tda998x_drv.c 43.4 KB
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/*
 * Copyright (C) 2012 Texas Instruments
 * Author: Rob Clark <robdclark@gmail.com>
 *
 * This program is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License version 2 as published by
 * the Free Software Foundation.
 *
 * This program is distributed in the hope that it will be useful, but WITHOUT
 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
 * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License for
 * more details.
 *
 * You should have received a copy of the GNU General Public License along with
 * this program.  If not, see <http://www.gnu.org/licenses/>.
 */



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#include <linux/hdmi.h>
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#include <linux/module.h>
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#include <linux/irq.h>
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#include <sound/asoundef.h>
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#include <drm/drmP.h>
#include <drm/drm_crtc_helper.h>
#include <drm/drm_encoder_slave.h>
#include <drm/drm_edid.h>
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#include <drm/i2c/tda998x.h>
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#define DBG(fmt, ...) DRM_DEBUG(fmt"\n", ##__VA_ARGS__)

struct tda998x_priv {
	struct i2c_client *cec;
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	struct i2c_client *hdmi;
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	uint16_t rev;
	uint8_t current_page;
	int dpms;
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	bool is_hdmi_sink;
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	u8 vip_cntrl_0;
	u8 vip_cntrl_1;
	u8 vip_cntrl_2;
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	struct tda998x_encoder_params params;
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	wait_queue_head_t wq_edid;
	volatile int wq_edid_wait;
	struct drm_encoder *encoder;
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};

#define to_tda998x_priv(x)  ((struct tda998x_priv *)to_encoder_slave(x)->slave_priv)

/* The TDA9988 series of devices use a paged register scheme.. to simplify
 * things we encode the page # in upper bits of the register #.  To read/
 * write a given register, we need to make sure CURPAGE register is set
 * appropriately.  Which implies reads/writes are not atomic.  Fun!
 */

#define REG(page, addr) (((page) << 8) | (addr))
#define REG2ADDR(reg)   ((reg) & 0xff)
#define REG2PAGE(reg)   (((reg) >> 8) & 0xff)

