root/drivers/media/platform/ti/j721e-csi2rx/j721e-csi2rx.c
// SPDX-License-Identifier: GPL-2.0-only
/*
 * TI CSI2RX Shim Wrapper Driver
 *
 * Copyright (C) 2023 Texas Instruments Incorporated - https://www.ti.com/
 *
 * Author: Pratyush Yadav <p.yadav@ti.com>
 * Author: Jai Luthra <j-luthra@ti.com>
 */

#include <linux/bitfield.h>
#include <linux/dmaengine.h>
#include <linux/module.h>
#include <linux/of_platform.h>
#include <linux/platform_device.h>
#include <linux/pm_runtime.h>
#include <linux/property.h>

#include <media/cadence/cdns-csi2rx.h>
#include <media/mipi-csi2.h>
#include <media/v4l2-device.h>
#include <media/v4l2-ioctl.h>
#include <media/v4l2-mc.h>
#include <media/videobuf2-dma-contig.h>

#define TI_CSI2RX_MODULE_NAME           "j721e-csi2rx"

#define SHIM_CNTL                       0x10
#define SHIM_CNTL_PIX_RST               BIT(0)

#define SHIM_DMACNTX(i)                 (0x20 + ((i) * 0x20))
#define SHIM_DMACNTX_EN                 BIT(31)
#define SHIM_DMACNTX_YUV422             GENMASK(27, 26)
#define SHIM_DMACNTX_DUAL_PCK_CFG       BIT(24)
#define SHIM_DMACNTX_SIZE               GENMASK(21, 20)
#define SHIM_DMACNTX_VC                 GENMASK(9, 6)
#define SHIM_DMACNTX_FMT                GENMASK(5, 0)
#define SHIM_DMACNTX_YUV422_MODE_11     3
#define SHIM_DMACNTX_SIZE_8             0
#define SHIM_DMACNTX_SIZE_16            1
#define SHIM_DMACNTX_SIZE_32            2

#define SHIM_PSI_CFG0(i)                (0x24 + ((i) * 0x20))
#define SHIM_PSI_CFG0_SRC_TAG           GENMASK(15, 0)
#define SHIM_PSI_CFG0_DST_TAG           GENMASK(31, 16)

#define TI_CSI2RX_MAX_PIX_PER_CLK       4
#define TI_CSI2RX_MAX_CTX               32

/*
 * There are no hard limits on the width or height. The DMA engine can handle
 * all sizes. The max width and height are arbitrary numbers for this driver.
 * Use 16K * 16K as the arbitrary limit. It is large enough that it is unlikely
 * the limit will be hit in practice.
 */
#define MAX_WIDTH_BYTES                 SZ_16K
#define MAX_HEIGHT_LINES                SZ_16K

#define TI_CSI2RX_PAD_SINK              0
#define TI_CSI2RX_PAD_FIRST_SOURCE      1
#define TI_CSI2RX_MAX_SOURCE_PADS       TI_CSI2RX_MAX_CTX
#define TI_CSI2RX_MAX_PADS              (1 + TI_CSI2RX_MAX_SOURCE_PADS)

#define DRAIN_TIMEOUT_MS                50
#define DRAIN_BUFFER_SIZE               SZ_32K

#define CSI2RX_BRIDGE_SOURCE_PAD        1

struct ti_csi2rx_fmt {
        u32                             fourcc; /* Four character code. */
        u32                             code;   /* Mbus code. */
        u32                             csi_dt; /* CSI Data type. */
        u8                              bpp;    /* Bits per pixel. */
        u8                              size;   /* Data size shift when unpacking. */
};

struct ti_csi2rx_buffer {
        /* Common v4l2 buffer. Must be first. */
        struct vb2_v4l2_buffer          vb;
        struct list_head                list;
        struct ti_csi2rx_ctx            *ctx;
};

enum ti_csi2rx_dma_state {
        TI_CSI2RX_DMA_STOPPED,  /* Streaming not started yet. */
        TI_CSI2RX_DMA_ACTIVE,   /* Streaming and pending DMA operation. */
        TI_CSI2RX_DMA_DRAINING, /* Dumping all the data in drain buffer */
};

struct ti_csi2rx_dma {
        /* Protects all fields in this struct. */
        spinlock_t                      lock;
        struct dma_chan                 *chan;
        /* Buffers queued to the driver, waiting to be processed by DMA. */
        struct list_head                queue;
        enum ti_csi2rx_dma_state        state;
        /*
         * Queue of buffers submitted to DMA engine.
         */
        struct list_head                submitted;
};

struct ti_csi2rx_dev;

struct ti_csi2rx_ctx {
        struct ti_csi2rx_dev            *csi;
        struct video_device             vdev;
        struct vb2_queue                vidq;
        struct mutex                    mutex; /* To serialize ioctls. */
        struct v4l2_format              v_fmt;
        struct ti_csi2rx_dma            dma;
        struct media_pad                pad;
        struct completion               drain_complete;
        u32                             sequence;
        u32                             idx;
        u32                             vc;
        u32                             dt;
        u32                             stream;
};

struct ti_csi2rx_dev {
        struct device                   *dev;
        void __iomem                    *shim;
        unsigned int                    enable_count;
        unsigned int                    num_ctx;
        struct v4l2_device              v4l2_dev;
        struct media_device             mdev;
        struct media_pipeline           pipe;
        struct media_pad                pads[TI_CSI2RX_MAX_PADS];
        struct v4l2_async_notifier      notifier;
        struct v4l2_subdev              *source;
        struct v4l2_subdev              subdev;
        struct ti_csi2rx_ctx            ctx[TI_CSI2RX_MAX_CTX];
        struct notifier_block           pm_notifier;
        u8                              pix_per_clk;
        /* Buffer to drain stale data from PSI-L endpoint */
        struct {
                void                    *vaddr;
                dma_addr_t              paddr;
                size_t                  len;
        } drain;
};

static inline struct ti_csi2rx_dev *to_csi2rx_dev(struct v4l2_subdev *sd)
{
        return container_of(sd, struct ti_csi2rx_dev, subdev);
}

static const struct ti_csi2rx_fmt ti_csi2rx_formats[] = {
        {
                .fourcc                 = V4L2_PIX_FMT_YUYV,
                .code                   = MEDIA_BUS_FMT_YUYV8_1X16,
                .csi_dt                 = MIPI_CSI2_DT_YUV422_8B,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_UYVY,
                .code                   = MEDIA_BUS_FMT_UYVY8_1X16,
                .csi_dt                 = MIPI_CSI2_DT_YUV422_8B,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_YVYU,
                .code                   = MEDIA_BUS_FMT_YVYU8_1X16,
                .csi_dt                 = MIPI_CSI2_DT_YUV422_8B,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_VYUY,
                .code                   = MEDIA_BUS_FMT_VYUY8_1X16,
                .csi_dt                 = MIPI_CSI2_DT_YUV422_8B,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_SBGGR8,
                .code                   = MEDIA_BUS_FMT_SBGGR8_1X8,
                .csi_dt                 = MIPI_CSI2_DT_RAW8,
                .bpp                    = 8,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_SGBRG8,
                .code                   = MEDIA_BUS_FMT_SGBRG8_1X8,
                .csi_dt                 = MIPI_CSI2_DT_RAW8,
                .bpp                    = 8,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_SGRBG8,
                .code                   = MEDIA_BUS_FMT_SGRBG8_1X8,
                .csi_dt                 = MIPI_CSI2_DT_RAW8,
                .bpp                    = 8,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_SRGGB8,
                .code                   = MEDIA_BUS_FMT_SRGGB8_1X8,
                .csi_dt                 = MIPI_CSI2_DT_RAW8,
                .bpp                    = 8,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_GREY,
                .code                   = MEDIA_BUS_FMT_Y8_1X8,
                .csi_dt                 = MIPI_CSI2_DT_RAW8,
                .bpp                    = 8,
                .size                   = SHIM_DMACNTX_SIZE_8,
        }, {
                .fourcc                 = V4L2_PIX_FMT_SBGGR10,
                .code                   = MEDIA_BUS_FMT_SBGGR10_1X10,
                .csi_dt                 = MIPI_CSI2_DT_RAW10,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_16,
        }, {
                .fourcc                 = V4L2_PIX_FMT_SGBRG10,
                .code                   = MEDIA_BUS_FMT_SGBRG10_1X10,
                .csi_dt                 = MIPI_CSI2_DT_RAW10,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_16,
        }, {
                .fourcc                 = V4L2_PIX_FMT_SGRBG10,
                .code                   = MEDIA_BUS_FMT_SGRBG10_1X10,
                .csi_dt                 = MIPI_CSI2_DT_RAW10,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_16,
        }, {
                .fourcc                 = V4L2_PIX_FMT_SRGGB10,
                .code                   = MEDIA_BUS_FMT_SRGGB10_1X10,
                .csi_dt                 = MIPI_CSI2_DT_RAW10,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_16,
        }, {
                .fourcc                 = V4L2_PIX_FMT_RGB565X,
                .code                   = MEDIA_BUS_FMT_RGB565_1X16,
                .csi_dt                 = MIPI_CSI2_DT_RGB565,
                .bpp                    = 16,
                .size                   = SHIM_DMACNTX_SIZE_16,
        }, {
                .fourcc                 = V4L2_PIX_FMT_XBGR32,
                .code                   = MEDIA_BUS_FMT_RGB888_1X24,
                .csi_dt                 = MIPI_CSI2_DT_RGB888,
                .bpp                    = 32,
                .size                   = SHIM_DMACNTX_SIZE_32,
        }, {
                .fourcc                 = V4L2_PIX_FMT_RGBX32,
                .code                   = MEDIA_BUS_FMT_BGR888_1X24,
                .csi_dt                 = MIPI_CSI2_DT_RGB888,
                .bpp                    = 32,
                .size                   = SHIM_DMACNTX_SIZE_32,
        },

