + } + uint8_t *p; + if(wOffset == rOffset) { // Is an RGB-type strip + p = &pixels[n * 3]; // 3 bytes per pixel (ignore W) + } else { // Is a WRGB-type strip + p = &pixels[n * 4]; // 4 bytes per pixel + p[wOffset] = w; // Store W + } + p[rOffset] = r; // Store R,G,B + p[gOffset] = g; + p[bOffset] = b; + } +} + +// Set pixel color from 'packed' 32-bit RGB color: +void Adafruit_NeoPixel::setPixelColor(uint16_t n, uint32_t c) { + if(n < numLEDs) { + uint8_t *p, + r = (uint8_t)(c >> 16), + g = (uint8_t)(c >> 8), + b = (uint8_t)c; + if(brightness) { // See notes in setBrightness() + r = (r * brightness) >> 8; + g = (g * brightness) >> 8; + b = (b * brightness) >> 8; + } + if(wOffset == rOffset) { + p = &pixels[n * 3]; + } else { + p = &pixels[n * 4]; + uint8_t w = (uint8_t)(c >> 24); + p[wOffset] = brightness ? ((w * brightness) >> 8) : w; + } + p[rOffset] = r; + p[gOffset] = g; + p[bOffset] = b; + } +} + +// Convert separate R,G,B into packed 32-bit RGB color. +// Packed format is always RGB, regardless of LED strand color order. +uint32_t Adafruit_NeoPixel::Color(uint8_t r, uint8_t g, uint8_t b) { + return ((uint32_t)r << 16) | ((uint32_t)g << 8) | b; +} + +// Convert separate R,G,B,W into packed 32-bit WRGB color. +// Packed format is always WRGB, regardless of LED strand color order. +uint32_t Adafruit_NeoPixel::Color(uint8_t r, uint8_t g, uint8_t b, uint8_t w) { + return ((uint32_t)w << 24) | ((uint32_t)r << 16) | ((uint32_t)g << 8) | b; +} + +// Query color from previously-set pixel (returns packed 32-bit RGB value) +uint32_t Adafruit_NeoPixel::getPixelColor(uint16_t n) const { + if(n >= numLEDs) return 0; // Out of bounds, return no color. + + uint8_t *p; + + if(wOffset == rOffset) { // Is RGB-type device + p = &pixels[n * 3]; + if(brightness) { + // Stored color was decimated by setBrightness(). Returned value + // attempts to scale back to an approximation of the original 24-bit + // value used when setting the pixel color, but there will always be + // some error -- those bits are simply gone. Issue is most + // pronounced at low brightness levels. + return (((uint32_t)(p[rOffset] << 8) / brightness) << 16) | + (((uint32_t)(p[gOffset] << 8) / brightness) << 8) | + ( (uint32_t)(p[bOffset] << 8) / brightness ); + } else { + // No brightness adjustment has been made -- return 'raw' color + return ((uint32_t)p[rOffset] << 16) | + ((uint32_t)p[gOffset] << 8) | + (uint32_t)p[bOffset]; + } + } else { // Is RGBW-type device + p = &pixels[n * 4]; + if(brightness) { // Return scaled color + return (((uint32_t)(p[wOffset] << 8) / brightness) << 24) | + (((uint32_t)(p[rOffset] << 8) / brightness) << 16) | + (((uint32_t)(p[gOffset] << 8) / brightness) << 8) | + ( (uint32_t)(p[bOffset] << 8) / brightness ); + } else { // Return raw color + return ((uint32_t)p[wOffset] << 24) | + ((uint32_t)p[rOffset] << 16) | + ((uint32_t)p[gOffset] << 8) | + (uint32_t)p[bOffset]; + } + } +} + +// Returns pointer to pixels[] array. Pixel data is stored in device- +// native format and is not translated here. Application will need to be +// aware of specific pixel data format and handle colors appropriately. +uint8_t *Adafruit_NeoPixel::getPixels(void) const { + return pixels; +} + +uint16_t Adafruit_NeoPixel::numPixels(void) const { + return numLEDs; +} + +// Adjust output brightness; 0=darkest (off), 255=brightest. This does +// NOT immediately affect what's currently displayed on the LEDs. The +// next call