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鍙冩暩(sh霉)璩囨枡
鍨嬭櫉锛� PIC18F4455-I/P
寤犲晢锛� Microchip Technology
鏂囦欢闋佹暩(sh霉)锛� 145/438闋�
鏂囦欢澶у皬锛� 0K
鎻忚堪锛� IC PIC MCU FLASH 12KX16 40DIP
鐢�(ch菐n)鍝佸煿瑷�(x霉n)妯″锛� Asynchronous Stimulus
8-bit PIC® Microcontroller Portfolio
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绯诲垪锛� PIC® 18F
鏍稿績铏曠悊鍣細 PIC
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鐢�(ch菐n)鍝佺洰閷勯爜闈細 646 (CN2011-ZH PDF)
閰嶇敤锛� I3-DB18F4550-ND - BOARD DAUGHTER ICEPIC3
DM163025-ND - PIC DEM FULL SPEED USB DEMO BRD
DVA18XP400-ND - DEVICE ADAPTER 18F4220 PDIP 40LD
444-1001-ND - DEMO BOARD FOR PICMICRO MCU
ACICE0206-ND - ADAPTER MPLABICE 40P 600 MIL
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2009 Microchip Technology Inc.
DS39632E-page 227
PIC18F2455/2550/4455/4550
19.4.6.1
I2C Master Mode Operation
The master device generates all of the serial clock
pulses and the Start and Stop conditions. A transfer is
ended with a Stop condition or with a Repeated Start
condition. Since the Repeated Start condition is also
the beginning of the next serial transfer, the I2C bus will
not be released.
In Master Transmitter mode, serial data is output
through SDA, while SCL outputs the serial clock. The
first byte transmitted contains the slave address of the
receiving device (seven bits) and the Read/Write (R/W)
bit. In this case, the R/W bit will be logic 鈥�0鈥�. Serial data
is transmitted eight bits at a time. After each byte is
transmitted, an Acknowledge bit is received. Start and
Stop conditions are output to indicate the beginning
and the end of a serial transfer.
In Master Receive mode, the first byte transmitted con-
tains the slave address of the transmitting device
(7 bits) and the R/W bit. In this case, the R/W bit will be
logic 鈥�1鈥� Thus, the first byte transmitted is a 7-bit slave
address followed by a 鈥�1鈥� to indicate the receive bit.
Serial data is received via SDA, while SCL outputs the
serial clock. Serial data is received eight bits at a time.
After each byte is received, an Acknowledge bit is
transmitted. Start and Stop conditions indicate the
beginning and end of transmission.
The Baud Rate Generator used for the SPI mode
operation is used to set the SCL clock frequency for
either 100 kHz, 400 kHz or 1 MHz I2C operation. See
A typical transmit sequence would go as follows:
1.
The user generates a Start condition by setting
the Start Enable bit, SEN (SSPCON2<0>).
2.
SSPIF is set. The MSSP module will wait the
required start time before any other operation
takes place.
3.
The user loads the SSPBUF with the slave
address to transmit.
4.
Address is shifted out the SDA pin until all eight
bits are transmitted.
5.
The MSSP module shifts in the ACK bit from the
slave device and writes its value into the
SSPCON2 register (SSPCON2<6>).
6.
The MSSP module generates an interrupt at the
end of the ninth clock cycle by setting the SSPIF
bit.
7.
The user loads the SSPBUF with eight bits of
data.
8.
Data is shifted out the SDA pin until all eight bits
are transmitted.
9.
The MSSP module shifts in the ACK bit from the
slave device and writes its value into the
SSPCON2 register (SSPCON2<6>).
10. The MSSP module generates an interrupt at the
end of the ninth clock cycle by setting the SSPIF
bit.
11. The user generates a Stop condition by setting
the Stop Enable bit, PEN (SSPCON2<2>).
12. Interrupt is generated once the Stop condition is
complete.
鐩搁棞(gu膩n)PDF璩囨枡
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