        /* More formats can be supported but they are not listed for now. */
};

/* Forward declaration needed by ti_csi2rx_dma_callback. */
static int ti_csi2rx_start_dma(struct ti_csi2rx_ctx *ctx,
                               struct ti_csi2rx_buffer *buf);

/* Forward declarations needed by ti_csi2rx_drain_callback. */
static int ti_csi2rx_drain_dma(struct ti_csi2rx_ctx *ctx);
static int ti_csi2rx_dma_submit_pending(struct ti_csi2rx_ctx *ctx);

static const struct ti_csi2rx_fmt *find_format_by_fourcc(u32 pixelformat)
{
        unsigned int i;

        for (i = 0; i < ARRAY_SIZE(ti_csi2rx_formats); i++) {
                if (ti_csi2rx_formats[i].fourcc == pixelformat)
                        return &ti_csi2rx_formats[i];
        }

        return NULL;
}

static const struct ti_csi2rx_fmt *find_format_by_code(u32 code)
{
        unsigned int i;

        for (i = 0; i < ARRAY_SIZE(ti_csi2rx_formats); i++) {
                if (ti_csi2rx_formats[i].code == code)
                        return &ti_csi2rx_formats[i];
        }

        return NULL;
}

static void ti_csi2rx_fill_fmt(const struct ti_csi2rx_fmt *csi_fmt,
                               struct v4l2_format *v4l2_fmt)
{
        struct v4l2_pix_format *pix = &v4l2_fmt->fmt.pix;

        /* Clamp width and height to sensible maximums (16K x 16K) */
        pix->width = clamp_t(unsigned int, pix->width,
                             1, MAX_WIDTH_BYTES * 8 / csi_fmt->bpp);
        pix->height = clamp_t(unsigned int, pix->height, 1, MAX_HEIGHT_LINES);

        v4l2_fmt->type = V4L2_BUF_TYPE_VIDEO_CAPTURE;
        pix->pixelformat = csi_fmt->fourcc;
        pix->bytesperline = pix->width * (csi_fmt->bpp / 8);
        pix->sizeimage = pix->bytesperline * pix->height;
}

static int ti_csi2rx_querycap(struct file *file, void *priv,
                              struct v4l2_capability *cap)
{
        strscpy(cap->driver, TI_CSI2RX_MODULE_NAME, sizeof(cap->driver));
        strscpy(cap->card, TI_CSI2RX_MODULE_NAME, sizeof(cap->card));

        return 0;
}

static int ti_csi2rx_enum_fmt_vid_cap(struct file *file, void *priv,
                                      struct v4l2_fmtdesc *f)
{
        const struct ti_csi2rx_fmt *fmt = NULL;

        if (f->mbus_code) {
                /* 1-to-1 mapping between bus formats and pixel formats */
                if (f->index > 0)
                        return -EINVAL;

                fmt = find_format_by_code(f->mbus_code);
        } else {
                if (f->index >= ARRAY_SIZE(ti_csi2rx_formats))
                        return -EINVAL;

                fmt = &ti_csi2rx_formats[f->index];
        }

        if (!fmt)
                return -EINVAL;

        f->pixelformat = fmt->fourcc;
        memset(f->reserved, 0, sizeof(f->reserved));
        f->type = V4L2_BUF_TYPE_VIDEO_CAPTURE;

        return 0;
}

static int ti_csi2rx_g_fmt_vid_cap(struct file *file, void *priv,
                                   struct v4l2_format *f)
{
        struct ti_csi2rx_ctx *csi = video_drvdata(file);

        *f = csi->v_fmt;

        return 0;
}

static int ti_csi2rx_try_fmt_vid_cap(struct file *file, void *priv,
                                     struct v4l2_format *f)
{
        const struct ti_csi2rx_fmt *fmt;

        /*
         * Default to the first format if the requested pixel format code isn't
         * supported.
         */
        fmt = find_format_by_fourcc(f->fmt.pix.pixelformat);
        if (!fmt)
                fmt = &ti_csi2rx_formats[0];

        /* Interlaced formats are not supported. */
        f->fmt.pix.field = V4L2_FIELD_NONE;

        ti_csi2rx_fill_fmt(fmt, f);

        return 0;
}

static int ti_csi2rx_s_fmt_vid_cap(struct file *file, void *priv,
                                   struct v4l2_format *f)
{
        struct ti_csi2rx_ctx *csi = video_drvdata(file);
        struct vb2_queue *q = &csi->vidq;
        int ret;

        if (vb2_is_busy(q))
                return -EBUSY;

        ret = ti_csi2rx_try_fmt_vid_cap(file, priv, f);
        if (ret < 0)
                return ret;

        csi->v_fmt = *f;

        return 0;
}

static int ti_csi2rx_enum_framesizes(struct file *file, void *fh,
                                     struct v4l2_frmsizeenum *fsize)
{
        const struct ti_csi2rx_fmt *fmt;

        fmt = find_format_by_fourcc(fsize->pixel_format);
        if (!fmt || fsize->index != 0)
                return -EINVAL;

        fsize->type = V4L2_FRMSIZE_TYPE_STEPWISE;
        fsize->stepwise.min_width = 1;
        fsize->stepwise.max_width = MAX_WIDTH_BYTES * 8 / fmt->bpp;
        fsize->stepwise.step_width = 1;
        fsize->stepwise.min_height = 1;
        fsize->stepwise.max_height = MAX_HEIGHT_LINES;
        fsize->stepwise.step_height = 1;

        return 0;
}

static const struct v4l2_ioctl_ops csi_ioctl_ops = {
        .vidioc_querycap      = ti_csi2rx_querycap,
        .vidioc_enum_fmt_vid_cap = ti_csi2rx_enum_fmt_vid_cap,
        .vidioc_try_fmt_vid_cap = ti_csi2rx_try_fmt_vid_cap,
        .vidioc_g_fmt_vid_cap = ti_csi2rx_g_fmt_vid_cap,
        .vidioc_s_fmt_vid_cap = ti_csi2rx_s_fmt_vid_cap,
        .vidioc_enum_framesizes = ti_csi2rx_enum_framesizes,
        .vidioc_reqbufs       = vb2_ioctl_reqbufs,
        .vidioc_create_bufs   = vb2_ioctl_create_bufs,
        .vidioc_prepare_buf   = vb2_ioctl_prepare_buf,
        .vidioc_querybuf      = vb2_ioctl_querybuf,
        .vidioc_qbuf          = vb2_ioctl_qbuf,
        .vidioc_dqbuf         = vb2_ioctl_dqbuf,
        .vidioc_expbuf        = vb2_ioctl_expbuf,
        .vidioc_streamon      = vb2_ioctl_streamon,
        .vidioc_streamoff     = vb2_ioctl_streamoff,
};

static const struct v4l2_file_operations csi_fops = {
        .owner = THIS_MODULE,
        .open = v4l2_fh_open,
        .release = vb2_fop_release,
        .read = vb2_fop_read,
        .poll = vb2_fop_poll,
        .unlocked_ioctl = video_ioctl2,
        .mmap = vb2_fop_mmap,
};

static int csi_async_notifier_bound(struct v4l2_async_notifier *notifier,
                                    struct v4l2_subdev *subdev,
                                    struct v4l2_async_connection *asc)
{
        struct ti_csi2rx_dev *csi = dev_get_drvdata(notifier->v4l2_dev->dev);

        csi->source = subdev;

        return 0;
}

static int csi_async_notifier_complete(struct v4l2_async_notifier *notifier)
{
        struct ti_csi2rx_dev *csi = dev_get_drvdata(notifier->v4l2_dev->dev);
        int ret, i;