to show() will refresh the LEDs at this level. However, +// this process is potentially "lossy," especially when increasing +// brightness. The tight timing in the WS2811/WS2812 code means there +// aren't enough free cycles to perform this scaling on the fly as data +// is issued. So we make a pass through the existing color data in RAM +// and scale it (subsequent graphics commands also work at this +// brightness level). If there's a significant step up in brightness, +// the limited number of steps (quantization) in the old data will be +// quite visible in the re-scaled version. For a non-destructive +// change, you'll need to re-render the full strip data. C'est la vie. +void Adafruit_NeoPixel::setBrightness(uint8_t b) { + // Stored brightness value is different than what's passed. + // This simplifies the actual scaling math later, allowing a fast + // 8x8-bit multiply and taking the MSB. 'brightness' is a uint8_t, + // adding 1 here may (intentionally) roll over...so 0 = max brightness + // (color values are interpreted literally; no scaling), 1 = min + // brightness (off), 255 = just below max brightness. + uint8_t newBrightness = b + 1; + if(newBrightness != brightness) { // Compare against prior value + // Brightness has changed -- re-scale existing data in RAM + uint8_t c, + *ptr = pixels, + oldBrightness = brightness - 1; // De-wrap old brightness value + uint16_t scale; + if(oldBrightness == 0) scale = 0; // Avoid /0 + else if(b == 255) scale = 65535 / oldBrightness; + else scale = (((uint16_t)newBrightness << 8) - 1) / oldBrightness; + for(uint16_t i=0; i> 8; + } + brightness = newBrightness; + } +} + +//Return the brightness value +uint8_t Adafruit_NeoPixel::getBrightness(void) const { + return brightness - 1; +} + +void Adafruit_NeoPixel::clear() { + memset(pixels, 0, numBytes); +} + + + + + + + + + + + + + diff --git a/lib/Adafruit_NeoPixel/Adafruit_NeoPixel.h b/lib/Adafruit_NeoPixel/Adafruit_NeoPixel.h new file mode 100644 index 000000000..b051d7d17 --- /dev/null +++ b/lib/Adafruit_NeoPixel/Adafruit_NeoPixel.h @@ -0,0 +1,181 @@ +/*-------------------------------------------------------------------- + This file is part of the Adafruit NeoPixel library. + + NeoPixel is free software: you can redistribute it and/or modify + it under the terms of the GNU Lesser General Public License as + published by the Free Software Foundation, either version 3 of + the License, or (at your option) any later version. + + NeoPixel is distributed in the hope that it will be useful, + but WITHOUT ANY WARRANTY; without even the implied warranty of + MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the + GNU Lesser General Public License for more details. + + You should have received a copy of the GNU Lesser General Public + License along with NeoPixel. If not, see + . + --------------------------------------------------------------------*/ + +#ifndef ADAFRUIT_NEOPIXEL_H +#define ADAFRUIT_NEOPIXEL_H + +#if (ARDUINO >= 100) + #include +#else + #include + #include +#endif + +// The order of primary colors in the NeoPixel data stream can vary +// among device types, manufacturers and even different revisions of +// the same item. The third parameter to the Adafruit_NeoPixel +// constructor encodes the per-pixel byte offsets of the red, green +// and blue primaries (plus white, if present) in the data stream -- +// the following #defines provide an easier-to-use named version for +// each