#define REG_CURPAGE               0xff                /* write */


/* Page 00h: General Control */
#define REG_VERSION_LSB           REG(0x00, 0x00)     /* read */
#define REG_MAIN_CNTRL0           REG(0x00, 0x01)     /* read/write */
# define MAIN_CNTRL0_SR           (1 << 0)
# define MAIN_CNTRL0_DECS         (1 << 1)
# define MAIN_CNTRL0_DEHS         (1 << 2)
# define MAIN_CNTRL0_CECS         (1 << 3)
# define MAIN_CNTRL0_CEHS         (1 << 4)
# define MAIN_CNTRL0_SCALER       (1 << 7)
#define REG_VERSION_MSB           REG(0x00, 0x02)     /* read */
#define REG_SOFTRESET             REG(0x00, 0x0a)     /* write */
# define SOFTRESET_AUDIO          (1 << 0)
# define SOFTRESET_I2C_MASTER     (1 << 1)
#define REG_DDC_DISABLE           REG(0x00, 0x0b)     /* read/write */
#define REG_CCLK_ON               REG(0x00, 0x0c)     /* read/write */
#define REG_I2C_MASTER            REG(0x00, 0x0d)     /* read/write */
# define I2C_MASTER_DIS_MM        (1 << 0)
# define I2C_MASTER_DIS_FILT      (1 << 1)
# define I2C_MASTER_APP_STRT_LAT  (1 << 2)
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#define REG_FEAT_POWERDOWN        REG(0x00, 0x0e)     /* read/write */
# define FEAT_POWERDOWN_SPDIF     (1 << 3)
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#define REG_INT_FLAGS_0           REG(0x00, 0x0f)     /* read/write */
#define REG_INT_FLAGS_1           REG(0x00, 0x10)     /* read/write */
#define REG_INT_FLAGS_2           REG(0x00, 0x11)     /* read/write */
# define INT_FLAGS_2_EDID_BLK_RD  (1 << 1)
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#define REG_ENA_ACLK              REG(0x00, 0x16)     /* read/write */
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#define REG_ENA_VP_0              REG(0x00, 0x18)     /* read/write */
#define REG_ENA_VP_1              REG(0x00, 0x19)     /* read/write */
#define REG_ENA_VP_2              REG(0x00, 0x1a)     /* read/write */
#define REG_ENA_AP                REG(0x00, 0x1e)     /* read/write */
#define REG_VIP_CNTRL_0           REG(0x00, 0x20)     /* write */
# define VIP_CNTRL_0_MIRR_A       (1 << 7)
# define VIP_CNTRL_0_SWAP_A(x)    (((x) & 7) << 4)
# define VIP_CNTRL_0_MIRR_B       (1 << 3)
# define VIP_CNTRL_0_SWAP_B(x)    (((x) & 7) << 0)
#define REG_VIP_CNTRL_1           REG(0x00, 0x21)     /* write */
# define VIP_CNTRL_1_MIRR_C       (1 << 7)
# define VIP_CNTRL_1_SWAP_C(x)    (((x) & 7) << 4)
# define VIP_CNTRL_1_MIRR_D       (1 << 3)
# define VIP_CNTRL_1_SWAP_D(x)    (((x) & 7) << 0)
#define REG_VIP_CNTRL_2           REG(0x00, 0x22)     /* write */
# define VIP_CNTRL_2_MIRR_E       (1 << 7)
# define VIP_CNTRL_2_SWAP_E(x)    (((x) & 7) << 4)
# define VIP_CNTRL_2_MIRR_F       (1 << 3)
# define VIP_CNTRL_2_SWAP_F(x)    (((x) & 7) << 0)
#define REG_VIP_CNTRL_3           REG(0x00, 0x23)     /* write */
# define VIP_CNTRL_3_X_TGL        (1 << 0)
# define VIP_CNTRL_3_H_TGL        (1 << 1)
# define VIP_CNTRL_3_V_TGL        (1 << 2)
# define VIP_CNTRL_3_EMB          (1 << 3)
# define VIP_CNTRL_3_SYNC_DE      (1 << 4)
# define VIP_CNTRL_3_SYNC_HS      (1 << 5)
# define VIP_CNTRL_3_DE_INT       (1 << 6)
# define VIP_CNTRL_3_EDGE         (1 << 7)
#define REG_VIP_CNTRL_4           REG(0x00, 0x24)     /* write */
# define VIP_CNTRL_4_BLC(x)       (((x) & 3) << 0)
# define VIP_CNTRL_4_BLANKIT(x)   (((x) & 3) << 2)
# define VIP_CNTRL_4_CCIR656      (1 << 4)
# define VIP_CNTRL_4_656_ALT      (1 << 5)
# define VIP_CNTRL_4_TST_656      (1 << 6)
# define VIP_CNTRL_4_TST_PAT      (1 << 7)
#define REG_VIP_CNTRL_5           REG(0x00, 0x25)     /* write */
# define VIP_CNTRL_5_CKCASE       (1 << 0)
# define VIP_CNTRL_5_SP_CNT(x)    (((x) & 3) << 1)
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#define REG_MUX_AP                REG(0x00, 0x26)     /* read/write */
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# define MUX_AP_SELECT_I2S	  0x64
# define MUX_AP_SELECT_SPDIF	  0x40
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#define REG_MUX_VP_VIP_OUT        REG(0x00, 0x27)     /* read/write */
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#define REG_MAT_CONTRL            REG(0x00, 0x80)     /* write */
# define MAT_CONTRL_MAT_SC(x)     (((x) & 3) << 0)
# define MAT_CONTRL_MAT_BP        (1 << 2)
#define REG_VIDFORMAT             REG(0x00, 0xa0)     /* write */
#define REG_REFPIX_MSB            REG(0x00, 0xa1)     /* write */
#define REG_REFPIX_LSB            REG(0x00, 0xa2)     /* write */
#define REG_REFLINE_MSB           REG(0x00, 0xa3)     /* write */
#define REG_REFLINE_LSB           REG(0x00, 0xa4)     /* write */
#define REG_NPIX_MSB              REG(0x00, 0xa5)     /* write */
#define REG_NPIX_LSB              REG(0x00, 0xa6)     /* write */
#define REG_NLINE_MSB             REG(0x00, 0xa7)     /* write */
#define REG_NLINE_LSB             REG(0x00, 0xa8)     /* write */
#define REG_VS_LINE_STRT_1_MSB    REG(0x00, 0xa9)     /* write */
#define REG_VS_LINE_STRT_1_LSB    REG(0x00, 0xaa)     /* write */
#define REG_VS_PIX_STRT_1_MSB     REG(0x00, 0xab)     /* write */
#define REG_VS_PIX_STRT_1_LSB     REG(0x00, 0xac)     /* write */
#define REG_VS_LINE_END_1_MSB     REG(0x00, 0xad)     /* write */
#define REG_VS_LINE_END_1_LSB     REG(0x00, 0xae)     /* write */
#define REG_VS_PIX_END_1_MSB      REG(0x00, 0xaf)     /* write */
#define REG_VS_PIX_END_1_LSB      REG(0x00, 0xb0)     /* write */
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#define REG_VS_LINE_STRT_2_MSB    REG(0x00, 0xb1)     /* write */
#define REG_VS_LINE_STRT_2_LSB    REG(0x00, 0xb2)     /* write */
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#define REG_VS_PIX_STRT_2_MSB     REG(0x00, 0xb3)     /* write */
#define REG_VS_PIX_STRT_2_LSB     REG(0x00, 0xb4)     /* write */
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#define REG_VS_LINE_END_2_MSB     REG(0x00, 0xb5)     /* write */
#define REG_VS_LINE_END_2_LSB     REG(0x00, 0xb6)     /* write */
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#define REG_VS_PIX_END_2_MSB      REG(0x00, 0xb7)     /* write */
#define REG_VS_PIX_END_2_LSB      REG(0x00, 0xb8)     /* write */
#define REG_HS_PIX_START_MSB      REG(0x00, 0xb9)     /* write */
#define REG_HS_PIX_START_LSB      REG(0x00, 0xba)     /* write */
#define REG_HS_PIX_STOP_MSB       REG(0x00, 0xbb)     /* write */
#define REG_HS_PIX_STOP_LSB       REG(0x00, 0xbc)     /* write */
#define REG_VWIN_START_1_MSB      REG(0x00, 0xbd)     /* write */
#define REG_VWIN_START_1_LSB      REG(0x00, 0xbe)     /* write */
#define REG_VWIN_END_1_MSB        REG(0x00, 0xbf)     /* write */
#define REG_VWIN_END_1_LSB        REG(0x00, 0xc0)     /* write */
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#define REG_VWIN_START_2_MSB      REG(0x00, 0xc1)     /* write */
#define REG_VWIN_START_2_LSB      REG(0x00, 0xc2)     /* write */
#define REG_VWIN_END_2_MSB        REG(0x00, 0xc3)     /* write */
#define REG_VWIN_END_2_LSB        REG(0x00, 0xc4)     /* write */
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#define REG_DE_START_MSB          REG(0x00, 0xc5)     /* write */
#define REG_DE_START_LSB          REG(0x00, 0xc6)     /* write */
#define REG_DE_STOP_MSB           REG(0x00, 0xc7)     /* write */
#define REG_DE_STOP_LSB           REG(0x00, 0xc8)     /* write */
#define REG_TBG_CNTRL_0           REG(0x00, 0xca)     /* write */
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# define TBG_CNTRL_0_TOP_TGL      (1 << 0)
# define TBG_CNTRL_0_TOP_SEL      (1 << 1)
# define TBG_CNTRL_0_DE_EXT       (1 << 2)
# define TBG_CNTRL_0_TOP_EXT      (1 << 3)
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# define TBG_CNTRL_0_FRAME_DIS    (1 << 5)
# define TBG_CNTRL_0_SYNC_MTHD    (1 << 6)
# define TBG_CNTRL_0_SYNC_ONCE    (1 << 7)
#define REG_TBG_CNTRL_1           REG(0x00, 0xcb)     /* write */
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# define TBG_CNTRL_1_H_TGL        (1 << 0)
# define TBG_CNTRL_1_V_TGL        (1 << 1)
# define TBG_CNTRL_1_TGL_EN       (1 << 2)
# define TBG_CNTRL_1_X_EXT        (1 << 3)
# define TBG_CNTRL_1_H_EXT        (1 << 4)
# define TBG_CNTRL_1_V_EXT        (1 << 5)
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# define TBG_CNTRL_1_DWIN_DIS     (1 << 6)
#define REG_ENABLE_SPACE          REG(0x00, 0xd6)     /* write */
#define REG_HVF_CNTRL_0           REG(0x00, 0xe4)     /* write */
# define HVF_CNTRL_0_SM           (1 << 7)
# define HVF_CNTRL_0_RWB          (1 << 6)
# define HVF_CNTRL_0_PREFIL(x)    (((x) & 3) << 2)
# define HVF_CNTRL_0_INTPOL(x)    (((x) & 3) << 0)
#define REG_HVF_CNTRL_1           REG(0x00, 0xe5)     /* write */
# define HVF_CNTRL_1_FOR          (1 << 0)
# define HVF_CNTRL_1_YUVBLK       (1 << 1)
# define HVF_CNTRL_1_VQR(x)       (((x) & 3) << 2)
# define HVF_CNTRL_1_PAD(x)       (((x) & 3) << 4)
# define HVF_CNTRL_1_SEMI_PLANAR  (1 << 6)
#define REG_RPT_CNTRL             REG(0x00, 0xf0)     /* write */
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#define REG_I2S_FORMAT            REG(0x00, 0xfc)     /* read/write */
# define I2S_FORMAT(x)            (((x) & 3) << 0)
#define REG_AIP_CLKSEL            REG(0x00, 0xfd)     /* write */
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# define AIP_CLKSEL_AIP_SPDIF	  (0 << 3)
# define AIP_CLKSEL_AIP_I2S	  (1 << 3)
# define AIP_CLKSEL_FS_ACLK	  (0 << 0)
# define AIP_CLKSEL_FS_MCLK	  (1 << 0)
# define AIP_CLKSEL_FS_FS64SPDIF  (2 << 0)
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/* Page 02h: PLL settings */
#define REG_PLL_SERIAL_1          REG(0x02, 0x00)     /* read/write */
# define PLL_SERIAL_1_SRL_FDN     (1 << 0)
# define PLL_SERIAL_1_SRL_IZ(x)   (((x) & 3) << 1)
# define PLL_SERIAL_1_SRL_MAN_IZ  (1 << 6)
#define REG_PLL_SERIAL_2          REG(0x02, 0x01)     /* read/write */
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# define PLL_SERIAL_2_SRL_NOSC(x) ((x) << 0)
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# define PLL_SERIAL_2_SRL_PR(x)   (((x) & 0xf) << 4)
#define REG_PLL_SERIAL_3          REG(0x02, 0x02)     /* read/write */
# define PLL_SERIAL_3_SRL_CCIR    (1 << 0)
# define PLL_SERIAL_3_SRL_DE      (1 << 2)
# define PLL_SERIAL_3_SRL_PXIN_SEL (1 << 4)
#define REG_SERIALIZER            REG(0x02, 0x03)     /* read/write */
#define REG_BUFFER_OUT            REG(0x02, 0x04)     /* read/write */
#define REG_PLL_SCG1              REG(0x02, 0x05)     /* read/write */
#define REG_PLL_SCG2              REG(0x02, 0x06)     /* read/write */
#define REG_PLL_SCGN1             REG(0x02, 0x07)     /* read/write */
#define REG_PLL_SCGN2             REG(0x02, 0x08)     /* read/write */
#define REG_PLL_SCGR1             REG(0x02, 0x09)     /* read/write */
#define REG_PLL_SCGR2             REG(0x02, 0x0a)     /* read/write */
#define REG_AUDIO_DIV             REG(0x02, 0x0e)     /* read/write */
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# define AUDIO_DIV_SERCLK_1       0
# define AUDIO_DIV_SERCLK_2       1
# define AUDIO_DIV_SERCLK_4       2
# define AUDIO_DIV_SERCLK_8       3
# define AUDIO_DIV_SERCLK_16      4
# define AUDIO_DIV_SERCLK_32      5
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#define REG_SEL_CLK               REG(0x02, 0x11)     /* read/write */
# define SEL_CLK_SEL_CLK1         (1 << 0)
# define SEL_CLK_SEL_VRF_CLK(x)   (((x) & 3) << 1)
# define SEL_CLK_ENA_SC_CLK       (1 << 3)
#define REG_ANA_GENERAL           REG(0x02, 0x12)     /* read/write */


