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https://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git
synced 2026-08-31 14:04:27 -04:00
spi: add new_device/delete_device sysfs interface
Development boards such as the Jetson AGX Orin expose SPI buses
on expansion headers (e.g. the 40-pin header) so that users can
connect and interact with SPI peripherals from userspace. The
standard way to get /dev/spidevB.C character device nodes for
this purpose is to register spi_device instances backed by the
spidev driver.
Today there is no viable way to do this on upstream kernels:
- The spidev driver rejects the bare "spidev" compatible
string in DT, since spidev is a Linux software interface
and not a description of real hardware.
- Vendor-specific compatible strings (e.g. "nvidia,tegra-spidev")
have been rejected by DT maintainers for the same reason.
The I2C subsystem solved an analogous problem by exposing
new_device/delete_device sysfs attributes on each adapter. Add
the same interface to SPI host controllers, so that userspace
(e.g. a systemd unit at boot) can instantiate SPI devices at
runtime without needing anything in device-tree.
The new_device file accepts:
<modalias> <chip_select> [<max_speed_hz> [<mode>]]
where chip_select is required, while max_speed_hz and mode are
optional and default to 0 if omitted. max_speed_hz == 0 is
clamped to the controller's maximum by spi_setup(); mode == 0
selects SPI mode 0 (CPOL=0, CPHA=0).
The modalias is used both as the device identifier and as a
driver_override, so that the device binds to the named driver
directly. This is necessary because some drivers like spidev
deliberately exclude generic names from their id_table.
Devices created this way are limited compared to those declared
via DT or board files:
- No IRQ is assigned (the device gets IRQ 0 / no interrupt).
- No platform_data or device properties are attached.
- No OF node is associated with the device.
These limitations are acceptable for spidev, which only needs a
registered spi_device to expose a character device to userspace.
Only devices created via new_device can be removed through
delete_device; DT and platform devices are unaffected.
The sysfs attributes are gated behind CONFIG_SPI_DYNAMIC since
this feature adds a new way of dynamically instantiating and
removing SPI devices, and the add_lock locking in
spi_unregister_controller() is already conditional on
CONFIG_SPI_DYNAMIC.
The userspace sysfs group is created manually as the last step
of spi_register_controller() and removed as the first step of
spi_unregister_controller(). Removing the group before taking
add_lock means kernfs_drain() completes any in-flight
new_device_store()/delete_device_store() calls before
add_lock is acquired, so unregister never blocks on a store
that is itself waiting for add_lock and no store can be
touching an spi_device that is about to be torn down.
Non-sysfs callers of __spi_add_device() (DT/ACPI dynamic add,
ancillary registration) continue to be protected by the
pre-existing !device_is_registered(&ctlr->dev) check added in
commit ddf75be47c ("spi: Prevent adding devices below an
unregistering controller"): device_del(&ctlr->dev) runs inside
add_lock in spi_unregister_controller() so state_in_sysfs flips
to 0 before add_lock is released.