permutation. e.g. NEO_GRB indicates a NeoPixel-compatible +// device expecting three bytes per pixel, with the first byte +// containing the green value, second containing red and third +// containing blue. The in-memory representation of a chain of +// NeoPixels is the same as the data-stream order; no re-ordering of +// bytes is required when issuing data to the chain. + +// Bits 5,4 of this value are the offset (0-3) from the first byte of +// a pixel to the location of the red color byte. Bits 3,2 are the +// green offset and 1,0 are the blue offset. If it is an RGBW-type +// device (supporting a white primary in addition to R,G,B), bits 7,6 +// are the offset to the white byte...otherwise, bits 7,6 are set to +// the same value as 5,4 (red) to indicate an RGB (not RGBW) device. +// i.e. binary representation: +// 0bWWRRGGBB for RGBW devices +// 0bRRRRGGBB for RGB + +// RGB NeoPixel permutations; white and red offsets are always same +// Offset: W R G B +#define NEO_RGB ((0 << 6) | (0 << 4) | (1 << 2) | (2)) +#define NEO_RBG ((0 << 6) | (0 << 4) | (2 << 2) | (1)) +#define NEO_GRB ((1 << 6) | (1 << 4) | (0 << 2) | (2)) +#define NEO_GBR ((2 << 6) | (2 << 4) | (0 << 2) | (1)) +#define NEO_BRG ((1 << 6) | (1 << 4) | (2 << 2) | (0)) +#define NEO_BGR ((2 << 6) | (2 << 4) | (1 << 2) | (0)) + +// RGBW NeoPixel permutations; all 4 offsets are distinct +// Offset: W R G B +#define NEO_WRGB ((0 << 6) | (1 << 4) | (2 << 2) | (3)) +#define NEO_WRBG ((0 << 6) | (1 << 4) | (3 << 2) | (2)) +#define NEO_WGRB ((0 << 6) | (2 << 4) | (1 << 2) | (3)) +#define NEO_WGBR ((0 << 6) | (3 << 4) | (1 << 2) | (2)) +#define NEO_WBRG ((0 << 6) | (2 << 4) | (3 << 2) | (1)) +#define NEO_WBGR ((0 << 6) | (3 << 4) | (2 << 2) | (1)) + +#define NEO_RWGB ((1 << 6) | (0 << 4) | (2 << 2) | (3)) +#define NEO_RWBG ((1 << 6) | (0 << 4) | (3 << 2) | (2)) +#define NEO_RGWB ((2 << 6) | (0 << 4) | (1 << 2) | (3)) +#define NEO_RGBW ((3 << 6) | (0 << 4) | (1 << 2) | (2)) +#define NEO_RBWG ((2 << 6) | (0 << 4) | (3 << 2) | (1)) +#define NEO_RBGW ((3 << 6) | (0 << 4) | (2 << 2) | (1)) + +#define NEO_GWRB ((1 << 6) | (2 << 4) | (0 << 2) | (3)) +#define NEO_GWBR ((1 << 6) | (3 << 4) | (0 << 2) | (2)) +#define NEO_GRWB ((2 << 6) | (1 << 4) | (0 << 2) | (3)) +#define NEO_GRBW ((3 << 6) | (1 << 4) | (0 << 2) | (2)) +#define NEO_GBWR ((2 << 6) | (3 << 4) | (0 << 2) | (1)) +#define NEO_GBRW ((3 << 6) | (2 << 4) | (0 << 2) | (1)) + +#define NEO_BWRG ((1 << 6) | (2 << 4) | (3 << 2) | (0)) +#define NEO_BWGR ((1 << 6) | (3 << 4) | (2 << 2) | (0)) +#define NEO_BRWG ((2 << 6) | (1 << 4) | (3 << 2) | (0)) +#define NEO_BRGW ((3 << 6) | (1 << 4) | (2 << 2) | (0)) +#define NEO_BGWR ((2 << 6) | (3 << 4) | (1 << 2) | (0)) +#define NEO_BGRW ((3 << 6) | (2 << 4) | (1 << 2) | (0)) + +// Add NEO_KHZ400 to the color order value to indicate a 400 KHz +// device. All but the earliest v1 NeoPixels expect an 800 KHz data +// stream, this is the default if unspecified. Because flash space +// is very limited on ATtiny devices (e.g. Trinket, Gemma), v1 +// NeoPixels aren't handled by default on those chips, though it can +// be enabled by removing the ifndef/endif below -- but code will be +// bigger. Conversely, can disable the NEO_KHZ400 line on other MCUs +// to remove v1 support and save a little space. + +#define NEO_KHZ800 0x0000 // 800 KHz datastream +#ifndef __AVR_ATtiny85__ +#define NEO_KHZ400 0x0100 // 400 KHz datastream +#endif + +// If 400 KHz