668 lines
15 KiB
C
668 lines
15 KiB
C
// SPDX-License-Identifier: GPL-2.0+
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/*
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* (C) Copyright 2012
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* Armando Visconti, ST Microelectronics, armando.visconti@st.com.
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*
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* (C) Copyright 2018
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* Quentin Schulz, Bootlin, quentin.schulz@bootlin.com
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*
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* Driver for ARM PL022 SPI Controller.
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*/
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#include <clk.h>
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#include <common.h>
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#include <dm.h>
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#include <dm/platform_data/spi_pl022.h>
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#include <asm/io.h>
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#include <spi.h>
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#include <mapmem.h>
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/*
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* This macro is used to define some register default values.
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* reg is masked with mask, the OR:ed with an (again masked)
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* val shifted sb steps to the left.
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*/
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#define SSP_WRITE_BITS(reg, val, mask, sb) \
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((reg) = (((reg) & ~(mask)) | (((val)<<(sb)) & (mask))))
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/*
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* This macro is also used to define some default values.
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* It will just shift val by sb steps to the left and mask
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* the result with mask.
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*/
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#define GEN_MASK_BITS(val, mask, sb) \
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(((val)<<(sb)) & (mask))
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#define DRIVE_TX 0
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#define DO_NOT_DRIVE_TX 1
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#define DO_NOT_QUEUE_DMA 0
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#define QUEUE_DMA 1
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#define RX_TRANSFER 1
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#define TX_TRANSFER 2
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/*
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* Macros to access SSP Registers with their offsets
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*/
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#define SSP_CR0(r) (r + 0x000)
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#define SSP_CR1(r) (r + 0x004)
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#define SSP_DR(r) (r + 0x008)
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#define SSP_SR(r) (r + 0x00C)
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#define SSP_CPSR(r) (r + 0x010)
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#define SSP_IMSC(r) (r + 0x014)
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#define SSP_RIS(r) (r + 0x018)
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#define SSP_MIS(r) (r + 0x01C)
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#define SSP_ICR(r) (r + 0x020)
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#define SSP_DMACR(r) (r + 0x024)
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#define SSP_TX_FIFO_CR (r + 0x028)
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#define SSP_RX_FIFO_CR (r + 0x02C)
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#define SSP_CSR(r) (r + 0x030) /* vendor extension */
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#define SSP_ITCR(r) (r + 0x080)
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#define SSP_ITIP(r) (r + 0x084)
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#define SSP_ITOP(r) (r + 0x088)
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#define SSP_TDR(r) (r + 0x08C)
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#define SSP_PID0(r) (r + 0xFE0)
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#define SSP_PID1(r) (r + 0xFE4)
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#define SSP_PID2(r) (r + 0xFE8)
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#define SSP_PID3(r) (r + 0xFEC)
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#define SSP_CID0(r) (r + 0xFF0)
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#define SSP_CID1(r) (r + 0xFF4)
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#define SSP_CID2(r) (r + 0xFF8)
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#define SSP_CID3(r) (r + 0xFFC)
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/*
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* SSP Control Register 0 - SSP_CR0
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*/
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#define SSP_CR0_MASK_DSS (0x0FUL << 0)
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#define SSP_CR0_MASK_FRF (0x3UL << 4)
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#define SSP_CR0_MASK_SPO (0x1UL << 6)
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#define SSP_CR0_MASK_SPH (0x1UL << 7)
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#define SSP_CR0_SCR_SHIFT (8)
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#define SSP_CR0_MASK_SCR (0xFFUL << SSP_CR0_SCR_SHIFT)
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#define SSP_CR0_BIT_MODE(x) ((x) - 1)
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/*
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* SSP Control Register 0 - SSP_CR1
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*/
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#define SSP_CR1_MASK_LBM (0x1UL << 0)
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#define SSP_CR1_MASK_SSE (0x1UL << 1)
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#define SSP_CR1_MASK_MS (0x1UL << 2)
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#define SSP_CR1_MASK_MD_ALTS (0x1UL << 4)
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/*
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* The lotus version of this block adds some bits
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* in SSP_CR1
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*/
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#define SSP_CR1_MASK_BIGEND_LOTUS (0x1UL << 4)
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#define SSP_CR1_MASK_ALTASENS_LOTUS (0x1UL << 6)
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/*
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* SSP Status Register - SSP_SR
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*/
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#define SSP_SR_MASK_TFE (0x1UL << 0) /* Transmit FIFO empty */
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#define SSP_SR_MASK_TNF (0x1UL << 1) /* Transmit FIFO not full */
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#define SSP_SR_MASK_RNE (0x1UL << 2) /* Receive FIFO not empty */
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#define SSP_SR_MASK_RFF (0x1UL << 3) /* Receive FIFO full */
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#define SSP_SR_MASK_BSY (0x1UL << 4) /* Busy Flag */
