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mohitmishra786/low-level-dev-skills308 installs

device-drivers

Linux device driver skill for kernel driver development. Use when writing platform/i2c/spi drivers, char device lifecycle, IRQ handling, DMA engine API, regmap, power management, or udev rules. Activates on queries about platform_driver, request_irq, dma_alloc_coherent, regmap, pm_runtime, or char devices.

How do I install this agent skill?

npx skills add https://github.com/mohitmishra786/low-level-dev-skills --skill device-drivers
view source ↗

Is this agent skill safe to install?

  • Gen Agent Trust Hubpass

    This skill provides templates and instructions for Linux kernel driver development. It contains no malicious code, suspicious network activity, or obfuscation. All included commands are standard for the intended development workflow.

  • Socketpass

    No alerts

  • Snykwarn

    Risk: MEDIUM · 1 issue

What does this agent skill do?

Device Drivers

Purpose

Guide agents through Linux kernel device driver development: the driver model (platform_driver, i2c_driver, spi_driver), character device lifecycle, IRQ handling including threaded IRQs, DMA engine API, regmap for register abstraction, runtime power management, and udev rules for userspace device nodes.

When to Use

  • Writing a platform driver for memory-mapped hardware
  • Implementing a character device with read/write/ioctl
  • Handling hardware interrupts (hard IRQ vs threaded)
  • Setting up DMA coherent or streaming mappings
  • Abstracting register access with regmap
  • Configuring udev rules for /dev node permissions

Workflow

1. Driver model overview

Device tree / ACPI → bus (platform, i2c, spi, pci)
    → struct device → struct device_driver
        → probe() / remove()
// platform_driver.c — minimal platform driver
#include <linux/module.h>
#include <linux/platform_device.h>

static int my_probe(struct platform_device *pdev)
{
    struct resource *res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
    void __iomem *base = devm_ioremap_resource(&pdev->dev, res);
    if (IS_ERR(base))
        return PTR_ERR(base);
    dev_info(&pdev->dev, "probed at %pa\n", &res->start);
    return 0;
}

static void my_remove(struct platform_device *pdev)
{
    dev_info(&pdev->dev, "removed\n");
}

static struct platform_driver my_driver = {
    .probe  = my_probe,
    .remove = my_remove,
    .driver = { .name = "my-device", .owner = THIS_MODULE },
};

module_platform_driver(my_driver);
MODULE_LICENSE("GPL");

2. Character device lifecycle

#include <linux/fs.h>
#include <linux/cdev.h>
#include <linux/uaccess.h>

#define DEVICE_NAME "mydev"
#define MINOR_BASE  0
#define MINOR_COUNT 1

static dev_t dev_num;
static struct cdev my_cdev;
static struct class *dev_class;

static ssize_t my_read(struct file *filp, char __user *buf,
                       size_t count, loff_t *ppos)
{
    char kbuf[64] = "hello from kernel\n";
    size_t len = strlen(kbuf);
    if (*ppos >= len)
        return 0;
    if (count > len - *ppos)
        count = len - *ppos;
    if (copy_to_user(buf, kbuf + *ppos, count))
        return -EFAULT;
    *ppos += count;
    return count;
}

static const struct file_operations my_fops = {
    .owner = THIS_MODULE,
    .read  = my_read,
};

static int __init mydev_init(void)
{
    int ret;
    ret = alloc_chrdev_region(&dev_num, MINOR_BASE, MINOR_COUNT, DEVICE_NAME);
    if (ret)
        return ret;

    cdev_init(&my_cdev, &my_fops);
    my_cdev.owner = THIS_MODULE;
    ret = cdev_add(&my_cdev, dev_num, MINOR_COUNT);
    if (ret)
        goto err_cdev;

    dev_class = class_create(DEVICE_NAME);
    device_create(dev_class, NULL, dev_num, NULL, DEVICE_NAME);
    return 0;

err_cdev:
    unregister_chrdev_region(dev_num, MINOR_COUNT);
    return ret;
}
# After loading module
ls -l /dev/mydev
cat /dev/mydev

3. IRQ handling

#include <linux/interrupt.h>

static irqreturn_t my_hardirq(int irq, void *dev_id)
{
    // Minimal work: acknowledge, schedule bottom half
    return IRQ_WAKE_THREAD;
}

static irqreturn_t my_threaded(int irq, void *dev_id)
{
    // Process data — can sleep
    process_ring_buffer();
    return IRQ_HANDLED;
}

static int request_device_irq(struct device *dev, int irq)
{
    return devm_request_threaded_irq(dev, irq, my_hardirq, my_threaded,
                                     IRQF_ONESHOT, "mydev", dev);
}
PatternUse when
Hard IRQ onlyMicrosecond work, no blocking
Threaded IRQI2C/SPI reads, scheduling, mutex
IRQF_ONESHOTLevel-triggered; IRQ masked until threaded handler returns