support is enabled, the third parameter to the constructor +// requires a 16-bit value (in order to select 400 vs 800 KHz speed). +// If only 800 KHz is enabled (as is default on ATtiny), an 8-bit value +// is sufficient to encode pixel color order, saving some space. + +#ifdef NEO_KHZ400 +typedef uint16_t neoPixelType; +#else +typedef uint8_t neoPixelType; +#endif + +class Adafruit_NeoPixel { + + public: + + // Constructor: number of LEDs, pin number, LED type + Adafruit_NeoPixel(uint16_t n, uint8_t p=6, neoPixelType t=NEO_GRB + NEO_KHZ800); + Adafruit_NeoPixel(void); + ~Adafruit_NeoPixel(); + + void + begin(void), + show(void), + setPin(uint8_t p), + setPixelColor(uint16_t n, uint8_t r, uint8_t g, uint8_t b), + setPixelColor(uint16_t n, uint8_t r, uint8_t g, uint8_t b, uint8_t w), + setPixelColor(uint16_t n, uint32_t c), + setBrightness(uint8_t), + clear(), + updateLength(uint16_t n), + updateType(neoPixelType t); + uint8_t + *getPixels(void) const, + getBrightness(void) const; + int8_t + getPin(void) { return pin; }; + uint16_t + numPixels(void) const; + static uint32_t + Color(uint8_t r, uint8_t g, uint8_t b), + Color(uint8_t r, uint8_t g, uint8_t b, uint8_t w); + uint32_t + getPixelColor(uint16_t n) const; + inline bool + canShow(void) { return (micros() - endTime) >= 50L; } + + private: + + boolean +#ifdef NEO_KHZ400 // If 400 KHz NeoPixel support enabled... + is800KHz, // ...true if 800 KHz pixels +#endif + begun; // true if begin() previously called + uint16_t + numLEDs, // Number of RGB LEDs in strip + numBytes; // Size of 'pixels' buffer below (3 or 4 bytes/pixel) + int8_t + pin; // Output pin number (-1 if not yet set) + uint8_t + brightness, + *pixels, // Holds LED color values (3 or 4 bytes each) + rOffset, // Index of red byte within each 3- or 4-byte pixel + gOffset, // Index of green byte + bOffset, // Index of blue byte + wOffset; // Index of white byte (same as rOffset if no white) + uint32_t + endTime; // Latch timing reference +#ifdef __AVR__ + volatile uint8_t + *port; // Output PORT register + uint8_t + pinMask; // Output PORT bitmask +#endif + +}; + +#endif // ADAFRUIT_NEOPIXEL_H diff --git a/lib/Adafruit_NeoPixel/COPYING b/lib/Adafruit_NeoPixel/COPYING new file mode 100644 index 000000000..65c5ca88a --- /dev/null +++ b/lib/Adafruit_NeoPixel/COPYING @@ -0,0 +1,165 @@ + GNU LESSER GENERAL PUBLIC LICENSE + Version 3, 29 June 2007 + + Copyright (C) 2007 Free Software Foundation, Inc. + Everyone is permitted to copy and distribute verbatim copies + of this license document, but changing it is not allowed. + + + This version of the GNU Lesser General Public License incorporates +the terms and conditions of version 3 of the GNU General Public +License, supplemented by the additional permissions listed below. + + 0. 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If the Library as you +received it does not specify a version number of the GNU Lesser +General Public License, you may choose any version of the GNU Lesser +General Public License ever published by the Free Software Foundation. + + If the Library as you received it specifies that a proxy can decide +whether future versions of the GNU Lesser General Public License shall +apply, that proxy's public statement of acceptance of any version is +permanent authorization for you to choose that version for the +Library. diff --git a/lib/Adafruit_NeoPixel/README.md b/lib/Adafruit_NeoPixel/README.md new file mode 