id
large_stringlengths
21
21
domain
large_stringclasses
7 values
instruction
large_stringclasses
115 values
reasoning
large_stringlengths
1.07k
5.05k
response
large_stringlengths
677
1.11k
text
large_stringlengths
2.31k
6.39k
target_board_id
large_stringclasses
863 values
mcu
large_stringclasses
201 values
vendor
large_stringclasses
231 values
ram_bytes
int64
2.05k
8.59B
rom_bytes
int64
0
1.07B
pyintel_hw_cot_002600
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 20 kHz PWM, each control cycle is $T = 1 / 20\text{ kHz} = 50.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **XIAO RP2040** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `seeed_xiao_rp2040` | Verified Open Board Registry entry | | **MCU Core** | `RP2040` | High-speed real-time core with hardware math | | **Core Clock** | 133 MHz | Completes F...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
seeed_xiao_rp2040
RP2040
Seeed
262,144
2,097,152
pyintel_hw_cot_002601
native_usb_emulation
I am designing a hardware Custom USB CDC ACM + WebUSB instrument interface. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoi...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Metro RP2040** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `adafruit_metro` | Registered entry in Open Board Registry | | **Microcontroller** | `RP2040` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver | Custom HID/MIDI/C...
<start_of_turn>user I am designing a hardware Custom USB CDC ACM + WebUSB instrument interface. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting...
adafruit_metro
RP2040
Adafruit
262,144
16,777,216
pyintel_hw_cot_002602
native_usb_emulation
I am designing a hardware USB MIDI controller with low-jitter serial streaming. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable en...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Adafruit Feather 32u4** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `feather32u4` | Registered entry in Open Board Registry | | **Microcontroller** | `ATMEGA32U4` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver | Custom ...
<start_of_turn>user I am designing a hardware USB MIDI controller with low-jitter serial streaming. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY suppor...
feather32u4
ATMEGA32U4
Adafruit
2,560
28,672
pyintel_hw_cot_002603
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 20 kHz PWM, each control cycle is $T = 1 / 20\text{ kHz} = 50.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **Maker Pi RP2040** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `cytron_maker_pi_rp2040` | Verified Open Board Registry entry | | **MCU Core** | `RP2040` | High-speed real-time core with hardware math | | **Core Clock** | 133 MHz | Co...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
cytron_maker_pi_rp2040
RP2040
Cytron
262,144
2,097,152
pyintel_hw_cot_002604
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **TTGO T-Watch** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C Controller*...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
ttgo-t-watch
ESP32
TTGO
327,680
16,777,216
pyintel_hw_cot_002605
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capability for 1,000 f...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 2000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (12V). Requires wide DC input step-down regulator or autom...
### Recommended Board: **ST Sensor Node** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `silica_sensor_node` | Registered open-hardware entry | | **MCU Architecture** | `STM32L476JG` | High-speed real-time core | | **CAN Bus Interface** | can, 6LoWPAN | Hardware frame ...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling ca...
silica_sensor_node
STM32L476JG
Avnet Silica
131,072
1,048,576
pyintel_hw_cot_002606
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 144 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Onehorse ESP32 Dev Module** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `onehorse32dev` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32` | Native dual-core/accelerated processing | | **Operating Frequency** | 240 MHz | Suffic...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 144 KB of unfragmented dynamic heap (accounting f...
onehorse32dev
ESP32
Onehorse
327,680
4,194,304
pyintel_hw_cot_002607
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **Espressif ESP32-S2-Saola-1** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
esp32-s2-saola-1
ESP32S2
Espressif
327,680
4,194,304
pyintel_hw_cot_002608
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 512-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S doub...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 44.1 kHz 16-bit mono produces $44.1 \times 10^3 \times 2 \approx 88,200 \text{ bytes/sec}$. - **FFT Window Duration**: A 512-point buffer represents $T_{window} = 512 / (44.1 \times 10^3) \approx 11.61 \text{ ms}$. - **Processing ...
### Recommended Board: **Lion:Bit S3 STEM Dev Board** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `lionbits3` | Verified Open Board Registry entry | | **Processor Core** | `ESP32S3` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 240 MHz | FFT computes in $< 2 \text{ ms}$ (...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 512-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support c...
lionbits3
ESP32S3
Lion:Bit
327,680
4,194,304
pyintel_hw_cot_002609
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 120 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Freenove ESP32-S3 WROOM N8R8 (8MB Flash / 8MB PSRAM)** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `freenove_esp32_s3_wroom` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32S3` | Native dual-core/accelerated processing | | **O...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 120 KB of unfragmented dynamic heap (accounting f...
freenove_esp32_s3_wroom
ESP32S3
Freenove
327,680
8,388,608
pyintel_hw_cot_002610
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **Espressif ESP-WROVER-KIT** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
esp-wrover-kit
ESP32
Espressif
327,680
4,194,304
pyintel_hw_cot_002611
native_usb_emulation
I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoin...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Adafruit FunHouse** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `adafruit_funhouse_esp32s2` | Registered entry in Open Board Registry | | **Microcontroller** | `ESP32S2` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver | ...
<start_of_turn>user I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting ...
adafruit_funhouse_esp32s2
ESP32S2
Adafruit
327,680
4,194,304
pyintel_hw_cot_002612
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 25 kHz PWM, each control cycle is $T = 1 / 25\text{ kHz} = 40.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **Blue STM32F407VE Mini** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `blue_f407ve_mini` | Verified Open Board Registry entry | | **MCU Core** | `STM32F407VET6` | High-speed real-time core with hardware math | | **Core Clock** | 168 M...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
blue_f407ve_mini
STM32F407VET6
ST
131,072
524,288
pyintel_hw_cot_002613
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **Challenger 2350 WiFi/BLE** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
challenger_2350_wifi6_ble5
RP2350
iLabs
524,288
8,388,608
pyintel_hw_cot_002614
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 1000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capability for 1,000 f...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 1000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (12V). Requires wide DC input step-down regulator or autom...
