<?xml version="1.0" encoding="UTF-8" ?>
<?xml-stylesheet type="text/xsl" href="https://devzone.nordicsemi.com/cfs-file/__key/system/syndication/rss.xsl" media="screen"?><rss version="2.0" xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:slash="http://purl.org/rss/1.0/modules/slash/" xmlns:wfw="http://wellformedweb.org/CommentAPI/" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/f/nordic-q-a/89608/data-rate-using-nrf52832-and-nus</link><description>Hi, 
 
 I am looking into the example of SAADC and sending data through BLE. My tests are based on this example: github.com/.../ble_app_uart__saadc_timer_driven__scan_mode 
 I am trying to get a higher data rate, so I changed several configurations. </description><dc:language>en-US</dc:language><generator>Telligent Community 13</generator><lastBuildDate>Fri, 08 Jul 2022 07:26:35 GMT</lastBuildDate><atom:link rel="self" type="application/rss+xml" href="https://devzone.nordicsemi.com/f/nordic-q-a/89608/data-rate-using-nrf52832-and-nus" /><item><title>RE: Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/thread/376117?ContentTypeID=1</link><pubDate>Fri, 08 Jul 2022 07:26:35 GMT</pubDate><guid isPermaLink="false">137ad170-7792-4731-bb38-c0d22fbe4515:b983b0a2-860b-4e1e-a01e-d542c652d138</guid><dc:creator>Vidar Berg</dc:creator><description>&lt;p&gt;No problem &lt;span class="emoticon" data-url="https://devzone.nordicsemi.com/cfs-file/__key/system/emoji/1f642.svg" title="Slight smile"&gt;&amp;#x1f642;&lt;/span&gt;&amp;nbsp; Just note that my buffer handling inside the saadc_callback() requires a bit more work. Now it will drop 4 samples every time the nus_data array is full.&amp;nbsp; A simple solution may be to use two buffers so you can start preparing the next buffer when the previous one is being transferred over BLE.&lt;/p&gt;
&lt;p&gt;Some other obvious mistakes I noticed when I looked at the code again:&lt;/p&gt;
&lt;p&gt;&lt;img style="max-height:240px;max-width:320px;" src="https://devzone.nordicsemi.com/resized-image/__size/640x480/__key/communityserver-discussions-components-files/4/pastedimage1657264158220v2.png" alt=" " /&gt;&lt;/p&gt;
&lt;p&gt;1. Previous check did not include the &amp;#39;equal&amp;#39; operator so the packet would be sent before it was full (probably won&amp;#39;t make much difference but still an optimizations you can make). 2. Removed what should be a redundant assert check. I added it to make sure I wasn&amp;#39;t overrunning the nus_data buffer. 3. index which was used earlier is always SAADC_SAMPLES_IN_BUFFER * 2 bytes less than the number of bytes we actually want to send.&lt;/p&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;</description></item><item><title>RE: Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/thread/376085?ContentTypeID=1</link><pubDate>Thu, 07 Jul 2022 20:56:56 GMT</pubDate><guid isPermaLink="false">137ad170-7792-4731-bb38-c0d22fbe4515:d005546a-cda0-4692-9038-ee0dcf96863d</guid><dc:creator>dfbdfb</dc:creator><description>&lt;p&gt;Thank you so much! I really appreciate it!&lt;/p&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;</description></item><item><title>RE: Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/thread/376025?ContentTypeID=1</link><pubDate>Thu, 07 Jul 2022 13:07:57 GMT</pubDate><guid isPermaLink="false">137ad170-7792-4731-bb38-c0d22fbe4515:50d0c09b-8e24-4a82-a490-d287ca847529</guid><dc:creator>Vidar Berg</dc:creator><description>&lt;p&gt;Hi,&lt;/p&gt;
&lt;p&gt;To further increase the throughput you can try to place the raw values inside the notification packet and skip the string conversion. Here is the result I got when I tried it here&amp;nbsp; (assuming my calculations are correct):&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;Sampling @1ms&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;&lt;img style="cursor:zoom-in;max-height:240px;max-width:320px;" src="https://devzone.nordicsemi.com/resized-image/__size/640x480/__key/communityserver-discussions-components-files/4/3731.pastedimage1657198181589v1.png" alt=" " /&gt;&lt;/p&gt;
&lt;p&gt;Updated main.c:&lt;/p&gt;
&lt;p&gt;&lt;a href="https://devzone.nordicsemi.com/cfs-file/__key/communityserver-discussions-components-files/4/187263.main.c"&gt;devzone.nordicsemi.com/.../187263.main.c&lt;/a&gt;&lt;/p&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;</description></item><item><title>RE: Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/thread/375876?ContentTypeID=1</link><pubDate>Wed, 06 Jul 2022 18:05:32 GMT</pubDate><guid isPermaLink="false">137ad170-7792-4731-bb38-c0d22fbe4515:a67435c7-f17c-4c35-93ff-548fc5d986cf</guid><dc:creator>dfbdfb</dc:creator><description>&lt;p&gt;Hi,&lt;/p&gt;
&lt;p&gt;&lt;/p&gt;
&lt;p&gt;Thanks for the modified version. It is really helpful!&lt;/p&gt;
&lt;p&gt;I got this:&lt;/p&gt;
&lt;p&gt;&lt;img style="max-height:240px;max-width:320px;" src="https://devzone.nordicsemi.com/resized-image/__size/640x480/__key/communityserver-discussions-components-files/4/pastedimage1657127651791v1.png" alt=" " /&gt;&lt;/p&gt;
&lt;p&gt;I can change the data length manually on the nRF Connect app.&amp;nbsp;&lt;/p&gt;
&lt;p&gt;&lt;/p&gt;
&lt;p&gt;I also tried with higher data rate. I modified the sample rate to 1 ms, and connection interval to 10ms. I changed the buffer size to 40 as you suggested to increase the samples in each notification. Now it send 40 samples every 10 ms, which means a 1 kHz sampling rate for all 4 channels.&lt;/p&gt;
&lt;p&gt;I also tried 500 us sampling rate but it can only run few seconds and got a fetal error.&amp;nbsp;&lt;/p&gt;
&lt;p&gt;&lt;img style="max-height:240px;max-width:320px;" src="https://devzone.nordicsemi.com/resized-image/__size/640x480/__key/communityserver-discussions-components-files/4/pastedimage1657130630182v2.png" alt=" " /&gt;&amp;nbsp;&lt;/p&gt;
&lt;p&gt;Is it possible to further increase the sampling rate?&lt;/p&gt;
&lt;p&gt;&lt;/p&gt;
&lt;p&gt;Thanks! I attached the modified main.c.&lt;pre class="ui-code" data-mode="text"&gt;/**
 * Copyright (c) 2014 - 2018, Nordic Semiconductor ASA
 *
 * All rights reserved.
 *
 * Redistribution and use in source and binary forms, with or without modification,
 * are permitted provided that the following conditions are met:
 *
 * 1. Redistributions of source code must retain the above copyright notice, this
 *    list of conditions and the following disclaimer.
 *
 * 2. Redistributions in binary form, except as embedded into a Nordic
 *    Semiconductor ASA integrated circuit in a product or a software update for
 *    such product, must reproduce the above copyright notice, this list of
 *    conditions and the following disclaimer in the documentation and/or other
 *    materials provided with the distribution.
 *
 * 3. Neither the name of Nordic Semiconductor ASA nor the names of its
 *    contributors may be used to endorse or promote products derived from this
 *    software without specific prior written permission.
 *
 * 4. This software, with or without modification, must only be used with a
 *    Nordic Semiconductor ASA integrated circuit.
 *
 * 5. Any software provided in binary form under this license must not be reverse
 *    engineered, decompiled, modified and/or disassembled.
 *
 * THIS SOFTWARE IS PROVIDED BY NORDIC SEMICONDUCTOR ASA &amp;quot;AS IS&amp;quot; AND ANY EXPRESS
 * OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
 * OF MERCHANTABILITY, NONINFRINGEMENT, AND FITNESS FOR A PARTICULAR PURPOSE ARE
 * DISCLAIMED. IN NO EVENT SHALL NORDIC SEMICONDUCTOR ASA OR CONTRIBUTORS BE
 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE
 * GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT
 * OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
 *
 */
/** @file
 * Peripheral: SAADC
 * Compatibility: nRF52832 rev 2/nRF52840 rev 1, SDK 15.2.0
 * Softdevice used: S132 v6.1.0/S140 v6.1.0
 *
 * This SAADC example samples on 4 different input pins, and enables scan mode to do that. It is otherwise an
 * offsprint from the standard ble_app_uart example available in nRF5 SDK 15.2.0
 * Works together with softdevice S132 v6.1.0 on nRF52832 and S140 v6.1.0 on nRF52840
 * Transmits SAADC output to hardware UART and over BLE via Nordic UART Servive (NUS).
 * Info on NUS -&amp;gt; http://infocenter.nordicsemi.com/topic/com.nordic.infocenter.sdk5.v13.0.0/ble_sdk_app_nus_eval.html?cp=4_0_0_4_1_2_17
 * Info on hardware UART settings -&amp;gt; http://infocenter.nordicsemi.com/topic/com.nordic.infocenter.sdk5.v13.0.0/uart_example.html?cp=4_0_0_4_4_41
 */


#include &amp;lt;stdint.h&amp;gt;
#include &amp;lt;string.h&amp;gt;
#include &amp;quot;nordic_common.h&amp;quot;
#include &amp;quot;nrf.h&amp;quot;
#include &amp;quot;ble_hci.h&amp;quot;
#include &amp;quot;ble_advdata.h&amp;quot;
#include &amp;quot;ble_advertising.h&amp;quot;
#include &amp;quot;ble_conn_params.h&amp;quot;
#include &amp;quot;nrf_sdh.h&amp;quot;
#include &amp;quot;nrf_sdh_soc.h&amp;quot;
#include &amp;quot;nrf_sdh_ble.h&amp;quot;
#include &amp;quot;nrf_ble_gatt.h&amp;quot;
#include &amp;quot;nrf_ble_qwr.h&amp;quot;
#include &amp;quot;app_timer.h&amp;quot;
#include &amp;quot;ble_nus.h&amp;quot;
#include &amp;quot;app_uart.h&amp;quot;
#include &amp;quot;app_util_platform.h&amp;quot;
#include &amp;quot;bsp_btn_ble.h&amp;quot;
#include &amp;quot;nrf_pwr_mgmt.h&amp;quot;
#include &amp;quot;nrf_drv_saadc.h&amp;quot;
#include &amp;quot;nrf_drv_ppi.h&amp;quot;
#include &amp;quot;nrf_drv_timer.h&amp;quot;

#if defined (UART_PRESENT)
#include &amp;quot;nrf_uart.h&amp;quot;
#endif
#if defined (UARTE_PRESENT)
#include &amp;quot;nrf_uarte.h&amp;quot;
#endif

#include &amp;quot;nrf_log.h&amp;quot;
#include &amp;quot;nrf_log_ctrl.h&amp;quot;
#include &amp;quot;nrf_log_default_backends.h&amp;quot;

#define APP_BLE_CONN_CFG_TAG            1                                           /**&amp;lt; A tag identifying the SoftDevice BLE configuration. */

#define DEVICE_NAME                     &amp;quot;Nordic_UART&amp;quot;                               /**&amp;lt; Name of device. Will be included in the advertising data. */
#define NUS_SERVICE_UUID_TYPE           BLE_UUID_TYPE_VENDOR_BEGIN                  /**&amp;lt; UUID type for the Nordic UART Service (vendor specific). */