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/*
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* SSP Clock Prescale Register - SSP_CPSR
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*/
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#define SSP_CPSR_MASK_CPSDVSR (0xFFUL << 0)
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/*
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* SSP Interrupt Mask Set/Clear Register - SSP_IMSC
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*/
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#define SSP_IMSC_MASK_RORIM (0x1UL << 0) /* Receive Overrun Interrupt mask */
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#define SSP_IMSC_MASK_RTIM (0x1UL << 1) /* Receive timeout Interrupt mask */
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#define SSP_IMSC_MASK_RXIM (0x1UL << 2) /* Receive FIFO Interrupt mask */
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#define SSP_IMSC_MASK_TXIM (0x1UL << 3) /* Transmit FIFO Interrupt mask */
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/*
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* SSP Raw Interrupt Status Register - SSP_RIS
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*/
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/* Receive Overrun Raw Interrupt status */
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#define SSP_RIS_MASK_RORRIS (0x1UL << 0)
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/* Receive Timeout Raw Interrupt status */
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#define SSP_RIS_MASK_RTRIS (0x1UL << 1)
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/* Receive FIFO Raw Interrupt status */
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#define SSP_RIS_MASK_RXRIS (0x1UL << 2)
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/* Transmit FIFO Raw Interrupt status */
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#define SSP_RIS_MASK_TXRIS (0x1UL << 3)
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/*
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* SSP Masked Interrupt Status Register - SSP_MIS
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*/
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/* Receive Overrun Masked Interrupt status */
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#define SSP_MIS_MASK_RORMIS (0x1UL << 0)
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/* Receive Timeout Masked Interrupt status */
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#define SSP_MIS_MASK_RTMIS (0x1UL << 1)
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/* Receive FIFO Masked Interrupt status */
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#define SSP_MIS_MASK_RXMIS (0x1UL << 2)
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/* Transmit FIFO Masked Interrupt status */
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#define SSP_MIS_MASK_TXMIS (0x1UL << 3)
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/*
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* SSP Interrupt Clear Register - SSP_ICR
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*/
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/* Receive Overrun Raw Clear Interrupt bit */
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#define SSP_ICR_MASK_RORIC (0x1UL << 0)
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/* Receive Timeout Clear Interrupt bit */
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#define SSP_ICR_MASK_RTIC (0x1UL << 1)
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/*
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* SSP DMA Control Register - SSP_DMACR
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*/
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/* Receive DMA Enable bit */
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#define SSP_DMACR_MASK_RXDMAE (0x1UL << 0)
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/* Transmit DMA Enable bit */
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#define SSP_DMACR_MASK_TXDMAE (0x1UL << 1)
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/*
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* SSP Chip Select Control Register - SSP_CSR
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* (vendor extension)
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*/
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#define SSP_CSR_CSVALUE_MASK (0x1FUL << 0)
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/*
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* SSP Integration Test control Register - SSP_ITCR
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*/
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#define SSP_ITCR_MASK_ITEN (0x1UL << 0)
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#define SSP_ITCR_MASK_TESTFIFO (0x1UL << 1)
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/*
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* SSP Integration Test Input Register - SSP_ITIP
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*/
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#define ITIP_MASK_SSPRXD (0x1UL << 0)
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#define ITIP_MASK_SSPFSSIN (0x1UL << 1)
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#define ITIP_MASK_SSPCLKIN (0x1UL << 2)
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#define ITIP_MASK_RXDMAC (0x1UL << 3)
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#define ITIP_MASK_TXDMAC (0x1UL << 4)
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#define ITIP_MASK_SSPTXDIN (0x1UL << 5)
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/*
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* SSP Integration Test output Register - SSP_ITOP
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*/
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#define ITOP_MASK_SSPTXD (0x1UL << 0)
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#define ITOP_MASK_SSPFSSOUT (0x1UL << 1)
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#define ITOP_MASK_SSPCLKOUT (0x1UL << 2)
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#define ITOP_MASK_SSPOEn (0x1UL << 3)
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#define ITOP_MASK_SSPCTLOEn (0x1UL << 4)
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#define ITOP_MASK_RORINTR (0x1UL << 5)
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#define ITOP_MASK_RTINTR (0x1UL << 6)
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#define ITOP_MASK_RXINTR (0x1UL << 7)
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#define ITOP_MASK_TXINTR (0x1UL << 8)
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#define ITOP_MASK_INTR (0x1UL << 9)
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#define ITOP_MASK_RXDMABREQ (0x1UL << 10)
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#define ITOP_MASK_RXDMASREQ (0x1UL << 11)
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#define ITOP_MASK_TXDMABREQ (0x1UL << 12)
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#define ITOP_MASK_TXDMASREQ (0x1UL << 13)
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/*
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* SSP Test Data Register - SSP_TDR
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*/
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#define TDR_MASK_TESTDATA (0xFFFFFFFF)
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/*
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* Message State
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* we use the spi_message.state (void *) pointer to
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* hold a single state value, that's why all this
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* (void *) casting is done here.