100644 index 000000000..7aaaa206a --- /dev/null +++ b/lib/Adafruit_NeoPixel/README.md @@ -0,0 +1,11 @@ +# Adafruit NeoPixel Library [![Build Status](https://travis-ci.org/adafruit/Adafruit_NeoPixel.svg?branch=master)](https://travis-ci.org/adafruit/Adafruit_NeoPixel) + +Arduino library for controlling single-wire-based LED pixels and strip such as the [Adafruit 60 LED/meter Digital LED strip][strip], the [Adafruit FLORA RGB Smart Pixel][flora], the [Adafruit Breadboard-friendly RGB Smart Pixel][pixel], the [Adafruit NeoPixel Stick][stick], and the [Adafruit NeoPixel Shield][shield]. + +After downloading, rename folder to 'Adafruit_NeoPixel' and install in Arduino Libraries folder. Restart Arduino IDE, then open File->Sketchbook->Library->Adafruit_NeoPixel->strandtest sketch. + +[flora]: http://adafruit.com/products/1060 +[strip]: http://adafruit.com/products/1138 +[pixel]: http://adafruit.com/products/1312 +[stick]: http://adafruit.com/products/1426 +[shield]: http://adafruit.com/products/1430 diff --git a/lib/Adafruit_NeoPixel/esp8266.c b/lib/Adafruit_NeoPixel/esp8266.c new file mode 100644 index 000000000..1ae3ba0f2 --- /dev/null +++ b/lib/Adafruit_NeoPixel/esp8266.c @@ -0,0 +1,67 @@ +// This is a mash-up of the Due show() code + insights from Michael Miller's +// ESP8266 work for the NeoPixelBus library: github.com/Makuna/NeoPixelBus +// Needs to be a separate .c file to enforce ICACHE_RAM_ATTR execution. + +#ifdef ESP8266 + +#include +#include + +static uint32_t _getCycleCount(void) __attribute__((always_inline)); +static inline uint32_t _getCycleCount(void) { + uint32_t ccount; + __asm__ __volatile__("rsr %0,ccount":"=a" (ccount)); + return ccount; +} + +void ICACHE_RAM_ATTR espShow( + uint8_t pin, uint8_t *pixels, uint32_t numBytes, boolean is800KHz) { + +#define CYCLES_800_T0H (F_CPU / 2500000) // 0.4us +#define CYCLES_800_T1H (F_CPU / 1250000) // 0.8us +#define CYCLES_800 (F_CPU / 800000) // 1.25us per bit +#define CYCLES_400_T0H (F_CPU / 2000000) // 0.5uS +#define CYCLES_400_T1H (F_CPU / 833333) // 1.2us +#define CYCLES_400 (F_CPU / 400000) // 2.5us per bit + + uint8_t *p, *end, pix, mask; + uint32_t t, time0, time1, period, c, startTime, pinMask; + + pinMask = _BV(pin); + p = pixels; + end = p + numBytes; + pix = *p++; + mask = 0x80; + startTime = 0; + +#ifdef NEO_KHZ400 + if(is800KHz) { +#endif + time0 = CYCLES_800_T0H; + time1 = CYCLES_800_T1H; + period = CYCLES_800; +#ifdef NEO_KHZ400 + } else { // 400 KHz bitstream + time0 = CYCLES_400_T0H; + time1 = CYCLES_400_T1H; + period = CYCLES_400; + } +#endif + + for(t = time0;; t = time0) { + if(pix & mask) t = time1; // Bit high duration + while(((c = _getCycleCount()) - startTime) < period); // Wait for bit start + GPIO_REG_WRITE(GPIO_OUT_W1TS_ADDRESS, pinMask); // Set high + startTime = c; // Save start time + while(((c = _getCycleCount()) - startTime) < t); // Wait high duration + GPIO_REG_WRITE(GPIO_OUT_W1TC_ADDRESS, pinMask); // Set low + if(!