#define APP_BLE_OBSERVER_PRIO           3                                           /**&amp;lt; Application&amp;#39;s BLE observer priority. You shouldn&amp;#39;t need to modify this value. */

#define APP_ADV_INTERVAL                64                                          /**&amp;lt; The advertising interval (in units of 0.625 ms. This value corresponds to 40 ms). */

#define APP_ADV_DURATION                18000                                       /**&amp;lt; The advertising duration (180 seconds) in units of 10 milliseconds. */

#define MIN_CONN_INTERVAL               MSEC_TO_UNITS(10, UNIT_1_25_MS)             /**&amp;lt; Minimum acceptable connection interval (20 ms), Connection interval uses 1.25 ms units. */
#define MAX_CONN_INTERVAL               MSEC_TO_UNITS(10, UNIT_1_25_MS)             /**&amp;lt; Maximum acceptable connection interval (75 ms), Connection interval uses 1.25 ms units. */
#define SLAVE_LATENCY                   0                                           /**&amp;lt; Slave latency. */
#define CONN_SUP_TIMEOUT                MSEC_TO_UNITS(4000, UNIT_10_MS)             /**&amp;lt; Connection supervisory timeout (4 seconds), Supervision Timeout uses 10 ms units. */
#define FIRST_CONN_PARAMS_UPDATE_DELAY  APP_TIMER_TICKS(5000)                       /**&amp;lt; Time from initiating event (connect or start of notification) to first time sd_ble_gap_conn_param_update is called (5 seconds). */
#define NEXT_CONN_PARAMS_UPDATE_DELAY   APP_TIMER_TICKS(30000)                      /**&amp;lt; Time between each call to sd_ble_gap_conn_param_update after the first call (30 seconds). */
#define MAX_CONN_PARAMS_UPDATE_COUNT    3                                           /**&amp;lt; Number of attempts before giving up the connection parameter negotiation. */

#define DEAD_BEEF                       0xDEADBEEF                                  /**&amp;lt; Value used as error code on stack dump, can be used to identify stack location on stack unwind. */

#define UART_TX_BUF_SIZE                256                                         /**&amp;lt; UART TX buffer size. */
#define UART_RX_BUF_SIZE                256                                         /**&amp;lt; UART RX buffer size. */

#define SAADC_SAMPLES_IN_BUFFER         40
#define SAADC_SAMPLE_RATE               500                                       /**&amp;lt; SAADC sample rate in ms. */               


BLE_NUS_DEF(m_nus, NRF_SDH_BLE_TOTAL_LINK_COUNT);                                   /**&amp;lt; BLE NUS service instance. */
NRF_BLE_GATT_DEF(m_gatt);                                                           /**&amp;lt; GATT module instance. */
NRF_BLE_QWR_DEF(m_qwr);                                                             /**&amp;lt; Context for the Queued Write module.*/
BLE_ADVERTISING_DEF(m_advertising);                                                 /**&amp;lt; Advertising module instance. */

static uint16_t   m_conn_handle          = BLE_CONN_HANDLE_INVALID;                 /**&amp;lt; Handle of the current connection. */
static uint16_t   m_ble_nus_max_data_len = BLE_GATT_ATT_MTU_DEFAULT - 3;            /**&amp;lt; Maximum length of data (in bytes) that can be transmitted to the peer by the Nordic UART service module. */
static ble_uuid_t m_adv_uuids[]          =                                          /**&amp;lt; Universally unique service identifier. */
{
    {BLE_UUID_NUS_SERVICE, NUS_SERVICE_UUID_TYPE}
};

volatile uint8_t state = 1;

static const nrf_drv_timer_t   m_timer = NRF_DRV_TIMER_INSTANCE(3);
static nrf_saadc_value_t       m_buffer_pool[2][SAADC_SAMPLES_IN_BUFFER];
static nrf_ppi_channel_t       m_ppi_channel;
static uint32_t                m_adc_evt_counter;


/**@brief Function for assert macro callback.
 *
 * @details This function will be called in case of an assert in the SoftDevice.
 *
 * @warning This handler is an example only and does not fit a final product. You need to analyse
 *          how your product is supposed to react in case of Assert.
 * @warning On assert from the SoftDevice, the system can only recover on reset.
 *
 * @param[in] line_num    Line number of the failing ASSERT call.
 * @param[in] p_file_name File name of the failing ASSERT call.
 */
void assert_nrf_callback(uint16_t line_num, const uint8_t * p_file_name)
{
    app_error_handler(DEAD_BEEF, line_num, p_file_name);
}

/**@brief Function for initializing the timer module.
 */
static void timers_init(void)
{
    ret_code_t err_code = app_timer_init();
    APP_ERROR_CHECK(err_code);
}

/**@brief Function for the GAP initialization.
 *
 * @details This function will set up all the necessary GAP (Generic Access Profile) parameters of
 *          the device. It also sets the permissions and appearance.
 */
static void gap_params_init(void)
{
    uint32_t                err_code;
    ble_gap_conn_params_t   gap_conn_params;
    ble_gap_conn_sec_mode_t sec_mode;

    BLE_GAP_CONN_SEC_MODE_SET_OPEN(&amp;amp;sec_mode);

    err_code = sd_ble_gap_device_name_set(&amp;amp;sec_mode,
                                          (const uint8_t *) DEVICE_NAME,
                                          strlen(DEVICE_NAME));
    APP_ERROR_CHECK(err_code);

    memset(&amp;amp;gap_conn_params, 0, sizeof(gap_conn_params));

    gap_conn_params.min_conn_interval = MIN_CONN_INTERVAL;
    gap_conn_params.max_conn_interval = MAX_CONN_INTERVAL;
    gap_conn_params.slave_latency     = SLAVE_LATENCY;
    gap_conn_params.conn_sup_timeout  = CONN_SUP_TIMEOUT;

    err_code = sd_ble_gap_ppcp_set(&amp;amp;gap_conn_params);
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling Queued Write Module errors.
 *
 * @details A pointer to this function will be passed to each service which may need to inform the
 *          application about an error.
 *
 * @param[in]   nrf_error   Error code containing information about what went wrong.
 */
static void nrf_qwr_error_handler(uint32_t nrf_error)
{
    APP_ERROR_HANDLER(nrf_error);
}


/**@brief Function for handling the data from the Nordic UART Service.
 *
 * @details This function will process the data received from the Nordic UART BLE Service and send
 *          it to the UART module.
 *
 * @param[in] p_evt       Nordic UART Service event.
 */
/**@snippet [Handling the data received over BLE] */
static void nus_data_handler(ble_nus_evt_t * p_evt)
{

    if (p_evt-&amp;gt;type == BLE_NUS_EVT_RX_DATA)
    {
        uint32_t err_code;

        NRF_LOG_DEBUG(&amp;quot;Received data from BLE NUS. Writing data on UART.&amp;quot;);
        NRF_LOG_HEXDUMP_DEBUG(p_evt-&amp;gt;params.rx_data.p_data, p_evt-&amp;gt;params.rx_data.length);

        for (uint32_t i = 0; i &amp;lt; p_evt-&amp;gt;params.rx_data.length; i++)
        {
            do
            {
                err_code = app_uart_put(p_evt-&amp;gt;params.rx_data.p_data[i]);
                if ((err_code != NRF_SUCCESS) &amp;amp;&amp;amp; (err_code != NRF_ERROR_BUSY))
                {
                    NRF_LOG_ERROR(&amp;quot;Failed receiving NUS message. Error 0x%x. &amp;quot;, err_code);
                    APP_ERROR_CHECK(err_code);
                }
            } while (err_code == NRF_ERROR_BUSY);
        }
        if (p_evt-&amp;gt;params.rx_data.p_data[p_evt-&amp;gt;params.rx_data.length - 1] == &amp;#39;\r&amp;#39;)
        {
            while (app_uart_put(&amp;#39;\n&amp;#39;) == NRF_ERROR_BUSY);
        }
    }

}
/**@snippet [Handling the data received over BLE] */


/**@brief Function for initializing services that will be used by the application.
 */
static void services_init(void)
{
    uint32_t           err_code;
    ble_nus_init_t     nus_init;
    nrf_ble_qwr_init_t qwr_init = {0};

    // Initialize Queued Write Module.
    qwr_init.error_handler = nrf_qwr_error_handler;

    err_code = nrf_ble_qwr_init(&amp;amp;m_qwr, &amp;amp;qwr_init);
    APP_ERROR_CHECK(err_code);

    // Initialize NUS.
    memset(&amp;amp;nus_init, 0, sizeof(nus_init));

    nus_init.data_handler = nus_data_handler;

    err_code = ble_nus_init(&amp;amp;m_nus, &amp;amp;nus_init);
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling an event from the Connection Parameters Module.
 *
 * @details This function will be called for all events in the Connection Parameters Module
 *          which are passed to the application.
 *
 * @note All this function does is to disconnect. This could have been done by simply setting
 *       the disconnect_on_fail config parameter, but instead we use the event handler
 *       mechanism to demonstrate its use.
 *
 * @param[in] p_evt  Event received from the Connection Parameters Module.
 */
static void on_conn_params_evt(ble_conn_params_evt_t * p_evt)
{
    uint32_t err_code;

    if (p_evt-&amp;gt;evt_type == BLE_CONN_PARAMS_EVT_FAILED)
    {
        err_code = sd_ble_gap_disconnect(m_conn_handle, BLE_HCI_CONN_INTERVAL_UNACCEPTABLE);
        APP_ERROR_CHECK(err_code);
    }
}


/**@brief Function for handling errors from the Connection Parameters module.
 *
 * @param[in] nrf_error  Error code containing information about what went wrong.
 */
static void conn_params_error_handler(uint32_t nrf_error)
{
    APP_ERROR_HANDLER(nrf_error);
}


/**@brief Function for initializing the Connection Parameters module.
 */
static void conn_params_init(void)
{
    uint32_t               err_code;
    ble_conn_params_init_t cp_init;

    memset(&amp;amp;cp_init, 0, sizeof(cp_init));

    cp_init.p_conn_params                  = NULL;
    cp_init.first_conn_params_update_delay = FIRST_CONN_PARAMS_UPDATE_DELAY;
    cp_init.next_conn_params_update_delay  = NEXT_CONN_PARAMS_UPDATE_DELAY;
    cp_init.max_conn_params_update_count   = MAX_CONN_PARAMS_UPDATE_COUNT;
    cp_init.start_on_notify_cccd_handle    = BLE_GATT_HANDLE_INVALID;
    cp_init.disconnect_on_fail             = false;
    cp_init.evt_handler                    = on_conn_params_evt;
    cp_init.error_handler                  = conn_params_error_handler;

    err_code = ble_conn_params_init(&amp;amp;cp_init);
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for putting the chip into sleep mode.
 *
 * @note This function will not return.
 */
static void sleep_mode_enter(void)
{
    uint32_t err_code = bsp_indication_set(BSP_INDICATE_IDLE);
    APP_ERROR_CHECK(err_code);

    // Prepare wakeup buttons.
    err_code = bsp_btn_ble_sleep_mode_prepare();
    APP_ERROR_CHECK(err_code);