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*/
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#define STATE_START ((void *) 0)
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#define STATE_RUNNING ((void *) 1)
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#define STATE_DONE ((void *) 2)
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#define STATE_ERROR ((void *) -1)
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#define STATE_TIMEOUT ((void *) -2)
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/*
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* SSP State - Whether Enabled or Disabled
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*/
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#define SSP_DISABLED (0)
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#define SSP_ENABLED (1)
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/*
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* SSP DMA State - Whether DMA Enabled or Disabled
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*/
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#define SSP_DMA_DISABLED (0)
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#define SSP_DMA_ENABLED (1)
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/*
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* SSP Clock Defaults
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*/
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#define SSP_DEFAULT_CLKRATE 0x2
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#define SSP_DEFAULT_PRESCALE 0x40
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/*
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* SSP Clock Parameter ranges
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*/
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#define CPSDVR_MIN 0x02
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#define CPSDVR_MAX 0xFE
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#define SCR_MIN 0x00
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#define SCR_MAX 0xFF
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/*
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* SSP Interrupt related Macros
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*/
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#define DEFAULT_SSP_REG_IMSC 0x0UL
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#define DISABLE_ALL_INTERRUPTS DEFAULT_SSP_REG_IMSC
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#define ENABLE_ALL_INTERRUPTS ( \
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SSP_IMSC_MASK_RORIM | \
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SSP_IMSC_MASK_RTIM | \
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SSP_IMSC_MASK_RXIM | \
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SSP_IMSC_MASK_TXIM \
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)
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#define CLEAR_ALL_INTERRUPTS 0x3
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#define XS_SPI_MAX_TIMEOUT 1 * 1000 *1000
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/*
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* The type of reading and writing going on this chip
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*/
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enum xm_ssp_rw_bit {
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XM_RW_BIT_U8,
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XM_RW_BIT_U16
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};
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struct xmedia_ssp_regs {
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u32 spicr0;
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u32 spicr1;
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u32 spidr;
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u32 spisr;
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u32 spicpsr;
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u32 spiimsc;
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u32 spiris;
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u32 spimis;
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u32 spiicr;
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u32 spidmacr;
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u32 spitxfifocr;
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u32 spirxfifocr;
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};
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struct xmedia_spi_slave {
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struct spi_slave slave;
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u32 max_hz;
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enum xm_ssp_rw_bit rw_mask;
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struct xmedia_ssp_regs *regs;
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};
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enum xm_spi_cs_cr_elments {
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XM_SPI_CS_CRG = 0,
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XM_SPI_CS_SHIFT,
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XM_SPI_CS_MASK
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};
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enum xm_spi_clk_cr_elments {
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XM_SPI_CLK_CRG = 0,
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XM_SPI_RST_BIT_SHIFT,
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XM_SPI_ENABLE_BIT_SHIFT
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};
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static unsigned long spi_bases[] = {0x12070000UL, 0x12071000UL, 0x12072000UL};
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/* SPI0 can only connect 1 slave device, SPI1 can connect 2 slave device*/
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static unsigned long spi_cs_num[] = {1, 2};
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/* {CS reg, CS shift, mask bit} */
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static unsigned long spi_cs_cr[][3]= {
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{0, 0, 0},
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{0x12028000UL, 2, 0x4}
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};
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/* {CLK reg, soft reset bit, clk enable bit} */
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static unsigned long spi_clk_cr[][3] = {
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{0x120101bcUL, 16, 12},
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{0x120101bcUL, 17, 13},
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{0x120101bcUL, 18, 14}
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};
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static inline struct xmedia_spi_slave *to_xmedia_slave(struct spi_slave *slave)
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{
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return container_of(slave, struct xmedia_spi_slave, slave);
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}
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static int xmedia_wait_mask_set(void *reg, u32 mask, u32 timeout)
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{
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while (--timeout) {
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if (readw(reg) & mask)
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break;
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udelay(1);
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}
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return !timeout;
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}
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#if 0
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static int xmedia_wait_mask_clr(void *reg, u32 mask, u32 timeout)
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{
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while (--timeout) {
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if (!xm_read_bits(reg, mask))
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break;
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udelay(1);
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}
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return !timeout;
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}
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#endif
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static void flush(struct xmedia_spi_slave *xs)
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{