/* Page 09h: EDID Control */
#define REG_EDID_DATA_0           REG(0x09, 0x00)     /* read */
/* next 127 successive registers are the EDID block */
#define REG_EDID_CTRL             REG(0x09, 0xfa)     /* read/write */
#define REG_DDC_ADDR              REG(0x09, 0xfb)     /* read/write */
#define REG_DDC_OFFS              REG(0x09, 0xfc)     /* read/write */
#define REG_DDC_SEGM_ADDR         REG(0x09, 0xfd)     /* read/write */
#define REG_DDC_SEGM              REG(0x09, 0xfe)     /* read/write */


/* Page 10h: information frames and packets */
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#define REG_IF1_HB0               REG(0x10, 0x20)     /* read/write */
#define REG_IF2_HB0               REG(0x10, 0x40)     /* read/write */
#define REG_IF3_HB0               REG(0x10, 0x60)     /* read/write */
#define REG_IF4_HB0               REG(0x10, 0x80)     /* read/write */
#define REG_IF5_HB0               REG(0x10, 0xa0)     /* read/write */
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/* Page 11h: audio settings and content info packets */
#define REG_AIP_CNTRL_0           REG(0x11, 0x00)     /* read/write */
# define AIP_CNTRL_0_RST_FIFO     (1 << 0)
# define AIP_CNTRL_0_SWAP         (1 << 1)
# define AIP_CNTRL_0_LAYOUT       (1 << 2)
# define AIP_CNTRL_0_ACR_MAN      (1 << 5)
# define AIP_CNTRL_0_RST_CTS      (1 << 6)
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#define REG_CA_I2S                REG(0x11, 0x01)     /* read/write */
# define CA_I2S_CA_I2S(x)         (((x) & 31) << 0)
# define CA_I2S_HBR_CHSTAT        (1 << 6)
#define REG_LATENCY_RD            REG(0x11, 0x04)     /* read/write */
#define REG_ACR_CTS_0             REG(0x11, 0x05)     /* read/write */
#define REG_ACR_CTS_1             REG(0x11, 0x06)     /* read/write */
#define REG_ACR_CTS_2             REG(0x11, 0x07)     /* read/write */
#define REG_ACR_N_0               REG(0x11, 0x08)     /* read/write */
#define REG_ACR_N_1               REG(0x11, 0x09)     /* read/write */
#define REG_ACR_N_2               REG(0x11, 0x0a)     /* read/write */
#define REG_CTS_N                 REG(0x11, 0x0c)     /* read/write */
# define CTS_N_K(x)               (((x) & 7) << 0)
# define CTS_N_M(x)               (((x) & 3) << 4)
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#define REG_ENC_CNTRL             REG(0x11, 0x0d)     /* read/write */
# define ENC_CNTRL_RST_ENC        (1 << 0)
# define ENC_CNTRL_RST_SEL        (1 << 1)
# define ENC_CNTRL_CTL_CODE(x)    (((x) & 3) << 2)
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#define REG_DIP_FLAGS             REG(0x11, 0x0e)     /* read/write */
# define DIP_FLAGS_ACR            (1 << 0)
# define DIP_FLAGS_GC             (1 << 1)
#define REG_DIP_IF_FLAGS          REG(0x11, 0x0f)     /* read/write */
# define DIP_IF_FLAGS_IF1         (1 << 1)
# define DIP_IF_FLAGS_IF2         (1 << 2)
# define DIP_IF_FLAGS_IF3         (1 << 3)
# define DIP_IF_FLAGS_IF4         (1 << 4)
# define DIP_IF_FLAGS_IF5         (1 << 5)
#define REG_CH_STAT_B(x)          REG(0x11, 0x14 + (x)) /* read/write */
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/* Page 12h: HDCP and OTP */
#define REG_TX3                   REG(0x12, 0x9a)     /* read/write */
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#define REG_TX4                   REG(0x12, 0x9b)     /* read/write */
# define TX4_PD_RAM               (1 << 1)
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#define REG_TX33                  REG(0x12, 0xb8)     /* read/write */
# define TX33_HDMI                (1 << 1)


/* Page 13h: Gamut related metadata packets */



/* CEC registers: (not paged)
 */
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#define REG_CEC_INTSTATUS	  0xee		      /* read */
# define CEC_INTSTATUS_CEC	  (1 << 0)
# define CEC_INTSTATUS_HDMI	  (1 << 1)
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#define REG_CEC_FRO_IM_CLK_CTRL   0xfb                /* read/write */
# define CEC_FRO_IM_CLK_CTRL_GHOST_DIS (1 << 7)
# define CEC_FRO_IM_CLK_CTRL_ENA_OTP   (1 << 6)
# define CEC_FRO_IM_CLK_CTRL_IMCLK_SEL (1 << 1)
# define CEC_FRO_IM_CLK_CTRL_FRO_DIV   (1 << 0)
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#define REG_CEC_RXSHPDINTENA	  0xfc		      /* read/write */
#define REG_CEC_RXSHPDINT	  0xfd		      /* read */
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#define REG_CEC_RXSHPDLEV         0xfe                /* read */
# define CEC_RXSHPDLEV_RXSENS     (1 << 0)
# define CEC_RXSHPDLEV_HPD        (1 << 1)

#define REG_CEC_ENAMODS           0xff                /* read/write */
# define CEC_ENAMODS_DIS_FRO      (1 << 6)
# define CEC_ENAMODS_DIS_CCLK     (1 << 5)
# define CEC_ENAMODS_EN_RXSENS    (1 << 2)
# define CEC_ENAMODS_EN_HDMI      (1 << 1)
# define CEC_ENAMODS_EN_CEC       (1 << 0)


/* Device versions: */
#define TDA9989N2                 0x0101
#define TDA19989                  0x0201
#define TDA19989N2                0x0202
#define TDA19988                  0x0301

static void
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cec_write(struct tda998x_priv *priv, uint16_t addr, uint8_t val)
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{
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	struct i2c_client *client = priv->cec;
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	uint8_t buf[] = {addr, val};
	int ret;

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	ret = i2c_master_send(client, buf, sizeof(buf));
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	if (ret < 0)
		dev_err(&client->dev, "Error %d writing to cec:0x%x\n", ret, addr);
}

static uint8_t
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cec_read(struct tda998x_priv *priv, uint8_t addr)
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{
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	struct i2c_client *client = priv->cec;
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	uint8_t val;
	int ret;

	ret = i2c_master_send(client, &addr, sizeof(addr));
	if (ret < 0)
		goto fail;

	ret = i2c_master_recv(client, &val, sizeof(val));
	if (ret < 0)
		goto fail;

	return val;

fail:
	dev_err(&client->dev, "Error %d reading from cec:0x%x\n", ret, addr);
	return 0;
}

379
static int
380
set_page(struct tda998x_priv *priv, uint16_t reg)
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{
	if (REG2PAGE(reg) != priv->current_page) {
383
		struct i2c_client *client = priv->hdmi;
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		uint8_t buf[] = {
				REG_CURPAGE, REG2PAGE(reg)
		};
		int ret = i2c_master_send(client, buf, sizeof(buf));
388
		if (ret < 0) {
389 390
			dev_err(&client->dev, "setpage %04x err %d\n",
					reg, ret);
391 392
			return ret;
		}
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		priv->current_page = REG2PAGE(reg);
	}
396
	return 0;
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}

static int
400
reg_read_range(struct tda998x_priv *priv, uint16_t reg, char *buf, int cnt)
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{
402
	struct i2c_client *client = priv->hdmi;
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	uint8_t addr = REG2ADDR(reg);
	int ret;

406 407 408
	ret = set_page(priv, reg);
	if (ret < 0)
		return ret;
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	ret = i2c_master_send(client, &addr, sizeof(addr));
	if (ret < 0)
		goto fail;

	ret = i2c_master_recv(client, buf, cnt);
	if (ret < 0)
		goto fail;

	return ret;

fail:
	dev_err(&client->dev, "Error %d reading from 0x%x\n", ret, reg);
	return ret;
}

425
static void
426
reg_write_range(struct tda998x_priv *priv, uint16_t reg, uint8_t *p, int cnt)
427
{
428
	struct i2c_client *client = priv->hdmi;
429 430 431 432 433 434
	uint8_t buf[cnt+1];
	int ret;

	buf[0] = REG2ADDR(reg);
	memcpy(&buf[1], p, cnt);

435 436 437
	ret = set_page(priv, reg);
	if (ret < 0)
		return;
438 439 440 441 442 443

	ret = i2c_master_send(client, buf, cnt + 1);
	if (ret < 0)
		dev_err(&client->dev, "Error %d writing to 0x%x\n", ret, reg);
}

