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    參數(shù)資料
    型號: PIC18LF8620-I/PT
    廠商: Microchip Technology
    文件頁數(shù): 110/165頁
    文件大?。?/td> 0K
    描述: IC MCU FLSH 1MBIT W/AD LP 80TQFP
    產(chǎn)品培訓(xùn)模塊: Asynchronous Stimulus
    8-bit PIC® Microcontroller Portfolio
    標(biāo)準(zhǔn)包裝: 119
    系列: PIC® 18F
    核心處理器: PIC
    芯體尺寸: 8-位
    速度: 25MHz
    連通性: EBI/EMI,I²C,SPI,UART/USART
    外圍設(shè)備: 欠壓檢測/復(fù)位,LVD,POR,PWM,WDT
    輸入/輸出數(shù): 68
    程序存儲器容量: 64KB(32K x 16)
    程序存儲器類型: 閃存
    EEPROM 大?。?/td> 1K x 8
    RAM 容量: 3.75K x 8
    電壓 - 電源 (Vcc/Vdd): 2 V ~ 5.5 V
    數(shù)據(jù)轉(zhuǎn)換器: A/D 16x10b
    振蕩器型: 外部
    工作溫度: -40°C ~ 85°C
    封裝/外殼: 80-TQFP
    包裝: 托盤
    2004 Microchip Technology Inc.
    DS39609B-page 47
    PIC18F6520/8520/6620/8620/6720/8720
    4.9
    Data Memory Organization
    The data memory is implemented as static RAM. Each
    register in the data memory has a 12-bit address,
    allowing up to 4096 bytes of data memory. The data
    memory map is in turn divided into 16 banks of
    256 bytes each. The lower 4 bits of the Bank Select
    Register (BSR<3:0>) select which bank will be
    accessed. The upper 4 bits of the BSR are not
    implemented.
    The data memory space contains both Special Func-
    tion Registers (SFR) and General Purpose Registers
    (GPR). The SFRs are used for control and status of the
    controller and peripheral functions, while GPRs are
    used for data storage and scratch pad operations in the
    user’s application. The SFRs start at the last location of
    Bank 15 (0FFFh) and extend downwards. Any remain-
    ing space beyond the SFRs in the Bank may be imple-
    mented as GPRs. GPRs start at the first location of
    Bank
    0
    and
    grow
    upwards.
    Any
    read
    of
    an
    unimplemented location will read as ‘0’s.
    PIC18FX520 devices have 2048 bytes of data RAM,
    extending from Bank 0 to Bank 7 (000h through 7FFh).
    PIC18FX620
    and
    PIC18FX720
    devices
    have
    3840 bytes of data RAM, extending from Bank 0 to
    Bank 14 (000h through EFFh). The organization of the
    data memory space for these devices is shown in
    The entire data memory may be accessed directly or
    indirectly. Direct addressing may require the use of the
    BSR register. Indirect addressing requires the use of a
    File Select Register (FSRn) and a corresponding Indi-
    rect File Operand (INDFn). Each FSR holds a 12-bit
    address value that can be used to access any location
    in the data memory map without banking.
    The instruction set and architecture allow operations
    across all banks. This may be accomplished by indirect
    addressing, or by the use of the MOVFF instruction. The
    MOVFF
    instruction is a two-word/two-cycle instruction
    that moves a value from one register to another.
    To ensure that commonly used registers (SFRs and
    select GPRs) can be accessed in a single cycle,
    regardless of the current BSR values, an Access Bank
    is implemented. A segment of Bank 0 and a segment of
    Bank 15 comprise the Access RAM. Section 4.10
    “Access Bank” provides a detailed description of the
    Access RAM.
    4.9.1
    GENERAL PURPOSE
    REGISTER FILE
    The register file can be accessed either directly or indi-
    rectly. Indirect addressing operates using a File Select
    Register and corresponding Indirect File Operand. The
    operation
    of
    indirect
    addressing
    is
    shown
    in
    Enhanced MCU devices may have banked memory in
    the GPR area. GPRs are not initialized by a Power-on
    Reset and are unchanged on all other Resets.
    Data RAM is available for use as General Purpose
    Registers by all instructions. The top section of Bank 15
    (F60h to FFFh) contains SFRs. All other banks of data
    memory contain GPR registers, starting with Bank 0.
    4.9.2
    SPECIAL FUNCTION REGISTERS
    The Special Function Registers (SFRs) are registers
    used by the CPU and peripheral modules for controlling
    the desired operation of the device. These registers are
    implemented as static RAM. A list of these registers is
    given in Table 4-2 and Table 4-3.
    The SFRs can be classified into two sets: those asso-
    ciated with the “core” function and those related to the
    peripheral functions. Those registers related to the
    “core” are described in this section, while those related
    to the operation of the peripheral features are
    described in the section of that peripheral feature. The
    SFRs are typically distributed among the peripherals
    whose functions they control.
    The unused SFR locations are unimplemented and
    read as ‘0’s. The addresses for the SFRs are listed in
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