(mask >>= 1)) { // Next bit/byte + if(p >= end) break; + pix = *p++; + mask = 0x80; + } + } + while((_getCycleCount() - startTime) < period); // Wait for last bit +} + +#endif // ESP8266 diff --git a/lib/Adafruit_NeoPixel/examples/RGBWstrandtest/.esp8266.test.skip b/lib/Adafruit_NeoPixel/examples/RGBWstrandtest/.esp8266.test.skip new file mode 100644 index 000000000..e69de29bb diff --git a/lib/Adafruit_NeoPixel/examples/RGBWstrandtest/RGBWstrandtest.ino b/lib/Adafruit_NeoPixel/examples/RGBWstrandtest/RGBWstrandtest.ino new file mode 100644 index 000000000..ad54c1d5e --- /dev/null +++ b/lib/Adafruit_NeoPixel/examples/RGBWstrandtest/RGBWstrandtest.ino @@ -0,0 +1,263 @@ +#include +#ifdef __AVR__ + #include +#endif + +#define PIN 6 + +#define NUM_LEDS 60 + +#define BRIGHTNESS 50 + +Adafruit_NeoPixel strip = Adafruit_NeoPixel(NUM_LEDS, PIN, NEO_GRBW + NEO_KHZ800); + +int gamma[] = { + 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, + 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, + 1, 1, 1, 1, 1, 1, 1, 1, 1, 2, 2, 2, 2, 2, 2, 2, + 2, 3, 3, 3, 3, 3, 3, 3, 4, 4, 4, 4, 4, 5, 5, 5, + 5, 6, 6, 6, 6, 7, 7, 7, 7, 8, 8, 8, 9, 9, 9, 10, + 10, 10, 11, 11, 11, 12, 12, 13, 13, 13, 14, 14, 15, 15, 16, 16, + 17, 17, 18, 18, 19, 19, 20, 20, 21, 21, 22, 22, 23, 24, 24, 25, + 25, 26, 27, 27, 28, 29, 29, 30, 31, 32, 32, 33, 34, 35, 35, 36, + 37, 38, 39, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 50, + 51, 52, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 66, 67, 68, + 69, 70, 72, 73, 74, 75, 77, 78, 79, 81, 82, 83, 85, 86, 87, 89, + 90, 92, 93, 95, 96, 98, 99,101,102,104,105,107,109,110,112,114, + 115,117,119,120,122,124,126,127,129,131,133,135,137,138,140,142, + 144,146,148,150,152,154,156,158,160,162,164,167,169,171,173,175, + 177,180,182,184,186,189,191,193,196,198,200,203,205,208,210,213, + 215,218,220,223,225,228,231,233,236,239,241,244,247,249,252,255 }; + + +void setup() { + Serial.begin(115200); + // This is for Trinket 5V 16MHz, you can remove these three lines if you are not using a Trinket + #if defined (__AVR_ATtiny85__) + if (F_CPU == 16000000) clock_prescale_set(clock_div_1); + #endif + // End of trinket special code + strip.setBrightness(BRIGHTNESS); + strip.begin(); + strip.show(); // Initialize all pixels to 'off' +} + +void loop() { + // Some example procedures showing how to display to the pixels: + colorWipe(strip.Color(255, 0, 0), 50); // Red + colorWipe(strip.Color(0, 255, 0), 50); // Green + colorWipe(strip.Color(0, 0, 255), 50); // Blue + colorWipe(strip.Color(0, 0, 0, 255), 50); // White + + whiteOverRainbow(20,75,5); + + pulseWhite(5); + + // fullWhite(); + // delay(2000); + + rainbowFade2White(3,3,1); + + +} + +// Fill the dots one after the other with a color +void colorWipe(uint32_t c, uint8_t wait) { + for(uint16_t i=0; i= 0 ; j--){ + for(uint16_t i=0; i 255 - fadeMax ){ + fadeVal--; + } + + strip.show(); + delay(wait); + } + + } + + + + delay(500); + + + for(int k = 0 ; k < whiteLoops ; k ++){ + + for(int j = 0; j < 256 ; j++){ + + for(uint16_t i=0; i < strip.numPixels(); i++) { + strip.setPixelColor(i, strip.Color(0,0,0, gamma[j] ) ); + } + strip.show(); + } + + delay(2000); + for(int j = 255; j >= 0 ; j--){ + + for(uint16_t i=0; i < strip.numPixels(); i++) { + strip.setPixelColor(i, strip.Color(0,0,0, gamma[j] ) ); + } + strip.show(); + } + } + + delay(500); + + +} + +void whiteOverRainbow(uint8_t wait, uint8_t whiteSpeed, uint8_t whiteLength ) { + + if(whiteLength >= strip.numPixels()) whiteLength = strip.numPixels() - 1; + + int head = whiteLength - 1; + int tail = 0; + + int loops = 3; + int loopNum = 0; + + static unsigned long lastTime = 0; + + + while(true){ + for(int j=0; j<256; j++) { + for(uint16_t i=0; i= tail && i <= head) || (tail > head && i >= tail) || (tail > head && i <= head) ){ + strip.setPixelColor(i, strip.Color(0,0,0, 255 ) ); + } + else{ + strip.setPixelColor(i, Wheel(((i * 256 / strip.numPixels()) + j) & 