        /* Create link from source to subdev */
        ret = media_create_pad_link(&csi->source->entity,
                                    CSI2RX_BRIDGE_SOURCE_PAD,
                                    &csi->subdev.entity,
                                    TI_CSI2RX_PAD_SINK,
                                    MEDIA_LNK_FL_IMMUTABLE |
                                    MEDIA_LNK_FL_ENABLED);

        if (ret)
                return ret;

        /* Create and link video nodes for all DMA contexts */
        for (i = 0; i < csi->num_ctx; i++) {
                struct ti_csi2rx_ctx *ctx = &csi->ctx[i];
                struct video_device *vdev = &ctx->vdev;

                ret = video_register_device(vdev, VFL_TYPE_VIDEO, -1);
                if (ret)
                        goto unregister_dev;

                ret = media_create_pad_link(&csi->subdev.entity,
                                            TI_CSI2RX_PAD_FIRST_SOURCE + ctx->idx,
                                            &vdev->entity, 0,
                                            MEDIA_LNK_FL_IMMUTABLE |
                                            MEDIA_LNK_FL_ENABLED);
                if (ret) {
                        video_unregister_device(vdev);
                        goto unregister_dev;
                }
        }

        ret = v4l2_device_register_subdev_nodes(&csi->v4l2_dev);
        if (ret)
                goto unregister_dev;

        return 0;

unregister_dev:
        while (i--) {
                media_entity_remove_links(&csi->ctx[i].vdev.entity);
                video_unregister_device(&csi->ctx[i].vdev);
        }
        return ret;
}

static const struct v4l2_async_notifier_operations csi_async_notifier_ops = {
        .bound = csi_async_notifier_bound,
        .complete = csi_async_notifier_complete,
};

static int ti_csi2rx_notifier_register(struct ti_csi2rx_dev *csi)
{
        struct fwnode_handle *fwnode;
        struct v4l2_async_connection *asc;
        int ret;

        fwnode = fwnode_get_named_child_node(csi->dev->fwnode, "csi-bridge");
        if (!fwnode)
                return -EINVAL;

        v4l2_async_nf_init(&csi->notifier, &csi->v4l2_dev);
        csi->notifier.ops = &csi_async_notifier_ops;

        asc = v4l2_async_nf_add_fwnode(&csi->notifier, fwnode,
                                       struct v4l2_async_connection);
        /*
         * Calling v4l2_async_nf_add_fwnode grabs a refcount,
         * so drop the one we got in fwnode_get_named_child_node
         */
        fwnode_handle_put(fwnode);

        if (IS_ERR(asc)) {
                v4l2_async_nf_cleanup(&csi->notifier);
                return PTR_ERR(asc);
        }

        ret = v4l2_async_nf_register(&csi->notifier);
        if (ret) {
                v4l2_async_nf_cleanup(&csi->notifier);
                return ret;
        }

        return 0;
}

/* Request maximum possible pixels per clock from the bridge */
static void ti_csi2rx_request_max_ppc(struct ti_csi2rx_dev *csi)
{
        u8 ppc = TI_CSI2RX_MAX_PIX_PER_CLK;
        struct media_pad *pad;
        int ret;

        pad = media_entity_remote_source_pad_unique(&csi->subdev.entity);
        if (IS_ERR(pad))
                return;

        ret = cdns_csi2rx_negotiate_ppc(csi->source, pad->index, &ppc);
        if (ret) {
                dev_warn(csi->dev, "NUM_PIXELS negotiation failed: %d\n", ret);
                csi->pix_per_clk = 1;
        } else {
                csi->pix_per_clk = ppc;
        }
}

static void ti_csi2rx_setup_shim(struct ti_csi2rx_ctx *ctx)
{
        struct ti_csi2rx_dev *csi = ctx->csi;
        const struct ti_csi2rx_fmt *fmt;
        unsigned int reg;

        fmt = find_format_by_fourcc(ctx->v_fmt.fmt.pix.pixelformat);

        /* Negotiate pixel count from the source */
        ti_csi2rx_request_max_ppc(csi);

        reg = SHIM_DMACNTX_EN;
        reg |= FIELD_PREP(SHIM_DMACNTX_FMT, ctx->dt);

        /*
         * The hardware assumes incoming YUV422 8-bit data on MIPI CSI2 bus
         * follows the spec and is packed in the order U0 -> Y0 -> V0 -> Y1 ->
         * ...
         *
         * There is an option to swap the bytes around before storing in
         * memory, to achieve different pixel formats:
         *
         * Byte3 <----------- Byte0
         * [ Y1 ][ V0 ][ Y0 ][ U0 ]     MODE 11
         * [ Y1 ][ U0 ][ Y0 ][ V0 ]     MODE 10
         * [ V0 ][ Y1 ][ U0 ][ Y0 ]     MODE 01
         * [ U0 ][ Y1 ][ V0 ][ Y0 ]     MODE 00
         *
         * We don't have any requirement to change pixelformat from what is
         * coming from the source, so we keep it in MODE 11, which does not
         * swap any bytes when storing in memory.
         */
        switch (fmt->fourcc) {
        case V4L2_PIX_FMT_UYVY:
        case V4L2_PIX_FMT_VYUY:
        case V4L2_PIX_FMT_YUYV:
        case V4L2_PIX_FMT_YVYU:
                reg |= FIELD_PREP(SHIM_DMACNTX_YUV422,
                                  SHIM_DMACNTX_YUV422_MODE_11);
                /* Multiple pixels are handled differently for packed YUV */
                if (csi->pix_per_clk == 2)
                        reg |= SHIM_DMACNTX_DUAL_PCK_CFG;
                reg |= FIELD_PREP(SHIM_DMACNTX_SIZE, fmt->size);
                break;
        default:
                /* By default we change the shift size for multiple pixels */
                reg |= FIELD_PREP(SHIM_DMACNTX_SIZE,
                                  fmt->size + (csi->pix_per_clk >> 1));
                break;
        }

        reg |= FIELD_PREP(SHIM_DMACNTX_VC, ctx->vc);

        writel(reg, csi->shim + SHIM_DMACNTX(ctx->idx));

        reg = FIELD_PREP(SHIM_PSI_CFG0_SRC_TAG, 0) |
              FIELD_PREP(SHIM_PSI_CFG0_DST_TAG, 0);
        writel(reg, csi->shim + SHIM_PSI_CFG0(ctx->idx));
}

static void ti_csi2rx_drain_callback(void *param)
{
        struct ti_csi2rx_ctx *ctx = param;
        struct ti_csi2rx_dma *dma = &ctx->dma;
        unsigned long flags;

        spin_lock_irqsave(&dma->lock, flags);

        if (dma->state == TI_CSI2RX_DMA_STOPPED) {
                complete(&ctx->drain_complete);
                spin_unlock_irqrestore(&dma->lock, flags);
                return;
        }

        /*
         * If dma->queue is empty, it indicates that no buffer has been
         * provided by user space. In this case, initiate a transactions
         * to drain the DMA. Since one drain of size DRAIN_BUFFER_SIZE
         * will be done here, the subsequent frame will be a
         * partial frame, with a size of frame_size - DRAIN_BUFFER_SIZE
         */
        if (list_empty(&dma->queue)) {
                if (ti_csi2rx_drain_dma(ctx))
                        dev_warn(ctx->csi->dev, "DMA drain failed\n");
        } else {
                ti_csi2rx_dma_submit_pending(ctx);
        }
        spin_unlock_irqrestore(&dma->lock, flags);
}