    // Go to system-off mode (this function will not return; wakeup will cause a reset).
    err_code = sd_power_system_off();
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling advertising events.
 *
 * @details This function will be called for advertising events which are passed to the application.
 *
 * @param[in] ble_adv_evt  Advertising event.
 */
static void on_adv_evt(ble_adv_evt_t ble_adv_evt)
{
    uint32_t err_code;

    switch (ble_adv_evt)
    {
        case BLE_ADV_EVT_FAST:
            err_code = bsp_indication_set(BSP_INDICATE_ADVERTISING);
            APP_ERROR_CHECK(err_code);
            break;
        case BLE_ADV_EVT_IDLE:
            sleep_mode_enter();
            break;
        default:
            break;
    }
}


/**@brief Function for handling BLE events.
 *
 * @param[in]   p_ble_evt   Bluetooth stack event.
 * @param[in]   p_context   Unused.
 */
static void ble_evt_handler(ble_evt_t const * p_ble_evt, void * p_context)
{
    uint32_t err_code;

    switch (p_ble_evt-&amp;gt;header.evt_id)
    {
        case BLE_GAP_EVT_CONNECTED:
            NRF_LOG_INFO(&amp;quot;Connected&amp;quot;);
            err_code = bsp_indication_set(BSP_INDICATE_CONNECTED);
            APP_ERROR_CHECK(err_code);
            m_conn_handle = p_ble_evt-&amp;gt;evt.gap_evt.conn_handle;
            err_code = nrf_ble_qwr_conn_handle_assign(&amp;amp;m_qwr, m_conn_handle);
            APP_ERROR_CHECK(err_code);
            break;

        case BLE_GAP_EVT_DISCONNECTED:
            NRF_LOG_INFO(&amp;quot;Disconnected&amp;quot;);
            // LED indication will be changed when advertising starts.
            m_conn_handle = BLE_CONN_HANDLE_INVALID;
            break;

        case BLE_GAP_EVT_PHY_UPDATE_REQUEST:
        {
            NRF_LOG_DEBUG(&amp;quot;PHY update request.&amp;quot;);
            ble_gap_phys_t const phys =
            {
                .rx_phys = BLE_GAP_PHY_AUTO,
                .tx_phys = BLE_GAP_PHY_AUTO,
            };
            err_code = sd_ble_gap_phy_update(p_ble_evt-&amp;gt;evt.gap_evt.conn_handle, &amp;amp;phys);
            APP_ERROR_CHECK(err_code);
        } break;

        case BLE_GAP_EVT_SEC_PARAMS_REQUEST:
            // Pairing not supported
            err_code = sd_ble_gap_sec_params_reply(m_conn_handle, BLE_GAP_SEC_STATUS_PAIRING_NOT_SUPP, NULL, NULL);
            APP_ERROR_CHECK(err_code);
            break;

        case BLE_GATTS_EVT_SYS_ATTR_MISSING:
            // No system attributes have been stored.
            err_code = sd_ble_gatts_sys_attr_set(m_conn_handle, NULL, 0, 0);
            APP_ERROR_CHECK(err_code);
            break;

        case BLE_GATTC_EVT_TIMEOUT:
            // Disconnect on GATT Client timeout event.
            err_code = sd_ble_gap_disconnect(p_ble_evt-&amp;gt;evt.gattc_evt.conn_handle,
                                             BLE_HCI_REMOTE_USER_TERMINATED_CONNECTION);
            APP_ERROR_CHECK(err_code);
            break;

        case BLE_GATTS_EVT_TIMEOUT:
            // Disconnect on GATT Server timeout event.
            err_code = sd_ble_gap_disconnect(p_ble_evt-&amp;gt;evt.gatts_evt.conn_handle,
                                             BLE_HCI_REMOTE_USER_TERMINATED_CONNECTION);
            APP_ERROR_CHECK(err_code);
            break;
        
        case BLE_GATTS_EVT_HVN_TX_COMPLETE: 
             NRF_LOG_INFO(&amp;quot;Notification(s) sent&amp;quot;);
             break;

        case BLE_GAP_EVT_CONN_PARAM_UPDATE:
        {
            /* Interval is given in units of 1.25 ms. Multiply by 1.25 to get interval in ms */
            uint32_t new_conn_interval =
                p_ble_evt-&amp;gt;evt.gap_evt.params.conn_param_update.conn_params.max_conn_interval *
                1.25;

           NRF_LOG_INFO(&amp;quot;Connection paramaters updated. New interval is %d ms&amp;quot;, new_conn_interval);
        }

        default:
            // No implementation needed.
            break;
    }
}


/**@brief Function for the SoftDevice initialization.
 *
 * @details This function initializes the SoftDevice and the BLE event interrupt.
 */
static void ble_stack_init(void)
{
    ret_code_t err_code;

    err_code = nrf_sdh_enable_request();
    APP_ERROR_CHECK(err_code);

    // Configure the BLE stack using the default settings.
    // Fetch the start address of the application RAM.
    uint32_t ram_start = 0;
    err_code = nrf_sdh_ble_default_cfg_set(APP_BLE_CONN_CFG_TAG, &amp;amp;ram_start);
    APP_ERROR_CHECK(err_code);

    // Enable BLE stack.
    err_code = nrf_sdh_ble_enable(&amp;amp;ram_start);
    APP_ERROR_CHECK(err_code);

    // Register a handler for BLE events.
    NRF_SDH_BLE_OBSERVER(m_ble_observer, APP_BLE_OBSERVER_PRIO, ble_evt_handler, NULL);
}


/**@brief Function for handling events from the GATT library. */
void gatt_evt_handler(nrf_ble_gatt_t * p_gatt, nrf_ble_gatt_evt_t const * p_evt)
{
    if ((m_conn_handle == p_evt-&amp;gt;conn_handle) &amp;amp;&amp;amp; (p_evt-&amp;gt;evt_id == NRF_BLE_GATT_EVT_ATT_MTU_UPDATED))
    {
        m_ble_nus_max_data_len = p_evt-&amp;gt;params.att_mtu_effective - OPCODE_LENGTH - HANDLE_LENGTH;
        NRF_LOG_INFO(&amp;quot;Data len is set to 0x%X(%d)&amp;quot;, m_ble_nus_max_data_len, m_ble_nus_max_data_len);
    }
    NRF_LOG_DEBUG(&amp;quot;ATT MTU exchange completed. central 0x%x peripheral 0x%x&amp;quot;,
                  p_gatt-&amp;gt;att_mtu_desired_central,
                  p_gatt-&amp;gt;att_mtu_desired_periph);
}


/**@brief Function for initializing the GATT library. */
void gatt_init(void)
{
    ret_code_t err_code;

    err_code = nrf_ble_gatt_init(&amp;amp;m_gatt, gatt_evt_handler);
    APP_ERROR_CHECK(err_code);

    err_code = nrf_ble_gatt_att_mtu_periph_set(&amp;amp;m_gatt, NRF_SDH_BLE_GATT_MAX_MTU_SIZE);
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling events from the BSP module.
 *
 * @param[in]   event   Event generated by button press.
 */
void bsp_event_handler(bsp_event_t event)
{
    uint32_t err_code;
    switch (event)
    {
        case BSP_EVENT_SLEEP:
            sleep_mode_enter();
            break;

        case BSP_EVENT_DISCONNECT:
            err_code = sd_ble_gap_disconnect(m_conn_handle, BLE_HCI_REMOTE_USER_TERMINATED_CONNECTION);
            if (err_code != NRF_ERROR_INVALID_STATE)
            {
                APP_ERROR_CHECK(err_code);
            }
            break;

        case BSP_EVENT_WHITELIST_OFF:
            if (m_conn_handle == BLE_CONN_HANDLE_INVALID)
            {
                err_code = ble_advertising_restart_without_whitelist(&amp;amp;m_advertising);
                if (err_code != NRF_ERROR_INVALID_STATE)
                {
                    APP_ERROR_CHECK(err_code);
                }
            }
            break;

        default:
            break;
    }
}


/**@brief   Function for handling app_uart events.
 *
 * @details This function will receive a single character from the app_uart module and append it to
 *          a string. The string will be be sent over BLE when the last character received was a
 *          &amp;#39;new line&amp;#39; &amp;#39;\n&amp;#39; (hex 0x0A) or if the string has reached the maximum data length.
 */
/**@snippet [Handling the data received over UART] */
void uart_event_handle(app_uart_evt_t * p_event)
{
    static uint8_t data_array[BLE_NUS_MAX_DATA_LEN];
    static uint8_t index = 0;
    uint32_t       err_code;

    switch (p_event-&amp;gt;evt_type)
    {
        case APP_UART_DATA_READY:
            UNUSED_VARIABLE(app_uart_get(&amp;amp;data_array[index]));
            index++;

            if ((data_array[index - 1] == &amp;#39;\n&amp;#39;) ||
                (data_array[index - 1] == &amp;#39;\r&amp;#39;) ||
                (index &amp;gt;= m_ble_nus_max_data_len))
            {
                if (index &amp;gt; 1)
                {
                    NRF_LOG_DEBUG(&amp;quot;Ready to send data over BLE NUS&amp;quot;);
                    NRF_LOG_HEXDUMP_DEBUG(data_array, index);

                    do
                    {
                        uint16_t length = (uint16_t)index;
                        err_code = ble_nus_data_send(&amp;amp;m_nus, data_array, &amp;amp;length, m_conn_handle);
                        if ((err_code != NRF_ERROR_INVALID_STATE) &amp;amp;&amp;amp;
                            (err_code != NRF_ERROR_RESOURCES) &amp;amp;&amp;amp;
                            (err_code != NRF_ERROR_NOT_FOUND))
                        {
                            APP_ERROR_CHECK(err_code);
                        }
                    } while (err_code == NRF_ERROR_RESOURCES);
                }

                index = 0;
            }
            break;

        case APP_UART_COMMUNICATION_ERROR:
            APP_ERROR_HANDLER(p_event-&amp;gt;data.error_communication);
            break;

        case APP_UART_FIFO_ERROR:
            APP_ERROR_HANDLER(p_event-&amp;gt;data.error_code);
            break;

        default:
            break;
    }
}
/**@snippet [Handling the data received over UART] */


/**@brief  Function for initializing the UART module.
 */
/**@snippet [UART Initialization] */
static void uart_init(void)
{
    uint32_t                     err_code;
    app_uart_comm_params_t const comm_params =
    {
        .rx_pin_no    = RX_PIN_NUMBER,
        .tx_pin_no    = TX_PIN_NUMBER,
        .rts_pin_no   = RTS_PIN_NUMBER,
        .cts_pin_no   = CTS_PIN_NUMBER,
        .flow_control = APP_UART_FLOW_CONTROL_DISABLED,
        .use_parity   = false,
#if defined (UART_PRESENT)
        .baud_rate    = NRF_UART_BAUDRATE_115200
#else
        .baud_rate    = NRF_UARTE_BAUDRATE_115200
#endif
    };

    APP_UART_FIFO_INIT(&amp;amp;comm_params,
                       UART_RX_BUF_SIZE,
                       UART_TX_BUF_SIZE,
                       uart_event_handle,
                       APP_IRQ_PRIORITY_LOWEST,
                       err_code);
    APP_ERROR_CHECK(err_code);
}
/**@snippet [UART Initialization] */


