diff options
Diffstat (limited to 'nrfdemo/build/zephyr/include/generated/syscalls/uart.h')
| -rw-r--r-- | nrfdemo/build/zephyr/include/generated/syscalls/uart.h | 612 |
1 files changed, 612 insertions, 0 deletions
diff --git a/nrfdemo/build/zephyr/include/generated/syscalls/uart.h b/nrfdemo/build/zephyr/include/generated/syscalls/uart.h new file mode 100644 index 0000000..b3b9b91 --- /dev/null +++ b/nrfdemo/build/zephyr/include/generated/syscalls/uart.h @@ -0,0 +1,612 @@ +/* auto-generated by gen_syscalls.py, don't edit */ + +#ifndef Z_INCLUDE_SYSCALLS_UART_H +#define Z_INCLUDE_SYSCALLS_UART_H + + +#include <zephyr/tracing/tracing_syscall.h> + +#ifndef _ASMLANGUAGE + +#include <stdarg.h> + +#include <syscall_list.h> +#include <zephyr/syscall.h> + +#include <zephyr/linker/sections.h> + + +#ifdef __cplusplus +extern "C" { +#endif + +extern int z_impl_uart_err_check(const struct device * dev); + +__pinned_func +static inline int uart_err_check(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + return (int) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_ERR_CHECK); + } +#endif + compiler_barrier(); + return z_impl_uart_err_check(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_err_check(dev) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_ERR_CHECK, uart_err_check, dev); syscall__retval = uart_err_check(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_ERR_CHECK, uart_err_check, dev, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_poll_in(const struct device * dev, unsigned char * p_char); + +__pinned_func +static inline int uart_poll_in(const struct device * dev, unsigned char * p_char) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; unsigned char * val; } parm1 = { .val = p_char }; + return (int) arch_syscall_invoke2(parm0.x, parm1.x, K_SYSCALL_UART_POLL_IN); + } +#endif + compiler_barrier(); + return z_impl_uart_poll_in(dev, p_char); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_poll_in(dev, p_char) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_POLL_IN, uart_poll_in, dev, p_char); syscall__retval = uart_poll_in(dev, p_char); sys_port_trace_syscall_exit(K_SYSCALL_UART_POLL_IN, uart_poll_in, dev, p_char, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_poll_in_u16(const struct device * dev, uint16_t * p_u16); + +__pinned_func +static inline int uart_poll_in_u16(const struct device * dev, uint16_t * p_u16) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; uint16_t * val; } parm1 = { .val = p_u16 }; + return (int) arch_syscall_invoke2(parm0.x, parm1.x, K_SYSCALL_UART_POLL_IN_U16); + } +#endif + compiler_barrier(); + return z_impl_uart_poll_in_u16(dev, p_u16); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_poll_in_u16(dev, p_u16) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_POLL_IN_U16, uart_poll_in_u16, dev, p_u16); syscall__retval = uart_poll_in_u16(dev, p_u16); sys_port_trace_syscall_exit(K_SYSCALL_UART_POLL_IN_U16, uart_poll_in_u16, dev, p_u16, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern void z_impl_uart_poll_out(const struct device * dev, unsigned char out_char); + +__pinned_func +static inline void uart_poll_out(const struct device * dev, unsigned char out_char) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; unsigned char val; } parm1 = { .val = out_char }; + (void) arch_syscall_invoke2(parm0.x, parm1.x, K_SYSCALL_UART_POLL_OUT); + return; + } +#endif + compiler_barrier(); + z_impl_uart_poll_out(dev, out_char); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_poll_out(dev, out_char) do { sys_port_trace_syscall_enter(K_SYSCALL_UART_POLL_OUT, uart_poll_out, dev, out_char); uart_poll_out(dev, out_char); sys_port_trace_syscall_exit(K_SYSCALL_UART_POLL_OUT, uart_poll_out, dev, out_char); } while(false) +#endif +#endif + + +extern void z_impl_uart_poll_out_u16(const struct device * dev, uint16_t out_u16); + +__pinned_func +static inline void