/*
 * Drain the stale data left at the PSI-L endpoint.
 *
 * This might happen if no buffers are queued in time but source is still
 * streaming. In multi-stream scenarios this can happen when one stream is
 * stopped but other is still streaming, and thus module-level pixel reset is
 * not asserted.
 *
 * To prevent that stale data corrupting the subsequent transactions, it is
 * required to issue DMA requests to drain it out.
 */
static int ti_csi2rx_drain_dma(struct ti_csi2rx_ctx *ctx)
{
        struct ti_csi2rx_dev *csi = ctx->csi;
        struct dma_async_tx_descriptor *desc;
        dma_cookie_t cookie;
        int ret;

        desc = dmaengine_prep_slave_single(ctx->dma.chan, csi->drain.paddr,
                                           csi->drain.len, DMA_DEV_TO_MEM,
                                           DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
        if (!desc) {
                ret = -EIO;
                goto out;
        }

        desc->callback = ti_csi2rx_drain_callback;
        desc->callback_param = ctx;

        cookie = dmaengine_submit(desc);
        ret = dma_submit_error(cookie);
        if (ret)
                goto out;

        dma_async_issue_pending(ctx->dma.chan);

out:
        return ret;
}

static int ti_csi2rx_dma_submit_pending(struct ti_csi2rx_ctx *ctx)
{
        struct ti_csi2rx_dma *dma = &ctx->dma;
        struct ti_csi2rx_buffer *buf;
        int ret = 0;

        /* If there are more buffers to process then start their transfer. */
        while (!list_empty(&dma->queue)) {
                buf = list_entry(dma->queue.next, struct ti_csi2rx_buffer, list);
                ret = ti_csi2rx_start_dma(ctx, buf);
                if (ret) {
                        dev_err(ctx->csi->dev,
                                "Failed to queue the next buffer for DMA\n");
                        vb2_buffer_done(&buf->vb.vb2_buf, VB2_BUF_STATE_ERROR);
                        list_del(&buf->list);
                } else {
                        list_move_tail(&buf->list, &dma->submitted);
                }
        }
        return ret;
}

static void ti_csi2rx_dma_callback(void *param)
{
        struct ti_csi2rx_buffer *buf = param;
        struct ti_csi2rx_ctx *ctx = buf->ctx;
        struct ti_csi2rx_dma *dma = &ctx->dma;
        unsigned long flags;

        /*
         * TODO: Derive the sequence number from the CSI2RX frame number
         * hardware monitor registers.
         */
        buf->vb.vb2_buf.timestamp = ktime_get_ns();
        buf->vb.sequence = ctx->sequence++;

        spin_lock_irqsave(&dma->lock, flags);

        WARN_ON(!list_is_first(&buf->list, &dma->submitted));

        if (dma->state == TI_CSI2RX_DMA_DRAINING) {
                vb2_buffer_done(&buf->vb.vb2_buf, VB2_BUF_STATE_ERROR);
                dma->state = TI_CSI2RX_DMA_ACTIVE;
        } else {
                vb2_buffer_done(&buf->vb.vb2_buf, VB2_BUF_STATE_DONE);
        }

        list_del(&buf->list);

        ti_csi2rx_dma_submit_pending(ctx);

        if (list_empty(&dma->submitted)) {
                dma->state = TI_CSI2RX_DMA_DRAINING;
                if (ti_csi2rx_drain_dma(ctx))
                        dev_warn(ctx->csi->dev,
                                 "DMA drain failed on one of the transactions\n");
        }
        spin_unlock_irqrestore(&dma->lock, flags);
}

static int ti_csi2rx_start_dma(struct ti_csi2rx_ctx *ctx,
                               struct ti_csi2rx_buffer *buf)
{
        unsigned long addr;
        struct dma_async_tx_descriptor *desc;
        size_t len = ctx->v_fmt.fmt.pix.sizeimage;
        dma_cookie_t cookie;
        int ret = 0;

        addr = vb2_dma_contig_plane_dma_addr(&buf->vb.vb2_buf, 0);
        desc = dmaengine_prep_slave_single(ctx->dma.chan, addr, len,
                                           DMA_DEV_TO_MEM,
                                           DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
        if (!desc)
                return -EIO;

        desc->callback = ti_csi2rx_dma_callback;
        desc->callback_param = buf;

        cookie = dmaengine_submit(desc);
        ret = dma_submit_error(cookie);
        if (ret)
                return ret;

        dma_async_issue_pending(ctx->dma.chan);

        return 0;
}

static void ti_csi2rx_stop_dma(struct ti_csi2rx_ctx *ctx)
{
        struct ti_csi2rx_dma *dma = &ctx->dma;
        enum ti_csi2rx_dma_state state;
        unsigned long flags;
        int ret;

        spin_lock_irqsave(&dma->lock, flags);
        state = ctx->dma.state;
        dma->state = TI_CSI2RX_DMA_STOPPED;
        spin_unlock_irqrestore(&dma->lock, flags);

        init_completion(&ctx->drain_complete);

        if (state != TI_CSI2RX_DMA_STOPPED) {
                /*
                 * Normal DMA termination does not clean up pending data on
                 * the endpoint if multiple streams are running and only one
                 * is stopped, as the module-level pixel reset cannot be
                 * enforced before terminating DMA.
                 */
                ret = ti_csi2rx_drain_dma(ctx);
                if (ret)
                        dev_warn(ctx->csi->dev,
                                 "Failed to drain DMA. Next frame might be bogus\n");
        }

        /* We wait for the drain to complete so that the stream stops
         * cleanly, making sure the shared hardware FIFO is cleared of
         * data from the current stream. No more data will be coming from
         * the source after this.
         */
        wait_for_completion_timeout(&ctx->drain_complete,
                                    msecs_to_jiffies(DRAIN_TIMEOUT_MS));

        ret = dmaengine_terminate_sync(ctx->dma.chan);
        if (ret)
                dev_err(ctx->csi->dev, "Failed to stop DMA: %d\n", ret);
}

static void ti_csi2rx_cleanup_buffers(struct ti_csi2rx_ctx *ctx,
                                      enum vb2_buffer_state state)
{
        struct ti_csi2rx_dma *dma = &ctx->dma;
        struct ti_csi2rx_buffer *buf, *tmp;
        unsigned long flags;

        spin_lock_irqsave(&dma->lock, flags);
        list_for_each_entry_safe(buf, tmp, &ctx->dma.queue, list) {
                list_del(&buf->list);
                vb2_buffer_done(&buf->vb.vb2_buf, state);
        }
        list_for_each_entry_safe(buf, tmp, &ctx->dma.submitted, list) {
                list_del(&buf->list);
                vb2_buffer_done(&buf->vb.vb2_buf, state);
        }
        spin_unlock_irqrestore(&dma->lock, flags);
}

static int ti_csi2rx_queue_setup(struct vb2_queue *q, unsigned int *nbuffers,
                                 unsigned int *nplanes, unsigned int sizes[],
                                 struct device *alloc_devs[])
{
        struct ti_csi2rx_ctx *ctx = vb2_get_drv_priv(q);
        unsigned int size = ctx->v_fmt.fmt.pix.sizeimage;

        if (*nplanes) {
                if (sizes[0] < size)
                        return -EINVAL;
                size = sizes[0];
        }

        *nplanes = 1;
        sizes[0] = size;

        return 0;
}

static int ti_csi2rx_buffer_prepare(struct vb2_buffer *vb)
{
        struct ti_csi2rx_ctx *ctx = vb2_get_drv_priv(vb->vb2_queue);
        unsigned long size = ctx->v_fmt.fmt.pix.sizeimage;

        if (vb2_plane_size(vb, 0) < size) {
                dev_err(ctx->csi->dev, "Data will not fit into plane\n");
                return -EINVAL;
        }

        vb2_set_plane_payload(vb, 0, size);
        return 0;
}

static void ti_csi2rx_buffer_queue(struct vb2_buffer *vb)
{
        struct ti_csi2rx_ctx *ctx = vb2_get_drv_priv(vb->vb2_queue);
        struct ti_csi2rx_buffer *buf;
        struct ti_csi2rx_dma *dma = &ctx->dma;
        unsigned long flags = 0;

        buf = container_of(vb, struct ti_csi2rx_buffer, vb.vb2_buf);
        buf->ctx = ctx;

        spin_lock_irqsave(&dma->lock, flags);
        list_add_tail(&buf->list, &dma->queue);
        spin_unlock_irqrestore(&dma->lock, flags);
}

static int ti_csi2rx_get_stream(struct ti_csi2rx_ctx *ctx)
{
        struct ti_csi2rx_dev *csi = ctx->csi;
        struct media_pad *pad;
        struct v4l2_subdev_state *state;
        struct v4l2_subdev_route *r;