### Recommended Board: **ST 32F769IDISCOVERY** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `disco_f769ni` | Registered open-hardware entry | | **MCU Architecture** | `STM32F769NIH6` | High-speed real-time core | | **CAN Bus Interface** | can, ethernet | Hardware fram...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 1000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling ca...
disco_f769ni
STM32F769NIH6
ST
524,288
2,097,152
pyintel_hw_cot_002615
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 144 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Adafruit Qualia ESP32-S3 RGB666** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `adafruit_qualia_s3_rgb666` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32S3` | Native dual-core/accelerated processing | | **Operating Frequency*...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 144 KB of unfragmented dynamic heap (accounting f...
adafruit_qualia_s3_rgb666
ESP32S3
Adafruit
327,680
16,777,216
pyintel_hw_cot_002616
native_usb_emulation
I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoin...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **DFRobot Romeo ESP32-S3** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `dfrobot_romeo_esp32s3` | Registered entry in Open Board Registry | | **Microcontroller** | `ESP32S3` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver |...
<start_of_turn>user I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting ...
dfrobot_romeo_esp32s3
ESP32S3
DFRobot
327,680
16,777,216
pyintel_hw_cot_002617
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 320x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 278 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 320 pixels width $\times$ 240 pixels height = 76,800 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $320 \times 240 \times 2 = 153,600 \text{ bytes} = 150 \text{ KB}$. - **LVGL UI Heap &...
### Recommended Board: **M5Stack StampS3** | Constraint Parameter | Required Budget | Board Capability (`m5stack-stamps3`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 150 KB (320x240 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 96 KB | Supported with substantial overhead | |...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 320x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 278 KB of conti...
m5stack-stamps3
ESP32S3
M5Stack
327,680
8,388,608
pyintel_hw_cot_002618
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 20 kHz PWM, each control cycle is $T = 1 / 20\text{ kHz} = 50.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **RP2350** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `db_rp2350` | Verified Open Board Registry entry | | **MCU Core** | `RP2350` | High-speed real-time core with hardware math | | **Core Clock** | 150 MHz | Completes FOC loop in $<...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
db_rp2350
RP2350
DB-RP2350
524,288
16,777,216
pyintel_hw_cot_002619
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 40 kHz PWM, each control cycle is $T = 1 / 40\text{ kHz} = 25.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **MKS THR42** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `mksthr42` | Verified Open Board Registry entry | | **MCU Core** | `RP2040` | High-speed real-time core with hardware math | | **Core Clock** | 133 MHz | Completes FOC loop in ...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
mksthr42
RP2040
Makerbase
262,144
1,048,576
pyintel_hw_cot_002620
native_usb_emulation
I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoin...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Shrike-Lite** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `vicharak_shrike-lite` | Registered entry in Open Board Registry | | **Microcontroller** | `RP2040` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver | Custom HID/M...
<start_of_turn>user I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting ...
vicharak_shrike-lite
RP2040
Vicharak
262,144
4,194,304
pyintel_hw_cot_002621
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 40 kHz PWM, each control cycle is $T = 1 / 40\text{ kHz} = 25.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **RP2040-Eins** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `redscorp_rp2040_eins` | Verified Open Board Registry entry | | **MCU Core** | `RP2040` | High-speed real-time core with hardware math | | **Core Clock** | 133 MHz | Complete...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
redscorp_rp2040_eins
RP2040
redscorp
262,144
16,777,216
pyintel_hw_cot_002622
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 164 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Onehorse ESP32 Dev Module** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `onehorse32dev` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32` | Native dual-core/accelerated processing | | **Operating Frequency** | 240 MHz | Suffic...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 164 KB of unfragmented dynamic heap (accounting f...
onehorse32dev
ESP32
Onehorse
327,680
4,194,304
pyintel_hw_cot_002623
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **Feather RP2350 HSTX** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C Cont...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
adafruit_feather_rp2350_hstx
RP2350
Adafruit
524,288
8,388,608
pyintel_hw_cot_002624
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 48.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 48.0 kHz 16-bit mono produces $48.0 \times 10^3 \times 2 \approx 96,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 2048-point buffer represents $T_{window} = 2048 / (48.0 \times 10^3) \approx 42.67 \text{ ms}$. - **Processin...
### Recommended Board: **P-Nucleo WB55RG** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `nucleo_wb55rg_p` | Verified Open Board Registry entry | | **Processor Core** | `STM32WB55RG` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 64 MHz | FFT computes in $< 2 \text{ ms}$ (we...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 48.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
nucleo_wb55rg_p
STM32WB55RG
ST
196,608
524,288
pyintel_hw_cot_002625
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 96.0 kHz 16-bit mono produces $96.0 \times 10^3 \times 2 \approx 192,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 1024-point buffer represents $T_{window} = 1024 / (96.0 \times 10^3) \approx 10.67 \text{ ms}$. - **Processi...
### Recommended Board: **RP2040 Plus 4MB** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `waveshare_rp2040_plus_4mb` | Verified Open Board Registry entry | | **Processor Core** | `RP2040` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 133 MHz | FFT computes in $< 2 \text{ ms...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
waveshare_rp2040_plus_4mb
RP2040
Waveshare
262,144
4,194,304
pyintel_hw_cot_002626
native_usb_emulation
I am designing a hardware USB MIDI controller with low-jitter serial streaming. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable en...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Nano RP2040 Connect** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `arduino_nano_connect` | Registered entry in Open Board Registry | | **Microcontroller** | `RP2040` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver | Cust...
<start_of_turn>user I am designing a hardware USB MIDI controller with low-jitter serial streaming. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY suppor...
arduino_nano_connect
RP2040
Arduino
262,144
16,777,216
pyintel_hw_cot_002627
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 144 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **T102_V1.1** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `t102-v1.1` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `RTL8710BN` | Native dual-core/accelerated processing | | **Operating Frequency** | 125 MHz | Sufficient throughput ...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 144 KB of unfragmented dynamic heap (accounting f...
t102-v1.1
RTL8710BN
Unknown
262,144
806,912
pyintel_hw_cot_002628
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 128 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Particle Argon** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `particle_argon` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `NRF52840` | Native dual-core/accelerated processing | | **Operating Frequency** | 64 MHz | Sufficient thr...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 128 KB of unfragmented dynamic heap (accounting f...
particle_argon
NRF52840
Particle
248,832
815,104
pyintel_hw_cot_002629
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 140 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **CBU Wi-Fi Module** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `cbu` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `BK7231N` | Native dual-core/accelerated processing | | **Operating Frequency** | 120 MHz | Sufficient throughput f...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 140 KB of unfragmented dynamic heap (accounting f...
cbu
BK7231N
Tuya Inc.