uart_poll_out_u16(const struct device * dev, uint16_t out_u16) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; uint16_t val; } parm1 = { .val = out_u16 }; + (void) arch_syscall_invoke2(parm0.x, parm1.x, K_SYSCALL_UART_POLL_OUT_U16); + return; + } +#endif + compiler_barrier(); + z_impl_uart_poll_out_u16(dev, out_u16); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_poll_out_u16(dev, out_u16) do { sys_port_trace_syscall_enter(K_SYSCALL_UART_POLL_OUT_U16, uart_poll_out_u16, dev, out_u16); uart_poll_out_u16(dev, out_u16); sys_port_trace_syscall_exit(K_SYSCALL_UART_POLL_OUT_U16, uart_poll_out_u16, dev, out_u16); } while(false) +#endif +#endif + + +extern int z_impl_uart_configure(const struct device * dev, const struct uart_config * cfg); + +__pinned_func +static inline int uart_configure(const struct device * dev, const struct uart_config * cfg) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; const struct uart_config * val; } parm1 = { .val = cfg }; + return (int) arch_syscall_invoke2(parm0.x, parm1.x, K_SYSCALL_UART_CONFIGURE); + } +#endif + compiler_barrier(); + return z_impl_uart_configure(dev, cfg); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_configure(dev, cfg) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_CONFIGURE, uart_configure, dev, cfg); syscall__retval = uart_configure(dev, cfg); sys_port_trace_syscall_exit(K_SYSCALL_UART_CONFIGURE, uart_configure, dev, cfg, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_config_get(const struct device * dev, struct uart_config * cfg); + +__pinned_func +static inline int uart_config_get(const struct device * dev, struct uart_config * cfg) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; struct uart_config * val; } parm1 = { .val = cfg }; + return (int) arch_syscall_invoke2(parm0.x, parm1.x, K_SYSCALL_UART_CONFIG_GET); + } +#endif + compiler_barrier(); + return z_impl_uart_config_get(dev, cfg); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_config_get(dev, cfg) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_CONFIG_GET, uart_config_get, dev, cfg); syscall__retval = uart_config_get(dev, cfg); sys_port_trace_syscall_exit(K_SYSCALL_UART_CONFIG_GET, uart_config_get, dev, cfg, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern void z_impl_uart_irq_tx_enable(const struct device * dev); + +__pinned_func +static inline void uart_irq_tx_enable(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + (void) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_IRQ_TX_ENABLE); + return; + } +#endif + compiler_barrier(); + z_impl_uart_irq_tx_enable(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_irq_tx_enable(dev) do { sys_port_trace_syscall_enter(K_SYSCALL_UART_IRQ_TX_ENABLE, uart_irq_tx_enable, dev); uart_irq_tx_enable(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_IRQ_TX_ENABLE, uart_irq_tx_enable, dev); } while(false) +#endif +#endif + + +extern void z_impl_uart_irq_tx_disable(const struct device * dev); + +__pinned_func +static inline void uart_irq_tx_disable(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + (void) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_IRQ_TX_DISABLE); + return; + } +#endif + compiler_barrier(); + z_impl_uart_irq_tx_disable(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_irq_tx_disable(dev) do { sys_port_trace_syscall_enter(K_SYSCALL_UART_IRQ_TX_DISABLE, uart_irq_tx_disable, dev); uart_irq_tx_disable(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_IRQ_TX_DISABLE, uart_irq_tx_disable, dev); } while(false) +#endif +#endif + + +extern void z_impl_uart_irq_rx_enable(const struct device * dev); + +__pinned_func +static inline void uart_irq_rx_enable(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + (void) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_IRQ_RX_ENABLE); + return; + } +#endif + compiler_barrier(); + z_impl_uart_irq_rx_enable(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_irq_rx_enable(dev) do { sys_port_trace_syscall_enter(K_SYSCALL_UART_IRQ_RX_ENABLE, uart_irq_rx_enable, dev); uart_irq_rx_enable(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_IRQ_RX_ENABLE, uart_irq_rx_enable, dev); } while(false) +#endif +#endif + + +extern void z_impl_uart_irq_rx_disable(const struct device * dev); + +__pinned_func +static inline void uart_irq_rx_disable(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + (void) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_IRQ_RX_DISABLE); + return; + } +#endif + compiler_barrier(); + z_impl_uart_irq_rx_disable(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_irq_rx_disable(dev) do { sys_port_trace_syscall_enter(K_SYSCALL_UART_IRQ_RX_DISABLE, uart_irq_rx_disable, dev); uart_irq_rx_disable(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_IRQ_RX_DISABLE, uart_irq_rx_disable, dev); } while(false) +#endif +#endif + + +extern void z_impl_uart_irq_err_enable(const struct device * dev); + +__pinned_func +static inline void uart_irq_err_enable(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + (void) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_IRQ_ERR_ENABLE); + return; + } +#endif + compiler_barrier(); + z_impl_uart_irq_err_enable(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_irq_err_enable(dev) do { sys_port_trace_syscall_enter(K_SYSCALL_UART_IRQ_ERR_ENABLE, uart_irq_err_enable, dev); uart_irq_err_enable(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_IRQ_ERR_ENABLE, uart_irq_err_enable, dev); } while(false) +#endif +#endif + + +extern void z_impl_uart_irq_err_disable(const struct device * dev); + +__pinned_func +static inline void uart_irq_err_disable(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + (void) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_IRQ_ERR_DISABLE); + return; + } +#endif + compiler_barrier(); + z_impl_uart_irq_err_disable(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_irq_err_disable(dev) do { sys_port_trace_syscall_enter(K_SYSCALL_UART_IRQ_ERR_DISABLE, uart_irq_err_disable, dev); uart_irq_err_disable(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_IRQ_ERR_DISABLE, uart_irq_err_disable, dev); } while(false) +#endif +#endif + + +extern int z_impl_uart_irq_is_pending(const struct device * dev); + +__pinned_func +static inline int uart_irq_is_pending(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + return (int) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_IRQ_IS_PENDING); + } +#endif + compiler_barrier(); + return z_impl_uart_irq_is_pending(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_irq_is_pending(dev) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_IRQ_IS_PENDING, uart_irq_is_pending, dev); syscall__retval = uart_irq_is_pending(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_IRQ_IS_PENDING, uart_irq_is_pending, dev, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_irq_update(const struct device * dev); + +__pinned_func +static inline int uart_irq_update(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + return (int) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_IRQ_UPDATE); + } +#endif + compiler_barrier(); + return z_impl_uart_irq_update(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_irq_update(dev) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_IRQ_UPDATE, uart_irq_update, dev); syscall__retval = uart_irq_update(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_IRQ_UPDATE, uart_irq_update, dev, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_tx(const struct device * dev, const uint8_t * buf, size_t len, int32_t timeout); + +__pinned_func +static inline int uart_tx(const struct device * dev, const uint8_t * buf, size_t len, int32_t timeout) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; const uint8_t * val; } parm1 = { .val = buf }; + union { uintptr_t x; size_t val; } parm2 = { .val = len }; + union { uintptr_t x; int32_t val; } parm3 = { .val = timeout }; + return (int) arch_syscall_invoke4(parm0.x, parm1.x, parm2.x, parm3.x, K_SYSCALL_UART_TX); + } +#endif + compiler_barrier(); + return z_impl_uart_tx(dev, buf, len, timeout); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_tx(dev, buf, len, timeout) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_TX, uart_tx, dev, buf, len, timeout); syscall__retval = uart_tx(dev, buf, len, timeout); sys_port_trace_syscall_exit(K_SYSCALL_UART_TX, uart_tx, dev, buf, len, timeout, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_tx_u16(const struct device * dev, const uint16_t * buf, size_t len, int32_t timeout); + +__pinned_func +static inline int uart_tx_u16(const struct device * dev, const uint16_t * buf, size_t len, int32_t timeout) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; const uint16_t * val; } parm1 = { .val = buf }; + union { uintptr_t x; size_t val; } parm2 = { .val = len }; + union { uintptr_t x; int32_t val; } parm3 = { .val = timeout }; + return (int) arch_syscall_invoke4(parm0.x, parm1.x, parm2.x, parm3.x, K_SYSCALL_UART_TX_U16); + } +#endif + compiler_barrier(); + return z_impl_uart_tx_u16(dev, buf, len, timeout); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_tx_u16(dev, buf, len, timeout) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_TX_U16, uart_tx_u16, dev, buf, len, timeout); syscall__retval = uart_tx_u16(dev, buf, len, timeout); sys_port_trace_syscall_exit(K_SYSCALL_UART_TX_U16, uart_tx_u16, dev, buf, len, timeout, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_tx_abort(const struct device * dev); + +__pinned_func +static inline int uart_tx_abort(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + return (int) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_TX_ABORT); + } +#endif + compiler_barrier(); + return z_impl_uart_tx_abort(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_tx_abort(dev) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_TX_ABORT, uart_tx_abort, dev); syscall__retval = uart_tx_abort(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_TX_ABORT, uart_tx_abort, dev, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_rx_enable(const struct device * dev, uint8_t * buf, size_t len, int32_t timeout); + +__pinned_func +static inline int uart_rx_enable(const struct device * dev, uint8_t * buf, size_t len, int32_t timeout) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; uint8_t * val; } parm1 = { .val = buf }; + union { uintptr_t x; size_t val; } parm2 = { .val = len }; + union { uintptr_t x; int32_t val; } parm3 = { .val = timeout }; + return (int) arch_syscall_invoke4(parm0.x, parm1.x, parm2.x, parm3.x, K_SYSCALL_UART_RX_ENABLE); + } +#endif + compiler_barrier(); + return z_impl_uart_rx_enable(dev, buf, len, timeout); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_rx_enable(dev, buf, len, timeout) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_RX_ENABLE, uart_rx_enable, dev, buf, len, timeout); syscall__retval = uart_rx_enable(dev, buf, len, timeout); sys_port_trace_syscall_exit(K_SYSCALL_UART_RX_ENABLE, uart_rx_enable, dev, buf, len, timeout, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_rx_enable_u16(const struct device * dev, uint16_t * buf, size_t len, int32_t timeout); + +__pinned_func +static inline int uart_rx_enable_u16(const struct device * dev, uint16_t * buf, size_t len, int32_t timeout) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; uint16_t * val; } parm1 = { .val = buf }; + union { uintptr_t x; size_t val; } parm2 = { .val = len }; + union { uintptr_t x; int32_t val; } parm3 = { .val = timeout }; + return (int) arch_syscall_invoke4(parm0.x, parm1.x, parm2.x, parm3.x, K_SYSCALL_UART_RX_ENABLE_U16); + } +#endif + compiler_barrier(); + return