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int count = 10000000;
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do {
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while (readw(&xs->regs->spisr) & SSP_SR_MASK_RNE) {
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readw(&xs->regs->spidr);
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}
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udelay(1);
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count --;
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} while (readw(&xs->regs->spisr) & SSP_SR_MASK_RNE && count);
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}
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int spi_tx(struct xmedia_spi_slave *xs, u16 tx_value)
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{
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if (xmedia_wait_mask_set(&xs->regs->spisr, SSP_SR_MASK_TNF,
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XS_SPI_MAX_TIMEOUT)) {
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printf("xmedia SPI TX: Timeout waiting for send\n");
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return -ETIMEDOUT;
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}
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writew(tx_value, &xs->regs->spidr);
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return 0;
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}
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int spi_rx(struct xmedia_spi_slave *xs, void* rxp)
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{
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u16 value;
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if (xmedia_wait_mask_set(&xs->regs->spisr, SSP_SR_MASK_RNE,
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XS_SPI_MAX_TIMEOUT)) {
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printf("xmedia SPI RX: Timeout waiting for data\n");
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return -ETIMEDOUT;
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}
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value = readw(&xs->regs->spidr);
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if (xs->rw_mask == XM_RW_BIT_U8 && rxp) {
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*(u8*)rxp = value & 0xff;
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} else if (xs->rw_mask == XM_RW_BIT_U16 && rxp) {
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*(u16*)rxp = value;
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}
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return 0;
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}
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int spi_xfer(struct spi_slave *slave, unsigned int bitlen,
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const void *dout, void *din, unsigned long flags)
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{
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struct xmedia_spi_slave *xs = to_xmedia_slave(slave);
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int ret;
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u32 len_tx = 0, len_rx = 0, len;
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const u8 *txp_8 = NULL;
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u8 *rxp_8 = NULL;
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const u16 *txp_16 = NULL;
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u16 *rxp_16 = NULL;
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if (bitlen == 0)
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return 0;
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if (bitlen % slave->wordlen) {
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/* Errors always terminate an ongoing transfer */
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flags |= SPI_XFER_END;
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return -1;
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}
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len = bitlen / slave->wordlen;
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/* No data */
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if (!din && !dout)
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return 0;
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if (xs->rw_mask == XM_RW_BIT_U8) {
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txp_8 = dout;
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rxp_8 = din;
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} else {
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txp_16 = dout;
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rxp_16 = din;
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}
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while (len_tx < len) {
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if (xs->rw_mask == XM_RW_BIT_U8) {
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ret = spi_tx(xs, (txp_8 ? *txp_8++ : 0));
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ret |= spi_rx(xs, rxp_8);
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rxp_8++;
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}
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else {
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ret = spi_tx(xs, (txp_16 ? *txp_16++ : 0));
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ret |= spi_rx(xs, rxp_16);
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rxp_16++;
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}
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if (ret)
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return ret;
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len_tx++;
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len_rx++;
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}
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while (len_rx < len_tx) {
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if (xs->rw_mask == XM_RW_BIT_U8) {
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ret = spi_rx(xs, rxp_8);
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rxp_8++;
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}
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else {
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ret = spi_rx(xs, rxp_16);
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rxp_16++;
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}
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if (ret)
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return ret;
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len_rx++;
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}
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return 0;
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}
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static inline u32 spi_rate(u32 rate, u16 cpsdvsr, u16 scr)
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{
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return rate / (cpsdvsr * (1 + scr));
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}
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static int xm_set_ssp_busclock(struct xmedia_spi_slave *xs)
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{
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/* Lets calculate the frequency parameters */
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u16 cpsdvsr = CPSDVR_MIN, scr = SCR_MIN;
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u32 rate, max_tclk, min_tclk, best_freq = 0, best_cpsdvsr = 0,
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best_scr = 0, tmp, found = 0;
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u32 freq = xs->max_hz;
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u16 reg;
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rate = 100000000;
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/* cpsdvscr = 2 & scr 0 */
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max_tclk = spi_rate(rate, CPSDVR_MIN, SCR_MIN);
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/* cpsdvsr = 254 & scr = 255 */
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min_tclk = spi_rate(rate, CPSDVR_MAX, SCR_MAX);
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|
|
|
if (freq > max_tclk)
|
|
printf("Max speed that can be programmed is %d Hz, you requested %d\n",
|
|
max_tclk, freq);
|
|
|
|
if (freq < min_tclk) {
|
|
printf("Requested frequency: %d Hz is less than minimum possible %d Hz\n",
|
|
freq, min_tclk);
|
|
return -EINVAL;
|
|
}
|
|
|
|
/*
|
|
* best_freq will give closest possible available rate (<= requested
|
|
* freq) for all values of scr & cpsdvsr.