262,144
1,083,136
pyintel_hw_cot_002630
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 480x320 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 364 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 480 pixels width $\times$ 320 pixels height = 153,600 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $480 \times 320 \times 2 = 307,200 \text{ bytes} = 300 \text{ KB}$. - **LVGL UI Heap ...
### Recommended Board: **Thunderboard Sense 2 Sensor-to-Cloud Advanced IoT** | Constraint Parameter | Required Budget | Board Capability (`tb_sense_12`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 300 KB (480x320 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 32 KB | Supported...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 480x320 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 364 KB of conti...
tb_sense_12
EFR32MG12P432F1024
Silicon Labs
262,144
1,048,576
pyintel_hw_cot_002631
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 512-point complex Fast Fourier Transforms (FFT) at 48.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S doub...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 48.0 kHz 16-bit mono produces $48.0 \times 10^3 \times 2 \approx 96,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 512-point buffer represents $T_{window} = 512 / (48.0 \times 10^3) \approx 10.67 \text{ ms}$. - **Processing ...
### Recommended Board: **STM32F413CH (320k RAM. 1536k Flash)** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `genericSTM32F413CH` | Verified Open Board Registry entry | | **Processor Core** | `STM32F413CHU6` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 100 MHz | FFT comput...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 512-point complex Fast Fourier Transforms (FFT) at 48.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support c...
genericSTM32F413CH
STM32F413CHU6
Generic
327,680
1,572,864
pyintel_hw_cot_002632
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 164 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Valetron Systems VALTRACK-V4VTS** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `valtrack_v4_vts_esp32_c3` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32C3` | Native dual-core/accelerated processing | | **Operating Frequency**...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 164 KB of unfragmented dynamic heap (accounting f...
valtrack_v4_vts_esp32_c3
ESP32C3
Valetron Systems
327,680
4,194,304
pyintel_hw_cot_002633
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 152 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **TTGO T-Watch** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `ttgo-t-watch` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32` | Native dual-core/accelerated processing | | **Operating Frequency** | 240 MHz | Sufficient throughpu...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 152 KB of unfragmented dynamic heap (accounting f...
ttgo-t-watch
ESP32
TTGO
327,680
16,777,216
pyintel_hw_cot_002634
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 180 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Valetron Systems VALTRACK-V4VTS** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `valtrack_v4_vts_esp32_c3` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32C3` | Native dual-core/accelerated processing | | **Operating Frequency**...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 180 KB of unfragmented dynamic heap (accounting f...
valtrack_v4_vts_esp32_c3
ESP32C3
Valetron Systems
327,680
4,194,304
pyintel_hw_cot_002635
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **Helios** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C Controller** | Ha...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
0xcb_helios
RP2040
0xCB
262,144
16,777,216
pyintel_hw_cot_002636
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 7V–28V DC wide input rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 1000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capab...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 1000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (7V–28V DC wide input). Requires wide DC input step-down r...
### Recommended Board: **Adafruit Hallowing M0** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `adafruit_hallowing` | Registered open-hardware entry | | **MCU Architecture** | `SAMD21G18A` | High-speed real-time core | | **CAN Bus Interface** | | Hardware frame filtra...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 7V–28V DC wide input rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 1000 kbps. We require a board with hardware CAN controller support, sufficient inte...
adafruit_hallowing
SAMD21G18A
Adafruit
32,768
262,144
pyintel_hw_cot_002637
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 500 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capability for 1,000 fr...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 500 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (12V). Requires wide DC input step-down regulator or automo...
### Recommended Board: **Adafruit Trellis M4** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `adafruit_trellis_m4` | Registered open-hardware entry | | **MCU Architecture** | `SAMD51J19A` | High-speed real-time core | | **CAN Bus Interface** | | Hardware frame filtrat...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 500 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling cap...
adafruit_trellis_m4
SAMD51J19A
Adafruit
196,608
524,288
pyintel_hw_cot_002638
native_usb_emulation
I am designing a hardware Custom USB CDC ACM + WebUSB instrument interface. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoi...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Arduino Robot Control** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `robotControl` | Registered entry in Open Board Registry | | **Microcontroller** | `ATMEGA32U4` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver | Custom...
<start_of_turn>user I am designing a hardware Custom USB CDC ACM + WebUSB instrument interface. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting...
robotControl
ATMEGA32U4
Arduino
2,560
28,672
pyintel_hw_cot_002639
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **PYBStick Standard 26** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C Con...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
pybstick26_std
STM32F411CEU6
PYBStick
131,072
524,288
pyintel_hw_cot_002640
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **LSC LMA35 BK7231T** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `lsc-lma35-t` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `BK7231T` | Native dual-core/accelerated processing | | **Operating Frequency** | 120 MHz | Sufficient thr...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting f...
lsc-lma35-t
BK7231T
Unknown
262,144
1,083,136
pyintel_hw_cot_002641
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting for RTOS kernel ~16 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **T112_V1.1** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `t112-v1.1` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `RTL8710BN` | Native dual-core/accelerated processing | | **Operating Frequency** | 125 MHz | Sufficient throughput ...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting f...
t112-v1.1
RTL8710BN
Unknown
262,144
806,912
pyintel_hw_cot_002642
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capability for 1,000 f...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 2000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (12V). Requires wide DC input step-down regulator or autom...
### Recommended Board: **ST Nucleo L452RE** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `nucleo_l452re` | Registered open-hardware entry | | **MCU Architecture** | `STM32L452RET6` | High-speed real-time core | | **CAN Bus Interface** | can | Hardware frame filtration...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling ca...
nucleo_l452re
STM32L452RET6
ST
163,840
524,288
pyintel_hw_cot_002643
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **Espressif ESP32-PICO-DevKitM-2** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | |...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
esp32-pico-devkitm-2
ESP32
Espressif Systems
327,680
8,388,608
pyintel_hw_cot_002644
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Espressif ESP32-PICO-DevKitM-2** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `esp32-pico-devkitm-2` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32` | Native dual-core/accelerated processing | | **Operating Frequency** | 240 ...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting f...
esp32-pico-devkitm-2
ESP32
Espressif Systems
327,680
8,388,608
pyintel_hw_cot_002645
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 240x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 176 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 240 pixels width $\times$ 240 pixels height = 57,600 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $240 \times 240 \times 2 = 115,200 \text{ bytes} = 112 \text{ KB}$. - **LVGL UI Heap &...