444
static int
445
reg_read(struct tda998x_priv *priv, uint16_t reg)
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{
	uint8_t val = 0;
448 449 450 451 452
	int ret;

	ret = reg_read_range(priv, reg, &val, sizeof(val));
	if (ret < 0)
		return ret;
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	return val;
}

static void
457
reg_write(struct tda998x_priv *priv, uint16_t reg, uint8_t val)
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{
459
	struct i2c_client *client = priv->hdmi;
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	uint8_t buf[] = {REG2ADDR(reg), val};
	int ret;

463 464 465
	ret = set_page(priv, reg);
	if (ret < 0)
		return;
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467
	ret = i2c_master_send(client, buf, sizeof(buf));
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	if (ret < 0)
		dev_err(&client->dev, "Error %d writing to 0x%x\n", ret, reg);
}

static void
473
reg_write16(struct tda998x_priv *priv, uint16_t reg, uint16_t val)
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{
475
	struct i2c_client *client = priv->hdmi;
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	uint8_t buf[] = {REG2ADDR(reg), val >> 8, val};
	int ret;

479 480 481
	ret = set_page(priv, reg);
	if (ret < 0)
		return;
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483
	ret = i2c_master_send(client, buf, sizeof(buf));
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	if (ret < 0)
		dev_err(&client->dev, "Error %d writing to 0x%x\n", ret, reg);
}

static void
489
reg_set(struct tda998x_priv *priv, uint16_t reg, uint8_t val)
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{
491 492 493 494 495
	int old_val;

	old_val = reg_read(priv, reg);
	if (old_val >= 0)
		reg_write(priv, reg, old_val | val);
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}

static void
499
reg_clear(struct tda998x_priv *priv, uint16_t reg, uint8_t val)
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{
501 502 503 504 505
	int old_val;

	old_val = reg_read(priv, reg);
	if (old_val >= 0)
		reg_write(priv, reg, old_val & ~val);
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}

static void
509
tda998x_reset(struct tda998x_priv *priv)
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{
	/* reset audio and i2c master: */
512
	reg_write(priv, REG_SOFTRESET, SOFTRESET_AUDIO | SOFTRESET_I2C_MASTER);
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	msleep(50);
514
	reg_write(priv, REG_SOFTRESET, 0);
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	msleep(50);

	/* reset transmitter: */
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	reg_set(priv, REG_MAIN_CNTRL0, MAIN_CNTRL0_SR);
	reg_clear(priv, REG_MAIN_CNTRL0, MAIN_CNTRL0_SR);
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	/* PLL registers common configuration */
522 523 524 525 526 527 528 529 530 531 532 533 534
	reg_write(priv, REG_PLL_SERIAL_1, 0x00);
	reg_write(priv, REG_PLL_SERIAL_2, PLL_SERIAL_2_SRL_NOSC(1));
	reg_write(priv, REG_PLL_SERIAL_3, 0x00);
	reg_write(priv, REG_SERIALIZER,   0x00);
	reg_write(priv, REG_BUFFER_OUT,   0x00);
	reg_write(priv, REG_PLL_SCG1,     0x00);
	reg_write(priv, REG_AUDIO_DIV,    AUDIO_DIV_SERCLK_8);
	reg_write(priv, REG_SEL_CLK,      SEL_CLK_SEL_CLK1 | SEL_CLK_ENA_SC_CLK);
	reg_write(priv, REG_PLL_SCGN1,    0xfa);
	reg_write(priv, REG_PLL_SCGN2,    0x00);
	reg_write(priv, REG_PLL_SCGR1,    0x5b);
	reg_write(priv, REG_PLL_SCGR2,    0x00);
	reg_write(priv, REG_PLL_SCG2,     0x10);
535 536

	/* Write the default value MUX register */
537
	reg_write(priv, REG_MUX_VP_VIP_OUT, 0x24);
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}

540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568
/*
 * only 2 interrupts may occur: screen plug/unplug and EDID read
 */
static irqreturn_t tda998x_irq_thread(int irq, void *data)
{
	struct tda998x_priv *priv = data;
	u8 sta, cec, lvl, flag0, flag1, flag2;

	if (!priv)
		return IRQ_HANDLED;
	sta = cec_read(priv, REG_CEC_INTSTATUS);
	cec = cec_read(priv, REG_CEC_RXSHPDINT);
	lvl = cec_read(priv, REG_CEC_RXSHPDLEV);
	flag0 = reg_read(priv, REG_INT_FLAGS_0);
	flag1 = reg_read(priv, REG_INT_FLAGS_1);
	flag2 = reg_read(priv, REG_INT_FLAGS_2);
	DRM_DEBUG_DRIVER(
		"tda irq sta %02x cec %02x lvl %02x f0 %02x f1 %02x f2 %02x\n",
		sta, cec, lvl, flag0, flag1, flag2);
	if ((flag2 & INT_FLAGS_2_EDID_BLK_RD) && priv->wq_edid_wait) {
		priv->wq_edid_wait = 0;
		wake_up(&priv->wq_edid);
	} else if (cec != 0) {			/* HPD change */
		if (priv->encoder && priv->encoder->dev)
			drm_helper_hpd_irq_event(priv->encoder->dev);
	}
	return IRQ_HANDLED;
}

569 570 571 572 573 574 575 576 577 578 579 580 581
static uint8_t tda998x_cksum(uint8_t *buf, size_t bytes)
{
	uint8_t sum = 0;

	while (bytes--)
		sum += *buf++;
	return (255 - sum) + 1;
}

#define HB(x) (x)
#define PB(x) (HB(2) + 1 + (x))

static void
582
tda998x_write_if(struct tda998x_priv *priv, uint8_t bit, uint16_t addr,
583 584 585 586
		 uint8_t *buf, size_t size)
{
	buf[PB(0)] = tda998x_cksum(buf, size);

587 588 589
	reg_clear(priv, REG_DIP_IF_FLAGS, bit);
	reg_write_range(priv, addr, buf, size);
	reg_set(priv, REG_DIP_IF_FLAGS, bit);
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}

static void
593
tda998x_write_aif(struct tda998x_priv *priv, struct tda998x_encoder_params *p)
594
{
595
	u8 buf[PB(HDMI_AUDIO_INFOFRAME_SIZE) + 1];
596

597
	memset(buf, 0, sizeof(buf));
598
	buf[HB(0)] = HDMI_INFOFRAME_TYPE_AUDIO;
599
	buf[HB(1)] = 0x01;
600
	buf[HB(2)] = HDMI_AUDIO_INFOFRAME_SIZE;
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	buf[PB(1)] = p->audio_frame[1] & 0x07; /* CC */
	buf[PB(2)] = p->audio_frame[2] & 0x1c; /* SF */
	buf[PB(4)] = p->audio_frame[4];
	buf[PB(5)] = p->audio_frame[5] & 0xf8; /* DM_INH + LSV */

606
	tda998x_write_if(priv, DIP_IF_FLAGS_IF4, REG_IF4_HB0, buf,
607 608 609 610
			 sizeof(buf));
}

static void
611
tda998x_write_avi(struct tda998x_priv *priv, struct drm_display_mode *mode)
612
{
613
	u8 buf[PB(HDMI_AVI_INFOFRAME_SIZE) + 1];
614 615

	memset(buf, 0, sizeof(buf));
616
	buf[HB(0)] = HDMI_INFOFRAME_TYPE_AVI;
617
	buf[HB(1)] = 0x02;
618
	buf[HB(2)] = HDMI_AVI_INFOFRAME_SIZE;
619
	buf[PB(1)] = HDMI_SCAN_MODE_UNDERSCAN;
620
	buf[PB(2)] = HDMI_ACTIVE_ASPECT_PICTURE;
621
	buf[PB(3)] = HDMI_QUANTIZATION_RANGE_FULL << 2;
622 623
	buf[PB(4)] = drm_match_cea_mode(mode);

624
	tda998x_write_if(priv, DIP_IF_FLAGS_IF2, REG_IF2_HB0, buf,
625 626 627
			 sizeof(buf));
}