|
|
*/
|
|
while ((cpsdvsr <= CPSDVR_MAX) && !found) {
|
|
while (scr <= SCR_MAX) {
|
|
tmp = spi_rate(rate, cpsdvsr, scr);
|
|
|
|
if (tmp > freq) {
|
|
/* we need lower freq */
|
|
scr++;
|
|
continue;
|
|
}
|
|
|
|
/*
|
|
* If found exact value, mark found and break.
|
|
* If found more closer value, update and break.
|
|
*/
|
|
if (tmp > best_freq) {
|
|
best_freq = tmp;
|
|
best_cpsdvsr = cpsdvsr;
|
|
best_scr = scr;
|
|
|
|
if (tmp == freq)
|
|
found = 1;
|
|
}
|
|
/*
|
|
* increased scr will give lower rates, which are not
|
|
* required
|
|
*/
|
|
break;
|
|
}
|
|
cpsdvsr += 2;
|
|
scr = SCR_MIN;
|
|
}
|
|
|
|
printf("SSP Target Freq is: %u, Effective Freq is %u\n", freq, best_freq);
|
|
|
|
reg = readw(&xs->regs->spicr0);
|
|
writew((reg & ~SSP_CR0_MASK_SCR) | best_scr << SSP_CR0_SCR_SHIFT, &xs->regs->spicr0);
|
|
reg = readw(&xs->regs->spicpsr);
|
|
writew((reg & ~SSP_CPSR_MASK_CPSDVSR) | best_cpsdvsr, &xs->regs->spicpsr);
|
|
|
|
return 0;
|
|
}
|
|
|
|
void xmedia_clk_init(struct xmedia_spi_slave *xs)
|
|
{
|
|
void *clk_reg = map_sysmem(spi_clk_cr[xs->slave.bus][XM_SPI_CLK_CRG], 4);
|
|
u32 rst_bit = spi_clk_cr[xs->slave.bus][XM_SPI_RST_BIT_SHIFT];
|
|
u32 enable_bit = spi_clk_cr[xs->slave.bus][XM_SPI_ENABLE_BIT_SHIFT];
|
|
|
|
/* enable SPI clk && set SPI soft reset*/
|
|
writel(readl(clk_reg) | (1 << enable_bit | (1 << rst_bit)), clk_reg);
|
|
udelay(200000);
|
|
/* cancel reset SPI */
|
|
writel(readl(clk_reg) & ~(1 << rst_bit), clk_reg);
|
|
}
|
|
|
|
int spi_cs_is_valid(unsigned int bus, unsigned int cs)
|
|
{
|
|
if (bus >= ARRAY_SIZE(spi_bases))
|
|
return 0;
|
|
|
|
if (cs > spi_cs_num[bus] - 1)
|
|
return 0;
|
|
|
|
return 1;
|
|
}
|
|
|
|
struct spi_slave *spi_setup_slave(unsigned int bus, unsigned int cs,
|
|
unsigned int max_hz, unsigned int mode)
|
|
{
|
|
struct xmedia_spi_slave *xs;
|
|
|
|
if (!spi_cs_is_valid(bus, cs)) {
|
|
printf("xmedia_spi: invalid bus %d / chip select %d\n", bus, cs);
|
|
return NULL;
|
|
}
|
|
|
|
xs = spi_alloc_slave(struct xmedia_spi_slave, bus, cs);
|
|
if (!xs)
|
|
return NULL;
|
|
|
|
xs->max_hz = max_hz;
|
|
xs->slave.mode = mode;
|
|
xs->slave.bus = bus;
|
|
xs->slave.cs = cs;
|
|