/**@brief Function for initializing the Advertising functionality.
 */
static void advertising_init(void)
{
    uint32_t               err_code;
    ble_advertising_init_t init;

    memset(&amp;amp;init, 0, sizeof(init));

    init.advdata.name_type          = BLE_ADVDATA_FULL_NAME;
    init.advdata.include_appearance = false;
    init.advdata.flags              = BLE_GAP_ADV_FLAGS_LE_ONLY_LIMITED_DISC_MODE;

    init.srdata.uuids_complete.uuid_cnt = sizeof(m_adv_uuids) / sizeof(m_adv_uuids[0]);
    init.srdata.uuids_complete.p_uuids  = m_adv_uuids;

    init.config.ble_adv_fast_enabled  = true;
    init.config.ble_adv_fast_interval = APP_ADV_INTERVAL;
    init.config.ble_adv_fast_timeout  = APP_ADV_DURATION;
    init.evt_handler = on_adv_evt;

    err_code = ble_advertising_init(&amp;amp;m_advertising, &amp;amp;init);
    APP_ERROR_CHECK(err_code);

    ble_advertising_conn_cfg_tag_set(&amp;amp;m_advertising, APP_BLE_CONN_CFG_TAG);
}


/**@brief Function for initializing buttons and leds.
 *
 * @param[out] p_erase_bonds  Will be true if the clear bonding button was pressed to wake the application up.
 */
static void buttons_leds_init(bool * p_erase_bonds)
{
    bsp_event_t startup_event;

    uint32_t err_code = bsp_init(BSP_INIT_LEDS | BSP_INIT_BUTTONS, bsp_event_handler);
    APP_ERROR_CHECK(err_code);

    err_code = bsp_btn_ble_init(NULL, &amp;amp;startup_event);
    APP_ERROR_CHECK(err_code);

    *p_erase_bonds = (startup_event == BSP_EVENT_CLEAR_BONDING_DATA);
}


/**@brief Function for initializing the nrf log module.
 */
static void log_init(void)
{
    ret_code_t err_code = NRF_LOG_INIT(app_timer_cnt_get);
    APP_ERROR_CHECK(err_code);

    NRF_LOG_DEFAULT_BACKENDS_INIT();
}


/**@brief Function for initializing power management.
 */
static void power_management_init(void)
{
    ret_code_t err_code;
    err_code = nrf_pwr_mgmt_init();
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling the idle state (main loop).
 *
 * @details If there is no pending log operation, then sleep until next the next event occurs.
 */
static void idle_state_handle(void)
{
    UNUSED_RETURN_VALUE(NRF_LOG_PROCESS());
    nrf_pwr_mgmt_run();
}


/**@brief Function for starting advertising.
 */
static void advertising_start(void)
{
    uint32_t err_code = ble_advertising_start(&amp;amp;m_advertising, BLE_ADV_MODE_FAST);
    APP_ERROR_CHECK(err_code);
}


void timer_handler(nrf_timer_event_t event_type, void* p_context)
{

}


void saadc_sampling_event_init(void)
{
    ret_code_t err_code;
    err_code = nrf_drv_ppi_init();
    APP_ERROR_CHECK(err_code);
    
    nrf_drv_timer_config_t timer_config = NRF_DRV_TIMER_DEFAULT_CONFIG;
    timer_config.frequency = NRF_TIMER_FREQ_31250Hz;
    err_code = nrf_drv_timer_init(&amp;amp;m_timer, &amp;amp;timer_config, timer_handler);
    APP_ERROR_CHECK(err_code);

    /* setup m_timer for compare event */
    uint32_t ticks = nrf_drv_timer_us_to_ticks(&amp;amp;m_timer,SAADC_SAMPLE_RATE);
    nrf_drv_timer_extended_compare(&amp;amp;m_timer, NRF_TIMER_CC_CHANNEL0, ticks, NRF_TIMER_SHORT_COMPARE0_CLEAR_MASK, false);
    nrf_drv_timer_enable(&amp;amp;m_timer);

    uint32_t timer_compare_event_addr = nrf_drv_timer_compare_event_address_get(&amp;amp;m_timer, NRF_TIMER_CC_CHANNEL0);
    uint32_t saadc_sample_event_addr = nrf_drv_saadc_sample_task_get();

    /* setup ppi channel so that timer compare event is triggering sample task in SAADC */
    err_code = nrf_drv_ppi_channel_alloc(&amp;amp;m_ppi_channel);
    APP_ERROR_CHECK(err_code);
    
    err_code = nrf_drv_ppi_channel_assign(m_ppi_channel, timer_compare_event_addr, saadc_sample_event_addr);
    APP_ERROR_CHECK(err_code);
}


void saadc_sampling_event_enable(void)
{
    ret_code_t err_code = nrf_drv_ppi_channel_enable(m_ppi_channel);
    APP_ERROR_CHECK(err_code);
}


void saadc_callback(nrf_drv_saadc_evt_t const * p_event)
{
    if (p_event-&amp;gt;type == NRF_DRV_SAADC_EVT_DONE)
    {
        ret_code_t err_code;
        uint16_t adc_value;
        uint8_t value[SAADC_SAMPLES_IN_BUFFER*2];
        uint16_t bytes_to_send;
     
        // set buffers
        err_code = nrf_drv_saadc_buffer_convert(p_event-&amp;gt;data.done.p_buffer, SAADC_SAMPLES_IN_BUFFER);
        APP_ERROR_CHECK(err_code);
						
        // print samples on hardware UART and parse data for BLE transmission
        printf(&amp;quot;ADC event number: %d\r\n&amp;quot;,(int)m_adc_evt_counter);
        for (int i = 0; i &amp;lt; SAADC_SAMPLES_IN_BUFFER; i++)
        {
            printf(&amp;quot;%d\r\n&amp;quot;, p_event-&amp;gt;data.done.p_buffer[i]);

            adc_value = p_event-&amp;gt;data.done.p_buffer[i];
            value[i*2] = adc_value;
            value[(i*2)+1] = adc_value &amp;gt;&amp;gt; 8;
        }

         // Send data over BLE via NUS service. Create string from samples and send string with correct length.
       uint8_t nus_string[244];
     
        bytes_to_send = sprintf(nus_string, 
                                &amp;quot;%d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d %d&amp;quot;,
                                p_event-&amp;gt;data.done.p_buffer[0],
                                p_event-&amp;gt;data.done.p_buffer[1],
                                p_event-&amp;gt;data.done.p_buffer[2],
                                p_event-&amp;gt;data.done.p_buffer[3],
                                p_event-&amp;gt;data.done.p_buffer[4],
                                p_event-&amp;gt;data.done.p_buffer[5],
                                p_event-&amp;gt;data.done.p_buffer[6],
                                p_event-&amp;gt;data.done.p_buffer[7],
                                p_event-&amp;gt;data.done.p_buffer[8],
                                p_event-&amp;gt;data.done.p_buffer[9],
                                p_event-&amp;gt;data.done.p_buffer[10],
                                p_event-&amp;gt;data.done.p_buffer[11],
                                p_event-&amp;gt;data.done.p_buffer[12],
                                p_event-&amp;gt;data.done.p_buffer[13],
                                p_event-&amp;gt;data.done.p_buffer[14],
                                p_event-&amp;gt;data.done.p_buffer[15],
                                p_event-&amp;gt;data.done.p_buffer[16],
                                p_event-&amp;gt;data.done.p_buffer[17],
                                p_event-&amp;gt;data.done.p_buffer[18],
                                p_event-&amp;gt;data.done.p_buffer[19],
                                p_event-&amp;gt;data.done.p_buffer[20],
                                p_event-&amp;gt;data.done.p_buffer[21],
                                p_event-&amp;gt;data.done.p_buffer[22],
                                p_event-&amp;gt;data.done.p_buffer[23],
                                p_event-&amp;gt;data.done.p_buffer[24],
                                p_event-&amp;gt;data.done.p_buffer[25],
                                p_event-&amp;gt;data.done.p_buffer[26],
                                p_event-&amp;gt;data.done.p_buffer[27],
                                p_event-&amp;gt;data.done.p_buffer[28],
                                p_event-&amp;gt;data.done.p_buffer[29],
                                p_event-&amp;gt;data.done.p_buffer[30],
                                p_event-&amp;gt;data.done.p_buffer[31],
                                p_event-&amp;gt;data.done.p_buffer[32],
                                p_event-&amp;gt;data.done.p_buffer[33],
                                p_event-&amp;gt;data.done.p_buffer[34],
                                p_event-&amp;gt;data.done.p_buffer[35],
                                p_event-&amp;gt;data.done.p_buffer[36],
                                p_event-&amp;gt;data.done.p_buffer[37],
                                p_event-&amp;gt;data.done.p_buffer[38],
                                p_event-&amp;gt;data.done.p_buffer[39]);

        err_code = ble_nus_data_send(&amp;amp;m_nus, nus_string, &amp;amp;bytes_to_send, m_conn_handle);
        if ((err_code != NRF_ERROR_INVALID_STATE) &amp;amp;&amp;amp; (err_code != NRF_ERROR_NOT_FOUND))
        {
            APP_ERROR_CHECK(err_code);
        }
	
        m_adc_evt_counter++;
    }
}


void saadc_init(void)
{
    ret_code_t err_code;
	
    nrf_drv_saadc_config_t saadc_config = NRF_DRV_SAADC_DEFAULT_CONFIG;
    saadc_config.resolution = NRF_SAADC_RESOLUTION_12BIT;
	
    nrf_saadc_channel_config_t channel_0_config =
        NRF_DRV_SAADC_DEFAULT_CHANNEL_CONFIG_SE(NRF_SAADC_INPUT_AIN4);
    channel_0_config.gain = NRF_SAADC_GAIN1_4;
    channel_0_config.reference = NRF_SAADC_REFERENCE_VDD4;
	
    nrf_saadc_channel_config_t channel_1_config =
        NRF_DRV_SAADC_DEFAULT_CHANNEL_CONFIG_SE(NRF_SAADC_INPUT_AIN5);
    channel_1_config.gain = NRF_SAADC_GAIN1_4;
    channel_1_config.reference = NRF_SAADC_REFERENCE_VDD4;
	
    nrf_saadc_channel_config_t channel_2_config =
        NRF_DRV_SAADC_DEFAULT_CHANNEL_CONFIG_SE(NRF_SAADC_INPUT_AIN6);
    channel_2_config.gain = NRF_SAADC_GAIN1_4;
    channel_2_config.reference = NRF_SAADC_REFERENCE_VDD4;
	
    nrf_saadc_channel_config_t channel_3_config =
        NRF_DRV_SAADC_DEFAULT_CHANNEL_CONFIG_SE(NRF_SAADC_INPUT_AIN7);
    channel_3_config.gain = NRF_SAADC_GAIN1_4;
    channel_3_config.reference = NRF_SAADC_REFERENCE_VDD4;				
	
    err_code = nrf_drv_saadc_init(&amp;amp;saadc_config, saadc_callback);
    APP_ERROR_CHECK(err_code);

    err_code = nrf_drv_saadc_channel_init(0, &amp;amp;channel_0_config);
    APP_ERROR_CHECK(err_code);
    err_code = nrf_drv_saadc_channel_init(1, &amp;amp;channel_1_config);
    APP_ERROR_CHECK(err_code);
    err_code = nrf_drv_saadc_channel_init(2, &amp;amp;channel_2_config);
    APP_ERROR_CHECK(err_code);
    err_code = nrf_drv_saadc_channel_init(3, &amp;amp;channel_3_config);
    APP_ERROR_CHECK(err_code);	

    err_code = nrf_drv_saadc_buffer_convert(m_buffer_pool[0],SAADC_SAMPLES_IN_BUFFER);
    APP_ERROR_CHECK(err_code);   
    err_code = nrf_drv_saadc_buffer_convert(m_buffer_pool[1],SAADC_SAMPLES_IN_BUFFER);
    APP_ERROR_CHECK(err_code);
}