628
static void tda998x_audio_mute(struct tda998x_priv *priv, bool on)
629 630
{
	if (on) {
631 632 633
		reg_set(priv, REG_SOFTRESET, SOFTRESET_AUDIO);
		reg_clear(priv, REG_SOFTRESET, SOFTRESET_AUDIO);
		reg_set(priv, REG_AIP_CNTRL_0, AIP_CNTRL_0_RST_FIFO);
634
	} else {
635
		reg_clear(priv, REG_AIP_CNTRL_0, AIP_CNTRL_0_RST_FIFO);
636 637 638 639
	}
}

static void
640
tda998x_configure_audio(struct tda998x_priv *priv,
641 642 643 644 645 646
		struct drm_display_mode *mode, struct tda998x_encoder_params *p)
{
	uint8_t buf[6], clksel_aip, clksel_fs, ca_i2s, cts_n, adiv;
	uint32_t n;

	/* Enable audio ports */
647 648
	reg_write(priv, REG_ENA_AP, p->audio_cfg);
	reg_write(priv, REG_ENA_ACLK, p->audio_clk_cfg);
649 650 651 652

	/* Set audio input source */
	switch (p->audio_format) {
	case AFMT_SPDIF:
653 654 655
		reg_write(priv, REG_MUX_AP, MUX_AP_SELECT_SPDIF);
		clksel_aip = AIP_CLKSEL_AIP_SPDIF;
		clksel_fs = AIP_CLKSEL_FS_FS64SPDIF;
656 657 658 659 660
		cts_n = CTS_N_M(3) | CTS_N_K(3);
		ca_i2s = 0;
		break;

	case AFMT_I2S:
661 662 663
		reg_write(priv, REG_MUX_AP, MUX_AP_SELECT_I2S);
		clksel_aip = AIP_CLKSEL_AIP_I2S;
		clksel_fs = AIP_CLKSEL_FS_ACLK;
664 665 666
		cts_n = CTS_N_M(3) | CTS_N_K(3);
		ca_i2s = CA_I2S_CA_I2S(0);
		break;
667 668 669 670

	default:
		BUG();
		return;
671 672
	}

673 674
	reg_write(priv, REG_AIP_CLKSEL, clksel_aip);
	reg_clear(priv, REG_AIP_CNTRL_0, AIP_CNTRL_0_LAYOUT);
675 676

	/* Enable automatic CTS generation */
677 678
	reg_clear(priv, REG_AIP_CNTRL_0, AIP_CNTRL_0_ACR_MAN);
	reg_write(priv, REG_CTS_N, cts_n);
679 680 681 682 683 684 685 686 687 688 689 690

	/*
	 * Audio input somehow depends on HDMI line rate which is
	 * related to pixclk. Testing showed that modes with pixclk
	 * >100MHz need a larger divider while <40MHz need the default.
	 * There is no detailed info in the datasheet, so we just
	 * assume 100MHz requires larger divider.
	 */
	if (mode->clock > 100000)
		adiv = AUDIO_DIV_SERCLK_16;
	else
		adiv = AUDIO_DIV_SERCLK_8;
691
	reg_write(priv, REG_AUDIO_DIV, adiv);
692 693 694 695 696 697 698 699 700 701 702 703 704 705

	/*
	 * This is the approximate value of N, which happens to be
	 * the recommended values for non-coherent clocks.
	 */
	n = 128 * p->audio_sample_rate / 1000;

	/* Write the CTS and N values */
	buf[0] = 0x44;
	buf[1] = 0x42;
	buf[2] = 0x01;
	buf[3] = n;
	buf[4] = n >> 8;
	buf[5] = n >> 16;
706
	reg_write_range(priv, REG_ACR_CTS_0, buf, 6);
707 708

	/* Set CTS clock reference */
709
	reg_write(priv, REG_AIP_CLKSEL, clksel_aip | clksel_fs);
710 711

	/* Reset CTS generator */
712 713
	reg_set(priv, REG_AIP_CNTRL_0, AIP_CNTRL_0_RST_CTS);
	reg_clear(priv, REG_AIP_CNTRL_0, AIP_CNTRL_0_RST_CTS);
714 715

	/* Write the channel status */
716
	buf[0] = IEC958_AES0_CON_NOT_COPYRIGHT;
717
	buf[1] = 0x00;
718 719 720
	buf[2] = IEC958_AES3_CON_FS_NOTID;
	buf[3] = IEC958_AES4_CON_ORIGFS_NOTID |
			IEC958_AES4_CON_MAX_WORDLEN_24;
721
	reg_write_range(priv, REG_CH_STAT_B(0), buf, 4);
722

723
	tda998x_audio_mute(priv, true);
724
	msleep(20);
725
	tda998x_audio_mute(priv, false);
726 727

	/* Write the audio information packet */
728
	tda998x_write_aif(priv, p);
729 730
}

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/* DRM encoder functions */

static void
tda998x_encoder_set_config(struct drm_encoder *encoder, void *params)
{
736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752
	struct tda998x_priv *priv = to_tda998x_priv(encoder);
	struct tda998x_encoder_params *p = params;

	priv->vip_cntrl_0 = VIP_CNTRL_0_SWAP_A(p->swap_a) |
			    (p->mirr_a ? VIP_CNTRL_0_MIRR_A : 0) |
			    VIP_CNTRL_0_SWAP_B(p->swap_b) |
			    (p->mirr_b ? VIP_CNTRL_0_MIRR_B : 0);
	priv->vip_cntrl_1 = VIP_CNTRL_1_SWAP_C(p->swap_c) |
			    (p->mirr_c ? VIP_CNTRL_1_MIRR_C : 0) |
			    VIP_CNTRL_1_SWAP_D(p->swap_d) |
			    (p->mirr_d ? VIP_CNTRL_1_MIRR_D : 0);
	priv->vip_cntrl_2 = VIP_CNTRL_2_SWAP_E(p->swap_e) |
			    (p->mirr_e ? VIP_CNTRL_2_MIRR_E : 0) |
			    VIP_CNTRL_2_SWAP_F(p->swap_f) |
			    (p->mirr_f ? VIP_CNTRL_2_MIRR_F : 0);

	priv->params = *p;
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}

static void
tda998x_encoder_dpms(struct drm_encoder *encoder, int mode)
{
	struct tda998x_priv *priv = to_tda998x_priv(encoder);

	/* we only care about on or off: */
	if (mode != DRM_MODE_DPMS_ON)
		mode = DRM_MODE_DPMS_OFF;

	if (mode == priv->dpms)
		return;

	switch (mode) {
	case DRM_MODE_DPMS_ON:
769
		/* enable video ports, audio will be enabled later */
770 771 772
		reg_write(priv, REG_ENA_VP_0, 0xff);
		reg_write(priv, REG_ENA_VP_1, 0xff);
		reg_write(priv, REG_ENA_VP_2, 0xff);
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773
		/* set muxing after enabling ports: */
774 775 776
		reg_write(priv, REG_VIP_CNTRL_0, priv->vip_cntrl_0);
		reg_write(priv, REG_VIP_CNTRL_1, priv->vip_cntrl_1);
		reg_write(priv, REG_VIP_CNTRL_2, priv->vip_cntrl_2);
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		break;
	case DRM_MODE_DPMS_OFF:
779
		/* disable video ports */
780 781 782
		reg_write(priv, REG_ENA_VP_0, 0x00);
		reg_write(priv, REG_ENA_VP_1, 0x00);
		reg_write(priv, REG_ENA_VP_2, 0x00);
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		break;
	}

	priv->dpms = mode;
}

static void
tda998x_encoder_save(struct drm_encoder *encoder)
{
	DBG("");
}

static void
tda998x_encoder_restore(struct drm_encoder *encoder)
{
	DBG("");
}

static bool
tda998x_encoder_mode_fixup(struct drm_encoder *encoder,
			  const struct drm_display_mode *mode,
			  struct drm_display_mode *adjusted_mode)
{
	return true;
}

static int
tda998x_encoder_mode_valid(struct drm_encoder *encoder,
			  struct drm_display_mode *mode)
{
	return MODE_OK;
}

static void
tda998x_encoder_mode_set(struct drm_encoder *encoder,
			struct drm_display_mode *mode,
			struct drm_display_mode *adjusted_mode)
{
	struct tda998x_priv *priv = to_tda998x_priv(encoder);
822 823 824 825 826 827 828
	uint16_t ref_pix, ref_line, n_pix, n_line;
	uint16_t hs_pix_s, hs_pix_e;
	uint16_t vs1_pix_s, vs1_pix_e, vs1_line_s, vs1_line_e;
	uint16_t vs2_pix_s, vs2_pix_e, vs2_line_s, vs2_line_e;
	uint16_t vwin1_line_s, vwin1_line_e;
	uint16_t vwin2_line_s, vwin2_line_e;
	uint16_t de_pix_s, de_pix_e;
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	uint8_t reg, div, rep;