z_impl_uart_rx_enable_u16(dev, buf, len, timeout); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_rx_enable_u16(dev, buf, len, timeout) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_RX_ENABLE_U16, uart_rx_enable_u16, dev, buf, len, timeout); syscall__retval = uart_rx_enable_u16(dev, buf, len, timeout); sys_port_trace_syscall_exit(K_SYSCALL_UART_RX_ENABLE_U16, uart_rx_enable_u16, dev, buf, len, timeout, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_rx_disable(const struct device * dev); + +__pinned_func +static inline int uart_rx_disable(const struct device * dev) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + return (int) arch_syscall_invoke1(parm0.x, K_SYSCALL_UART_RX_DISABLE); + } +#endif + compiler_barrier(); + return z_impl_uart_rx_disable(dev); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_rx_disable(dev) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_RX_DISABLE, uart_rx_disable, dev); syscall__retval = uart_rx_disable(dev); sys_port_trace_syscall_exit(K_SYSCALL_UART_RX_DISABLE, uart_rx_disable, dev, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_line_ctrl_set(const struct device * dev, uint32_t ctrl, uint32_t val); + +__pinned_func +static inline int uart_line_ctrl_set(const struct device * dev, uint32_t ctrl, uint32_t val) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; uint32_t val; } parm1 = { .val = ctrl }; + union { uintptr_t x; uint32_t val; } parm2 = { .val = val }; + return (int) arch_syscall_invoke3(parm0.x, parm1.x, parm2.x, K_SYSCALL_UART_LINE_CTRL_SET); + } +#endif + compiler_barrier(); + return z_impl_uart_line_ctrl_set(dev, ctrl, val); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_line_ctrl_set(dev, ctrl, val) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_LINE_CTRL_SET, uart_line_ctrl_set, dev, ctrl, val); syscall__retval = uart_line_ctrl_set(dev, ctrl, val); sys_port_trace_syscall_exit(K_SYSCALL_UART_LINE_CTRL_SET, uart_line_ctrl_set, dev, ctrl, val, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_line_ctrl_get(const struct device * dev, uint32_t ctrl, uint32_t * val); + +__pinned_func +static inline int uart_line_ctrl_get(const struct device * dev, uint32_t ctrl, uint32_t * val) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; uint32_t val; } parm1 = { .val = ctrl }; + union { uintptr_t x; uint32_t * val; } parm2 = { .val = val }; + return (int) arch_syscall_invoke3(parm0.x, parm1.x, parm2.x, K_SYSCALL_UART_LINE_CTRL_GET); + } +#endif + compiler_barrier(); + return z_impl_uart_line_ctrl_get(dev, ctrl, val); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_line_ctrl_get(dev, ctrl, val) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_LINE_CTRL_GET, uart_line_ctrl_get, dev, ctrl, val); syscall__retval = uart_line_ctrl_get(dev, ctrl, val); sys_port_trace_syscall_exit(K_SYSCALL_UART_LINE_CTRL_GET, uart_line_ctrl_get, dev, ctrl, val, syscall__retval); syscall__retval; }) +#endif +#endif + + +extern int z_impl_uart_drv_cmd(const struct device * dev, uint32_t cmd, uint32_t p); + +__pinned_func +static inline int uart_drv_cmd(const struct device * dev, uint32_t cmd, uint32_t p) +{ +#ifdef CONFIG_USERSPACE + if (z_syscall_trap()) { + union { uintptr_t x; const struct device * val; } parm0 = { .val = dev }; + union { uintptr_t x; uint32_t val; } parm1 = { .val = cmd }; + union { uintptr_t x; uint32_t val; } parm2 = { .val = p }; + return (int) arch_syscall_invoke3(parm0.x, parm1.x, parm2.x, K_SYSCALL_UART_DRV_CMD); + } +#endif + compiler_barrier(); + return z_impl_uart_drv_cmd(dev, cmd, p); +} + +#if defined(CONFIG_TRACING_SYSCALL) +#ifndef DISABLE_SYSCALL_TRACING + +#define uart_drv_cmd(dev, cmd, p) ({ int syscall__retval; sys_port_trace_syscall_enter(K_SYSCALL_UART_DRV_CMD, uart_drv_cmd, dev, cmd, p); syscall__retval = uart_drv_cmd(dev, cmd, p); sys_port_trace_syscall_exit(K_SYSCALL_UART_DRV_CMD, uart_drv_cmd, dev, cmd, p, syscall__retval); syscall__retval; }) +#endif +#endif + + +#ifdef __cplusplus +} +#endif + +#endif +#endif /* include guard */ |