### Recommended Board: **Quectel EC200N LTE Cat.1 Module** | Constraint Parameter | Required Budget | Board Capability (`ec200n`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 112 KB (240x240 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 32 KB | Supported with substantial overh...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 240x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 176 KB of conti...
ec200n
ASR1603
Quectel Wireless Solutions Co., Ltd.
524,288
524,288
pyintel_hw_cot_002646
native_usb_emulation
I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoin...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Smart Bee Motion S3** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `bee_motion_s3` | Registered entry in Open Board Registry | | **Microcontroller** | `ESP32S3` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver | Custom HID...
<start_of_turn>user I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting ...
bee_motion_s3
ESP32S3
Smart Bee
327,680
8,388,608
pyintel_hw_cot_002647
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 480x320 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 396 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 480 pixels width $\times$ 320 pixels height = 153,600 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $480 \times 320 \times 2 = 307,200 \text{ bytes} = 300 \text{ KB}$. - **LVGL UI Heap ...
### Recommended Board: **Lion:Bit Dev Board** | Constraint Parameter | Required Budget | Board Capability (`lionbit`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 300 KB (480x320 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 64 KB | Supported with substantial overhead | | **To...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 480x320 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 396 KB of conti...
lionbit
ESP32
Lion:Bit
327,680
4,194,304
pyintel_hw_cot_002648
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 96.0 kHz 16-bit mono produces $96.0 \times 10^3 \times 2 \approx 192,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 1024-point buffer represents $T_{window} = 1024 / (96.0 \times 10^3) \approx 10.67 \text{ ms}$. - **Processi...
### Recommended Board: **RP2040** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `MyRP_bot` | Verified Open Board Registry entry | | **Processor Core** | `RP2040` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 133 MHz | FFT computes in $< 2 \text{ ms}$ (well below 10.7 ms fra...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
MyRP_bot
RP2040
MyMakers
262,144
2,097,152
pyintel_hw_cot_002649
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 240x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 208 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 240 pixels width $\times$ 240 pixels height = 57,600 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $240 \times 240 \times 2 = 115,200 \text{ bytes} = 112 \text{ KB}$. - **LVGL UI Heap &...
### Recommended Board: **Pico2XXL** | Constraint Parameter | Required Budget | Board Capability (`olimex_pico2xxl`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 112 KB (240x240 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 64 KB | Supported with substantial overhead | | **Tota...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 240x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 208 KB of conti...
olimex_pico2xxl
RP2350
Olimex
524,288
16,777,216
pyintel_hw_cot_002650
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 480x320 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 364 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 480 pixels width $\times$ 320 pixels height = 153,600 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $480 \times 320 \times 2 = 307,200 \text{ bytes} = 300 \text{ KB}$. - **LVGL UI Heap ...
### Recommended Board: **Quectel EG915N LTE Cat.1 Module** | Constraint Parameter | Required Budget | Board Capability (`eg915n`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 300 KB (480x320 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 32 KB | Supported with substantial overh...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 480x320 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 364 KB of conti...
eg915n
ASR1603
Quectel Wireless Solutions Co., Ltd.
524,288
1,048,576
pyintel_hw_cot_002651
native_usb_emulation
I am designing a hardware Custom USB CDC ACM + WebUSB instrument interface. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoi...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Original Prusa i3 MK3 Multi Material 2.0 Upgrade** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `prusa_mm_control` | Registered entry in Open Board Registry | | **Microcontroller** | `ATMEGA32U4` | Direct native USB 2.0 FS silicon | | **USB Stack** | T...
<start_of_turn>user I am designing a hardware Custom USB CDC ACM + WebUSB instrument interface. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting...
prusa_mm_control
ATMEGA32U4
Prusa 3D
2,560
28,672
pyintel_hw_cot_002652
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 25 kHz PWM, each control cycle is $T = 1 / 25\text{ kHz} = 40.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **RP2040 LCD 0.96** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `waveshare_rp2040_lcd_0_96` | Verified Open Board Registry entry | | **MCU Core** | `RP2040` | High-speed real-time core with hardware math | | **Core Clock** | 133 MHz |...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
waveshare_rp2040_lcd_0_96
RP2040
Waveshare
262,144
2,097,152
pyintel_hw_cot_002653
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 480x320 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 428 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 480 pixels width $\times$ 320 pixels height = 153,600 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $480 \times 320 \times 2 = 307,200 \text{ bytes} = 300 \text{ KB}$. - **LVGL UI Heap ...
### Recommended Board: **WR2 Wi-Fi Module** | Constraint Parameter | Required Budget | Board Capability (`wr2`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 300 KB (480x320 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 96 KB | Supported with substantial overhead | | **Total SR...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 480x320 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 428 KB of conti...
wr2
RTL8710BN
Tuya Inc.
262,144
806,912
pyintel_hw_cot_002654
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 24V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capability for 1,000 f...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 2000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (24V). Requires wide DC input step-down regulator or autom...
### Recommended Board: **BlackPill F303CC** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `robotdyn_blackpill_f303cc` | Registered open-hardware entry | | **MCU Architecture** | `STM32F303CCT6` | High-speed real-time core | | **CAN Bus Interface** | can | Hardware fram...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 24V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling ca...
robotdyn_blackpill_f303cc
STM32F303CCT6
RobotDyn
40,960
262,144
pyintel_hw_cot_002655
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 25 kHz PWM, each control cycle is $T = 1 / 25\text{ kHz} = 40.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **3D Printer control board** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `rumba32_f446ve` | Verified Open Board Registry entry | | **MCU Core** | `STM32F446RET6` | High-speed real-time core with hardware math | | **Core Clock** | 180 ...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
rumba32_f446ve
STM32F446RET6
RUMBA
131,072
524,288
pyintel_hw_cot_002656
native_usb_emulation
I am designing a hardware USB MIDI controller with low-jitter serial streaming. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable en...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Feather RP2040 SCORPIO** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `adafruit_feather_scorpio` | Registered entry in Open Board Registry | | **Microcontroller** | `RP2040` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver...
<start_of_turn>user I am designing a hardware USB MIDI controller with low-jitter serial streaming. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY suppor...
adafruit_feather_scorpio
RP2040
Adafruit
262,144
8,388,608
pyintel_hw_cot_002657
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **AFW121T** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C Controller** | H...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
afw121t
RTL8710BX
99iot(Shenzhen)co.,ltd
262,144
479,232
pyintel_hw_cot_002658
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 96.0 kHz 16-bit mono produces $96.0 \times 10^3 \times 2 \approx 192,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 2048-point buffer represents $T_{window} = 2048 / (96.0 \times 10^3) \approx 21.33 \text{ ms}$. - **Processi...