        /* Get the source pad connected to this ctx */
        pad = media_entity_remote_source_pad_unique(ctx->pad.entity);
        if (IS_ERR(pad)) {
                dev_err(csi->dev, "No pad connected to ctx %d\n", ctx->idx);
                return PTR_ERR(pad);
        }

        state = v4l2_subdev_get_locked_active_state(&csi->subdev);

        for_each_active_route(&state->routing, r) {
                if (r->source_pad == pad->index) {
                        ctx->stream = r->sink_stream;
                        return 0;
                }
        }

        /* No route found for this ctx */
        return -ENODEV;
}

static int ti_csi2rx_get_vc_and_dt(struct ti_csi2rx_ctx *ctx)
{
        struct ti_csi2rx_dev *csi = ctx->csi;
        struct ti_csi2rx_ctx *curr_ctx;
        struct v4l2_mbus_frame_desc fd;
        struct media_pad *source_pad;
        const struct ti_csi2rx_fmt *fmt;
        int ret;
        unsigned int i, j;

        /* Get the frame desc from source */
        source_pad = media_entity_remote_pad_unique(&csi->subdev.entity, MEDIA_PAD_FL_SOURCE);
        if (IS_ERR(source_pad))
                return PTR_ERR(source_pad);

        ret = v4l2_subdev_call(csi->source, pad, get_frame_desc, source_pad->index, &fd);
        if (ret) {
                if (ret == -ENOIOCTLCMD) {
                        ctx->vc = 0;
                        fmt = find_format_by_fourcc(ctx->v_fmt.fmt.pix.pixelformat);
                        ctx->dt = fmt->csi_dt;
                }
                return ret;
        }

        if (fd.type != V4L2_MBUS_FRAME_DESC_TYPE_CSI2)
                return -EINVAL;

        for (i = 0; i < csi->num_ctx; i++) {
                curr_ctx = &csi->ctx[i];

                /* Capture VC 0 by default */
                curr_ctx->vc = 0;

                ret = ti_csi2rx_get_stream(curr_ctx);
                if (ret)
                        continue;

                for (j = 0; j < fd.num_entries; j++) {
                        if (curr_ctx->stream == fd.entry[j].stream) {
                                curr_ctx->vc = fd.entry[j].bus.csi2.vc;
                                curr_ctx->dt = fd.entry[j].bus.csi2.dt;
                                break;
                        }

                        /* Return error if no matching stream found */
                        if (j == fd.num_entries)
                                return -EINVAL;
                }
        }

        return 0;
}

static int ti_csi2rx_start_streaming(struct vb2_queue *vq, unsigned int count)
{
        struct ti_csi2rx_ctx *ctx = vb2_get_drv_priv(vq);
        struct ti_csi2rx_dev *csi = ctx->csi;
        struct ti_csi2rx_dma *dma = &ctx->dma;
        unsigned long flags;
        int ret;

        ret = pm_runtime_resume_and_get(csi->dev);
        if (ret)
                return ret;

        spin_lock_irqsave(&dma->lock, flags);
        if (list_empty(&dma->queue))
                ret = -EIO;
        spin_unlock_irqrestore(&dma->lock, flags);
        if (ret)
                goto err;

        ret = video_device_pipeline_start(&ctx->vdev, &csi->pipe);
        if (ret)
                goto err;

        /* Start stream 0, we don't allow multiple streams on the source pad */
        ret = v4l2_subdev_enable_streams(&csi->subdev,
                                         TI_CSI2RX_PAD_FIRST_SOURCE + ctx->idx,
                                         BIT_U64(0));
        if (ret)
                goto err_dma;

        return 0;

err_dma:
        ti_csi2rx_stop_dma(ctx);
        video_device_pipeline_stop(&ctx->vdev);
        writel(0, csi->shim + SHIM_CNTL);
        writel(0, csi->shim + SHIM_DMACNTX(ctx->idx));
err:
        ti_csi2rx_cleanup_buffers(ctx, VB2_BUF_STATE_QUEUED);
        pm_runtime_put(csi->dev);

        return ret;
}

static void ti_csi2rx_stop_streaming(struct vb2_queue *vq)
{
        struct ti_csi2rx_ctx *ctx = vb2_get_drv_priv(vq);
        struct ti_csi2rx_dev *csi = ctx->csi;
        int ret;

        video_device_pipeline_stop(&ctx->vdev);

        ret = v4l2_subdev_disable_streams(&csi->subdev,
                                          TI_CSI2RX_PAD_FIRST_SOURCE + ctx->idx,
                                          BIT_U64(0));
        if (ret)
                dev_err(csi->dev, "Failed to stop subdev stream\n");

        ti_csi2rx_stop_dma(ctx);
        ti_csi2rx_cleanup_buffers(ctx, VB2_BUF_STATE_ERROR);
        pm_runtime_put(csi->dev);
}

static const struct vb2_ops csi_vb2_qops = {
        .queue_setup = ti_csi2rx_queue_setup,
        .buf_prepare = ti_csi2rx_buffer_prepare,
        .buf_queue = ti_csi2rx_buffer_queue,
        .start_streaming = ti_csi2rx_start_streaming,
        .stop_streaming = ti_csi2rx_stop_streaming,
};

static int ti_csi2rx_enum_mbus_code(struct v4l2_subdev *subdev,
                                    struct v4l2_subdev_state *state,
                                    struct v4l2_subdev_mbus_code_enum *code_enum)
{
        if (code_enum->index >= ARRAY_SIZE(ti_csi2rx_formats))
                return -EINVAL;

        code_enum->code = ti_csi2rx_formats[code_enum->index].code;

        return 0;
}

static int ti_csi2rx_sd_set_fmt(struct v4l2_subdev *sd,
                                struct v4l2_subdev_state *state,
                                struct v4l2_subdev_format *format)
{
        struct v4l2_mbus_framefmt *fmt;

        /* No transcoding, don't allow setting source fmt */
        if (format->pad > TI_CSI2RX_PAD_SINK)
                return v4l2_subdev_get_fmt(sd, state, format);

        if (!find_format_by_code(format->format.code))
                format->format.code = ti_csi2rx_formats[0].code;

        format->format.field = V4L2_FIELD_NONE;

        fmt = v4l2_subdev_state_get_format(state, format->pad, format->stream);
        *fmt = format->format;

        fmt = v4l2_subdev_state_get_opposite_stream_format(state, format->pad,
                                                           format->stream);
        if (!fmt)
                return -EINVAL;

        *fmt = format->format;

        return 0;
}

static int _ti_csi2rx_sd_set_routing(struct v4l2_subdev *sd,
                                     struct v4l2_subdev_state *state,
                                     struct v4l2_subdev_krouting *routing)
{
        int ret;

        static const struct v4l2_mbus_framefmt format = {
                .width = 640,
                .height = 480,
                .code = MEDIA_BUS_FMT_UYVY8_1X16,
                .field = V4L2_FIELD_NONE,
                .colorspace = V4L2_COLORSPACE_SRGB,
                .ycbcr_enc = V4L2_YCBCR_ENC_601,
                .quantization = V4L2_QUANTIZATION_LIM_RANGE,
                .xfer_func = V4L2_XFER_FUNC_SRGB,
        };

        ret = v4l2_subdev_routing_validate(sd, routing,
                                           V4L2_SUBDEV_ROUTING_ONLY_1_TO_1 |
                                           V4L2_SUBDEV_ROUTING_NO_SOURCE_MULTIPLEXING);

        if (ret)
                return ret;

