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AD9543 Datasheet(PDF) 63 Page - Analog Devices

Part # AD9543
Description  Quad Input, 10-Output, Dual DPLL/IEEE 1588 Synchronizer and Jitter Cleaner
PDF  66 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

AD9543 Datasheet(HTML) 63 Page - Analog Devices

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Data Sheet
AD9543
Rev. 0 | Page 63 of 66
I²C SERIAL PORT OPERATION
The I2C interface is popular because it requires only two pins
and easily supports multiple devices on the same bus. Its main
disadvantage is its maximum programming speed of 400 kbps.
The AD9543 I²C port supports the 400 kHz fast mode as well as
the 100 kHz standard mode.
To support 1.5 V, 1.8 V, and 2.5 V I²C operation, the AD9543
does not strictly adhere to every requirement in the original I²C
specification. In particular, it does not support specifications such
as slew rate limiting and glitch filtering. Therefore, the AD9543
is I²C compatible, but not necessarily fully I²C compliant.
The AD9543 I²C port consists of a serial data line (SDA) and
a serial clock line (SCL). In an I²C bus system, the AD9543
connects to the serial bus (data bus SDA and clock bus SCL)
as a slave device; that is, the AD9543 does not generate an I²C
clock. The AD9543 uses direct 16-bit memory addressing rather
than 8-bit memory addressing, which is more common.
The AD9543 allows up to four unique slave devices to occupy
the I2C bus via a 7-bit slave address transmitted as part of an I2C
packet. Only the device with a matching slave address responds
to subsequent I2C commands. Table 38 lists the supported
device slave addresses.
I2C Bus Characteristics
A summary of the various I2C abbreviations appears in Table 38.
Table 38. I2C Bus Abbreviation Definitions
Abbreviation
Definition
S
Start
Sr
Repeated start
P
Stop
A
Acknowledge
A
Nonacknowledge
W
Write
R
Read
An example of valid data transfer appears in Figure 60. One
clock pulse is required for each data bit transferred. The data on
the SDA line must be stable during the high period of the clock.
The high or low state of the data line can change only when the
clock signal on the SCL line is low.
DATA LINE
STABLE;
DATA VALID
CHANGE
OF DATA
ALLOWED
SDA
SCL
Figure 60. Valid Bit Transfer
Start and stop functionality appears in Figure 61. The start
condition is a high to low transition on the SDA line while SCL
is high. The master always generates the start condition to
initialize a data transfer. The stop condition is a low to high
transition on the SDA line while SCL is high. The master always
generates the stop condition to terminate a data transfer. The
SDA line must always transfer eight bits (one byte). Each byte
must be followed by an acknowledge bit; bytes are sent MSB
first.
The acknowledge bit (A) is the ninth bit attached to any 8-bit
data byte. An acknowledge bit is always generated by the
receiver to inform the transmitter that the byte has been
received. Acknowledgement consists of pulling the SDA line
low during the ninth clock pulse after each 8-bit data byte.
The nonacknowledge bit (A) is the ninth bit attached to any
8-bit data byte. A nonacknowledge bit is always generated by
the receiver to inform the transmitter that the byte has not been
received. Nonacknowledgment consists of leaving the SDA line
high during the ninth clock pulse after each 8-bit data byte.
After issuing a nonacknowledge bit, the AD9543 I²C state
machine goes into an idle state.
Data Transfer Process
The master initiates data transfer by asserting a start condition,
which indicates that a data stream follows. All I²C slave devices
connected to the serial bus respond to the start condition.
The master then sends an 8-bit address byte over the SDA line,
consisting of a 7-bit slave address (MSB first) plus a R/W bit.
This bit determines the direction of the data transfer, that is,
whether data is written to or read from the slave device (Logic 0
indicates write, and Logic 1 indicates read).
The peripheral whose address corresponds to the transmitted
address responds by sending an acknowledge bit. All other
devices on the bus remain idle while the selected device waits
for data to be read from or written to it. If the R/W bit is Logic 0,
the master (transmitter) writes to the slave device (receiver).
If the R/W bit is Logic 1, the master (receiver) reads from the
slave device (transmitter). The format for these commands
appears in the Data Transfer Format section.
Data is then sent over the serial bus in the format of nine clock
pulses, one data byte (eight bits) from either master (write mode)
or slave (read mode), followed by an acknowledge bit from the
receiving device. The protocol allows a data transfer to consist
of any number of bytes (that is, the payload size is unrestricted).
In write mode, the first two data bytes immediately after the
slave address byte are the internal memory (control registers)
address bytes (the higher address byte first). This addressing
scheme gives a memory address of up to 216 − 1 = 65,535. The
data bytes after these two memory address bytes are register
data written to or read from the control registers. In read mode,
the data bytes following the slave address byte consist of register
data written to or read from the control registers.



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