### Recommended Board: **M5Stack StampS3** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `m5stack-stamps3` | Verified Open Board Registry entry | | **Processor Core** | `ESP32S3` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 240 MHz | FFT computes in $< 2 \text{ ms}$ (well ...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
m5stack-stamps3
ESP32S3
M5Stack
327,680
8,388,608
pyintel_hw_cot_002659
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 40 kHz PWM, each control cycle is $T = 1 / 40\text{ kHz} = 25.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **ST 32F429IDISCOVERY** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `disco_f429zi` | Verified Open Board Registry entry | | **MCU Core** | `STM32F429ZIT6` | High-speed real-time core with hardware math | | **Core Clock** | 180 MHz | C...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
disco_f429zi
STM32F429ZIT6
ST
262,144
2,097,152
pyintel_hw_cot_002660
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 25 kHz PWM, each control cycle is $T = 1 / 25\text{ kHz} = 40.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **WeAct Studio BlackPill V2.0 (STM32F411CE)** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `blackpill_f411ce` | Verified Open Board Registry entry | | **MCU Core** | `STM32F411CEU6` | High-speed real-time core with hardware math | | **...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
blackpill_f411ce
STM32F411CEU6
WeAct Studio
131,072
524,288
pyintel_hw_cot_002661
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 140 KB of unfragmented dynamic heap (accounting for RTOS kernel ~16 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **4D Systems GEN4-ESP32 16MB (ESP32S3-R8N16)** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `4d_systems_esp32s3_gen4_r8n16` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32S3` | Native dual-core/accelerated processing | | **Opera...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 140 KB of unfragmented dynamic heap (accounting f...
4d_systems_esp32s3_gen4_r8n16
ESP32S3
4D Systems
327,680
16,777,216
pyintel_hw_cot_002662
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 512-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S doub...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 96.0 kHz 16-bit mono produces $96.0 \times 10^3 \times 2 \approx 192,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 512-point buffer represents $T_{window} = 512 / (96.0 \times 10^3) \approx 5.33 \text{ ms}$. - **Processing ...
### Recommended Board: **CB3SE Wi-Fi Module** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `cb3se` | Verified Open Board Registry entry | | **Processor Core** | `BK7231N` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 120 MHz | FFT computes in $< 2 \text{ ms}$ (well below 5...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 512-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support c...
cb3se
BK7231N
Tuya Inc.
262,144
1,083,136
pyintel_hw_cot_002663
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 40 kHz PWM, each control cycle is $T = 1 / 40\text{ kHz} = 25.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **Ebyte E77 Dev Board** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `ebyte_e77_dev` | Verified Open Board Registry entry | | **MCU Core** | `STM32WLE5CC` | High-speed real-time core with hardware math | | **Core Clock** | 48 MHz | Com...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
ebyte_e77_dev
STM32WLE5CC
Ebyte
65,536
262,144
pyintel_hw_cot_002664
native_usb_emulation
I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoin...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **Challenger 2040 SD/RTC** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `challenger_2040_sdrtc` | Registered entry in Open Board Registry | | **Microcontroller** | `RP2040` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Driver | ...
<start_of_turn>user I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting ...
challenger_2040_sdrtc
RP2040
iLabs
262,144
8,388,608
pyintel_hw_cot_002665
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 96.0 kHz 16-bit mono produces $96.0 \times 10^3 \times 2 \approx 192,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 1024-point buffer represents $T_{window} = 1024 / (96.0 \times 10^3) \approx 10.67 \text{ ms}$. - **Processi...
### Recommended Board: **YeaCreate NSCREEN-32** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `nscreen-32` | Verified Open Board Registry entry | | **Processor Core** | `ESP32` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 240 MHz | FFT computes in $< 2 \text{ ms}$ (well be...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
nscreen-32
ESP32
YeaCreate
327,680
16,777,216
pyintel_hw_cot_002666
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 240x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 240 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 240 pixels width $\times$ 240 pixels height = 57,600 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $240 \times 240 \times 2 = 115,200 \text{ bytes} = 112 \text{ KB}$. - **LVGL UI Heap &...
### Recommended Board: **Challenger 2040 WiFi/BLE** | Constraint Parameter | Required Budget | Board Capability (`challenger_2040_wifi_ble`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 112 KB (240x240 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 96 KB | Supported with substa...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 240x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 240 KB of conti...
challenger_2040_wifi_ble
RP2040
iLabs
262,144
8,388,608
pyintel_hw_cot_002667
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 512-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S doub...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 44.1 kHz 16-bit mono produces $44.1 \times 10^3 \times 2 \approx 88,200 \text{ bytes/sec}$. - **FFT Window Duration**: A 512-point buffer represents $T_{window} = 512 / (44.1 \times 10^3) \approx 11.61 \text{ ms}$. - **Processing ...
### Recommended Board: **ST Nucleo L433RC-P** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `nucleo_l433rc_p` | Verified Open Board Registry entry | | **Processor Core** | `STM32L433RC` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 80 MHz | FFT computes in $< 2 \text{ ms}$ ...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 512-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support c...
nucleo_l433rc_p
STM32L433RC
ST
65,536
262,144
pyintel_hw_cot_002668
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 180 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **IntoRobot Fig** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `intorobot` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32` | Native dual-core/accelerated processing | | **Operating Frequency** | 240 MHz | Sufficient throughput ...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 180 KB of unfragmented dynamic heap (accounting f...
intorobot
ESP32
IntoRobot
327,680
4,194,304
pyintel_hw_cot_002669
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 7V–28V DC wide input rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capab...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 2000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (7V–28V DC wide input). Requires wide DC input step-down r...
### Recommended Board: **Adafruit Metro** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `metro` | Registered open-hardware entry | | **MCU Architecture** | `ATMEGA328P` | High-speed real-time core | | **CAN Bus Interface** | | Hardware frame filtration & dedicated mai...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 7V–28V DC wide input rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient inte...
metro
ATMEGA328P
Adafruit
2,048
32,256
pyintel_hw_cot_002670
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 20 kHz PWM, each control cycle is $T = 1 / 20\text{ kHz} = 50.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **PicoPlus2** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `pimoroni_pico_plus_2` | Verified Open Board Registry entry | | **MCU Core** | `RP2350` | High-speed real-time core with hardware math | | **Core Clock** | 150 MHz | Completes ...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
pimoroni_pico_plus_2
RP2350
Pimoroni
524,288
16,777,216
pyintel_hw_cot_002671
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 148 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **WBR3 Wi-Fi Module** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `wbr3` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `RTL8720CF` | Native dual-core/accelerated processing | | **Operating Frequency** | 100 MHz | Sufficient throughp...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 148 KB of unfragmented dynamic heap (accounting f...
wbr3
RTL8720CF
Tuya Inc.