        /* Only stream ID 0 allowed on source pads */
        for (unsigned int i = 0; i < routing->num_routes; ++i) {
                const struct v4l2_subdev_route *route = &routing->routes[i];

                if (route->source_stream != 0)
                        return -EINVAL;
        }

        ret = v4l2_subdev_set_routing_with_fmt(sd, state, routing, &format);

        return ret;
}

static int ti_csi2rx_sd_set_routing(struct v4l2_subdev *sd,
                                    struct v4l2_subdev_state *state,
                                    enum v4l2_subdev_format_whence which,
                                    struct v4l2_subdev_krouting *routing)
{
        struct ti_csi2rx_dev *csi = to_csi2rx_dev(sd);

        if (csi->enable_count > 0)
                return -EBUSY;

        return _ti_csi2rx_sd_set_routing(sd, state, routing);
}

static int ti_csi2rx_sd_init_state(struct v4l2_subdev *sd,
                                   struct v4l2_subdev_state *state)
{
        struct v4l2_subdev_route routes[] = { {
                .sink_pad = 0,
                .sink_stream = 0,
                .source_pad = TI_CSI2RX_PAD_FIRST_SOURCE,
                .source_stream = 0,
                .flags = V4L2_SUBDEV_ROUTE_FL_ACTIVE,
        } };

        struct v4l2_subdev_krouting routing = {
                .num_routes = 1,
                .routes = routes,
        };

        /* Initialize routing to single route to the fist source pad */
        return _ti_csi2rx_sd_set_routing(sd, state, &routing);
}

static int ti_csi2rx_sd_enable_streams(struct v4l2_subdev *sd,
                                       struct v4l2_subdev_state *state,
                                       u32 pad, u64 streams_mask)
{
        struct ti_csi2rx_dev *csi = to_csi2rx_dev(sd);
        struct ti_csi2rx_ctx *ctx = &csi->ctx[pad - TI_CSI2RX_PAD_FIRST_SOURCE];
        struct ti_csi2rx_dma *dma = &ctx->dma;
        struct media_pad *remote_pad;
        unsigned long flags;
        u64 sink_streams;
        int ret = 0;
        unsigned int reg;

        ret = ti_csi2rx_get_stream(ctx);
        if (ret)
                return ret;

        /* Get the VC and DT for all enabled ctx on first stream start */
        if (!csi->enable_count) {
                ret = ti_csi2rx_get_vc_and_dt(ctx);
                if (ret < 0 && ret != -ENOIOCTLCMD)
                        return ret;

                /* De-assert the pixel interface reset. */
                reg = SHIM_CNTL_PIX_RST;
                writel(reg, csi->shim + SHIM_CNTL);
        }

        ti_csi2rx_setup_shim(ctx);
        ctx->sequence = 0;

        spin_lock_irqsave(&dma->lock, flags);

        ret = ti_csi2rx_dma_submit_pending(ctx);
        if (ret) {
                spin_unlock_irqrestore(&dma->lock, flags);
                return ret;
        }

        dma->state = TI_CSI2RX_DMA_ACTIVE;
        spin_unlock_irqrestore(&dma->lock, flags);

        remote_pad = media_entity_remote_source_pad_unique(&csi->subdev.entity);
        if (IS_ERR(remote_pad))
                return PTR_ERR(remote_pad);
        sink_streams = v4l2_subdev_state_xlate_streams(state, pad,
                                                       TI_CSI2RX_PAD_SINK,
                                                       &streams_mask);

        ret = v4l2_subdev_enable_streams(csi->source, remote_pad->index,
                                         sink_streams);
        if (ret)
                return ret;

        csi->enable_count++;

        return 0;
}

static int ti_csi2rx_sd_disable_streams(struct v4l2_subdev *sd,
                                        struct v4l2_subdev_state *state,
                                        u32 pad, u64 streams_mask)
{
        struct ti_csi2rx_dev *csi = to_csi2rx_dev(sd);
        struct ti_csi2rx_ctx *ctx = &csi->ctx[pad - TI_CSI2RX_PAD_FIRST_SOURCE];
        struct media_pad *remote_pad;
        u64 sink_streams;
        int ret = 0;

        WARN_ON(csi->enable_count == 0);

        writel(0, csi->shim + SHIM_DMACNTX(ctx->idx));

        /* assert pixel reset to prevent stale data */
        if (csi->enable_count == 1)
                writel(0, csi->shim + SHIM_CNTL);

        remote_pad = media_entity_remote_source_pad_unique(&csi->subdev.entity);
        if (IS_ERR(remote_pad))
                return PTR_ERR(remote_pad);
        sink_streams = v4l2_subdev_state_xlate_streams(state, pad,
                                                       TI_CSI2RX_PAD_SINK,
                                                       &streams_mask);

        ret = v4l2_subdev_disable_streams(csi->source, remote_pad->index,
                                          sink_streams);
        if (!ret)
                --csi->enable_count;

        return 0;
}

static const struct v4l2_subdev_pad_ops ti_csi2rx_subdev_pad_ops = {
        .enum_mbus_code = ti_csi2rx_enum_mbus_code,
        .set_routing = ti_csi2rx_sd_set_routing,
        .get_fmt = v4l2_subdev_get_fmt,
        .set_fmt = ti_csi2rx_sd_set_fmt,
        .enable_streams = ti_csi2rx_sd_enable_streams,
        .disable_streams = ti_csi2rx_sd_disable_streams,
};

static const struct v4l2_subdev_ops ti_csi2rx_subdev_ops = {
        .pad = &ti_csi2rx_subdev_pad_ops,
};

static const struct v4l2_subdev_internal_ops ti_csi2rx_internal_ops = {
        .init_state = ti_csi2rx_sd_init_state,
};

static void ti_csi2rx_cleanup_v4l2(struct ti_csi2rx_dev *csi)
{
        v4l2_subdev_cleanup(&csi->subdev);
        media_device_unregister(&csi->mdev);
        v4l2_device_unregister(&csi->v4l2_dev);
        media_device_cleanup(&csi->mdev);
}

static void ti_csi2rx_cleanup_notifier(struct ti_csi2rx_dev *csi)
{
        v4l2_async_nf_unregister(&csi->notifier);
        v4l2_async_nf_cleanup(&csi->notifier);
}

static void ti_csi2rx_cleanup_ctx(struct ti_csi2rx_ctx *ctx)
{
        if (!pm_runtime_status_suspended(ctx->csi->dev))
                dma_release_channel(ctx->dma.chan);

        vb2_queue_release(&ctx->vidq);

        video_unregister_device(&ctx->vdev);

        mutex_destroy(&ctx->mutex);
}

static int ti_csi2rx_init_vb2q(struct ti_csi2rx_ctx *ctx)
{
        struct vb2_queue *q = &ctx->vidq;
        int ret;

        q->type = V4L2_BUF_TYPE_VIDEO_CAPTURE;
        q->io_modes = VB2_MMAP | VB2_DMABUF;
        q->drv_priv = ctx;
        q->buf_struct_size = sizeof(struct ti_csi2rx_buffer);
        q->ops = &csi_vb2_qops;
        q->mem_ops = &vb2_dma_contig_memops;
        q->timestamp_flags = V4L2_BUF_FLAG_TIMESTAMP_MONOTONIC;
        q->dev = dmaengine_get_dma_device(ctx->dma.chan);
        q->lock = &ctx->mutex;
        q->min_queued_buffers = 1;
        q->allow_cache_hints = 1;

        ret = vb2_queue_init(q);
        if (ret)
                return ret;

        ctx->vdev.queue = q;

        return 0;
}

static int ti_csi2rx_link_validate(struct media_link *link)
{
        struct media_entity *entity = link->sink->entity;
        struct video_device *vdev = media_entity_to_video_device(entity);
        struct ti_csi2rx_ctx *ctx = container_of(vdev, struct ti_csi2rx_ctx, vdev);
        struct ti_csi2rx_dev *csi = ctx->csi;
        struct v4l2_pix_format *csi_fmt = &ctx->v_fmt.fmt.pix;
        struct v4l2_mbus_framefmt *format;
        struct v4l2_subdev_state *state;
        const struct ti_csi2rx_fmt *ti_fmt;

        state = v4l2_subdev_lock_and_get_active_state(&csi->subdev);
        format = v4l2_subdev_state_get_format(state, link->source->index, 0);
        v4l2_subdev_unlock_state(state);

        if (!format) {
                dev_err(csi->dev,
                        "No format present on \"%s\":%u:0\n",
                        link->source->entity->name, link->source->index);
                return 0;
        }

        if (format->width != csi_fmt->width) {
                dev_dbg(csi->dev, "Width does not match (source %u, sink %u)\n",
                        format->width, csi_fmt->width);
                return -EPIPE;
        }

        if (format->height != csi_fmt->height) {
                dev_dbg(csi->dev, "Height does not match (source %u, sink %u)\n",
                        format->height, csi_fmt->height);
                return -EPIPE;
        }