Link: https://lore.kernel.org/linux-tegra/909f0c92-d110-4253-903e-5c81e21e12c9@nvidia.com/
Signed-off-by: Vishwaroop A <va@nvidia.com>
Link: https://patch.msgid.link/20260803104614.2548375-2-va@nvidia.com
Signed-off-by: Mark Brown <broonie@kernel.org>
This commit is contained in:
@@ -43,6 +43,7 @@ EXPORT_TRACEPOINT_SYMBOL(spi_transfer_stop);
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#include "internals.h"
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static int __spi_setup(struct spi_device *spi, bool initial_setup);
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static int __spi_add_device(struct spi_device *spi, struct spi_device *parent);
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static DEFINE_IDR(spi_controller_idr);
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@@ -297,6 +298,192 @@ static const struct attribute_group spi_controller_statistics_group = {
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.attrs = spi_controller_statistics_attrs,
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};
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#if IS_ENABLED(CONFIG_SPI_DYNAMIC)
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/*
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* new_device_store - instantiate a new SPI device from userspace
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*
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* Takes parameters: <modalias> <chip_select> [<max_speed_hz> [<mode>]]
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*
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* Examples:
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* echo spidev 0 > new_device
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* echo spidev 0 10000000 > new_device
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* echo spidev 0 10000000 3 > new_device
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*/
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static ssize_t
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new_device_store(struct device *dev, struct device_attribute *attr,
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const char *buf, size_t count)
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{
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struct spi_controller *ctlr = container_of(dev, struct spi_controller,
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dev);
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struct spi_device *spi;
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char modalias[SPI_NAME_SIZE];
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unsigned int chip_select;
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u32 max_speed_hz = 0;
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u32 mode = 0;
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char *blank;
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int status;
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blank = strchr(buf, ' ');
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if (!blank) {
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dev_err(dev, "new_device: Missing parameters\n");
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return -EINVAL;
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}
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if (blank == buf || blank - buf > SPI_NAME_SIZE - 1) {
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dev_err(dev, "new_device: Invalid device name\n");
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return -EINVAL;
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}
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memset(modalias, 0, sizeof(modalias));
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memcpy(modalias, buf, blank - buf);
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/*
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* sscanf fills only the fields it matches; unmatched optional
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* fields (max_speed_hz, mode) stay zero from initialisation above.
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* max_speed_hz == 0 is clamped to the controller max by spi_setup().
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* mode == 0 selects SPI mode 0 (CPOL=0, CPHA=0).
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*/
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if (sscanf(++blank, "%u %u %u", &chip_select, &max_speed_hz, &mode) < 1) {
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dev_err(dev, "new_device: Can't parse chip select\n");
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return -EINVAL;
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}
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/*
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* spi_device.chip_select[] is u8, so cap at U8_MAX independently of
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* ctlr->num_chipselect (which is u16 and may exceed 255). Without
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* this, values in (U8_MAX, num_chipselect) would silently truncate
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* inside spi_set_chipselect() and select the wrong CS.
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*/
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if (chip_select > U8_MAX || chip_select >= ctlr->num_chipselect) {
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dev_err(dev, "new_device: Chip select %u out of range (num_chipselect=%u)\n",
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chip_select, ctlr->num_chipselect);
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return -EINVAL;
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}
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/*
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* Reject kernel-internal mode bits (SPI_NO_TX, SPI_NO_RX,
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* SPI_TPM_HW_FLOW, ...). These are set only by in-kernel drivers
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* that know they are safe on their controller/device pair and must
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* not be settable through a userspace-writable sysfs. Matches
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* spidev's SPI_IOC_WR_MODE32 handling (drivers/spi/spidev.c).
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*/
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if (mode & ~(u32)SPI_MODE_USER_MASK) {
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dev_err(dev, "new_device: Invalid mode bits 0x%x\n",
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mode & ~(u32)SPI_MODE_USER_MASK);
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return -EINVAL;
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}
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spi = spi_alloc_device(ctlr);
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if (!spi)
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return -ENOMEM;
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spi_set_chipselect(spi, 0, chip_select);
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spi->max_speed_hz = max_speed_hz;
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spi->mode = mode;
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spi->cs_index_mask = BIT(0);
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strscpy(spi->modalias, modalias, sizeof(spi->modalias));
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/*
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* Set driver_override so that the device binds to the driver
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* named by modalias regardless of whether that driver's
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* id_table contains a matching entry. This is needed because
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* some drivers (e.g. spidev) deliberately omit generic names
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* from their id_table.
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*/
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status = device_set_driver_override(&spi->dev, modalias);
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if (status) {
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spi_dev_put(spi);
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return status;
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}
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/*
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* spi_unregister_controller() removes the new_device/delete_device
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* sysfs group before taking add_lock, so kernfs_drain() has already
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* completed by the time we get here and we cannot be racing with
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* teardown. Take add_lock to serialise the __spi_add_device() and
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* list insertion with respect to non-sysfs callers of
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* __spi_add_device() (DT/ACPI, ancillary), which check
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* device_is_registered(&ctlr->dev) under the same lock.