262,144
917,504
pyintel_hw_cot_002672
display_framebuffer_gui
I am building a handheld medical diagnostic device requiring a 320x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 214 KB of contiguous RAM without ca...
1. **Mathematical Memory Budget Calculation**: - **Display Dimensions**: 320 pixels width $\times$ 240 pixels height = 76,800 pixels. - **Color Depth**: RGB565 = 16 bits = 2 bytes per pixel. - **Single Framebuffer Size**: $320 \times 240 \times 2 = 153,600 \text{ bytes} = 150 \text{ KB}$. - **LVGL UI Heap &...
### Recommended Board: **PicoADK** | Constraint Parameter | Required Budget | Board Capability (`datanoisetv_picoadk`) | | :--- | :--- | :--- | | **Framebuffer Allocation** | 150 KB (320x240 @ 16-bpp RGB565) | Easily allocated in internal SRAM | | **LVGL GUI Heap** | 32 KB | Supported with substantial overhead | | **T...
<start_of_turn>user I am building a handheld medical diagnostic device requiring a 320x240 color TFT display running in 16-bit RGB565 color format with the LVGL graphics library. The application requires full single-buffer rendering (or partial dual-buffering) and dynamic GUI widgets, demanding at least 214 KB of conti...
datanoisetv_picoadk
RP2040
DatanoiseTV
262,144
2,097,152
pyintel_hw_cot_002673
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 44.1 kHz 16-bit mono produces $44.1 \times 10^3 \times 2 \approx 88,200 \text{ bytes/sec}$. - **FFT Window Duration**: A 2048-point buffer represents $T_{window} = 2048 / (44.1 \times 10^3) \approx 46.44 \text{ ms}$. - **Processin...
### Recommended Board: **RP2040-Shim** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `silicognition_rp2040_shim` | Verified Open Board Registry entry | | **Processor Core** | `RP2040` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 133 MHz | FFT computes in $< 2 \text{ ms}$ (...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
silicognition_rp2040_shim
RP2040
Silicognition
262,144
4,194,304
pyintel_hw_cot_002674
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 152 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Pycom LoPy** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `lopy` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32` | Native dual-core/accelerated processing | | **Operating Frequency** | 240 MHz | Sufficient throughput for TLS ...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 152 KB of unfragmented dynamic heap (accounting f...
lopy
ESP32
Pycom Ltd.
327,680
4,194,304
pyintel_hw_cot_002675
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 44.1 kHz 16-bit mono produces $44.1 \times 10^3 \times 2 \approx 88,200 \text{ bytes/sec}$. - **FFT Window Duration**: A 1024-point buffer represents $T_{window} = 1024 / (44.1 \times 10^3) \approx 23.22 \text{ ms}$. - **Processin...
### Recommended Board: **MH ET LIVE ESP32DevKIT** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `mhetesp32devkit` | Verified Open Board Registry entry | | **Processor Core** | `ESP32` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 240 MHz | FFT computes in $< 2 \text{ ms}$ (...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
mhetesp32devkit
ESP32
MH-ET Live
327,680
4,194,304
pyintel_hw_cot_002676
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 20 kHz PWM, each control cycle is $T = 1 / 20\text{ kHz} = 50.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **WeAct Studio BlackPill V3.0 (STM32F401CE)** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `blackpill_f401ce` | Verified Open Board Registry entry | | **MCU Core** | `STM32F401CEU6` | High-speed real-time core with hardware math | | **...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
blackpill_f401ce
STM32F401CEU6
WeAct Studio
98,304
524,288
pyintel_hw_cot_002677
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 40 kHz PWM, each control cycle is $T = 1 / 40\text{ kHz} = 25.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **RP2040 Plus 16MB** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `waveshare_rp2040_plus_16mb` | Verified Open Board Registry entry | | **MCU Core** | `RP2040` | High-speed real-time core with hardware math | | **Core Clock** | 133 MHz...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 40 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
waveshare_rp2040_plus_16mb
RP2040
Waveshare
262,144
16,777,216
pyintel_hw_cot_002678
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 7V–28V DC wide input rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 1000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capab...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 1000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (7V–28V DC wide input). Requires wide DC input step-down r...
### Recommended Board: **Heltec WiFi Kit 32 (V2)** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `heltec_wifi_kit_32_v2` | Registered open-hardware entry | | **MCU Architecture** | `ESP32` | High-speed real-time core | | **CAN Bus Interface** | wifi, bluetooth, etherne...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 7V–28V DC wide input rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 1000 kbps. We require a board with hardware CAN controller support, sufficient inte...
heltec_wifi_kit_32_v2
ESP32
Heltec Automation
327,680
8,388,608
pyintel_hw_cot_002679
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 24V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 500 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capability for 1,000 fr...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 500 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (24V). Requires wide DC input step-down regulator or automo...
### Recommended Board: **Adafruit Metro M4** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `adafruit_metro_m4` | Registered open-hardware entry | | **MCU Architecture** | `SAMD51J19A` | High-speed real-time core | | **CAN Bus Interface** | | Hardware frame filtration ...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 24V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 500 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling cap...
adafruit_metro_m4
SAMD51J19A
Adafruit
196,608
524,288
pyintel_hw_cot_002680
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Arduino Giga R1 (M7 core)** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `giga_r1_m7` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `STM32H747XIH6` | Native dual-core/accelerated processing | | **Operating Frequency** | 480 MHz | S...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting f...
giga_r1_m7
STM32H747XIH6
Arduino
523,624
786,432
pyintel_hw_cot_002681
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capability for 1,000 f...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 2000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (12V). Requires wide DC input step-down regulator or autom...
