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L99LDLH32 Datasheet(PDF) 45 Page - STMicroelectronics

Part # L99LDLH32
Description  32-channel LED driver with automotive CAN FD Light interface
PDF  142 Pages
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Manufacturer  STMICROELECTRONICS [STMicroelectronics]
Direct Link  http://www.st.com
Logo STMICROELECTRONICS - STMicroelectronics

L99LDLH32 Datasheet(HTML) 45 Page - STMicroelectronics

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DS12879 Rev 6
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L99LDLH32
Communication interface
141
The Commander may expect an answer from the addressed Responder after having sent a
diagnosis request within a given time frame. If the answer is not received the
communication with the addressed Responder may have been lost.
Sender bus block
The Responders check the bus for permanent recessive or dominant states. Both states
indicate a bus block and the sender may not be able to transmit any messages
Frame errors
Each received frame is verified in regard to these features:
CRC: the correctness of the received CRC for each frame is checked.
CRC Delimiter: after the CRC, one recessive bit as CRC delimiter has to be received;
Bit Stuffing: The correct position of the stuff bits is checked
If at least one of these conditions is not met, the frame is discarded.
Each transmitted frame is checked for:
Permanent recessive errors: If transceiver transmitter changes to dominant state, but
CAN bus does not follow for four times, the transceiver transmitter is disabled
Permanent dominant errors: if the bus state is dominant for t > 700 µs a permanent
dominant error is detected. The transceiver transmitter is disabled.
Invalid messages are not resent.
Error recovery: upon reception of a valid unicast frame, the transceiver transmitter is
enabled again.
6.4
Data handling
6.4.1
Overview
As described in the Section 6.2: Protocol overview, two basic message types are used:
broadcast messages, addressed to several Responders without any Responder answer;
unicast messages, addressed to individual Responder followed by Responder answer.
A Responder corresponds to a 16 channels entity, therefore the L99LDLH32 is a two
Responder device and has two Responder IDs, Responder ID0 and Responder ID1. Only
Responder ID0 (corresponding to the 16 channels entity of CH0 - Ch15) is programmable,
Responder ID1 (corresponding to the 16 channels entity of Ch16 - Ch31) is automatically
forced to Responder ID0+1. The Responder ID is programmable with 9 bits while its 2 LSB
are reserved to distinguish between different Responders within the device and shall be
programmed to “00” (any different value is ignored). This means that physical devices on
the bus are distinguished by Responder ID bits [8:2] – for example 0, 4, 8, 12, 16 …
In case of “Unicast communication” (see Section 6.6), a Commander can access all device
registers either using CAN ID equal to Responder ID0 or Responder ID1, while the ID of
response is always equal to (Responder ID0 | 0x200). A specific protocol is embedded into
the data of the unicast frames in order to allow to specify register address and type of
operation (read/write/clear).
In case of “Broadcast communication” (see Section 6.5), a Commander can send CAN FD
frame with 64 data bytes to several Responders. Each broadcast data frame has a specific
Chain ID (bits 0-5 of CAN ID field, see Section 6.5.3) which allows to distinguish between 64
different groups of Responders. Each Responder assigned to this Chain ID group can pick



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