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*/
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mutex_lock(&ctlr->add_lock);
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status = __spi_add_device(spi, NULL);
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if (status) {
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mutex_unlock(&ctlr->add_lock);
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spi_dev_put(spi);
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return status;
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}
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list_add_tail(&spi->userspace_node, &ctlr->userspace_clients);
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mutex_unlock(&ctlr->add_lock);
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dev_info(dev, "new_device: Instantiated device %s at CS%u\n",
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modalias, chip_select);
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return count;
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}
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static DEVICE_ATTR_IGNORE_LOCKDEP(new_device, 0200, NULL, new_device_store);
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static ssize_t
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delete_device_store(struct device *dev, struct device_attribute *attr,
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const char *buf, size_t count)
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{
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struct spi_controller *ctlr = container_of(dev, struct spi_controller,
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dev);
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struct spi_device *spi, *next;
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unsigned short cs;
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char end;
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int res;
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res = sscanf(buf, "%hu%c", &cs, &end);
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if (res < 1) {
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dev_err(dev, "delete_device: Can't parse chip select\n");
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return -EINVAL;
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}
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if (res > 1 && end != '\n') {
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dev_err(dev, "delete_device: Unexpected parameters\n");
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return -EINVAL;
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}
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res = -ENOENT;
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mutex_lock(&ctlr->add_lock);
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list_for_each_entry_safe(spi, next, &ctlr->userspace_clients,
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userspace_node) {
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if (spi_get_chipselect(spi, 0) == cs) {
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dev_info(dev, "delete_device: Deleting device %s at CS%u\n",
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spi->modalias, cs);
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list_del(&spi->userspace_node);
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spi_unregister_device(spi);
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res = count;
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break;
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}
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}
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mutex_unlock(&ctlr->add_lock);
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if (res < 0)
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dev_err(dev, "delete_device: Can't find device in list\n");
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return res;
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}
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static DEVICE_ATTR_IGNORE_LOCKDEP(delete_device, 0200, NULL,
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delete_device_store);
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static struct attribute *spi_controller_userspace_attrs[] = {
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&dev_attr_new_device.attr,
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&dev_attr_delete_device.attr,
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NULL,
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};
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static const struct attribute_group spi_controller_userspace_group = {
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.attrs = spi_controller_userspace_attrs,
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};
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#endif /* CONFIG_SPI_DYNAMIC */
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/*
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* spi_controller_userspace_group is registered manually for host controllers
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* at the end of spi_register_controller() so new_device/delete_device only
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* appear after DT/ACPI children and the queue are set up.
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*/
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static const struct attribute_group *spi_controller_groups[] = {
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&spi_controller_statistics_group,
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NULL,
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@@ -3259,6 +3446,9 @@ struct spi_controller *__spi_alloc_controller(struct device *dev,
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mutex_init(&ctlr->bus_lock_mutex);
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mutex_init(&ctlr->io_mutex);
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mutex_init(&ctlr->add_lock);
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#if IS_ENABLED(CONFIG_SPI_DYNAMIC)
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INIT_LIST_HEAD(&ctlr->userspace_clients);
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#endif
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ctlr->bus_num = -1;
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ctlr->num_chipselect = 1;
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ctlr->num_data_lanes = 1;
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@@ -3552,6 +3742,29 @@ int spi_register_controller(struct spi_controller *ctlr)
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of_register_spi_devices(ctlr);
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acpi_register_spi_devices(ctlr);
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#if IS_ENABLED(CONFIG_SPI_DYNAMIC)
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/*
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* Register the new_device/delete_device sysfs interface as the
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* final step of host controller bringup, only after the queue,
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* boardinfo matching and DT/ACPI enumeration have all completed.
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* If this fails, the controller is otherwise usable, so log and
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* carry on rather than tearing everything down.