### Recommended Board: **Adafruit NeoKey Trinkey** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `adafruit_neokeytrinkey_m0` | Registered open-hardware entry | | **MCU Architecture** | `SAMD21E18A` | High-speed real-time core | | **CAN Bus Interface** | | Hardware fra...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 12V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 2000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling ca...
adafruit_neokeytrinkey_m0
SAMD21E18A
Adafruit
32,768
262,144
pyintel_hw_cot_002682
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 20 kHz PWM, each control cycle is $T = 1 / 20\text{ kHz} = 50.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **MultiTech mDot** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `mts_mdot_f405rg` | Verified Open Board Registry entry | | **MCU Core** | `STM32F411RET6` | High-speed real-time core with hardware math | | **Core Clock** | 100 MHz | Com...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 20 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
mts_mdot_f405rg
STM32F411RET6
MultiTech
131,072
524,288
pyintel_hw_cot_002683
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 96.0 kHz 16-bit mono produces $96.0 \times 10^3 \times 2 \approx 192,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 2048-point buffer represents $T_{window} = 2048 / (96.0 \times 10^3) \approx 21.33 \text{ ms}$. - **Processi...
### Recommended Board: **Frog Board ESP32** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `frogboard` | Verified Open Board Registry entry | | **Processor Core** | `ESP32` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 240 MHz | FFT computes in $< 2 \text{ ms}$ (well below 2...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
frogboard
ESP32
Fred
327,680
4,194,304
pyintel_hw_cot_002684
automotive_industrial_can
We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 24V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 1000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling capability for 1,000 f...
1. **Constraint Analysis**: - **Bus Protocol**: Hardware CAN / CAN-FD peripheral is required. Bitrate target is 1000 kbps with deterministic acceptance filtering. - **Power Rail**: Automotive power bus exhibits high ripple and load-dump voltage transients (24V). Requires wide DC input step-down regulator or autom...
### Recommended Board: **Freescale Kinetis FRDM-K22F** | Parameter | Specification | Functional Advantage | | :--- | :--- | :--- | | **Registry ID** | `frdm_k22f` | Registered open-hardware entry | | **MCU Architecture** | `MK22FN512VLH12` | High-speed real-time core | | **CAN Bus Interface** | can | Hardware frame fi...
<start_of_turn>user We are engineering a sub-assembly node for an automotive chassis telemetry bus operating on a 24V rail. The module must communicate with the vehicle engine management system over CAN 2.0B / CAN-FD at 1000 kbps. We require a board with hardware CAN controller support, sufficient interrupt handling ca...
frdm_k22f
MK22FN512VLH12
Freescale
131,072
524,288
pyintel_hw_cot_002685
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 44.1 kHz 16-bit mono produces $44.1 \times 10^3 \times 2 \approx 88,200 \text{ bytes/sec}$. - **FFT Window Duration**: A 2048-point buffer represents $T_{window} = 2048 / (44.1 \times 10^3) \approx 46.44 \text{ ms}$. - **Processin...
### Recommended Board: **TTGO LoRa32-OLED V2** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `ttgo-lora32-v2` | Verified Open Board Registry entry | | **Processor Core** | `ESP32` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 240 MHz | FFT computes in $< 2 \text{ ms}$ (well...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 44.1 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
ttgo-lora32-v2
ESP32
TTGO
327,680
4,194,304
pyintel_hw_cot_002686
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **Arduino Nano ESP32** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C Contr...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
arduino_nano_esp32
ESP32S3
Arduino
327,680
16,777,216
pyintel_hw_cot_002687
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **ArtronShop IOXESP32** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `ioxesp32` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32` | Native dual-core/accelerated processing | | **Operating Frequency** | 240 MHz | Sufficient throug...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 156 KB of unfragmented dynamic heap (accounting f...
ioxesp32
ESP32
ArtronShop
327,680
4,194,304
pyintel_hw_cot_002688
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 136 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **CBU Wi-Fi Module** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `cbu` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `BK7231N` | Native dual-core/accelerated processing | | **Operating Frequency** | 120 MHz | Sufficient throughput f...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 136 KB of unfragmented dynamic heap (accounting f...
cbu
BK7231N
Tuya Inc.
262,144
1,083,136
pyintel_hw_cot_002689
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **RYMCU ESP32-S3-DevKitC-1-N8R2 (8 MB QD, 2 MB PSRAM)** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox L...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
rymcu-esp32-s3-devkitc-1
ESP32S3
RYMCU
327,680
8,388,608
pyintel_hw_cot_002690
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 96.0 kHz 16-bit mono produces $96.0 \times 10^3 \times 2 \approx 192,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 2048-point buffer represents $T_{window} = 2048 / (96.0 \times 10^3) \approx 21.33 \text{ ms}$. - **Processi...
### Recommended Board: **ST Nucleo L496ZG-P** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `nucleo_l496zg_p` | Verified Open Board Registry entry | | **Processor Core** | `STM32L496ZGT6P` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 80 MHz | FFT computes in $< 2 \text{ ms...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 2048-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
nucleo_l496zg_p
STM32L496ZGT6P
ST
327,680
1,048,576
pyintel_hw_cot_002691
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 188 KB of unfragmented dynamic heap (accounting for RTOS kernel ~32 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **WB02A Wi-Fi/BLE Module** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `wb02a` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `LN882HK` | Native dual-core/accelerated processing | | **Operating Frequency** | 160 MHz | Sufficient thro...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 188 KB of unfragmented dynamic heap (accounting f...
wb02a
LN882HK
Unknown
302,080
1,228,800
pyintel_hw_cot_002692
multi_bus_sensor_fusion
I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitting NMEA strings at 1...
1. **Bus Contention & Channel Breakdown**: - **SPI Channel 0**: Dedicated exclusively to high-rate IMU polling (1 kHz loop, 10 MHz SPI clock). - **SPI Channel 1**: Dedicated to MicroSD / Flash logging (large blocking write blocks must NOT hold up the IMU bus). - **I2C Channel**: Dedicated 400 kHz Fast-Mode for...
### Recommended Board: **WR3 Wi-Fi Module** | Bus Interface | Peripheral Channel | Assigned Sensor | | :--- | :--- | :--- | | **SPI Controller 0** | Dedicated Hardware SPI0 | High-Rate 6-Axis IMU (1 kHz sampling) | | **SPI Controller 1** | Dedicated Hardware SPI1 | MicroSD Blackbox Logging (Isolated) | | **I2C Control...
<start_of_turn>user I am building an autonomous aerial vehicle telemetry hub. The board must interface simultaneously with: 1. A 6-axis IMU (MPU6050 / ICM-42688) polled at 1 kHz over high-speed SPI. 2. A barometric pressure sensor (BMP390) and I2C magnetometer polled over I2C at 400 kHz. 3. A GNSS/GPS module transmitti...
wr3
RTL8710BN
Tuya Inc.