        if (format->field != csi_fmt->field &&
            csi_fmt->field != V4L2_FIELD_NONE) {
                dev_dbg(csi->dev, "Field does not match (source %u, sink %u)\n",
                        format->field, csi_fmt->field);
                return -EPIPE;
        }

        ti_fmt = find_format_by_code(format->code);
        if (!ti_fmt) {
                dev_dbg(csi->dev, "Media bus format 0x%x not supported\n",
                        format->code);
                return -EPIPE;
        }

        if (ti_fmt->fourcc != csi_fmt->pixelformat) {
                dev_dbg(csi->dev,
                        "Cannot transform \"%s\":%u format %p4cc to %p4cc\n",
                        link->source->entity->name, link->source->index,
                        &ti_fmt->fourcc, &csi_fmt->pixelformat);
                return -EPIPE;
        }

        return 0;
}

static const struct media_entity_operations ti_csi2rx_video_entity_ops = {
        .link_validate = ti_csi2rx_link_validate,
};

static const struct media_entity_operations ti_csi2rx_subdev_entity_ops = {
        .link_validate = v4l2_subdev_link_validate,
        .has_pad_interdep = v4l2_subdev_has_pad_interdep,
};

static int ti_csi2rx_init_dma(struct ti_csi2rx_ctx *ctx)
{
        struct dma_slave_config cfg = {
                .src_addr_width = DMA_SLAVE_BUSWIDTH_16_BYTES,
        };
        char name[5];
        int ret;

        snprintf(name, sizeof(name), "rx%u", ctx->idx);
        ctx->dma.chan = dma_request_chan(ctx->csi->dev, name);
        if (IS_ERR(ctx->dma.chan))
                return PTR_ERR(ctx->dma.chan);

        ret = dmaengine_slave_config(ctx->dma.chan, &cfg);
        if (ret) {
                dma_release_channel(ctx->dma.chan);
                return ret;
        }

        return 0;
}

static int ti_csi2rx_v4l2_init(struct ti_csi2rx_dev *csi)
{
        struct media_device *mdev = &csi->mdev;
        struct v4l2_subdev *sd = &csi->subdev;
        int ret;

        mdev->dev = csi->dev;
        mdev->hw_revision = 1;
        strscpy(mdev->model, "TI-CSI2RX", sizeof(mdev->model));

        media_device_init(mdev);

        csi->v4l2_dev.mdev = mdev;

        ret = v4l2_device_register(csi->dev, &csi->v4l2_dev);
        if (ret)
                goto cleanup_media;

        ret = media_device_register(mdev);
        if (ret)
                goto unregister_v4l2;

        v4l2_subdev_init(sd, &ti_csi2rx_subdev_ops);
        sd->internal_ops = &ti_csi2rx_internal_ops;
        sd->entity.function = MEDIA_ENT_F_VID_IF_BRIDGE;
        sd->flags = V4L2_SUBDEV_FL_HAS_DEVNODE | V4L2_SUBDEV_FL_STREAMS;
        strscpy(sd->name, dev_name(csi->dev), sizeof(sd->name));
        sd->dev = csi->dev;
        sd->entity.ops = &ti_csi2rx_subdev_entity_ops;

        csi->pads[TI_CSI2RX_PAD_SINK].flags = MEDIA_PAD_FL_SINK;

        for (unsigned int i = TI_CSI2RX_PAD_FIRST_SOURCE;
             i < TI_CSI2RX_PAD_FIRST_SOURCE + csi->num_ctx; i++)
                csi->pads[i].flags = MEDIA_PAD_FL_SOURCE;

        ret = media_entity_pads_init(&sd->entity,
                                     TI_CSI2RX_PAD_FIRST_SOURCE + csi->num_ctx,
                                     csi->pads);
        if (ret)
                goto unregister_media;

        ret = v4l2_subdev_init_finalize(sd);
        if (ret)
                goto unregister_media;

        ret = v4l2_device_register_subdev(&csi->v4l2_dev, sd);
        if (ret)
                goto cleanup_subdev;

        return 0;

cleanup_subdev:
        v4l2_subdev_cleanup(sd);
unregister_media:
        media_device_unregister(mdev);
unregister_v4l2:
        v4l2_device_unregister(&csi->v4l2_dev);
cleanup_media:
        media_device_cleanup(mdev);

        return ret;
}

static int ti_csi2rx_init_ctx(struct ti_csi2rx_ctx *ctx)
{
        struct ti_csi2rx_dev *csi = ctx->csi;
        struct video_device *vdev = &ctx->vdev;
        const struct ti_csi2rx_fmt *fmt;
        struct v4l2_pix_format *pix_fmt = &ctx->v_fmt.fmt.pix;
        int ret;

        mutex_init(&ctx->mutex);

        fmt = find_format_by_fourcc(V4L2_PIX_FMT_UYVY);
        if (!fmt)
                return -EINVAL;

        pix_fmt->width = 640;
        pix_fmt->height = 480;
        pix_fmt->field = V4L2_FIELD_NONE;
        pix_fmt->colorspace = V4L2_COLORSPACE_SRGB;
        pix_fmt->ycbcr_enc = V4L2_YCBCR_ENC_601,
        pix_fmt->quantization = V4L2_QUANTIZATION_LIM_RANGE,
        pix_fmt->xfer_func = V4L2_XFER_FUNC_SRGB,

        ti_csi2rx_fill_fmt(fmt, &ctx->v_fmt);

        ctx->pad.flags = MEDIA_PAD_FL_SINK;
        vdev->entity.ops = &ti_csi2rx_video_entity_ops;
        ret = media_entity_pads_init(&ctx->vdev.entity, 1, &ctx->pad);
        if (ret)
                return ret;

        snprintf(vdev->name, sizeof(vdev->name), "%s context %u",
                 dev_name(csi->dev), ctx->idx);
        vdev->v4l2_dev = &csi->v4l2_dev;
        vdev->vfl_dir = VFL_DIR_RX;
        vdev->fops = &csi_fops;
        vdev->ioctl_ops = &csi_ioctl_ops;
        vdev->release = video_device_release_empty;
        vdev->device_caps = V4L2_CAP_VIDEO_CAPTURE | V4L2_CAP_STREAMING |
                            V4L2_CAP_IO_MC;
        vdev->lock = &ctx->mutex;
        video_set_drvdata(vdev, ctx);

        INIT_LIST_HEAD(&ctx->dma.queue);
        INIT_LIST_HEAD(&ctx->dma.submitted);
        spin_lock_init(&ctx->dma.lock);
        ctx->dma.state = TI_CSI2RX_DMA_STOPPED;

        ret = ti_csi2rx_init_dma(ctx);
        if (ret)
                return ret;

        ret = ti_csi2rx_init_vb2q(ctx);
        if (ret)
                goto cleanup_dma;

        return 0;

cleanup_dma:
        dma_release_channel(ctx->dma.chan);
        return ret;
}

static int ti_csi2rx_runtime_suspend(struct device *dev)
{
        struct ti_csi2rx_dev *csi = dev_get_drvdata(dev);

        if (csi->enable_count != 0)
                return -EBUSY;

        for (unsigned int i = 0; i < csi->num_ctx; i++)
                dma_release_channel(csi->ctx[i].dma.chan);

        return 0;
}

static int ti_csi2rx_runtime_resume(struct device *dev)
{
        struct ti_csi2rx_dev *csi = dev_get_drvdata(dev);
        int ret;

        for (unsigned int i = 0; i < csi->num_ctx; i++) {
                ret = ti_csi2rx_init_dma(&csi->ctx[i]);
                if (ret)
                        return ret;
        }

        return 0;
}

static int ti_csi2rx_suspend(struct device *dev)
{
        struct ti_csi2rx_dev *csi = dev_get_drvdata(dev);
        enum ti_csi2rx_dma_state state;
        struct ti_csi2rx_ctx *ctx;
        struct ti_csi2rx_dma *dma;
        unsigned long flags = 0;
        int ret = 0;

        /* If device was not in use we can simply suspend */
        if (pm_runtime_status_suspended(dev))
                return 0;