/**@brief Application main function.
 */
int main(void)
{
    bool erase_bonds;

    // Initialize.
    uart_init();
    log_init();
    timers_init();
    buttons_leds_init(&amp;amp;erase_bonds);
    power_management_init();
    ble_stack_init();
    gap_params_init();
    gatt_init();
    services_init();
    advertising_init();
    conn_params_init();

    saadc_sampling_event_init();
    saadc_init();
    saadc_sampling_event_enable();

    // Start execution.
    printf(&amp;quot;\r\nUART started.\r\n&amp;quot;);
    NRF_LOG_INFO(&amp;quot;Debug logging for UART over RTT started.&amp;quot;);
    advertising_start();

    // Enter main loop.
    for (;;)
    {
        idle_state_handle();
    }
}


/**
 * @}
 */
&lt;/pre&gt;&lt;/p&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;</description></item><item><title>RE: Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/thread/375824?ContentTypeID=1</link><pubDate>Wed, 06 Jul 2022 13:37:02 GMT</pubDate><guid isPermaLink="false">137ad170-7792-4731-bb38-c0d22fbe4515:a021c90a-4adb-4301-8d65-d4e7aedc97c2</guid><dc:creator>Vidar Berg</dc:creator><description>&lt;p&gt;Hi,&lt;/p&gt;
&lt;p&gt;Please tried with this modified version and see if you get the same result:&lt;/p&gt;
&lt;p&gt;&lt;a href="https://devzone.nordicsemi.com/cfs-file/__key/communityserver-discussions-components-files/4/4747.ble_5F00_app_5F00_uart_5F005F00_saadc_5F00_timer_5F00_driven_5F005F00_scan_5F00_mode.zip"&gt;devzone.nordicsemi.com/.../4747.ble_5F00_app_5F00_uart_5F005F00_saadc_5F00_timer_5F00_driven_5F005F00_scan_5F00_mode.zip&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;I made it log a timestamped message every time a notification if sent, and also a message after the connection parameters have been updated.&lt;/p&gt;
&lt;p&gt;&lt;img style="max-height:240px;max-width:320px;" src="https://devzone.nordicsemi.com/resized-image/__size/640x480/__key/communityserver-discussions-components-files/4/0045.pastedimage1657114616976v1.png" alt=" " /&gt;&lt;/p&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;</description></item><item><title>RE: Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/thread/375408?ContentTypeID=1</link><pubDate>Mon, 04 Jul 2022 18:12:41 GMT</pubDate><guid isPermaLink="false">137ad170-7792-4731-bb38-c0d22fbe4515:c14f6c5e-ce60-41d1-91be-441c3b8a9be5</guid><dc:creator>dfbdfb</dc:creator><description>&lt;p&gt;I tried the example you posted in the link. I also tried to use the connection parameters you used in the example in my SAADC program. Here is what I got:&lt;/p&gt;
&lt;p&gt;When I check the log on nRF Connect, I saw the throughput example can send several packets of data at one same time stamp. I received several of them with the same time stamp.&lt;/p&gt;
&lt;p&gt;However, for the SAADC example, I still can only get 1 data received in every 30/60 ms.&lt;/p&gt;
&lt;p&gt;What can be the problem?&lt;/p&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;</description></item><item><title>RE: Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/thread/375394?ContentTypeID=1</link><pubDate>Mon, 04 Jul 2022 16:11:59 GMT</pubDate><guid isPermaLink="false">137ad170-7792-4731-bb38-c0d22fbe4515:467b1b53-4b2a-4c3c-b056-d3db31308f8b</guid><dc:creator>dfbdfb</dc:creator><description>&lt;p&gt;Hi Vidar,&lt;/p&gt;
&lt;p&gt;&lt;/p&gt;
&lt;p&gt;Thanks for your reply.&amp;nbsp;&lt;/p&gt;
&lt;p&gt;I want to set the sampling rate higher to 1 ms (now it is 10 ms). I will store the samples in a buffer and send them out every 10 ms. That is one of the reasons I use 10 ms here. But still I can only get data every 90ms.&lt;/p&gt;
&lt;p&gt;I have tried to use different connection parameters. I tried the BLE_APP_ATT_MTU_THROUGHPUT example in the sdk and I can get 700 kpbs data rate. I attached my code here:&lt;pre class="ui-code" data-mode="text"&gt;/** @file
 * Peripheral: SAADC
 * Compatibility: nRF52832 rev 2/nRF52840 rev 1, SDK 15.2.0
 * Softdevice used: S132 v6.1.0/S140 v6.1.0
 *
 * This SAADC example samples on 4 different input pins, and enables scan mode to do that. It is otherwise an
 * offsprint from the standard ble_app_uart example available in nRF5 SDK 15.2.0
 * Works together with softdevice S132 v6.1.0 on nRF52832 and S140 v6.1.0 on nRF52840
 * Transmits SAADC output to hardware UART and over BLE via Nordic UART Servive (NUS).
 * Info on NUS -&amp;gt; http://infocenter.nordicsemi.com/topic/com.nordic.infocenter.sdk5.v13.0.0/ble_sdk_app_nus_eval.html?cp=4_0_0_4_1_2_17
 * Info on hardware UART settings -&amp;gt; http://infocenter.nordicsemi.com/topic/com.nordic.infocenter.sdk5.v13.0.0/uart_example.html?cp=4_0_0_4_4_41
 */


#include &amp;lt;stdint.h&amp;gt;
#include &amp;lt;string.h&amp;gt;
#include &amp;quot;nordic_common.h&amp;quot;
#include &amp;quot;nrf.h&amp;quot;
#include &amp;quot;ble_hci.h&amp;quot;
#include &amp;quot;ble_advdata.h&amp;quot;
#include &amp;quot;ble_advertising.h&amp;quot;
#include &amp;quot;ble_conn_params.h&amp;quot;
#include &amp;quot;nrf_sdh.h&amp;quot;
#include &amp;quot;nrf_sdh_soc.h&amp;quot;
#include &amp;quot;nrf_sdh_ble.h&amp;quot;
#include &amp;quot;nrf_ble_gatt.h&amp;quot;
#include &amp;quot;nrf_ble_qwr.h&amp;quot;
#include &amp;quot;app_timer.h&amp;quot;
#include &amp;quot;ble_nus.h&amp;quot;
#include &amp;quot;app_uart.h&amp;quot;
#include &amp;quot;app_util_platform.h&amp;quot;
#include &amp;quot;bsp_btn_ble.h&amp;quot;
#include &amp;quot;nrf_pwr_mgmt.h&amp;quot;
#include &amp;quot;nrf_drv_saadc.h&amp;quot;
#include &amp;quot;nrf_drv_ppi.h&amp;quot;
#include &amp;quot;nrf_drv_timer.h&amp;quot;

#if defined (UART_PRESENT)
#include &amp;quot;nrf_uart.h&amp;quot;
#endif
#if defined (UARTE_PRESENT)
#include &amp;quot;nrf_uarte.h&amp;quot;
#endif

#include &amp;quot;nrf_log.h&amp;quot;
#include &amp;quot;nrf_log_ctrl.h&amp;quot;
#include &amp;quot;nrf_log_default_backends.h&amp;quot;

#define APP_BLE_CONN_CFG_TAG            1                                           /**&amp;lt; A tag identifying the SoftDevice BLE configuration. */

#define DEVICE_NAME                     &amp;quot;Nordic_UART&amp;quot;                               /**&amp;lt; Name of device. Will be included in the advertising data. */
#define NUS_SERVICE_UUID_TYPE           BLE_UUID_TYPE_VENDOR_BEGIN                  /**&amp;lt; UUID type for the Nordic UART Service (vendor specific). */

#define APP_BLE_OBSERVER_PRIO           3                                           /**&amp;lt; Application&amp;#39;s BLE observer priority. You shouldn&amp;#39;t need to modify this value. */

#define APP_ADV_INTERVAL                64                                          /**&amp;lt; The advertising interval (in units of 0.625 ms. This value corresponds to 40 ms). */

#define APP_ADV_DURATION                18000                                       /**&amp;lt; The advertising duration (180 seconds) in units of 10 milliseconds. */

#define MIN_CONN_INTERVAL               MSEC_TO_UNITS(7.5, UNIT_1_25_MS)             /**&amp;lt; Minimum acceptable connection interval (20 ms), Connection interval uses 1.25 ms units. */
#define MAX_CONN_INTERVAL               MSEC_TO_UNITS(75, UNIT_1_25_MS)             /**&amp;lt; Maximum acceptable connection interval (75 ms), Connection interval uses 1.25 ms units. */
#define SLAVE_LATENCY                   0                                           /**&amp;lt; Slave latency. */
#define CONN_SUP_TIMEOUT                MSEC_TO_UNITS(4000, UNIT_10_MS)             /**&amp;lt; Connection supervisory timeout (4 seconds), Supervision Timeout uses 10 ms units. */
#define FIRST_CONN_PARAMS_UPDATE_DELAY  APP_TIMER_TICKS(5000)                       /**&amp;lt; Time from initiating event (connect or start of notification) to first time sd_ble_gap_conn_param_update is called (5 seconds). */
#define NEXT_CONN_PARAMS_UPDATE_DELAY   APP_TIMER_TICKS(30000)                      /**&amp;lt; Time between each call to sd_ble_gap_conn_param_update after the first call (30 seconds). */
#define MAX_CONN_PARAMS_UPDATE_COUNT    3                                           /**&amp;lt; Number of attempts before giving up the connection parameter negotiation. */

#define DEAD_BEEF                       0xDEADBEEF                                  /**&amp;lt; Value used as error code on stack dump, can be used to identify stack location on stack unwind. */

#define UART_TX_BUF_SIZE                256                                         /**&amp;lt; UART TX buffer size. */
#define UART_RX_BUF_SIZE                256                                         /**&amp;lt; UART RX buffer size. */

#define SAADC_SAMPLES_IN_BUFFER         40
#define SAADC_SAMPLE_RATE               10                                /**&amp;lt; SAADC sample rate in ms. */               


BLE_NUS_DEF(m_nus, NRF_SDH_BLE_TOTAL_LINK_COUNT);                                   /**&amp;lt; BLE NUS service instance. */
NRF_BLE_GATT_DEF(m_gatt);                                                           /**&amp;lt; GATT module instance. */
NRF_BLE_QWR_DEF(m_qwr);                                                             /**&amp;lt; Context for the Queued Write module.*/
BLE_ADVERTISING_DEF(m_advertising);                                                 /**&amp;lt; Advertising module instance. */

static uint16_t   m_conn_handle          = BLE_CONN_HANDLE_INVALID;                 /**&amp;lt; Handle of the current connection. */
static uint16_t   m_ble_nus_max_data_len = BLE_GATT_ATT_MTU_DEFAULT - 3;            /**&amp;lt; Maximum length of data (in bytes) that can be transmitted to the peer by the Nordic UART service module. */
static ble_uuid_t m_adv_uuids[]          =                                          /**&amp;lt; Universally unique service identifier. */
{
    {BLE_UUID_NUS_SERVICE, NUS_SERVICE_UUID_TYPE}
};

volatile uint8_t state = 1;

static const nrf_drv_timer_t   m_timer = NRF_DRV_TIMER_INSTANCE(3);
static nrf_saadc_value_t       m_buffer_pool[2][SAADC_SAMPLES_IN_BUFFER];
static nrf_ppi_channel_t       m_ppi_channel;
static uint32_t                m_adc_evt_counter;