831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846
	/*
	 * Internally TDA998x is using ITU-R BT.656 style sync but
	 * we get VESA style sync. TDA998x is using a reference pixel
	 * relative to ITU to sync to the input frame and for output
	 * sync generation. Currently, we are using reference detection
	 * from HS/VS, i.e. REFPIX/REFLINE denote frame start sync point
	 * which is position of rising VS with coincident rising HS.
	 *
	 * Now there is some issues to take care of:
	 * - HDMI data islands require sync-before-active
	 * - TDA998x register values must be > 0 to be enabled
	 * - REFLINE needs an additional offset of +1
	 * - REFPIX needs an addtional offset of +1 for UYUV and +3 for RGB
	 *
	 * So we add +1 to all horizontal and vertical register values,
	 * plus an additional +3 for REFPIX as we are using RGB input only.
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	 */
848 849 850 851 852 853 854 855 856
	n_pix        = mode->htotal;
	n_line       = mode->vtotal;

	hs_pix_e     = mode->hsync_end - mode->hdisplay;
	hs_pix_s     = mode->hsync_start - mode->hdisplay;
	de_pix_e     = mode->htotal;
	de_pix_s     = mode->htotal - mode->hdisplay;
	ref_pix      = 3 + hs_pix_s;

857 858 859 860 861 862 863 864
	/*
	 * Attached LCD controllers may generate broken sync. Allow
	 * those to adjust the position of the rising VS edge by adding
	 * HSKEW to ref_pix.
	 */
	if (adjusted_mode->flags & DRM_MODE_FLAG_HSKEW)
		ref_pix += adjusted_mode->hskew;

865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890
	if ((mode->flags & DRM_MODE_FLAG_INTERLACE) == 0) {
		ref_line     = 1 + mode->vsync_start - mode->vdisplay;
		vwin1_line_s = mode->vtotal - mode->vdisplay - 1;
		vwin1_line_e = vwin1_line_s + mode->vdisplay;
		vs1_pix_s    = vs1_pix_e = hs_pix_s;
		vs1_line_s   = mode->vsync_start - mode->vdisplay;
		vs1_line_e   = vs1_line_s +
			       mode->vsync_end - mode->vsync_start;
		vwin2_line_s = vwin2_line_e = 0;
		vs2_pix_s    = vs2_pix_e  = 0;
		vs2_line_s   = vs2_line_e = 0;
	} else {
		ref_line     = 1 + (mode->vsync_start - mode->vdisplay)/2;
		vwin1_line_s = (mode->vtotal - mode->vdisplay)/2;
		vwin1_line_e = vwin1_line_s + mode->vdisplay/2;
		vs1_pix_s    = vs1_pix_e = hs_pix_s;
		vs1_line_s   = (mode->vsync_start - mode->vdisplay)/2;
		vs1_line_e   = vs1_line_s +
			       (mode->vsync_end - mode->vsync_start)/2;
		vwin2_line_s = vwin1_line_s + mode->vtotal/2;
		vwin2_line_e = vwin2_line_s + mode->vdisplay/2;
		vs2_pix_s    = vs2_pix_e = hs_pix_s + mode->htotal/2;
		vs2_line_s   = vs1_line_s + mode->vtotal/2 ;
		vs2_line_e   = vs2_line_s +
			       (mode->vsync_end - mode->vsync_start)/2;
	}
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891 892

	div = 148500 / mode->clock;
893 894 895 896 897
	if (div != 0) {
		div--;
		if (div > 3)
			div = 3;
	}
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898 899

	/* mute the audio FIFO: */
900
	reg_set(priv, REG_AIP_CNTRL_0, AIP_CNTRL_0_RST_FIFO);
R
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901 902

	/* set HDMI HDCP mode off: */
903
	reg_write(priv, REG_TBG_CNTRL_1, TBG_CNTRL_1_DWIN_DIS);
904 905
	reg_clear(priv, REG_TX33, TX33_HDMI);
	reg_write(priv, REG_ENC_CNTRL, ENC_CNTRL_CTL_CODE(0));
R
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906 907

	/* no pre-filter or interpolator: */
908
	reg_write(priv, REG_HVF_CNTRL_0, HVF_CNTRL_0_PREFIL(0) |
R
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909
			HVF_CNTRL_0_INTPOL(0));
910 911
	reg_write(priv, REG_VIP_CNTRL_5, VIP_CNTRL_5_SP_CNT(0));
	reg_write(priv, REG_VIP_CNTRL_4, VIP_CNTRL_4_BLANKIT(0) |
R
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912
			VIP_CNTRL_4_BLC(0));
913
	reg_clear(priv, REG_PLL_SERIAL_3, PLL_SERIAL_3_SRL_CCIR);
R
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914

915 916 917 918
	reg_clear(priv, REG_PLL_SERIAL_1, PLL_SERIAL_1_SRL_MAN_IZ);
	reg_clear(priv, REG_PLL_SERIAL_3, PLL_SERIAL_3_SRL_DE);
	reg_write(priv, REG_SERIALIZER, 0);
	reg_write(priv, REG_HVF_CNTRL_1, HVF_CNTRL_1_VQR(0));
R
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919 920 921

	/* TODO enable pixel repeat for pixel rates less than 25Msamp/s */
	rep = 0;
922 923
	reg_write(priv, REG_RPT_CNTRL, 0);
	reg_write(priv, REG_SEL_CLK, SEL_CLK_SEL_VRF_CLK(0) |
R
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924 925
			SEL_CLK_SEL_CLK1 | SEL_CLK_ENA_SC_CLK);

926
	reg_write(priv, REG_PLL_SERIAL_2, PLL_SERIAL_2_SRL_NOSC(div) |
R
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927 928 929
			PLL_SERIAL_2_SRL_PR(rep));

	/* set color matrix bypass flag: */
930 931
	reg_write(priv, REG_MAT_CONTRL, MAT_CONTRL_MAT_BP |
				MAT_CONTRL_MAT_SC(1));
R
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932 933

	/* set BIAS tmds value: */
934
	reg_write(priv, REG_ANA_GENERAL, 0x09);
R
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935

936
	reg_write(priv, REG_TBG_CNTRL_0, 0);
R
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937

938 939 940
	/*
	 * Sync on rising HSYNC/VSYNC
	 */
941
	reg = VIP_CNTRL_3_SYNC_HS;
942 943 944 945 946 947

	/*
	 * TDA19988 requires high-active sync at input stage,
	 * so invert low-active sync provided by master encoder here
	 */
	if (mode->flags & DRM_MODE_FLAG_NHSYNC)
948
		reg |= VIP_CNTRL_3_H_TGL;
R
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949
	if (mode->flags & DRM_MODE_FLAG_NVSYNC)
950 951
		reg |= VIP_CNTRL_3_V_TGL;
	reg_write(priv, REG_VIP_CNTRL_3, reg);
952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973

	reg_write(priv, REG_VIDFORMAT, 0x00);
	reg_write16(priv, REG_REFPIX_MSB, ref_pix);
	reg_write16(priv, REG_REFLINE_MSB, ref_line);
	reg_write16(priv, REG_NPIX_MSB, n_pix);
	reg_write16(priv, REG_NLINE_MSB, n_line);
	reg_write16(priv, REG_VS_LINE_STRT_1_MSB, vs1_line_s);
	reg_write16(priv, REG_VS_PIX_STRT_1_MSB, vs1_pix_s);
	reg_write16(priv, REG_VS_LINE_END_1_MSB, vs1_line_e);
	reg_write16(priv, REG_VS_PIX_END_1_MSB, vs1_pix_e);
	reg_write16(priv, REG_VS_LINE_STRT_2_MSB, vs2_line_s);
	reg_write16(priv, REG_VS_PIX_STRT_2_MSB, vs2_pix_s);
	reg_write16(priv, REG_VS_LINE_END_2_MSB, vs2_line_e);
	reg_write16(priv, REG_VS_PIX_END_2_MSB, vs2_pix_e);
	reg_write16(priv, REG_HS_PIX_START_MSB, hs_pix_s);
	reg_write16(priv, REG_HS_PIX_STOP_MSB, hs_pix_e);
	reg_write16(priv, REG_VWIN_START_1_MSB, vwin1_line_s);
	reg_write16(priv, REG_VWIN_END_1_MSB, vwin1_line_e);
	reg_write16(priv, REG_VWIN_START_2_MSB, vwin2_line_s);
	reg_write16(priv, REG_VWIN_END_2_MSB, vwin2_line_e);
	reg_write16(priv, REG_DE_START_MSB, de_pix_s);
	reg_write16(priv, REG_DE_STOP_MSB, de_pix_e);
R
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974 975 976

	if (priv->rev == TDA19988) {
		/* let incoming pixels fill the active space (if any) */
977
		reg_write(priv, REG_ENABLE_SPACE, 0x00);
R
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978 979
	}