xs->regs = map_sysmem(spi_bases[bus], sizeof(struct xmedia_ssp_regs));
|
|
|
|
return &xs->slave;
|
|
}
|
|
|
|
void spi_free_slave(struct spi_slave *slave)
|
|
{
|
|
struct xmedia_spi_slave *xs = to_xmedia_slave(slave);
|
|
|
|
free(xs);
|
|
}
|
|
|
|
int spi_claim_bus(struct spi_slave *slave)
|
|
{
|
|
struct xmedia_spi_slave *xs = to_xmedia_slave(slave);
|
|
struct xmedia_ssp_regs *ssp_regs = xs->regs;
|
|
void *cs_reg;
|
|
u32 cs_shfit = spi_cs_cr[slave->bus][XM_SPI_CS_SHIFT];
|
|
u32 cs_mask = spi_cs_cr[slave->bus][XM_SPI_CS_MASK];
|
|
u16 reg = 0, bit_per_world = 0;
|
|
|
|
bit_per_world = SSP_CR0_BIT_MODE(slave->wordlen);
|
|
|
|
if (bit_per_world <= SSP_CR0_BIT_MODE(8))
|
|
xs->rw_mask = XM_RW_BIT_U8;
|
|
else if (bit_per_world <= SSP_CR0_BIT_MODE(16))
|
|
xs->rw_mask = XM_RW_BIT_U16;
|
|
|
|
xmedia_clk_init(xs);
|
|
|
|
if (spi_cs_num[slave->bus] > 1) {
|
|
u32 old;
|
|
cs_reg = map_sysmem(spi_cs_cr[slave->bus][XM_SPI_CS_CRG], 4);
|
|
|
|
old = readl(cs_reg);
|
|
writel((old & ~cs_mask) | slave->cs << cs_shfit, cs_reg);
|
|
}
|
|
|
|
/* Disable SPI */
|
|
writew(readw(&ssp_regs->spicr1) & ~SSP_CR1_MASK_SSE, &ssp_regs->spicr1);
|
|
|
|
reg = readw(&ssp_regs->spicr0);
|
|
/* Configure SPI */
|
|
reg |= bit_per_world;
|
|
reg |= (slave->mode & SPI_CPOL) ? SSP_CR0_MASK_SPO : 0;
|
|
reg |= (slave->mode & SPI_CPHA) ? SSP_CR0_MASK_SPH : 0;
|
|
writew(reg, &ssp_regs->spicr0);
|
|
|
|
reg = readw(&ssp_regs->spicr1);
|
|
if (slave->mode & SPI_LSB_FIRST)
|
|
reg |= SSP_CR1_MASK_BIGEND_LOTUS;
|
|
|
|
if (slave->mode & SPI_LOOP)
|
|
reg |= SSP_CR1_MASK_LBM;
|
|
|
|
// reg |= SSP_CR1_MASK_MD_ALTS;
|
|
writew(reg, &ssp_regs->spicr1);
|
|
|
|
writew(0, &ssp_regs->spitxfifocr);
|
|
writew(0, &ssp_regs->spirxfifocr);
|
|
|
|
if (xm_set_ssp_busclock(xs))
|
|
return 1;
|
|
|
|
/* Enable SPI */
|
|
writew(readw(&ssp_regs->spicr1) | SSP_CR1_MASK_SSE, &ssp_regs->spicr1);
|
|
|
|
flush(xs);
|
|
|
|
return 0;
|
|
}
|
|
|
|
void spi_release_bus(struct spi_slave *slave)
|
|
{
|
|
struct xmedia_spi_slave *xs = to_xmedia_slave(slave);
|
|
struct xmedia_ssp_regs *ssp_regs = xs->regs;
|
|
|
|
flush(xs);
|
|
|
|
/* Disable the SPI hardware */
|
|
writew(readw(&ssp_regs->spicr1) & ~SSP_CR1_MASK_SSE, &ssp_regs->spicr1);
|
|
}
|
|
|