262,144
806,912
pyintel_hw_cot_002693
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 180 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **MKR Sharky** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `mkr_sharky` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `STM32WB55CG` | Native dual-core/accelerated processing | | **Operating Frequency** | 64 MHz | Sufficient throughp...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 180 KB of unfragmented dynamic heap (accounting f...
mkr_sharky
STM32WB55CG
Midatronics
196,608
524,288
pyintel_hw_cot_002694
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 25 kHz PWM, each control cycle is $T = 1 / 25\text{ kHz} = 40.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **ThunderPack v1.1+** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `thunder_pack_f411` | Verified Open Board Registry entry | | **MCU Core** | `STM32F411CEU6` | High-speed real-time core with hardware math | | **Core Clock** | 100 MHz ...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
thunder_pack_f411
STM32F411CEU6
ThunderPack
131,072
524,288
pyintel_hw_cot_002695
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 172 KB of unfragmented dynamic heap (accounting for RTOS kernel ~24 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **Microduino Core ESP32** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `microduino-core-esp32` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `ESP32` | Native dual-core/accelerated processing | | **Operating Frequency** | 240 MHz | Su...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 172 KB of unfragmented dynamic heap (accounting f...
microduino-core-esp32
ESP32
Microduino
327,680
4,194,304
pyintel_hw_cot_002696
battery_iot
I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 132 KB of unfragmented dynamic heap (accounting for RTOS kernel ~16 K...
1. **Constraint Decomposition & Mathematical Budgets**: - **Power Rail & Voltage**: 3.7V LiPo battery cell requires onboard 3.3V LDO regulator with low quiescent current. Logic level must be strictly 3.3V. - **Network Stack**: Onboard 2.4 GHz WiFi or BLE transceiver is mandatory. - **SRAM Sizing Formula**: Req...
### Recommended Board: **WR2LE Wi-Fi Module** | Specification | Value | Justification | | :--- | :--- | :--- | | **Board ID** | `wr2le` | Verified entry in Open Board Registry | | **Microcontroller (MCU)** | `RTL8710BX` | Native dual-core/accelerated processing | | **Operating Frequency** | 62.5 MHz | Sufficient throu...
<start_of_turn>user I am designing an edge IoT environmental telemetry node powered by a 3.7V LiPo battery. The device must connect to cloud infrastructure over TLS 1.3 (MQTT over secure sockets) using onboard WiFi or BLE. The application runs an RTOS requiring at least 132 KB of unfragmented dynamic heap (accounting f...
wr2le
RTL8710BX
Tuya Inc.
262,144
806,912
pyintel_hw_cot_002697
native_usb_emulation
I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting programmable endpoin...
1. **Constraint Breakdown**: - **USB Silicon Architecture**: Must feature on-chip native USB 2.0 PHY with programmable DP/DM lines. - **Driver Stack**: Must support raw USB endpoint configuration (TinyUSB or native USB device peripheral) for custom descriptor enumeration. - **Protocol Rejection**: USB-UART bri...
### Recommended Board: **RedBearLab Blend Micro 3.3V/8MHz** | Requirement | Specification | Verification | | :--- | :--- | :--- | | **Board ID** | `blendmicro8` | Registered entry in Open Board Registry | | **Microcontroller** | `ATMEGA32U4` | Direct native USB 2.0 FS silicon | | **USB Stack** | TinyUSB / Native Drive...
<start_of_turn>user I am designing a hardware USB HID Macro Keyboard & Mouse composite device. The device must plug directly into a host PC and enumerate natively without requiring an external USB-to-UART bridge IC (such as CH340 or CP2102). The microcontroller must have an integrated USB 2.0 Full-Speed PHY supporting ...
blendmicro8
ATMEGA32U4
RedBearLab
2,560
28,672
pyintel_hw_cot_002698
robotics_foc_motion
I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM center-alignment to read ...
1. **Timing & Math Budget**: - **Loop Period**: At 25 kHz PWM, each control cycle is $T = 1 / 25\text{ kHz} = 40.0\,\mu\text{s}$. - **Calculations per Cycle**: Clarke and Park transformations, PI current controllers, and Space Vector Modulation (SVM) require $\approx 800\text{--}1,500$ CPU cycles. - **Clock Re...
### Recommended Board: **VAkE v1.0** | Architectural Feature | Specification | Role in FOC Algorithm | | :--- | :--- | :--- | | **Board ID** | `vake_v1` | Verified Open Board Registry entry | | **MCU Core** | `STM32F446RET6` | High-speed real-time core with hardware math | | **Core Clock** | 180 MHz | Completes FOC lo...
<start_of_turn>user I am building a precision robotic joint controller executing Field Oriented Control (FOC) for a brushless DC (BLDC) motor. The control loop operates at 25 kHz PWM frequency with 3-phase complementary outputs and dead-time insertion. I require fast dual/triple ADC sampling synchronized with PWM cente...
vake_v1
STM32F446RET6
VAE
131,072
524,288
pyintel_hw_cot_002699
edge_audio_dsp
I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support circular DMA I2S dou...
1. **Mathematical DSP & Throughput Budget**: - **Audio Throughput**: Sampling at 96.0 kHz 16-bit mono produces $96.0 \times 10^3 \times 2 \approx 192,000 \text{ bytes/sec}$. - **FFT Window Duration**: A 1024-point buffer represents $T_{window} = 1024 / (96.0 \times 10^3) \approx 10.67 \text{ ms}$. - **Processi...
### Recommended Board: **uPesy ESP32 Wrover DevKit** | DSP Parameter | Value | Advantage | | :--- | :--- | :--- | | **Board ID** | `upesy_wrover` | Verified Open Board Registry entry | | **Processor Core** | `ESP32` | Hardware FPU & DSP SIMD extensions | | **Clock Speed** | 240 MHz | FFT computes in $< 2 \text{ ms}$ (...
<start_of_turn>user I am building an embedded real-time audio analysis module capturing acoustic emissions via an I2S MEMS microphone. The firmware must compute continuous 1024-point complex Fast Fourier Transforms (FFT) at 96.0 kHz sampling rate with CMSIS-DSP SIMD acceleration or hardware FPU. The board must support ...
upesy_wrover
ESP32
uPesy
327,680
4,194,304