/**@brief Function for assert macro callback.
 *
 * @details This function will be called in case of an assert in the SoftDevice.
 *
 * @warning This handler is an example only and does not fit a final product. You need to analyse
 *          how your product is supposed to react in case of Assert.
 * @warning On assert from the SoftDevice, the system can only recover on reset.
 *
 * @param[in] line_num    Line number of the failing ASSERT call.
 * @param[in] p_file_name File name of the failing ASSERT call.
 */
void assert_nrf_callback(uint16_t line_num, const uint8_t * p_file_name)
{
    app_error_handler(DEAD_BEEF, line_num, p_file_name);
}

/**@brief Function for initializing the timer module.
 */
static void timers_init(void)
{
    ret_code_t err_code = app_timer_init();
    APP_ERROR_CHECK(err_code);
}

/**@brief Function for the GAP initialization.
 *
 * @details This function will set up all the necessary GAP (Generic Access Profile) parameters of
 *          the device. It also sets the permissions and appearance.
 */
static void gap_params_init(void)
{
    uint32_t                err_code;
    ble_gap_conn_params_t   gap_conn_params;
    ble_gap_conn_sec_mode_t sec_mode;

    BLE_GAP_CONN_SEC_MODE_SET_OPEN(&amp;amp;sec_mode);

    err_code = sd_ble_gap_device_name_set(&amp;amp;sec_mode,
                                          (const uint8_t *) DEVICE_NAME,
                                          strlen(DEVICE_NAME));
    APP_ERROR_CHECK(err_code);

    memset(&amp;amp;gap_conn_params, 0, sizeof(gap_conn_params));

    gap_conn_params.min_conn_interval = MIN_CONN_INTERVAL;
    gap_conn_params.max_conn_interval = MAX_CONN_INTERVAL;
    gap_conn_params.slave_latency     = SLAVE_LATENCY;
    gap_conn_params.conn_sup_timeout  = CONN_SUP_TIMEOUT;

    err_code = sd_ble_gap_ppcp_set(&amp;amp;gap_conn_params);
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling Queued Write Module errors.
 *
 * @details A pointer to this function will be passed to each service which may need to inform the
 *          application about an error.
 *
 * @param[in]   nrf_error   Error code containing information about what went wrong.
 */
static void nrf_qwr_error_handler(uint32_t nrf_error)
{
    APP_ERROR_HANDLER(nrf_error);
}


/**@brief Function for handling the data from the Nordic UART Service.
 *
 * @details This function will process the data received from the Nordic UART BLE Service and send
 *          it to the UART module.
 *
 * @param[in] p_evt       Nordic UART Service event.
 */
/**@snippet [Handling the data received over BLE] */
static void nus_data_handler(ble_nus_evt_t * p_evt)
{

    if (p_evt-&amp;gt;type == BLE_NUS_EVT_RX_DATA)
    {
        uint32_t err_code;

        NRF_LOG_DEBUG(&amp;quot;Received data from BLE NUS. Writing data on UART.&amp;quot;);
        NRF_LOG_HEXDUMP_DEBUG(p_evt-&amp;gt;params.rx_data.p_data, p_evt-&amp;gt;params.rx_data.length);

        for (uint32_t i = 0; i &amp;lt; p_evt-&amp;gt;params.rx_data.length; i++)
        {
            do
            {
                err_code = app_uart_put(p_evt-&amp;gt;params.rx_data.p_data[i]);
                if ((err_code != NRF_SUCCESS) &amp;amp;&amp;amp; (err_code != NRF_ERROR_BUSY))
                {
                    NRF_LOG_ERROR(&amp;quot;Failed receiving NUS message. Error 0x%x. &amp;quot;, err_code);
                    APP_ERROR_CHECK(err_code);
                }
            } while (err_code == NRF_ERROR_BUSY);
        }
        if (p_evt-&amp;gt;params.rx_data.p_data[p_evt-&amp;gt;params.rx_data.length - 1] == &amp;#39;\r&amp;#39;)
        {
            while (app_uart_put(&amp;#39;\n&amp;#39;) == NRF_ERROR_BUSY);
        }
    }

}
/**@snippet [Handling the data received over BLE] */


/**@brief Function for initializing services that will be used by the application.
 */
static void services_init(void)
{
    uint32_t           err_code;
    ble_nus_init_t     nus_init;
    nrf_ble_qwr_init_t qwr_init = {0};

    // Initialize Queued Write Module.
    qwr_init.error_handler = nrf_qwr_error_handler;

    err_code = nrf_ble_qwr_init(&amp;amp;m_qwr, &amp;amp;qwr_init);
    APP_ERROR_CHECK(err_code);

    // Initialize NUS.
    memset(&amp;amp;nus_init, 0, sizeof(nus_init));

    nus_init.data_handler = nus_data_handler;

    err_code = ble_nus_init(&amp;amp;m_nus, &amp;amp;nus_init);
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling an event from the Connection Parameters Module.
 *
 * @details This function will be called for all events in the Connection Parameters Module
 *          which are passed to the application.
 *
 * @note All this function does is to disconnect. This could have been done by simply setting
 *       the disconnect_on_fail config parameter, but instead we use the event handler
 *       mechanism to demonstrate its use.
 *
 * @param[in] p_evt  Event received from the Connection Parameters Module.
 */
static void on_conn_params_evt(ble_conn_params_evt_t * p_evt)
{
    uint32_t err_code;

    if (p_evt-&amp;gt;evt_type == BLE_CONN_PARAMS_EVT_FAILED)
    {
        err_code = sd_ble_gap_disconnect(m_conn_handle, BLE_HCI_CONN_INTERVAL_UNACCEPTABLE);
        APP_ERROR_CHECK(err_code);
    }
}


/**@brief Function for handling errors from the Connection Parameters module.
 *
 * @param[in] nrf_error  Error code containing information about what went wrong.
 */
static void conn_params_error_handler(uint32_t nrf_error)
{
    APP_ERROR_HANDLER(nrf_error);
}


/**@brief Function for initializing the Connection Parameters module.
 */
static void conn_params_init(void)
{
    uint32_t               err_code;
    ble_conn_params_init_t cp_init;

    memset(&amp;amp;cp_init, 0, sizeof(cp_init));

    cp_init.p_conn_params                  = NULL;
    cp_init.first_conn_params_update_delay = FIRST_CONN_PARAMS_UPDATE_DELAY;
    cp_init.next_conn_params_update_delay  = NEXT_CONN_PARAMS_UPDATE_DELAY;
    cp_init.max_conn_params_update_count   = MAX_CONN_PARAMS_UPDATE_COUNT;
    cp_init.start_on_notify_cccd_handle    = BLE_GATT_HANDLE_INVALID;
    cp_init.disconnect_on_fail             = false;
    cp_init.evt_handler                    = on_conn_params_evt;
    cp_init.error_handler                  = conn_params_error_handler;

    err_code = ble_conn_params_init(&amp;amp;cp_init);
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for putting the chip into sleep mode.
 *
 * @note This function will not return.
 */
static void sleep_mode_enter(void)
{
    uint32_t err_code = bsp_indication_set(BSP_INDICATE_IDLE);
    APP_ERROR_CHECK(err_code);

    // Prepare wakeup buttons.
    err_code = bsp_btn_ble_sleep_mode_prepare();
    APP_ERROR_CHECK(err_code);

    // Go to system-off mode (this function will not return; wakeup will cause a reset).
    err_code = sd_power_system_off();
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling advertising events.
 *
 * @details This function will be called for advertising events which are passed to the application.
 *
 * @param[in] ble_adv_evt  Advertising event.
 */
static void on_adv_evt(ble_adv_evt_t ble_adv_evt)
{
    uint32_t err_code;

    switch (ble_adv_evt)
    {
        case BLE_ADV_EVT_FAST:
            err_code = bsp_indication_set(BSP_INDICATE_ADVERTISING);
            APP_ERROR_CHECK(err_code);
            break;
        case BLE_ADV_EVT_IDLE:
            sleep_mode_enter();
            break;
        default:
            break;
    }
}


/**@brief Function for handling BLE events.
 *
 * @param[in]   p_ble_evt   Bluetooth stack event.
 * @param[in]   p_context   Unused.
 */
static void ble_evt_handler(ble_evt_t const * p_ble_evt, void * p_context)
{
    uint32_t err_code;

    switch (p_ble_evt-&amp;gt;header.evt_id)
    {
        case BLE_GAP_EVT_CONNECTED:
            NRF_LOG_INFO(&amp;quot;Connected&amp;quot;);
            err_code = bsp_indication_set(BSP_INDICATE_CONNECTED);
            APP_ERROR_CHECK(err_code);
            m_conn_handle = p_ble_evt-&amp;gt;evt.gap_evt.conn_handle;
            err_code = nrf_ble_qwr_conn_handle_assign(&amp;amp;m_qwr, m_conn_handle);
            APP_ERROR_CHECK(err_code);
            break;

        case BLE_GAP_EVT_DISCONNECTED:
            NRF_LOG_INFO(&amp;quot;Disconnected&amp;quot;);
            // LED indication will be changed when advertising starts.
            m_conn_handle = BLE_CONN_HANDLE_INVALID;
            break;

        case BLE_GAP_EVT_PHY_UPDATE_REQUEST:
        {
            NRF_LOG_DEBUG(&amp;quot;PHY update request.&amp;quot;);
            ble_gap_phys_t const phys =
            {
                .rx_phys = BLE_GAP_PHY_AUTO,
                .tx_phys = BLE_GAP_PHY_AUTO,
            };
            err_code = sd_ble_gap_phy_update(p_ble_evt-&amp;gt;evt.gap_evt.conn_handle, &amp;amp;phys);
            APP_ERROR_CHECK(err_code);
        } break;

        case BLE_GAP_EVT_SEC_PARAMS_REQUEST:
            // Pairing not supported
            err_code = sd_ble_gap_sec_params_reply(m_conn_handle, BLE_GAP_SEC_STATUS_PAIRING_NOT_SUPP, NULL, NULL);
            APP_ERROR_CHECK(err_code);
            break;

        case BLE_GATTS_EVT_SYS_ATTR_MISSING:
            // No system attributes have been stored.
            err_code = sd_ble_gatts_sys_attr_set(m_conn_handle, NULL, 0, 0);
            APP_ERROR_CHECK(err_code);
            break;

        case BLE_GATTC_EVT_TIMEOUT:
            // Disconnect on GATT Client timeout event.
            err_code = sd_ble_gap_disconnect(p_ble_evt-&amp;gt;evt.gattc_evt.conn_handle,
                                             BLE_HCI_REMOTE_USER_TERMINATED_CONNECTION);
            APP_ERROR_CHECK(err_code);
            break;

        case BLE_GATTS_EVT_TIMEOUT:
            // Disconnect on GATT Server timeout event.
            err_code = sd_ble_gap_disconnect(p_ble_evt-&amp;gt;evt.gatts_evt.conn_handle,
                                             BLE_HCI_REMOTE_USER_TERMINATED_CONNECTION);
            APP_ERROR_CHECK(err_code);
            break;

        default:
            // No implementation needed.
            break;
    }
}


/**@brief Function for the SoftDevice initialization.
 *
 * @details This function initializes the SoftDevice and the BLE event interrupt.
 */
static void ble_stack_init(void)
{
    ret_code_t err_code;

    err_code = nrf_sdh_enable_request();
    APP_ERROR_CHECK(err_code);

    // Configure the BLE stack using the default settings.
    // Fetch the start address of the application RAM.
    uint32_t ram_start = 0;
    err_code = nrf_sdh_ble_default_cfg_set(APP_BLE_CONN_CFG_TAG, &amp;amp;ram_start);
    APP_ERROR_CHECK(err_code);