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*/
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if (!spi_controller_is_target(ctlr)) {
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status = sysfs_create_group(&ctlr->dev.kobj,
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&spi_controller_userspace_group);
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if (status) {
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dev_warn(&ctlr->dev,
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"Failed to create userspace client interface: %d\n",
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status);
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} else {
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ctlr->userspace_registered = true;
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/* Notify userspace that the new attributes are available. */
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kobject_uevent(&ctlr->dev.kobj, KOBJ_CHANGE);
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}
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}
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#endif
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return 0;
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del_ctrl:
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@@ -3616,10 +3829,43 @@ void spi_unregister_controller(struct spi_controller *ctlr)
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struct spi_controller *found;
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int id = ctlr->bus_num;
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/*
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* Drain in-flight new_device/delete_device sysfs stores and
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* prevent new ones from starting. Must happen before we take
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* add_lock so kernfs_drain doesn't wait on a store that is
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* itself blocked on add_lock.
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*/
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#if IS_ENABLED(CONFIG_SPI_DYNAMIC)
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if (ctlr->userspace_registered) {
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sysfs_remove_group(&ctlr->dev.kobj,
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&spi_controller_userspace_group);
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ctlr->userspace_registered = false;
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}
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#endif
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/* Prevent addition of new devices, unregister existing ones */
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if (IS_ENABLED(CONFIG_SPI_DYNAMIC))
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mutex_lock(&ctlr->add_lock);
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#if IS_ENABLED(CONFIG_SPI_DYNAMIC)
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/*
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* Drain userspace_clients before __unregister since
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* spi_unregister_device() doesn't do list_del() itself. The
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* userspace sysfs group has already been removed above and
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* kernfs_drain() has completed, so no new entries can appear
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* here.
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*/
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while (!list_empty(&ctlr->userspace_clients)) {
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struct spi_device *spi;
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spi = list_first_entry(&ctlr->userspace_clients,
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struct spi_device,
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userspace_node);
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list_del(&spi->userspace_node);
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spi_unregister_device(spi);
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}
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#endif
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device_for_each_child(&ctlr->dev, NULL, __unregister);
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/* First make sure that this controller was ever added */
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@@ -179,6 +179,8 @@ extern void spi_transfer_cs_change_delay_exec(struct spi_message *msg,
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* @num_tx_lanes: Number of transmit lanes wired up.
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* @rx_lane_map: Map of peripheral lanes (index) to controller lanes (value).
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* @num_rx_lanes: Number of receive lanes wired up.
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* @userspace_node: entry on the parent controller's userspace_clients list
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* when this device was instantiated via the sysfs new_device interface
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*
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* A @spi_device is used to interchange data between an SPI target device
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* (usually a discrete chip) and CPU memory.
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@@ -252,6 +254,10 @@ struct spi_device {
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u8 rx_lane_map[SPI_DEVICE_DATA_LANE_CNT_MAX];
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u8 num_rx_lanes;
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#if IS_ENABLED(CONFIG_SPI_DYNAMIC)
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struct list_head userspace_node;
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#endif
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/*
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* Likely need more hooks for more protocol options affecting how
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* the controller talks to each chip, like:
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@@ -555,6 +561,11 @@ extern struct spi_device *devm_spi_new_ancillary_device(struct spi_device *spi,
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* @defer_optimize_message: set to true if controller cannot pre-optimize messages
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* and needs to defer the optimization step until the message is actually
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* being transferred
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* @userspace_clients: list of SPI devices instantiated from userspace via
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* the sysfs new_device interface; protected by @add_lock
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* @userspace_registered: true once the new_device/delete_device sysfs
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* group has been added by spi_register_controller(); used by
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* spi_unregister_controller() to know whether to remove it
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*
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* Each SPI controller can communicate with one or more @spi_device
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* children. These make a small bus, sharing MOSI, MISO and SCK signals
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@@ -807,6 +818,13 @@ struct spi_controller {
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bool queue_empty;
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bool must_async;
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bool defer_optimize_message;
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#if IS_ENABLED(CONFIG_SPI_DYNAMIC)
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/* List of userspace-instantiated devices; protected by @add_lock */
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struct list_head userspace_clients;
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/* True after new_device/delete_device sysfs group is created */
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bool userspace_registered;
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#endif
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};
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static inline void *spi_controller_get_devdata(struct spi_controller *ctlr)
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