        /*
         * If device is running, assert the pixel reset to cleanly stop any
         * on-going streams before we suspend.
         */
        writel(0, csi->shim + SHIM_CNTL);

        for (unsigned int i = 0; i < csi->num_ctx; i++) {
                ctx = &csi->ctx[i];
                dma = &ctx->dma;

                spin_lock_irqsave(&dma->lock, flags);
                state = dma->state;
                spin_unlock_irqrestore(&dma->lock, flags);

                if (state != TI_CSI2RX_DMA_STOPPED) {
                        /* Disable source */
                        ret = v4l2_subdev_disable_streams(&csi->subdev,
                                                          TI_CSI2RX_PAD_FIRST_SOURCE + ctx->idx,
                                                          BIT(0));
                        if (ret)
                                dev_err(csi->dev, "Failed to stop subdev stream\n");
                }

                /* Stop any on-going streams */
                writel(0, csi->shim + SHIM_DMACNTX(ctx->idx));

                /* Drain DMA */
                ti_csi2rx_drain_dma(ctx);

                /* Terminate DMA */
                ret = dmaengine_terminate_sync(ctx->dma.chan);
                if (ret)
                        dev_err(csi->dev, "Failed to stop DMA\n");
        }

        return ret;
}

static int ti_csi2rx_resume(struct device *dev)
{
        struct ti_csi2rx_dev *csi = dev_get_drvdata(dev);
        struct ti_csi2rx_ctx *ctx;
        struct ti_csi2rx_dma *dma;
        struct ti_csi2rx_buffer *buf;
        unsigned long flags = 0;
        unsigned int reg;
        int ret = 0;

        /* If device was not in use, we can simply wakeup */
        if (pm_runtime_status_suspended(dev))
                return 0;

        /* If device was in use before, restore all the running streams */
        reg = SHIM_CNTL_PIX_RST;
        writel(reg, csi->shim + SHIM_CNTL);

        for (unsigned int i = 0; i < csi->num_ctx; i++) {
                ctx = &csi->ctx[i];
                dma = &ctx->dma;
                spin_lock_irqsave(&dma->lock, flags);
                if (dma->state != TI_CSI2RX_DMA_STOPPED) {
                        /* Re-submit all previously submitted buffers to DMA */
                        list_for_each_entry(buf, &ctx->dma.submitted, list) {
                                ti_csi2rx_start_dma(ctx, buf);
                        }
                        spin_unlock_irqrestore(&dma->lock, flags);

                        /* Restore stream config */
                        ti_csi2rx_setup_shim(ctx);

                        ret = v4l2_subdev_enable_streams(&csi->subdev,
                                                         TI_CSI2RX_PAD_FIRST_SOURCE + ctx->idx,
                                                         BIT(0));
                        if (ret)
                                dev_err(ctx->csi->dev, "Failed to start subdev\n");
                } else {
                        spin_unlock_irqrestore(&dma->lock, flags);
                }
        }

        return ret;
}

static int ti_csi2rx_pm_notifier(struct notifier_block *nb,
                                 unsigned long action, void *data)
{
        struct ti_csi2rx_dev *csi =
                container_of(nb, struct ti_csi2rx_dev, pm_notifier);

        switch (action) {
        case PM_HIBERNATION_PREPARE:
        case PM_SUSPEND_PREPARE:
        case PM_RESTORE_PREPARE:
                ti_csi2rx_suspend(csi->dev);
                break;
        case PM_POST_SUSPEND:
        case PM_POST_HIBERNATION:
        case PM_POST_RESTORE:
                ti_csi2rx_resume(csi->dev);
                break;
        }

        return NOTIFY_DONE;
}

static const struct dev_pm_ops ti_csi2rx_pm_ops = {
        RUNTIME_PM_OPS(ti_csi2rx_runtime_suspend, ti_csi2rx_runtime_resume,
                       NULL)
};

static int ti_csi2rx_probe(struct platform_device *pdev)
{
        struct device_node *np = pdev->dev.of_node;
        struct ti_csi2rx_dev *csi;
        int ret = 0, i, count;

        csi = devm_kzalloc(&pdev->dev, sizeof(*csi), GFP_KERNEL);
        if (!csi)
                return -ENOMEM;

        csi->dev = &pdev->dev;
        platform_set_drvdata(pdev, csi);

        csi->shim = devm_platform_ioremap_resource(pdev, 0);
        if (IS_ERR(csi->shim)) {
                ret = PTR_ERR(csi->shim);
                return ret;
        }

        csi->drain.len = DRAIN_BUFFER_SIZE;
        csi->drain.vaddr = dma_alloc_coherent(csi->dev, csi->drain.len,
                                              &csi->drain.paddr,
                                              GFP_KERNEL);
        if (!csi->drain.vaddr)
                return -ENOMEM;

        /* Only use as many contexts as the number of DMA channels allocated. */
        count = of_property_count_strings(np, "dma-names");
        if (count < 0) {
                dev_err(csi->dev, "Failed to get DMA channel count: %d\n", count);
                ret = count;
                goto err_dma_chan;
        }

        csi->num_ctx = count;
        if (csi->num_ctx > TI_CSI2RX_MAX_CTX) {
                dev_err(csi->dev,
                        "%u DMA channels passed. Maximum is %u.\n",
                        csi->num_ctx, TI_CSI2RX_MAX_CTX);
                ret = -EINVAL;
                goto err_dma_chan;
        }

        ret = ti_csi2rx_v4l2_init(csi);
        if (ret)
                goto err_dma_chan;

        for (i = 0; i < csi->num_ctx; i++) {
                csi->ctx[i].idx = i;
                csi->ctx[i].csi = csi;
                ret = ti_csi2rx_init_ctx(&csi->ctx[i]);
                if (ret)
                        goto err_ctx;
        }

        pm_runtime_set_active(csi->dev);
        pm_runtime_enable(csi->dev);

        ret = ti_csi2rx_notifier_register(csi);
        if (ret)
                goto err_ctx;

        ret = devm_of_platform_populate(csi->dev);
        if (ret) {
                dev_err(csi->dev, "Failed to create children: %d\n", ret);
                goto err_notifier;
        }

        /*
         * Use PM notifier instead of .suspend/.resume callbacks because the
         * ordering of callbacks among camera pipeline devices (sensor, serdes,
         * CSI bridge) cannot be enforced even with device links. The notifier
         * is called when the system is fully functional, ensuring all
         * dependencies are available when stopping/starting streams.
         */
        csi->pm_notifier.notifier_call = ti_csi2rx_pm_notifier;
        ret = register_pm_notifier(&csi->pm_notifier);
        if (ret) {
                dev_err(csi->dev, "Failed to create PM notifier: %d\n", ret);
                goto err_notifier;
        }

        return 0;

err_notifier:
        ti_csi2rx_cleanup_notifier(csi);
err_ctx:
        while (i--)
                ti_csi2rx_cleanup_ctx(&csi->ctx[i]);
        ti_csi2rx_cleanup_v4l2(csi);
err_dma_chan:
        dma_free_coherent(csi->dev, csi->drain.len, csi->drain.vaddr,
                          csi->drain.paddr);
        return ret;
}

static void ti_csi2rx_remove(struct platform_device *pdev)
{
        struct ti_csi2rx_dev *csi = platform_get_drvdata(pdev);

        if (!pm_runtime_status_suspended(&pdev->dev))
                pm_runtime_set_suspended(&pdev->dev);

        for (unsigned int i = 0; i < csi->num_ctx; i++)
                ti_csi2rx_cleanup_ctx(&csi->ctx[i]);

        ti_csi2rx_cleanup_notifier(csi);
        unregister_pm_notifier(&csi->pm_notifier);

        ti_csi2rx_cleanup_v4l2(csi);
        dma_free_coherent(csi->dev, csi->drain.len, csi->drain.vaddr,
                          csi->drain.paddr);
        pm_runtime_disable(&pdev->dev);
}

static const struct of_device_id ti_csi2rx_of_match[] = {
        { .compatible = "ti,j721e-csi2rx-shim", },
        { },
};
MODULE_DEVICE_TABLE(of, ti_csi2rx_of_match);

static struct platform_driver ti_csi2rx_pdrv = {
        .probe = ti_csi2rx_probe,
        .remove = ti_csi2rx_remove,
        .driver = {
                .name = TI_CSI2RX_MODULE_NAME,
                .of_match_table = ti_csi2rx_of_match,
                .pm             = &ti_csi2rx_pm_ops,
        },
};

module_platform_driver(ti_csi2rx_pdrv);

MODULE_DESCRIPTION("TI J721E CSI2 RX Driver");
MODULE_AUTHOR("Jai Luthra <j-luthra@ti.com>");
MODULE_LICENSE("GPL");