    // Enable BLE stack.
    err_code = nrf_sdh_ble_enable(&amp;amp;ram_start);
    APP_ERROR_CHECK(err_code);

    // Register a handler for BLE events.
    NRF_SDH_BLE_OBSERVER(m_ble_observer, APP_BLE_OBSERVER_PRIO, ble_evt_handler, NULL);
}


/**@brief Function for handling events from the GATT library. */
void gatt_evt_handler(nrf_ble_gatt_t * p_gatt, nrf_ble_gatt_evt_t const * p_evt)
{
    if ((m_conn_handle == p_evt-&amp;gt;conn_handle) &amp;amp;&amp;amp; (p_evt-&amp;gt;evt_id == NRF_BLE_GATT_EVT_ATT_MTU_UPDATED))
    {
        m_ble_nus_max_data_len = p_evt-&amp;gt;params.att_mtu_effective - OPCODE_LENGTH - HANDLE_LENGTH;
        NRF_LOG_INFO(&amp;quot;Data len is set to 0x%X(%d)&amp;quot;, m_ble_nus_max_data_len, m_ble_nus_max_data_len);
    }
    NRF_LOG_DEBUG(&amp;quot;ATT MTU exchange completed. central 0x%x peripheral 0x%x&amp;quot;,
                  p_gatt-&amp;gt;att_mtu_desired_central,
                  p_gatt-&amp;gt;att_mtu_desired_periph);
}


/**@brief Function for initializing the GATT library. */
void gatt_init(void)
{
    ret_code_t err_code;

    err_code = nrf_ble_gatt_init(&amp;amp;m_gatt, gatt_evt_handler);
    APP_ERROR_CHECK(err_code);

    err_code = nrf_ble_gatt_att_mtu_periph_set(&amp;amp;m_gatt, NRF_SDH_BLE_GATT_MAX_MTU_SIZE);
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling events from the BSP module.
 *
 * @param[in]   event   Event generated by button press.
 */
void bsp_event_handler(bsp_event_t event)
{
    uint32_t err_code;
    switch (event)
    {
        case BSP_EVENT_SLEEP:
            sleep_mode_enter();
            break;

        case BSP_EVENT_DISCONNECT:
            err_code = sd_ble_gap_disconnect(m_conn_handle, BLE_HCI_REMOTE_USER_TERMINATED_CONNECTION);
            if (err_code != NRF_ERROR_INVALID_STATE)
            {
                APP_ERROR_CHECK(err_code);
            }
            break;

        case BSP_EVENT_WHITELIST_OFF:
            if (m_conn_handle == BLE_CONN_HANDLE_INVALID)
            {
                err_code = ble_advertising_restart_without_whitelist(&amp;amp;m_advertising);
                if (err_code != NRF_ERROR_INVALID_STATE)
                {
                    APP_ERROR_CHECK(err_code);
                }
            }
            break;

        default:
            break;
    }
}


/**@brief   Function for handling app_uart events.
 *
 * @details This function will receive a single character from the app_uart module and append it to
 *          a string. The string will be be sent over BLE when the last character received was a
 *          &amp;#39;new line&amp;#39; &amp;#39;\n&amp;#39; (hex 0x0A) or if the string has reached the maximum data length.
 */
/**@snippet [Handling the data received over UART] */
void uart_event_handle(app_uart_evt_t * p_event)
{
    static uint8_t data_array[BLE_NUS_MAX_DATA_LEN];
    static uint8_t index = 0;
    uint32_t       err_code;

    switch (p_event-&amp;gt;evt_type)
    {
        case APP_UART_DATA_READY:
            UNUSED_VARIABLE(app_uart_get(&amp;amp;data_array[index]));
            index++;

            if ((data_array[index - 1] == &amp;#39;\n&amp;#39;) ||
                (data_array[index - 1] == &amp;#39;\r&amp;#39;) ||
                (index &amp;gt;= m_ble_nus_max_data_len))
            {
                if (index &amp;gt; 1)
                {
                    NRF_LOG_DEBUG(&amp;quot;Ready to send data over BLE NUS&amp;quot;);
                    NRF_LOG_HEXDUMP_DEBUG(data_array, index);

                    do
                    {
                        uint16_t length = (uint16_t)index;
                        err_code = ble_nus_data_send(&amp;amp;m_nus, data_array, &amp;amp;length, m_conn_handle);
                        if ((err_code != NRF_ERROR_INVALID_STATE) &amp;amp;&amp;amp;
                            (err_code != NRF_ERROR_RESOURCES) &amp;amp;&amp;amp;
                            (err_code != NRF_ERROR_NOT_FOUND))
                        {
                            APP_ERROR_CHECK(err_code);
                        }
                    } while (err_code == NRF_ERROR_RESOURCES);
                }

                index = 0;
            }
            break;

        case APP_UART_COMMUNICATION_ERROR:
            APP_ERROR_HANDLER(p_event-&amp;gt;data.error_communication);
            break;

        case APP_UART_FIFO_ERROR:
            APP_ERROR_HANDLER(p_event-&amp;gt;data.error_code);
            break;

        default:
            break;
    }
}
/**@snippet [Handling the data received over UART] */


/**@brief  Function for initializing the UART module.
 */
/**@snippet [UART Initialization] */
static void uart_init(void)
{
    uint32_t                     err_code;
    app_uart_comm_params_t const comm_params =
    {
        .rx_pin_no    = RX_PIN_NUMBER,
        .tx_pin_no    = TX_PIN_NUMBER,
        .rts_pin_no   = RTS_PIN_NUMBER,
        .cts_pin_no   = CTS_PIN_NUMBER,
        .flow_control = APP_UART_FLOW_CONTROL_DISABLED,
        .use_parity   = false,
#if defined (UART_PRESENT)
        .baud_rate    = NRF_UART_BAUDRATE_115200
#else
        .baud_rate    = NRF_UARTE_BAUDRATE_115200
#endif
    };

    APP_UART_FIFO_INIT(&amp;amp;comm_params,
                       UART_RX_BUF_SIZE,
                       UART_TX_BUF_SIZE,
                       uart_event_handle,
                       APP_IRQ_PRIORITY_LOWEST,
                       err_code);
    APP_ERROR_CHECK(err_code);
}
/**@snippet [UART Initialization] */


/**@brief Function for initializing the Advertising functionality.
 */
static void advertising_init(void)
{
    uint32_t               err_code;
    ble_advertising_init_t init;

    memset(&amp;amp;init, 0, sizeof(init));

    init.advdata.name_type          = BLE_ADVDATA_FULL_NAME;
    init.advdata.include_appearance = false;
    init.advdata.flags              = BLE_GAP_ADV_FLAGS_LE_ONLY_LIMITED_DISC_MODE;

    init.srdata.uuids_complete.uuid_cnt = sizeof(m_adv_uuids) / sizeof(m_adv_uuids[0]);
    init.srdata.uuids_complete.p_uuids  = m_adv_uuids;

    init.config.ble_adv_fast_enabled  = true;
    init.config.ble_adv_fast_interval = APP_ADV_INTERVAL;
    init.config.ble_adv_fast_timeout  = APP_ADV_DURATION;
    init.evt_handler = on_adv_evt;

    err_code = ble_advertising_init(&amp;amp;m_advertising, &amp;amp;init);
    APP_ERROR_CHECK(err_code);

    ble_advertising_conn_cfg_tag_set(&amp;amp;m_advertising, APP_BLE_CONN_CFG_TAG);
}


/**@brief Function for initializing buttons and leds.
 *
 * @param[out] p_erase_bonds  Will be true if the clear bonding button was pressed to wake the application up.
 */
static void buttons_leds_init(bool * p_erase_bonds)
{
    bsp_event_t startup_event;

    uint32_t err_code = bsp_init(BSP_INIT_LEDS | BSP_INIT_BUTTONS, bsp_event_handler);
    APP_ERROR_CHECK(err_code);

    err_code = bsp_btn_ble_init(NULL, &amp;amp;startup_event);
    APP_ERROR_CHECK(err_code);

    *p_erase_bonds = (startup_event == BSP_EVENT_CLEAR_BONDING_DATA);
}


/**@brief Function for initializing the nrf log module.
 */
static void log_init(void)
{
    ret_code_t err_code = NRF_LOG_INIT(NULL);
    APP_ERROR_CHECK(err_code);

    NRF_LOG_DEFAULT_BACKENDS_INIT();
}


/**@brief Function for initializing power management.
 */
static void power_management_init(void)
{
    ret_code_t err_code;
    err_code = nrf_pwr_mgmt_init();
    APP_ERROR_CHECK(err_code);
}


/**@brief Function for handling the idle state (main loop).
 *
 * @details If there is no pending log operation, then sleep until next the next event occurs.
 */
static void idle_state_handle(void)
{
    UNUSED_RETURN_VALUE(NRF_LOG_PROCESS());
    nrf_pwr_mgmt_run();
}


/**@brief Function for starting advertising.
 */
static void advertising_start(void)
{
    uint32_t err_code = ble_advertising_start(&amp;amp;m_advertising, BLE_ADV_MODE_FAST);
    APP_ERROR_CHECK(err_code);
}


void timer_handler(nrf_timer_event_t event_type, void* p_context)
{

}


void saadc_sampling_event_init(void)
{
    ret_code_t err_code;
    err_code = nrf_drv_ppi_init();
    APP_ERROR_CHECK(err_code);
    
    nrf_drv_timer_config_t timer_config = NRF_DRV_TIMER_DEFAULT_CONFIG;
    timer_config.frequency = NRF_TIMER_FREQ_31250Hz;
    err_code = nrf_drv_timer_init(&amp;amp;m_timer, &amp;amp;timer_config, timer_handler);
    APP_ERROR_CHECK(err_code);

    /* setup m_timer for compare event */
    uint32_t ticks = nrf_drv_timer_ms_to_ticks(&amp;amp;m_timer,SAADC_SAMPLE_RATE);
    nrf_drv_timer_extended_compare(&amp;amp;m_timer, NRF_TIMER_CC_CHANNEL0, ticks, NRF_TIMER_SHORT_COMPARE0_CLEAR_MASK, false);
    nrf_drv_timer_enable(&amp;amp;m_timer);

    uint32_t timer_compare_event_addr = nrf_drv_timer_compare_event_address_get(&amp;amp;m_timer, NRF_TIMER_CC_CHANNEL0);
    uint32_t saadc_sample_event_addr = nrf_drv_saadc_sample_task_get();

    /* setup ppi channel so that timer compare event is triggering sample task in SAADC */
    err_code = nrf_drv_ppi_channel_alloc(&amp;amp;m_ppi_channel);
    APP_ERROR_CHECK(err_code);
    
    err_code = nrf_drv_ppi_channel_assign(m_ppi_channel, timer_compare_event_addr, saadc_sample_event_addr);
    APP_ERROR_CHECK(err_code);
}


void saadc_sampling_event_enable(void)
{
    ret_code_t err_code = nrf_drv_ppi_channel_enable(m_ppi_channel);
    APP_ERROR_CHECK(err_code);
}


void saadc_callback(nrf_drv_saadc_evt_t const * p_event)
{
    if (p_event-&amp;gt;type == NRF_DRV_SAADC_EVT_DONE)
    {
        ret_code_t err_code;
        uint16_t adc_value;
        uint8_t value[SAADC_SAMPLES_IN_BUFFER*2];
        uint16_t bytes_to_send;
     