255)); + } + + } + + if(millis() - lastTime > whiteSpeed) { + head++; + tail++; + if(head == strip.numPixels()){ + loopNum++; + } + lastTime = millis(); + } + + if(loopNum == loops) return; + + head%=strip.numPixels(); + tail%=strip.numPixels(); + strip.show(); + delay(wait); + } + } + +} +void fullWhite() { + + for(uint16_t i=0; i> 8); +} +uint8_t green(uint32_t c) { + return (c >> 16); +} +uint8_t blue(uint32_t c) { + return (c); +} + + diff --git a/lib/Adafruit_NeoPixel/examples/buttoncycler/.esp8266.test.skip b/lib/Adafruit_NeoPixel/examples/buttoncycler/.esp8266.test.skip new file mode 100644 index 000000000..e69de29bb diff --git a/lib/Adafruit_NeoPixel/examples/buttoncycler/buttoncycler.ino b/lib/Adafruit_NeoPixel/examples/buttoncycler/buttoncycler.ino new file mode 100644 index 000000000..cf1598a80 --- /dev/null +++ b/lib/Adafruit_NeoPixel/examples/buttoncycler/buttoncycler.ino @@ -0,0 +1,165 @@ +// This is a demonstration on how to use an input device to trigger changes on your neo pixels. +// You should wire a momentary push button to connect from ground to a digital IO pin. When you +// press the button it will change to a new pixel animation. Note that you need to press the +// button once to start the first animation! + +#include + +#define BUTTON_PIN 2 // Digital IO pin connected to the button. This will be + // driven with a pull-up resistor so the switch should + // pull the pin to ground momentarily. On a high -> low + // transition the button press logic will execute. + +#define PIXEL_PIN 6 // Digital IO pin connected to the NeoPixels. + +#define PIXEL_COUNT 16 + +// Parameter 1 = number of pixels in strip, neopixel stick has 8 +// Parameter 2 = pin number (most are valid) +// Parameter 3 = pixel type flags, add together as needed: +// NEO_RGB Pixels are wired for RGB bitstream +// NEO_GRB Pixels are wired for GRB bitstream, correct for neopixel stick +// NEO_KHZ400 400 KHz bitstream (e.g. FLORA pixels) +// NEO_KHZ800 800 KHz bitstream (e.g. High Density LED strip), correct for neopixel stick +Adafruit_NeoPixel strip = Adafruit_NeoPixel(PIXEL_COUNT, PIXEL_PIN, NEO_GRB + NEO_KHZ800); + +bool oldState = HIGH; +int showType = 0; + +void setup() { + pinMode(BUTTON_PIN, INPUT_PULLUP); + strip.begin(); + strip.show(); // Initialize all pixels to 'off' +} + +void loop() { + // Get current button state. + bool newState = digitalRead(BUTTON_PIN); + + // Check if state changed from high to low (button press). + if (newState == LOW && oldState == HIGH) { + // Short delay to debounce button. + delay(20); + // Check if button is still low after debounce. + newState = digitalRead(BUTTON_PIN); + if (newState == LOW) { + showType++; + if (showType > 9) + showType=0; + startShow(showType); + } + } + + // Set the last button state to the old state. + oldState = newState; +} + +void startShow(int i) { + switch(i){ + case 0: colorWipe(strip.Color(0, 0, 0), 50); // Black/off + break; + case 1: colorWipe(strip.Color(255, 0, 0), 50); // Red + break; + case 2: colorWipe(strip.Color(0, 255, 0), 50); // Green + break; + case 3: colorWipe(strip.Color(0, 0, 255), 50); // Blue + break; + case 4: theaterChase(strip.Color(127, 127, 127), 50); // White + break; + case 5: theaterChase(strip.Color(127, 0, 0), 50); // Red + break; + case 6: theaterChase(strip.Color( 0, 0, 127), 50); // Blue + break; + case 7: rainbow(20); + break; + case 8: rainbowCycle(20); + break; + case 9: theaterChaseRainbow(50); + break; + } +} + +// Fill the dots one after the other with a color +void colorWipe(uint32_t c, uint8_t wait) { + for(uint16_t i=0; i +#ifdef __AVR__ + #include +#endif + +// Which pin on the Arduino is connected to the NeoPixels? +// On a Trinket or Gemma we suggest changing this to 1 +#define PIN 6 + +// How many NeoPixels are attached to the Arduino? +#define NUMPIXELS 16 + +// When we setup the NeoPixel library, we tell it how many pixels, and which pin to use to send signals. +// Note that for older NeoPixel strips you might need to change the third parameter--see the strandtest +// example for more information on possible values. +Adafruit_NeoPixel pixels = Adafruit_NeoPixel(NUMPIXELS, PIN, NEO_GRB + NEO_KHZ800); + +int delayval = 500; // delay for half a second + +void setup() { + // This is for Trinket 5V 16MHz, you can remove these three lines if you are not using a Trinket +#if defined (__AVR_ATtiny85__) + if (F_CPU == 16000000) clock_prescale_set(clock_div_1); +#endif + // End of trinket special code + + pixels.begin(); // This initializes the NeoPixel library. +} + +void loop() { + + // For a set of NeoPixels the first NeoPixel is 0, second is 1, all the way up to the count of pixels minus one. + + for(int i=0;i +#ifdef __AVR__ + #include +#endif + +#define PIN 6 + +// Parameter 1 = number of pixels in strip +// Parameter 2 = Arduino pin number (most are valid) +// Parameter 3 = pixel type flags, add together as needed: +// NEO_KHZ800 800 KHz bitstream (most NeoPixel products w/WS2812 LEDs) +// NEO_KHZ400 400 KHz (classic 'v1' (not v2) FLORA pixels, WS2811 drivers) +// NEO_GRB Pixels are wired for GRB bitstream (most NeoPixel products) +// NEO_RGB Pixels are wired for RGB bitstream (v1 FLORA pixels, not v2) +// NEO_RGBW Pixels are wired for RGBW bitstream (NeoPixel RGBW products) +Adafruit_NeoPixel strip = Adafruit_NeoPixel(60, PIN, NEO_GRB + NEO_KHZ800); + +// IMPORTANT: To reduce NeoPixel burnout risk, add 1000 uF capacitor across +// pixel power leads, add 300 - 500 Ohm resistor on first pixel's data input +// and minimize distance between Arduino and first pixel. Avoid connecting +// on a live circuit...if you must, connect GND first. + +void setup() { + // This is for Trinket 5V 16MHz, you can remove these three lines if you are not using a Trinket + #if defined (__AVR_ATtiny85__) + if (F_CPU == 16000000) clock_prescale_set(clock_div_1); + #endif + // End of trinket special code + + + strip.begin(); + strip.show(); // Initialize all pixels to 'off' +} + +void loop() { + // Some example procedures showing how to display to the pixels: + colorWipe(strip.Color(255, 0, 0), 50); // Red + colorWipe(strip.Color(0, 255, 0), 50); // Green + colorWipe(strip.Color(0, 0, 255), 50); // Blue +//colorWipe(strip.Color(0, 0, 0, 255), 50); // White RGBW + // Send a theater pixel chase in... + theaterChase(strip.Color(127, 127, 127), 50); // White + theaterChase(strip.Color(127, 0, 0), 50); // Red + theaterChase(strip.Color(0, 0, 127), 50); // Blue + + rainbow(20); + rainbowCycle(20); + theaterChaseRainbow(50); +} + +// Fill the dots one after the other with a color +void colorWipe(uint32_t c, uint8_t wait) { + for(uint16_t i=0; i +sentence=Arduino library for controlling single-wire-based LED pixels and strip. +paragraph=Arduino library for controlling single-wire-based LED pixels and strip. +category=Display +url=https://github.com/adafruit/Adafruit_NeoPixel +architectures=*