160 SENT to I2C bridge

160 : SENT to I2C bridge

Design render

How it works

This chip is a full-duplex bridge between a single-channel SENT (SAE J2716) automotive sensor link and I2C.

Receive path: a SENT decoder listens on ui[0]. It auto-calibrates the tick length from each frame's sync pulse (no fixed tick assumed), then decodes a status nibble, 1-6 data nibbles (configurable), and a CRC-4 nibble (poly x^4+x^3+1, seed 5, per SAE J2716). An optional pause pulse after the CRC can be skipped so it is never mistaken for the next frame's sync.

Transmit path: an independent SENT encoder runs concurrently on uo[4], generating a second, runtime-configurable SENT frame (own tick length, nibble count, optional padding to a fixed frame duration) completely decoupled from the receiver — true full duplex, not time-multiplexed.

Both sides are exposed through a single I2C slave (address 0x50, no clock stretching) with an auto-incrementing register pointer: write one byte to set the pointer, then read (or write, for writable registers) as many bytes as needed, wrapping at the top of the map. STATUS is clear-on-read for its sticky error/new-data bits. The register map (20 registers, 0x00-0x13) covers, in order: received STATUS/STATUS_NIBBLE/DATA0-2/CRC/FRAME_COUNT and RX CONFIG (0x00-0x07); the TX payload/CONFIG/TICK/FRAME_DUR registers (0x08-0x0F); and two 16-bit registers, SYNC_MIN and SYNC_MAX (0x10-0x13), that bound how long a pulse must be to be accepted as a sync pulse — retunable at runtime for a different sensor tick length, with no recompile needed.

A shadow snapshot publishes STATUS_NIBBLE/DATA/CRC only when no I2C transaction is in progress, so a multi-byte read is never torn between two different SENT frames.

How to test

Wire a SENT source to ui[0] (a real sensor, or the transmit output of a second instance of this same chip looped back for a quick self-test) and an I2C master (address 0x50, open-drain uio[1]=SDA / uio[0]=SCL, external pull-ups required — no clock stretching).

  1. Write 0x07 (CONFIG) if you need to invert the input, enable the pause pulse, or change the expected data-nibble count from the 6-nibble default.
  2. Point the register pointer at 0x00 and read: STATUS, STATUS_NIBBLE, DATA0, DATA1, DATA2, CRC, FRAME_COUNT — a 7-byte block read pulls one full decoded frame. STATUS bit0 (new_data) tells you a frame has arrived since the last time you read it.
  3. To transmit, write the payload to TX_STATUS_NIBBLE/TX_DATA0-2 (0x08-0x0B), then write TX_CONFIG (0x0C) with bit0 (tx_enable) set — frames start going out on uo[4] immediately, back-to-back.
  4. If your sensor's tick length is outside the 1-6 us default window, write the new bounds (in raw clk cycles) to SYNC_MIN_L/H/SYNC_MAX_L/H (0x10-0x13) before expecting a lock.

The RTL testbench (test/tb_sent_i2c.v, Icarus Verilog) exercises the decoder, encoder, inverted polarity, the pause pulse, full-duplex RX-while-TX, and sync-mode frame padding end to end and is the fastest way to check a change hasn't broken anything.

External hardware

Any single-channel SENT sensor (or a second instance of this chip, transmit side, for a loopback bench test) on ui[0], and an I2C master with two 4.7kΩ pull-ups to 3.3V on SCL/SDA. No other external hardware is required.

IO

#InputOutputBidirectional
0SENT signal in (receive)new_data (STATUS bit0, live)I2C SCL (input only, no clock stretching)
1crc_error (STATUS bit1, live)I2C SDA (open-drain)
2sync_error (STATUS bit2, live)
3frame_busy
4SENT signal out (transmit)
5tx_busy
6
7

Chip location

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