        // set buffers
        err_code = nrf_drv_saadc_buffer_convert(p_event-&amp;gt;data.done.p_buffer, SAADC_SAMPLES_IN_BUFFER);
        APP_ERROR_CHECK(err_code);
						
        // print samples on hardware UART and parse data for BLE transmission
        printf(&amp;quot;ADC event number: %d\r\n&amp;quot;,(int)m_adc_evt_counter);
        for (int i = 0; i &amp;lt; SAADC_SAMPLES_IN_BUFFER; i++)
        {
            printf(&amp;quot;%d\r\n&amp;quot;, p_event-&amp;gt;data.done.p_buffer[i]);

            adc_value = p_event-&amp;gt;data.done.p_buffer[i];
            value[i*2] = adc_value;
            value[(i*2)+1] = adc_value &amp;gt;&amp;gt; 8;
        }

         // Send data over BLE via NUS service. Create string from samples and send string with correct length.
        uint8_t nus_string[244];
        //bytes_to_send = sprintf(nus_string, 
        //                        &amp;quot;CH0: %d\r\nCH1: %d\r\nCH2: %d\r\nCH3: %d&amp;quot;,
        //                        p_event-&amp;gt;data.done.p_buffer[0],
        //                        p_event-&amp;gt;data.done.p_buffer[1],
        //                        p_event-&amp;gt;data.done.p_buffer[2],
        //                        p_event-&amp;gt;data.done.p_buffer[3]);
        bytes_to_send = sprintf(nus_string, 
                                &amp;quot;CH0: %d 12345678901234567890123456789012345678901234567890123456789012345678901234567890123456789012345678900&amp;quot;,
                                p_event-&amp;gt;data.done.p_buffer[3]);

        err_code = ble_nus_data_send(&amp;amp;m_nus, nus_string, &amp;amp;bytes_to_send, m_conn_handle);
        if ((err_code != NRF_ERROR_INVALID_STATE) &amp;amp;&amp;amp; (err_code != NRF_ERROR_NOT_FOUND))
        {
            APP_ERROR_CHECK(err_code);
        }
	
        m_adc_evt_counter++;
    }
}


void saadc_init(void)
{
    ret_code_t err_code;
	
    nrf_drv_saadc_config_t saadc_config = NRF_DRV_SAADC_DEFAULT_CONFIG;
    saadc_config.resolution = NRF_SAADC_RESOLUTION_12BIT;
	
    nrf_saadc_channel_config_t channel_0_config =
        NRF_DRV_SAADC_DEFAULT_CHANNEL_CONFIG_SE(NRF_SAADC_INPUT_AIN4);
    channel_0_config.gain = NRF_SAADC_GAIN1_4;
    channel_0_config.reference = NRF_SAADC_REFERENCE_VDD4;
	
    nrf_saadc_channel_config_t channel_1_config =
        NRF_DRV_SAADC_DEFAULT_CHANNEL_CONFIG_SE(NRF_SAADC_INPUT_AIN5);
    channel_1_config.gain = NRF_SAADC_GAIN1_4;
    channel_1_config.reference = NRF_SAADC_REFERENCE_VDD4;
	
    nrf_saadc_channel_config_t channel_2_config =
        NRF_DRV_SAADC_DEFAULT_CHANNEL_CONFIG_SE(NRF_SAADC_INPUT_AIN6);
    channel_2_config.gain = NRF_SAADC_GAIN1_4;
    channel_2_config.reference = NRF_SAADC_REFERENCE_VDD4;
	
    nrf_saadc_channel_config_t channel_3_config =
        NRF_DRV_SAADC_DEFAULT_CHANNEL_CONFIG_SE(NRF_SAADC_INPUT_AIN7);
    channel_3_config.gain = NRF_SAADC_GAIN1_4;
    channel_3_config.reference = NRF_SAADC_REFERENCE_VDD4;				
	
    err_code = nrf_drv_saadc_init(&amp;amp;saadc_config, saadc_callback);
    APP_ERROR_CHECK(err_code);

    err_code = nrf_drv_saadc_channel_init(0, &amp;amp;channel_0_config);
    APP_ERROR_CHECK(err_code);
    err_code = nrf_drv_saadc_channel_init(1, &amp;amp;channel_1_config);
    APP_ERROR_CHECK(err_code);
    err_code = nrf_drv_saadc_channel_init(2, &amp;amp;channel_2_config);
    APP_ERROR_CHECK(err_code);
    err_code = nrf_drv_saadc_channel_init(3, &amp;amp;channel_3_config);
    APP_ERROR_CHECK(err_code);	

    err_code = nrf_drv_saadc_buffer_convert(m_buffer_pool[0],SAADC_SAMPLES_IN_BUFFER);
    APP_ERROR_CHECK(err_code);   
    err_code = nrf_drv_saadc_buffer_convert(m_buffer_pool[1],SAADC_SAMPLES_IN_BUFFER);
    APP_ERROR_CHECK(err_code);
}

/**@brief Application main function.
 */
int main(void)
{
    bool erase_bonds;

    // Initialize.
    uart_init();
    log_init();
    timers_init();
    buttons_leds_init(&amp;amp;erase_bonds);
    power_management_init();
    ble_stack_init();
    gap_params_init();
    gatt_init();
    services_init();
    advertising_init();
    conn_params_init();

    saadc_sampling_event_init();
    saadc_init();
    saadc_sampling_event_enable();

    // Start execution.
    printf(&amp;quot;\r\nUART started.\r\n&amp;quot;);
    NRF_LOG_INFO(&amp;quot;Debug logging for UART over RTT started.&amp;quot;);
    advertising_start();

    // Enter main loop.
    for (;;)
    {
        idle_state_handle();
    }
}


/**
 * @}
 */
&lt;/pre&gt;&amp;nbsp;&amp;nbsp;&lt;/p&gt;
&lt;p&gt;And the BLE stack configuration.&lt;pre class="ui-code" data-mode="text"&gt;// &amp;lt;h&amp;gt; BLE Stack configuration - Stack configuration parameters

// &amp;lt;i&amp;gt; The SoftDevice handler will configure the stack with these parameters when calling @ref nrf_sdh_ble_default_cfg_set.
// &amp;lt;i&amp;gt; Other libraries might depend on these values; keep them up-to-date even if you are not explicitely calling @ref nrf_sdh_ble_default_cfg_set.
//==========================================================
// &amp;lt;o&amp;gt; NRF_SDH_BLE_GAP_DATA_LENGTH   &amp;lt;27-251&amp;gt; 


// &amp;lt;i&amp;gt; Requested BLE GAP data length to be negotiated.

#ifndef NRF_SDH_BLE_GAP_DATA_LENGTH
#define NRF_SDH_BLE_GAP_DATA_LENGTH 251
#endif

// &amp;lt;o&amp;gt; NRF_SDH_BLE_PERIPHERAL_LINK_COUNT - Maximum number of peripheral links. 
#ifndef NRF_SDH_BLE_PERIPHERAL_LINK_COUNT
#define NRF_SDH_BLE_PERIPHERAL_LINK_COUNT 1
#endif

// &amp;lt;o&amp;gt; NRF_SDH_BLE_CENTRAL_LINK_COUNT - Maximum number of central links. 
#ifndef NRF_SDH_BLE_CENTRAL_LINK_COUNT
#define NRF_SDH_BLE_CENTRAL_LINK_COUNT 0
#endif

// &amp;lt;o&amp;gt; NRF_SDH_BLE_TOTAL_LINK_COUNT - Total link count. 
// &amp;lt;i&amp;gt; Maximum number of total concurrent connections using the default configuration.

#ifndef NRF_SDH_BLE_TOTAL_LINK_COUNT
#define NRF_SDH_BLE_TOTAL_LINK_COUNT 1
#endif

// &amp;lt;o&amp;gt; NRF_SDH_BLE_GAP_EVENT_LENGTH - GAP event length. 
// &amp;lt;i&amp;gt; The time set aside for this connection on every connection interval in 1.25 ms units.

#ifndef NRF_SDH_BLE_GAP_EVENT_LENGTH
#define NRF_SDH_BLE_GAP_EVENT_LENGTH 40
#endif

// &amp;lt;o&amp;gt; NRF_SDH_BLE_GATT_MAX_MTU_SIZE - Static maximum MTU size. 
#ifndef NRF_SDH_BLE_GATT_MAX_MTU_SIZE
#define NRF_SDH_BLE_GATT_MAX_MTU_SIZE 247
#endif

// &amp;lt;o&amp;gt; NRF_SDH_BLE_GATTS_ATTR_TAB_SIZE - Attribute Table size in bytes. The size must be a multiple of 4. 
#ifndef NRF_SDH_BLE_GATTS_ATTR_TAB_SIZE
#define NRF_SDH_BLE_GATTS_ATTR_TAB_SIZE 1408
#endif

// &amp;lt;o&amp;gt; NRF_SDH_BLE_VS_UUID_COUNT - The number of vendor-specific UUIDs. 
#ifndef NRF_SDH_BLE_VS_UUID_COUNT
#define NRF_SDH_BLE_VS_UUID_COUNT 1
#endif

// &amp;lt;q&amp;gt; NRF_SDH_BLE_SERVICE_CHANGED  - Include the Service Changed characteristic in the Attribute Table.
 

#ifndef NRF_SDH_BLE_SERVICE_CHANGED
#define NRF_SDH_BLE_SERVICE_CHANGED 0
#endif

// &amp;lt;/h&amp;gt; &lt;/pre&gt;&lt;/p&gt;
&lt;p&gt;Is there any wrong parameters I am using?&lt;/p&gt;
&lt;p&gt;One more question: If I read data from SAADC continuously and send out 100 samples in one packet, will SAADC data be lost during the connection interval? In other words, will they influence each other while working at the same time?&lt;/p&gt;
&lt;p&gt;&lt;/p&gt;
&lt;p&gt;Thanks again!&lt;/p&gt;
&lt;p&gt;&lt;/p&gt;
&lt;p&gt;&lt;/p&gt;
&lt;p&gt;&lt;/p&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;</description></item><item><title>RE: Data rate using nRF52832 and NUS</title><link>https://devzone.nordicsemi.com/thread/375336?ContentTypeID=1</link><pubDate>Mon, 04 Jul 2022 13:13:06 GMT</pubDate><guid isPermaLink="false">137ad170-7792-4731-bb38-c0d22fbe4515:a7f99d35-68f6-4fa4-8d95-ccb3b7056707</guid><dc:creator>Vidar Berg</dc:creator><description>&lt;p&gt;Hello,&lt;/p&gt;
&lt;p&gt;1. Yes, it sounds like it&amp;#39;s only receiving data on ever other connection event. Maybe you are limited by the sampling rate of the SAADC (&lt;span&gt;SAADC_SAMPLE_RATE&lt;/span&gt;)?&lt;span&gt;&lt;/span&gt;&lt;/p&gt;
&lt;p&gt;2. Please have look at the example project I uploaded here: &amp;nbsp;&lt;a href="https://devzone.nordicsemi.com/f/nordic-q-a/75804/nrf52840-ble-throughput-improvement"&gt;NRF52840 BLE throughput improvement&lt;/a&gt;&amp;nbsp; to see what connection parameters you can use to improve the data rate. You may also want to include more than one sample per notification to reduce packet overhead.&lt;/p&gt;
&lt;p&gt;Best regards,&lt;/p&gt;
&lt;p&gt;Vidar&lt;/p&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;</description></item></channel></rss>