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MCP2035 데이터시트(PDF) 41 Page - Microchip Technology |
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MCP2035 데이터시트(HTML) 41 Page - Microchip Technology |
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41 / 68 page ![]() 2012 Microchip Technology Inc. DS22304A-page 41 MCP2035 5.21 Low-Current Sleep Mode The device can stay at an ultra low-current mode (Sleep mode) when it receives a Sleep command via the Serial Peripheral Interface (SPI). All circuits includ- ing the RF Limiter, except the minimum circuitry required to retain register memory and SPI capability, will be powered down to minimize the current draw. Power-on Reset or any SPI command, other than the Sleep command, is required to wake the device from Sleep. 5.22 Low-Current Standby Mode The device is in Standby mode when no input signal is present on the input pin, but is powered and ready to receive any incoming signals. 5.23 Low-Current Active Mode The device is in Low-Current Active mode when an input signal is present on any input pin and internal circuitry is switching with the received data. 5.24 Error Detection of Configuration Register Data The Configuration registers are volatile memory. Therefore, the contents of the registers can be cor- rupted or cleared by any electrical incidence, such as battery disconnect. To ensure data integrity, the device has an error detection mechanism using row and col- umn parity bits of the Configuration register memory map. The bit 0 of each register is a row parity bit which is calculated over the eight Configuration bits (from bit 1 to bit 8). The Column Parity Register (Configuration Register 6) holds column parity bits; each bit is calcu- lated over the respective columns (Configuration regis- ters 0 to 5) of the Configuration bits. The STATUS register is not included for the column parity bit calcula- tion. Parity is to be odd. The parity bit, set or cleared, makes an odd number of set bits. The user needs to calculate the row and column parity bits using the contents of the registers and program them. During operation, the device continuously calculates the row and column parity bits of the configuration memory map. If a parity error occurs, the device lowers the SCLK/ALERT pin (interrupting the microcontroller section) indicating the configuration memory has been corrupted or unloaded and needs to be reprogrammed. At an initial condition after a Power-on Reset, the values of the registers are all clear (default condition). Therefore, the device will issue the parity bit error by lowering the SCLK/ALERT pin. If the user reprograms the registers with the correct parity bits, the SCLK/ ALERT pin will be toggled to logic high level immediately. The parity bit errors do not change or affect any functional operation. Table 5-4 shows an example of the register values and corresponding parity bits. TABLE 5-4: CONFIGURATION REGISTER PARITY BIT EXAMPLE Register Name Bit 8 Bit 7 Bit 6 Bit 5 Bit 4 Bit 3 Bit 2 Bit 1 Bit 0 (Row Parity) Configuration Register 0 10 1 0 1 0 0 0 0 Configuration Register 1 00 0 0 0 0 0 0 1 Configuration Register 2 00 0 0 0 0 0 0 1 Configuration Register 3 00 0 0 0 0 0 0 1 Configuration Register 4 00 0 0 0 0 0 0 1 Configuration Register 5 10 0 0 0 0 0 0 0 Configuration Register 6 (Column Parity Register) 1 1 0 1 0 1 1 1 1 |
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