980 981 982 983 984 985 986 987 988 989 990
	/*
	 * Always generate sync polarity relative to input sync and
	 * revert input stage toggled sync at output stage
	 */
	reg = TBG_CNTRL_1_DWIN_DIS | TBG_CNTRL_1_TGL_EN;
	if (mode->flags & DRM_MODE_FLAG_NHSYNC)
		reg |= TBG_CNTRL_1_H_TGL;
	if (mode->flags & DRM_MODE_FLAG_NVSYNC)
		reg |= TBG_CNTRL_1_V_TGL;
	reg_write(priv, REG_TBG_CNTRL_1, reg);

R
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991
	/* must be last register set: */
992
	reg_write(priv, REG_TBG_CNTRL_0, 0);
993 994 995 996

	/* Only setup the info frames if the sink is HDMI */
	if (priv->is_hdmi_sink) {
		/* We need to turn HDMI HDCP stuff on to get audio through */
997 998
		reg &= ~TBG_CNTRL_1_DWIN_DIS;
		reg_write(priv, REG_TBG_CNTRL_1, reg);
999 1000
		reg_write(priv, REG_ENC_CNTRL, ENC_CNTRL_CTL_CODE(1));
		reg_set(priv, REG_TX33, TX33_HDMI);
1001

1002
		tda998x_write_avi(priv, adjusted_mode);
1003 1004

		if (priv->params.audio_cfg)
1005
			tda998x_configure_audio(priv, adjusted_mode,
1006 1007
						&priv->params);
	}
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}

static enum drm_connector_status
tda998x_encoder_detect(struct drm_encoder *encoder,
		      struct drm_connector *connector)
{
1014 1015 1016
	struct tda998x_priv *priv = to_tda998x_priv(encoder);
	uint8_t val = cec_read(priv, REG_CEC_RXSHPDLEV);

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1017 1018 1019 1020 1021 1022 1023
	return (val & CEC_RXSHPDLEV_HPD) ? connector_status_connected :
			connector_status_disconnected;
}

static int
read_edid_block(struct drm_encoder *encoder, uint8_t *buf, int blk)
{
1024
	struct tda998x_priv *priv = to_tda998x_priv(encoder);
R
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1025 1026 1027 1028 1029 1030
	uint8_t offset, segptr;
	int ret, i;

	offset = (blk & 1) ? 128 : 0;
	segptr = blk / 2;

1031 1032 1033 1034
	reg_write(priv, REG_DDC_ADDR, 0xa0);
	reg_write(priv, REG_DDC_OFFS, offset);
	reg_write(priv, REG_DDC_SEGM_ADDR, 0x60);
	reg_write(priv, REG_DDC_SEGM, segptr);
R
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1035 1036

	/* enable reading EDID: */
1037
	priv->wq_edid_wait = 1;
1038
	reg_write(priv, REG_EDID_CTRL, 0x1);
R
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1039 1040

	/* flag must be cleared by sw: */
1041
	reg_write(priv, REG_EDID_CTRL, 0x0);
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1042 1043

	/* wait for block read to complete: */
1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060
	if (priv->hdmi->irq) {
		i = wait_event_timeout(priv->wq_edid,
					!priv->wq_edid_wait,
					msecs_to_jiffies(100));
		if (i < 0) {
			dev_err(encoder->dev->dev, "read edid wait err %d\n", i);
			return i;
		}
	} else {
		for (i = 10; i > 0; i--) {
			msleep(10);
			ret = reg_read(priv, REG_INT_FLAGS_2);
			if (ret < 0)
				return ret;
			if (ret & INT_FLAGS_2_EDID_BLK_RD)
				break;
		}
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1061 1062
	}

1063 1064
	if (i == 0) {
		dev_err(encoder->dev->dev, "read edid timeout\n");
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1065
		return -ETIMEDOUT;
1066
	}
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1067

1068
	ret = reg_read_range(priv, REG_EDID_DATA_0, buf, EDID_LENGTH);
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1069
	if (ret != EDID_LENGTH) {
1070
		dev_err(encoder->dev->dev, "failed to read edid block %d: %d\n",
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1071 1072 1073 1074 1075 1076 1077 1078 1079 1080
				blk, ret);
		return ret;
	}

	return 0;
}

static uint8_t *
do_get_edid(struct drm_encoder *encoder)
{
1081
	struct tda998x_priv *priv = to_tda998x_priv(encoder);
1082
	int j, valid_extensions = 0;
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1083 1084 1085 1086 1087 1088
	uint8_t *block, *new;
	bool print_bad_edid = drm_debug & DRM_UT_KMS;

	if ((block = kmalloc(EDID_LENGTH, GFP_KERNEL)) == NULL)
		return NULL;

1089
	if (priv->rev == TDA19988)
1090
		reg_clear(priv, REG_TX4, TX4_PD_RAM);
1091

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1092 1093 1094 1095 1096 1097 1098 1099 1100
	/* base block fetch */
	if (read_edid_block(encoder, block, 0))
		goto fail;

	if (!drm_edid_block_valid(block, 0, print_bad_edid))
		goto fail;

	/* if there's no extensions, we're done */
	if (block[0x7e] == 0)
1101
		goto done;
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1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127

	new = krealloc(block, (block[0x7e] + 1) * EDID_LENGTH, GFP_KERNEL);
	if (!new)
		goto fail;
	block = new;

	for (j = 1; j <= block[0x7e]; j++) {
		uint8_t *ext_block = block + (valid_extensions + 1) * EDID_LENGTH;
		if (read_edid_block(encoder, ext_block, j))
			goto fail;

		if (!drm_edid_block_valid(ext_block, j, print_bad_edid))
			goto fail;

		valid_extensions++;
	}

	if (valid_extensions != block[0x7e]) {
		block[EDID_LENGTH-1] += block[0x7e] - valid_extensions;
		block[0x7e] = valid_extensions;
		new = krealloc(block, (valid_extensions + 1) * EDID_LENGTH, GFP_KERNEL);
		if (!new)
			goto fail;
		block = new;
	}

1128 1129
done:
	if (priv->rev == TDA19988)
1130
		reg_set(priv, REG_TX4, TX4_PD_RAM);
1131

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1132 1133 1134
	return block;

fail:
1135
	if (priv->rev == TDA19988)
1136
		reg_set(priv, REG_TX4, TX4_PD_RAM);
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1137 1138 1139 1140 1141 1142 1143 1144 1145
	dev_warn(encoder->dev->dev, "failed to read EDID\n");
	kfree(block);
	return NULL;
}

static int
tda998x_encoder_get_modes(struct drm_encoder *encoder,
			 struct drm_connector *connector)
{
1146
	struct tda998x_priv *priv = to_tda998x_priv(encoder);
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1147 1148 1149 1150 1151 1152
	struct edid *edid = (struct edid *)do_get_edid(encoder);
	int n = 0;

	if (edid) {
		drm_mode_connector_update_edid_property(connector, edid);
		n = drm_add_edid_modes(connector, edid);
1153
		priv->is_hdmi_sink = drm_detect_hdmi_monitor(edid);
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1154 1155 1156 1157 1158 1159 1160 1161 1162 1163
		kfree(edid);
	}

	return n;
}

static int
tda998x_encoder_create_resources(struct drm_encoder *encoder,
				struct drm_connector *connector)
{
1164 1165 1166 1167 1168 1169 1170
	struct tda998x_priv *priv = to_tda998x_priv(encoder);

	if (priv->hdmi->irq)
		connector->polled = DRM_CONNECTOR_POLL_HPD;
	else
		connector->polled = DRM_CONNECTOR_POLL_CONNECT |
			DRM_CONNECTOR_POLL_DISCONNECT;
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1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188
	return 0;
}

static int
tda998x_encoder_set_property(struct drm_encoder *encoder,
			    struct drm_connector *connector,
			    struct drm_property *property,
			    uint64_t val)
{
	DBG("");
	return 0;
}

static void
tda998x_encoder_destroy(struct drm_encoder *encoder)
{
	struct tda998x_priv *priv = to_tda998x_priv(encoder);
	drm_i2c_encoder_destroy(encoder);
1189 1190 1191 1192 1193 1194 1195