4. DMA engine API

#include <linux/dma-mapping.h>

// Coherent (consistent) mapping — CPU and device see same memory
void *cpu_addr;
dma_addr_t dma_handle;
cpu_addr = dma_alloc_coherent(dev, size, &dma_handle, GFP_KERNEL);

// Streaming (single) mapping for already-allocated buffers
dma_addr_t dma = dma_map_single(dev, kernel_buf, size, DMA_TO_DEVICE);
dma_sync_single_for_device(dev, dma, size, DMA_TO_DEVICE);
// ... device reads ...
dma_unmap_single(dev, dma, size, DMA_TO_DEVICE);
# Debug DMA mappings
cat /sys/kernel/debug/dma_buf/bufinfo 2>/dev/null

5. regmap abstraction

#include <linux/regmap.h>

static const struct regmap_config my_regmap_config = {
    .reg_bits   = 8,
    .val_bits   = 8,
    .max_register = 0xFF,
};

// I2C regmap (typical for sensors)
static struct regmap *regmap;

regmap_write(regmap, 0x01, 0x80);  // set config register
regmap_read(regmap, 0x02, &val);   // read status
regmap_update_bits(regmap, 0x03, MASK, VALUE);

regmap handles locking, caching, and bulk access — prefer over raw i2c_smbus_* in new drivers.

6. Power management

#include <linux/pm_runtime.h>

static int my_runtime_suspend(struct device *dev)
{
    // Gate clocks, put hardware in low-power state
    return 0;
}

static int my_runtime_resume(struct device *dev)
{
    // Restore registers, enable clocks
    return 0;
}

static const struct dev_pm_ops my_pm_ops = {
    .runtime_suspend = my_runtime_suspend,
    .runtime_resume  = my_runtime_resume,
};

// In probe:
pm_runtime_enable(&pdev->dev);
pm_runtime_get_sync(&pdev->dev);  // ensure powered on

7. udev rules

# /etc/udev/rules.d/99-mydev.rules
KERNEL=="mydev", MODE="0666", GROUP="plugdev"
SUBSYSTEM=="i2c-dev", KERNEL=="i2c-1", GROUP="i2c", MODE="0660"
sudo udevadm control --reload-rules
sudo udevadm trigger
udevadm info -a -n /dev/mydev

8. I2C and SPI driver stubs

// i2c_driver
static const struct i2c_device_id my_i2c_id[] = {
    { "sensor-chip", 0 },
    { }
};
MODULE_DEVICE_TABLE(i2c, my_i2c_id);

static struct i2c_driver my_i2c_driver = {
    .driver = { .name = "sensor-chip" },
    .probe  = my_i2c_probe,
    .remove = my_i2c_remove,
    .id_table = my_i2c_id,
};
module_i2c_driver(my_i2c_driver);

Common Problems

SymptomCauseFix
probe failed with -EBUSYResource conflict or double probeCheck device tree status; devm_* cleanup
IRQ stormMissing acknowledge in handlerACK interrupt in hardirq; use IRQF_ONESHOT
DMA coherency bugWrong sync directiondma_sync_single_for_cpu/device at boundaries
/dev/node missingclass_create/device_create failedCheck dmesg; verify cdev_add return
copy_to_user faultInvalid userspace pointerValidate with access_ok
Runtime PM hangMissing pm_runtime_putBalance get/put; use devm_pm_runtime_enable

Related Skills

  • skills/kernel/kernel-internals — VFS, memory allocators underlying drivers
  • skills/low-level-programming/linux-kernel-modules — Kbuild, module loading, signing
  • skills/kernel/kernel-debugging — kgdb, ftrace for driver bugs
  • skills/embedded/zephyr — embedded RTOS driver model comparison
  • skills/observability/ebpf — trace driver events without modifying kernel
  • skills/kernel/kernel-testing — KUnit tests for driver logic

Add the canonical catalog link to the repository README so users can inspect current installs and available audits. The publishing guide covers the complete discovery path.

<a href="https://skillzs.dev/skills/mohitmishra786/low-level-dev-skills/device-drivers">View device-drivers on skillZs</a>