	/* disable all IRQs and free the IRQ handler */
	cec_write(priv, REG_CEC_RXSHPDINTENA, 0);
	reg_clear(priv, REG_INT_FLAGS_2, INT_FLAGS_2_EDID_BLK_RD);
	if (priv->hdmi->irq)
		free_irq(priv->hdmi->irq, priv);

1196 1197
	if (priv->cec)
		i2c_unregister_device(priv->cec);
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1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235
	kfree(priv);
}

static struct drm_encoder_slave_funcs tda998x_encoder_funcs = {
	.set_config = tda998x_encoder_set_config,
	.destroy = tda998x_encoder_destroy,
	.dpms = tda998x_encoder_dpms,
	.save = tda998x_encoder_save,
	.restore = tda998x_encoder_restore,
	.mode_fixup = tda998x_encoder_mode_fixup,
	.mode_valid = tda998x_encoder_mode_valid,
	.mode_set = tda998x_encoder_mode_set,
	.detect = tda998x_encoder_detect,
	.get_modes = tda998x_encoder_get_modes,
	.create_resources = tda998x_encoder_create_resources,
	.set_property = tda998x_encoder_set_property,
};

/* I2C driver functions */

static int
tda998x_probe(struct i2c_client *client, const struct i2c_device_id *id)
{
	return 0;
}

static int
tda998x_remove(struct i2c_client *client)
{
	return 0;
}

static int
tda998x_encoder_init(struct i2c_client *client,
		    struct drm_device *dev,
		    struct drm_encoder_slave *encoder_slave)
{
	struct tda998x_priv *priv;
1236 1237
	struct device_node *np = client->dev.of_node;
	u32 video;
1238
	int rev_lo, rev_hi, ret;
R
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1239 1240 1241 1242 1243

	priv = kzalloc(sizeof(*priv), GFP_KERNEL);
	if (!priv)
		return -ENOMEM;

1244 1245 1246 1247
	priv->vip_cntrl_0 = VIP_CNTRL_0_SWAP_A(2) | VIP_CNTRL_0_SWAP_B(3);
	priv->vip_cntrl_1 = VIP_CNTRL_1_SWAP_C(0) | VIP_CNTRL_1_SWAP_D(1);
	priv->vip_cntrl_2 = VIP_CNTRL_2_SWAP_E(4) | VIP_CNTRL_2_SWAP_F(5);

1248
	priv->current_page = 0xff;
1249
	priv->hdmi = client;
R
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1250
	priv->cec = i2c_new_dummy(client->adapter, 0x34);
1251 1252
	if (!priv->cec) {
		kfree(priv);
1253
		return -ENODEV;
1254
	}
1255 1256

	priv->encoder = &encoder_slave->base;
R
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1257 1258 1259 1260 1261 1262
	priv->dpms = DRM_MODE_DPMS_OFF;

	encoder_slave->slave_priv = priv;
	encoder_slave->slave_funcs = &tda998x_encoder_funcs;

	/* wake up the device: */
1263
	cec_write(priv, REG_CEC_ENAMODS,
R
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1264 1265
			CEC_ENAMODS_EN_RXSENS | CEC_ENAMODS_EN_HDMI);

1266
	tda998x_reset(priv);
R
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1267 1268

	/* read version: */
1269 1270 1271 1272
	rev_lo = reg_read(priv, REG_VERSION_LSB);
	rev_hi = reg_read(priv, REG_VERSION_MSB);
	if (rev_lo < 0 || rev_hi < 0) {
		ret = rev_lo < 0 ? rev_lo : rev_hi;
1273
		goto fail;
1274 1275 1276
	}

	priv->rev = rev_lo | rev_hi << 8;
R
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1277 1278 1279 1280 1281

	/* mask off feature bits: */
	priv->rev &= ~0x30; /* not-hdcp and not-scalar bit */

	switch (priv->rev) {
1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293
	case TDA9989N2:
		dev_info(&client->dev, "found TDA9989 n2");
		break;
	case TDA19989:
		dev_info(&client->dev, "found TDA19989");
		break;
	case TDA19989N2:
		dev_info(&client->dev, "found TDA19989 n2");
		break;
	case TDA19988:
		dev_info(&client->dev, "found TDA19988");
		break;
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1294
	default:
1295 1296
		dev_err(&client->dev, "found unsupported device: %04x\n",
			priv->rev);
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1297 1298 1299 1300
		goto fail;
	}

	/* after reset, enable DDC: */
1301
	reg_write(priv, REG_DDC_DISABLE, 0x00);
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1302 1303

	/* set clock on DDC channel: */
1304
	reg_write(priv, REG_TX3, 39);
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1305 1306 1307

	/* if necessary, disable multi-master: */
	if (priv->rev == TDA19989)
1308
		reg_set(priv, REG_I2C_MASTER, I2C_MASTER_DIS_MM);
R
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1309

1310
	cec_write(priv, REG_CEC_FRO_IM_CLK_CTRL,
R
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1311 1312
			CEC_FRO_IM_CLK_CTRL_GHOST_DIS | CEC_FRO_IM_CLK_CTRL_IMCLK_SEL);

1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341
	/* initialize the optional IRQ */
	if (client->irq) {
		int irqf_trigger;

		/* init read EDID waitqueue */
		init_waitqueue_head(&priv->wq_edid);

		/* clear pending interrupts */
		reg_read(priv, REG_INT_FLAGS_0);
		reg_read(priv, REG_INT_FLAGS_1);
		reg_read(priv, REG_INT_FLAGS_2);

		irqf_trigger =
			irqd_get_trigger_type(irq_get_irq_data(client->irq));
		ret = request_threaded_irq(client->irq, NULL,
					   tda998x_irq_thread,
					   irqf_trigger | IRQF_ONESHOT,
					   "tda998x", priv);
		if (ret) {
			dev_err(&client->dev,
				"failed to request IRQ#%u: %d\n",
				client->irq, ret);
			goto fail;
		}

		/* enable HPD irq */
		cec_write(priv, REG_CEC_RXSHPDINTENA, CEC_RXSHPDLEV_HPD);
	}

1342 1343 1344
	/* enable EDID read irq: */
	reg_set(priv, REG_INT_FLAGS_2, INT_FLAGS_2_EDID_BLK_RD);

1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355
	if (!np)
		return 0;		/* non-DT */

	/* get the optional video properties */
	ret = of_property_read_u32(np, "video-ports", &video);
	if (ret == 0) {
		priv->vip_cntrl_0 = video >> 16;
		priv->vip_cntrl_1 = video >> 8;
		priv->vip_cntrl_2 = video;
	}

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1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369
	return 0;

fail:
	/* if encoder_init fails, the encoder slave is never registered,
	 * so cleanup here:
	 */
	if (priv->cec)
		i2c_unregister_device(priv->cec);
	kfree(priv);
	encoder_slave->slave_priv = NULL;
	encoder_slave->slave_funcs = NULL;
	return -ENXIO;
}

1370 1371 1372 1373 1374 1375 1376 1377
#ifdef CONFIG_OF
static const struct of_device_id tda998x_dt_ids[] = {
	{ .compatible = "nxp,tda998x", },
	{ }
};
MODULE_DEVICE_TABLE(of, tda998x_dt_ids);
#endif

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1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389
static struct i2c_device_id tda998x_ids[] = {
	{ "tda998x", 0 },
	{ }
};
MODULE_DEVICE_TABLE(i2c, tda998x_ids);

static struct drm_i2c_encoder_driver tda998x_driver = {
	.i2c_driver = {
		.probe = tda998x_probe,
		.remove = tda998x_remove,
		.driver = {
			.name = "tda998x",
1390
			.of_match_table = of_match_ptr(tda998x_dt_ids),
R
Rob Clark 已提交
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		},
		.id_table = tda998x_ids,
	},
	.encoder_init = tda998x_encoder_init,
};

/* Module initialization */

static int __init
tda998x_init(void)
{
	DBG("");
	return drm_i2c_encoder_register(THIS_MODULE, &tda998x_driver);
}

static void __exit
tda998x_exit(void)
{
	DBG("");
	drm_i2c_encoder_unregister(&tda998x_driver);
}

MODULE_AUTHOR("Rob Clark <robdclark@gmail.com");
MODULE_DESCRIPTION("NXP Semiconductors TDA998X HDMI Encoder");
MODULE_LICENSE("GPL");

module_init(tda998x_init);
module_exit(tda998x_exit);